@@ -1,118 +1,119 | |||||
1 | #ifndef TC_LOAD_DUMP_PARAMETERS_H |
|
1 | #ifndef TC_LOAD_DUMP_PARAMETERS_H | |
2 | #define TC_LOAD_DUMP_PARAMETERS_H |
|
2 | #define TC_LOAD_DUMP_PARAMETERS_H | |
3 |
|
3 | |||
4 | #include <rtems.h> |
|
4 | #include <rtems.h> | |
5 | #include <stdio.h> |
|
5 | #include <stdio.h> | |
6 |
|
6 | |||
7 | #include "fsw_params.h" |
|
7 | #include "fsw_params.h" | |
8 | #include "wf_handler.h" |
|
8 | #include "wf_handler.h" | |
9 | #include "tm_lfr_tc_exe.h" |
|
9 | #include "tm_lfr_tc_exe.h" | |
10 | #include "fsw_misc.h" |
|
10 | #include "fsw_misc.h" | |
11 | #include "basic_parameters_params.h" |
|
11 | #include "basic_parameters_params.h" | |
12 | #include "avf0_prc0.h" |
|
12 | #include "avf0_prc0.h" | |
13 |
|
13 | |||
14 | #define FLOAT_EQUAL_ZERO 0.001 |
|
14 | #define FLOAT_EQUAL_ZERO 0.001 | |
15 | #define NB_BINS_TO_REMOVE 3 |
|
15 | #define NB_BINS_TO_REMOVE 3 | |
16 | #define FI_INTERVAL_COEFF 0.285 |
|
16 | #define FI_INTERVAL_COEFF 0.285 | |
17 | #define BIN_MIN 0 |
|
17 | #define BIN_MIN 0 | |
18 | #define BIN_MAX 127 |
|
18 | #define BIN_MAX 127 | |
19 | #define DELTAF_F0 96. |
|
19 | #define DELTAF_F0 96. | |
20 | #define DELTAF_F1 16. |
|
20 | #define DELTAF_F1 16. | |
21 | #define DELTAF_F2 1. |
|
21 | #define DELTAF_F2 1. | |
22 | #define DELTAF_DIV 2. |
|
22 | #define DELTAF_DIV 2. | |
23 |
|
23 | |||
24 | #define BIT_RW1_F1 0x80 |
|
24 | #define BIT_RW1_F1 0x80 | |
25 | #define BIT_RW1_F2 0x40 |
|
25 | #define BIT_RW1_F2 0x40 | |
26 | #define BIT_RW2_F1 0x20 |
|
26 | #define BIT_RW2_F1 0x20 | |
27 | #define BIT_RW2_F2 0x10 |
|
27 | #define BIT_RW2_F2 0x10 | |
28 | #define BIT_RW3_F1 0x08 |
|
28 | #define BIT_RW3_F1 0x08 | |
29 | #define BIT_RW3_F2 0x04 |
|
29 | #define BIT_RW3_F2 0x04 | |
30 | #define BIT_RW4_F1 0x02 |
|
30 | #define BIT_RW4_F1 0x02 | |
31 | #define BIT_RW4_F2 0x01 |
|
31 | #define BIT_RW4_F2 0x01 | |
32 |
|
32 | |||
33 | #define WHEEL_1 1 |
|
33 | #define WHEEL_1 1 | |
34 | #define WHEEL_2 2 |
|
34 | #define WHEEL_2 2 | |
35 | #define WHEEL_3 3 |
|
35 | #define WHEEL_3 3 | |
36 | #define WHEEL_4 4 |
|
36 | #define WHEEL_4 4 | |
37 | #define FREQ_1 1 |
|
37 | #define FREQ_1 1 | |
38 | #define FREQ_2 2 |
|
38 | #define FREQ_2 2 | |
39 | #define FREQ_3 3 |
|
39 | #define FREQ_3 3 | |
40 | #define FREQ_4 4 |
|
40 | #define FREQ_4 4 | |
41 | #define FLAG_OFFSET_WHEELS_1_3 8 |
|
41 | #define FLAG_OFFSET_WHEELS_1_3 8 | |
42 | #define FLAG_OFFSET_WHEELS_2_4 4 |
|
42 | #define FLAG_OFFSET_WHEELS_2_4 4 | |
43 |
|
43 | |||
44 | #define FLAG_NAN 0 // Not A NUMBER |
|
44 | #define FLAG_NAN 0 // Not A NUMBER | |
45 | #define FLAG_IAN 1 // Is A Number |
|
45 | #define FLAG_IAN 1 // Is A Number | |
46 |
|
46 | |||
47 | #define SBM_KCOEFF_PER_NORM_KCOEFF 2 |
|
47 | #define SBM_KCOEFF_PER_NORM_KCOEFF 2 | |
48 |
|
48 | |||
49 | extern unsigned short sequenceCounterParameterDump; |
|
49 | extern unsigned short sequenceCounterParameterDump; | |
50 | extern unsigned short sequenceCounters_TM_DUMP[]; |
|
50 | extern unsigned short sequenceCounters_TM_DUMP[]; | |
51 | extern float k_coeff_intercalib_f0_norm[ ]; |
|
51 | extern float k_coeff_intercalib_f0_norm[ ]; | |
52 | extern float k_coeff_intercalib_f0_sbm[ ]; |
|
52 | extern float k_coeff_intercalib_f0_sbm[ ]; | |
53 | extern float k_coeff_intercalib_f1_norm[ ]; |
|
53 | extern float k_coeff_intercalib_f1_norm[ ]; | |
54 | extern float k_coeff_intercalib_f1_sbm[ ]; |
|
54 | extern float k_coeff_intercalib_f1_sbm[ ]; | |
55 | extern float k_coeff_intercalib_f2[ ]; |
|
55 | extern float k_coeff_intercalib_f2[ ]; | |
56 | extern fbins_masks_t fbins_masks; |
|
56 | extern fbins_masks_t fbins_masks; | |
57 |
|
57 | |||
58 | int action_load_common_par( ccsdsTelecommandPacket_t *TC ); |
|
58 | int action_load_common_par( ccsdsTelecommandPacket_t *TC ); | |
59 | int action_load_normal_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id , unsigned char *time); |
|
59 | int action_load_normal_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id , unsigned char *time); | |
60 | int action_load_burst_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id , unsigned char *time); |
|
60 | int action_load_burst_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id , unsigned char *time); | |
61 | int action_load_sbm1_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id , unsigned char *time); |
|
61 | int action_load_sbm1_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id , unsigned char *time); | |
62 | int action_load_sbm2_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id , unsigned char *time); |
|
62 | int action_load_sbm2_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id , unsigned char *time); | |
63 | int action_load_kcoefficients(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time); |
|
63 | int action_load_kcoefficients(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time); | |
64 | int action_load_fbins_mask(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time); |
|
64 | int action_load_fbins_mask(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time); | |
65 | int action_load_filter_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time); |
|
65 | int action_load_filter_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time); | |
66 | int action_dump_kcoefficients(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time); |
|
66 | int action_dump_kcoefficients(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time); | |
67 | int action_dump_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id ); |
|
67 | int action_dump_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id ); | |
68 |
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68 | |||
69 | // NORMAL |
|
69 | // NORMAL | |
70 | int check_normal_par_consistency( ccsdsTelecommandPacket_t *TC, rtems_id queue_id ); |
|
70 | int check_normal_par_consistency( ccsdsTelecommandPacket_t *TC, rtems_id queue_id ); | |
71 | int set_sy_lfr_n_swf_l( ccsdsTelecommandPacket_t *TC ); |
|
71 | int set_sy_lfr_n_swf_l( ccsdsTelecommandPacket_t *TC ); | |
72 | int set_sy_lfr_n_swf_p( ccsdsTelecommandPacket_t *TC ); |
|
72 | int set_sy_lfr_n_swf_p( ccsdsTelecommandPacket_t *TC ); | |
73 | int set_sy_lfr_n_asm_p( ccsdsTelecommandPacket_t *TC ); |
|
73 | int set_sy_lfr_n_asm_p( ccsdsTelecommandPacket_t *TC ); | |
74 | int set_sy_lfr_n_bp_p0( ccsdsTelecommandPacket_t *TC ); |
|
74 | int set_sy_lfr_n_bp_p0( ccsdsTelecommandPacket_t *TC ); | |
75 | int set_sy_lfr_n_bp_p1( ccsdsTelecommandPacket_t *TC ); |
|
75 | int set_sy_lfr_n_bp_p1( ccsdsTelecommandPacket_t *TC ); | |
76 | int set_sy_lfr_n_cwf_long_f3( ccsdsTelecommandPacket_t *TC ); |
|
76 | int set_sy_lfr_n_cwf_long_f3( ccsdsTelecommandPacket_t *TC ); | |
77 |
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77 | |||
78 | // BURST |
|
78 | // BURST | |
79 | int set_sy_lfr_b_bp_p0( ccsdsTelecommandPacket_t *TC ); |
|
79 | int set_sy_lfr_b_bp_p0( ccsdsTelecommandPacket_t *TC ); | |
80 | int set_sy_lfr_b_bp_p1( ccsdsTelecommandPacket_t *TC ); |
|
80 | int set_sy_lfr_b_bp_p1( ccsdsTelecommandPacket_t *TC ); | |
81 |
|
81 | |||
82 | // SBM1 |
|
82 | // SBM1 | |
83 | int set_sy_lfr_s1_bp_p0( ccsdsTelecommandPacket_t *TC ); |
|
83 | int set_sy_lfr_s1_bp_p0( ccsdsTelecommandPacket_t *TC ); | |
84 | int set_sy_lfr_s1_bp_p1( ccsdsTelecommandPacket_t *TC ); |
|
84 | int set_sy_lfr_s1_bp_p1( ccsdsTelecommandPacket_t *TC ); | |
85 |
|
85 | |||
86 | // SBM2 |
|
86 | // SBM2 | |
87 | int set_sy_lfr_s2_bp_p0( ccsdsTelecommandPacket_t *TC ); |
|
87 | int set_sy_lfr_s2_bp_p0( ccsdsTelecommandPacket_t *TC ); | |
88 | int set_sy_lfr_s2_bp_p1( ccsdsTelecommandPacket_t *TC ); |
|
88 | int set_sy_lfr_s2_bp_p1( ccsdsTelecommandPacket_t *TC ); | |
89 |
|
89 | |||
90 | // TC_LFR_UPDATE_INFO |
|
90 | // TC_LFR_UPDATE_INFO | |
91 | unsigned int check_update_info_hk_lfr_mode( unsigned char mode ); |
|
91 | unsigned int check_update_info_hk_lfr_mode( unsigned char mode ); | |
92 | unsigned int check_update_info_hk_tds_mode( unsigned char mode ); |
|
92 | unsigned int check_update_info_hk_tds_mode( unsigned char mode ); | |
93 | unsigned int check_update_info_hk_thr_mode( unsigned char mode ); |
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93 | unsigned int check_update_info_hk_thr_mode( unsigned char mode ); | |
94 | void set_hk_lfr_sc_rw_f_flag( unsigned char wheel, unsigned char freq, float value ); |
|
94 | void set_hk_lfr_sc_rw_f_flag( unsigned char wheel, unsigned char freq, float value ); | |
95 | void set_hk_lfr_sc_rw_f_flags( void ); |
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95 | void set_hk_lfr_sc_rw_f_flags( void ); | |
96 | void getReactionWheelsFrequencies( ccsdsTelecommandPacket_t *TC ); |
|
96 | void getReactionWheelsFrequencies( ccsdsTelecommandPacket_t *TC ); | |
97 | void setFBinMask(unsigned char *fbins_mask, float rw_f, unsigned char deltaFreq, float kcoeff ); |
|
97 | void setFBinMask(unsigned char *fbins_mask, float rw_f, unsigned char deltaFreq, float kcoeff ); | |
98 | void build_sy_lfr_rw_mask( unsigned int channel ); |
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98 | void build_sy_lfr_rw_mask( unsigned int channel ); | |
99 | void build_sy_lfr_rw_masks(); |
|
99 | void build_sy_lfr_rw_masks(); | |
100 | void merge_fbins_masks( void ); |
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100 | void merge_fbins_masks( void ); | |
101 |
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101 | |||
102 | // FBINS_MASK |
|
102 | // FBINS_MASK | |
103 | int set_sy_lfr_fbins( ccsdsTelecommandPacket_t *TC ); |
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103 | int set_sy_lfr_fbins( ccsdsTelecommandPacket_t *TC ); | |
104 |
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104 | |||
105 | // TC_LFR_LOAD_PARS_FILTER_PAR |
|
105 | // TC_LFR_LOAD_PARS_FILTER_PAR | |
106 | int check_sy_lfr_filter_parameters( ccsdsTelecommandPacket_t *TC, rtems_id queue_id ); |
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106 | int check_sy_lfr_filter_parameters( ccsdsTelecommandPacket_t *TC, rtems_id queue_id ); | |
107 |
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107 | |||
108 | // KCOEFFICIENTS |
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108 | // KCOEFFICIENTS | |
109 | int set_sy_lfr_kcoeff(ccsdsTelecommandPacket_t *TC , rtems_id queue_id); |
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109 | int set_sy_lfr_kcoeff(ccsdsTelecommandPacket_t *TC , rtems_id queue_id); | |
110 | void copyFloatByChar( unsigned char *destination, unsigned char *source ); |
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110 | void copyFloatByChar( unsigned char *destination, unsigned char *source ); | |
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111 | void copyInt32ByChar( unsigned char *destination, unsigned char *source ); | |||
111 | void floatToChar( float value, unsigned char* ptr); |
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112 | void floatToChar( float value, unsigned char* ptr); | |
112 |
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113 | |||
113 | void init_parameter_dump( void ); |
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114 | void init_parameter_dump( void ); | |
114 | void init_kcoefficients_dump( void ); |
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115 | void init_kcoefficients_dump( void ); | |
115 | void init_kcoefficients_dump_packet( Packet_TM_LFR_KCOEFFICIENTS_DUMP_t *kcoefficients_dump, unsigned char pkt_nr, unsigned char blk_nr ); |
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116 | void init_kcoefficients_dump_packet( Packet_TM_LFR_KCOEFFICIENTS_DUMP_t *kcoefficients_dump, unsigned char pkt_nr, unsigned char blk_nr ); | |
116 | void increment_seq_counter_destination_id_dump( unsigned char *packet_sequence_control, unsigned char destination_id ); |
|
117 | void increment_seq_counter_destination_id_dump( unsigned char *packet_sequence_control, unsigned char destination_id ); | |
117 |
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118 | |||
118 | #endif // TC_LOAD_DUMP_PARAMETERS_H |
|
119 | #endif // TC_LOAD_DUMP_PARAMETERS_H |
@@ -1,1633 +1,1633 | |||||
1 | /** Functions related to the SpaceWire interface. |
|
1 | /** Functions related to the SpaceWire interface. | |
2 | * |
|
2 | * | |
3 | * @file |
|
3 | * @file | |
4 | * @author P. LEROY |
|
4 | * @author P. LEROY | |
5 | * |
|
5 | * | |
6 | * A group of functions to handle SpaceWire transmissions: |
|
6 | * A group of functions to handle SpaceWire transmissions: | |
7 | * - configuration of the SpaceWire link |
|
7 | * - configuration of the SpaceWire link | |
8 | * - SpaceWire related interruption requests processing |
|
8 | * - SpaceWire related interruption requests processing | |
9 | * - transmission of TeleMetry packets by a dedicated RTEMS task |
|
9 | * - transmission of TeleMetry packets by a dedicated RTEMS task | |
10 | * - reception of TeleCommands by a dedicated RTEMS task |
|
10 | * - reception of TeleCommands by a dedicated RTEMS task | |
11 | * |
|
11 | * | |
12 | */ |
|
12 | */ | |
13 |
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13 | |||
14 | #include "fsw_spacewire.h" |
|
14 | #include "fsw_spacewire.h" | |
15 |
|
15 | |||
16 | rtems_name semq_name = 0; |
|
16 | rtems_name semq_name = 0; | |
17 | rtems_id semq_id = RTEMS_ID_NONE; |
|
17 | rtems_id semq_id = RTEMS_ID_NONE; | |
18 |
|
18 | |||
19 | //***************** |
|
19 | //***************** | |
20 | // waveform headers |
|
20 | // waveform headers | |
21 | Header_TM_LFR_SCIENCE_CWF_t headerCWF = {0}; |
|
21 | Header_TM_LFR_SCIENCE_CWF_t headerCWF = {0}; | |
22 | Header_TM_LFR_SCIENCE_SWF_t headerSWF = {0}; |
|
22 | Header_TM_LFR_SCIENCE_SWF_t headerSWF = {0}; | |
23 | Header_TM_LFR_SCIENCE_ASM_t headerASM = {0}; |
|
23 | Header_TM_LFR_SCIENCE_ASM_t headerASM = {0}; | |
24 |
|
24 | |||
25 | unsigned char previousTimecodeCtr = 0; |
|
25 | unsigned char previousTimecodeCtr = 0; | |
26 | unsigned int *grspwPtr = (unsigned int *) (REGS_ADDR_GRSPW + APB_OFFSET_GRSPW_TIME_REGISTER); |
|
26 | unsigned int *grspwPtr = (unsigned int *) (REGS_ADDR_GRSPW + APB_OFFSET_GRSPW_TIME_REGISTER); | |
27 |
|
27 | |||
28 | //*********** |
|
28 | //*********** | |
29 | // RTEMS TASK |
|
29 | // RTEMS TASK | |
30 | rtems_task spiq_task(rtems_task_argument unused) |
|
30 | rtems_task spiq_task(rtems_task_argument unused) | |
31 | { |
|
31 | { | |
32 | /** This RTEMS task is awaken by an rtems_event sent by the interruption subroutine of the SpaceWire driver. |
|
32 | /** This RTEMS task is awaken by an rtems_event sent by the interruption subroutine of the SpaceWire driver. | |
33 | * |
|
33 | * | |
34 | * @param unused is the starting argument of the RTEMS task |
|
34 | * @param unused is the starting argument of the RTEMS task | |
35 | * |
|
35 | * | |
36 | */ |
|
36 | */ | |
37 |
|
37 | |||
38 | rtems_event_set event_out; |
|
38 | rtems_event_set event_out; | |
39 | rtems_status_code status; |
|
39 | rtems_status_code status; | |
40 | int linkStatus; |
|
40 | int linkStatus; | |
41 |
|
41 | |||
42 | event_out = EVENT_SETS_NONE_PENDING; |
|
42 | event_out = EVENT_SETS_NONE_PENDING; | |
43 | linkStatus = 0; |
|
43 | linkStatus = 0; | |
44 |
|
44 | |||
45 | BOOT_PRINTF("in SPIQ *** \n") |
|
45 | BOOT_PRINTF("in SPIQ *** \n") | |
46 |
|
46 | |||
47 | while(true){ |
|
47 | while(true){ | |
48 | rtems_event_receive(SPW_LINKERR_EVENT, RTEMS_WAIT, RTEMS_NO_TIMEOUT, &event_out); // wait for an SPW_LINKERR_EVENT |
|
48 | rtems_event_receive(SPW_LINKERR_EVENT, RTEMS_WAIT, RTEMS_NO_TIMEOUT, &event_out); // wait for an SPW_LINKERR_EVENT | |
49 | PRINTF("in SPIQ *** got SPW_LINKERR_EVENT\n") |
|
49 | PRINTF("in SPIQ *** got SPW_LINKERR_EVENT\n") | |
50 |
|
50 | |||
51 | // [0] SUSPEND RECV AND SEND TASKS |
|
51 | // [0] SUSPEND RECV AND SEND TASKS | |
52 | status = rtems_task_suspend( Task_id[ TASKID_RECV ] ); |
|
52 | status = rtems_task_suspend( Task_id[ TASKID_RECV ] ); | |
53 | if ( status != RTEMS_SUCCESSFUL ) { |
|
53 | if ( status != RTEMS_SUCCESSFUL ) { | |
54 | PRINTF("in SPIQ *** ERR suspending RECV Task\n") |
|
54 | PRINTF("in SPIQ *** ERR suspending RECV Task\n") | |
55 | } |
|
55 | } | |
56 | status = rtems_task_suspend( Task_id[ TASKID_SEND ] ); |
|
56 | status = rtems_task_suspend( Task_id[ TASKID_SEND ] ); | |
57 | if ( status != RTEMS_SUCCESSFUL ) { |
|
57 | if ( status != RTEMS_SUCCESSFUL ) { | |
58 | PRINTF("in SPIQ *** ERR suspending SEND Task\n") |
|
58 | PRINTF("in SPIQ *** ERR suspending SEND Task\n") | |
59 | } |
|
59 | } | |
60 |
|
60 | |||
61 | // [1] CHECK THE LINK |
|
61 | // [1] CHECK THE LINK | |
62 | status = ioctl(fdSPW, SPACEWIRE_IOCTRL_GET_LINK_STATUS, &linkStatus); // get the link status (1) |
|
62 | status = ioctl(fdSPW, SPACEWIRE_IOCTRL_GET_LINK_STATUS, &linkStatus); // get the link status (1) | |
63 | if ( linkStatus != SPW_LINK_OK) { |
|
63 | if ( linkStatus != SPW_LINK_OK) { | |
64 | PRINTF1("in SPIQ *** linkStatus %d, wait...\n", linkStatus) |
|
64 | PRINTF1("in SPIQ *** linkStatus %d, wait...\n", linkStatus) | |
65 | status = rtems_task_wake_after( SY_LFR_DPU_CONNECT_TIMEOUT ); // wait SY_LFR_DPU_CONNECT_TIMEOUT 1000 ms |
|
65 | status = rtems_task_wake_after( SY_LFR_DPU_CONNECT_TIMEOUT ); // wait SY_LFR_DPU_CONNECT_TIMEOUT 1000 ms | |
66 | } |
|
66 | } | |
67 |
|
67 | |||
68 | // [2] RECHECK THE LINK AFTER SY_LFR_DPU_CONNECT_TIMEOUT |
|
68 | // [2] RECHECK THE LINK AFTER SY_LFR_DPU_CONNECT_TIMEOUT | |
69 | status = ioctl(fdSPW, SPACEWIRE_IOCTRL_GET_LINK_STATUS, &linkStatus); // get the link status (2) |
|
69 | status = ioctl(fdSPW, SPACEWIRE_IOCTRL_GET_LINK_STATUS, &linkStatus); // get the link status (2) | |
70 | if ( linkStatus != SPW_LINK_OK ) // [2.a] not in run state, reset the link |
|
70 | if ( linkStatus != SPW_LINK_OK ) // [2.a] not in run state, reset the link | |
71 | { |
|
71 | { | |
72 | spacewire_read_statistics(); |
|
72 | spacewire_read_statistics(); | |
73 | status = spacewire_several_connect_attemps( ); |
|
73 | status = spacewire_several_connect_attemps( ); | |
74 | } |
|
74 | } | |
75 | else // [2.b] in run state, start the link |
|
75 | else // [2.b] in run state, start the link | |
76 | { |
|
76 | { | |
77 | status = spacewire_stop_and_start_link( fdSPW ); // start the link |
|
77 | status = spacewire_stop_and_start_link( fdSPW ); // start the link | |
78 | if ( status != RTEMS_SUCCESSFUL) |
|
78 | if ( status != RTEMS_SUCCESSFUL) | |
79 | { |
|
79 | { | |
80 | PRINTF1("in SPIQ *** ERR spacewire_stop_and_start_link %d\n", status) |
|
80 | PRINTF1("in SPIQ *** ERR spacewire_stop_and_start_link %d\n", status) | |
81 | } |
|
81 | } | |
82 | } |
|
82 | } | |
83 |
|
83 | |||
84 | // [3] COMPLETE RECOVERY ACTION AFTER SY_LFR_DPU_CONNECT_ATTEMPTS |
|
84 | // [3] COMPLETE RECOVERY ACTION AFTER SY_LFR_DPU_CONNECT_ATTEMPTS | |
85 | if ( status == RTEMS_SUCCESSFUL ) // [3.a] the link is in run state and has been started successfully |
|
85 | if ( status == RTEMS_SUCCESSFUL ) // [3.a] the link is in run state and has been started successfully | |
86 | { |
|
86 | { | |
87 | status = rtems_task_restart( Task_id[ TASKID_SEND ], 1 ); |
|
87 | status = rtems_task_restart( Task_id[ TASKID_SEND ], 1 ); | |
88 | if ( status != RTEMS_SUCCESSFUL ) { |
|
88 | if ( status != RTEMS_SUCCESSFUL ) { | |
89 | PRINTF("in SPIQ *** ERR resuming SEND Task\n") |
|
89 | PRINTF("in SPIQ *** ERR resuming SEND Task\n") | |
90 | } |
|
90 | } | |
91 | status = rtems_task_restart( Task_id[ TASKID_RECV ], 1 ); |
|
91 | status = rtems_task_restart( Task_id[ TASKID_RECV ], 1 ); | |
92 | if ( status != RTEMS_SUCCESSFUL ) { |
|
92 | if ( status != RTEMS_SUCCESSFUL ) { | |
93 | PRINTF("in SPIQ *** ERR resuming RECV Task\n") |
|
93 | PRINTF("in SPIQ *** ERR resuming RECV Task\n") | |
94 | } |
|
94 | } | |
95 | } |
|
95 | } | |
96 | else // [3.b] the link is not in run state, go in STANDBY mode |
|
96 | else // [3.b] the link is not in run state, go in STANDBY mode | |
97 | { |
|
97 | { | |
98 | status = enter_mode_standby(); |
|
98 | status = enter_mode_standby(); | |
99 | if ( status != RTEMS_SUCCESSFUL ) |
|
99 | if ( status != RTEMS_SUCCESSFUL ) | |
100 | { |
|
100 | { | |
101 | PRINTF1("in SPIQ *** ERR enter_standby_mode *** code %d\n", status) |
|
101 | PRINTF1("in SPIQ *** ERR enter_standby_mode *** code %d\n", status) | |
102 | } |
|
102 | } | |
103 | { |
|
103 | { | |
104 | updateLFRCurrentMode( LFR_MODE_STANDBY ); |
|
104 | updateLFRCurrentMode( LFR_MODE_STANDBY ); | |
105 | } |
|
105 | } | |
106 | // wake the LINK task up to wait for the link recovery |
|
106 | // wake the LINK task up to wait for the link recovery | |
107 | status = rtems_event_send ( Task_id[TASKID_LINK], RTEMS_EVENT_0 ); |
|
107 | status = rtems_event_send ( Task_id[TASKID_LINK], RTEMS_EVENT_0 ); | |
108 | status = rtems_task_suspend( RTEMS_SELF ); |
|
108 | status = rtems_task_suspend( RTEMS_SELF ); | |
109 | } |
|
109 | } | |
110 | } |
|
110 | } | |
111 | } |
|
111 | } | |
112 |
|
112 | |||
113 | rtems_task recv_task( rtems_task_argument unused ) |
|
113 | rtems_task recv_task( rtems_task_argument unused ) | |
114 | { |
|
114 | { | |
115 | /** This RTEMS task is dedicated to the reception of incoming TeleCommands. |
|
115 | /** This RTEMS task is dedicated to the reception of incoming TeleCommands. | |
116 | * |
|
116 | * | |
117 | * @param unused is the starting argument of the RTEMS task |
|
117 | * @param unused is the starting argument of the RTEMS task | |
118 | * |
|
118 | * | |
119 | * The RECV task blocks on a call to the read system call, waiting for incoming SpaceWire data. When unblocked: |
|
119 | * The RECV task blocks on a call to the read system call, waiting for incoming SpaceWire data. When unblocked: | |
120 | * 1. It reads the incoming data. |
|
120 | * 1. It reads the incoming data. | |
121 | * 2. Launches the acceptance procedure. |
|
121 | * 2. Launches the acceptance procedure. | |
122 | * 3. If the Telecommand is valid, sends it to a dedicated RTEMS message queue. |
|
122 | * 3. If the Telecommand is valid, sends it to a dedicated RTEMS message queue. | |
123 | * |
|
123 | * | |
124 | */ |
|
124 | */ | |
125 |
|
125 | |||
126 | int len; |
|
126 | int len; | |
127 | ccsdsTelecommandPacket_t currentTC; |
|
127 | ccsdsTelecommandPacket_t __attribute__((aligned(4))) currentTC; | |
128 | unsigned char computed_CRC[ BYTES_PER_CRC ]; |
|
128 | unsigned char computed_CRC[ BYTES_PER_CRC ]; | |
129 | unsigned char currentTC_LEN_RCV[ BYTES_PER_PKT_LEN ]; |
|
129 | unsigned char currentTC_LEN_RCV[ BYTES_PER_PKT_LEN ]; | |
130 | unsigned char destinationID; |
|
130 | unsigned char destinationID; | |
131 | unsigned int estimatedPacketLength; |
|
131 | unsigned int estimatedPacketLength; | |
132 | unsigned int parserCode; |
|
132 | unsigned int parserCode; | |
133 | rtems_status_code status; |
|
133 | rtems_status_code status; | |
134 | rtems_id queue_recv_id; |
|
134 | rtems_id queue_recv_id; | |
135 | rtems_id queue_send_id; |
|
135 | rtems_id queue_send_id; | |
136 |
|
136 | |||
137 | memset( ¤tTC, 0, sizeof(ccsdsTelecommandPacket_t) ); |
|
137 | memset( ¤tTC, 0, sizeof(ccsdsTelecommandPacket_t) ); | |
138 | destinationID = 0; |
|
138 | destinationID = 0; | |
139 | queue_recv_id = RTEMS_ID_NONE; |
|
139 | queue_recv_id = RTEMS_ID_NONE; | |
140 | queue_send_id = RTEMS_ID_NONE; |
|
140 | queue_send_id = RTEMS_ID_NONE; | |
141 |
|
141 | |||
142 | initLookUpTableForCRC(); // the table is used to compute Cyclic Redundancy Codes |
|
142 | initLookUpTableForCRC(); // the table is used to compute Cyclic Redundancy Codes | |
143 |
|
143 | |||
144 | status = get_message_queue_id_recv( &queue_recv_id ); |
|
144 | status = get_message_queue_id_recv( &queue_recv_id ); | |
145 | if (status != RTEMS_SUCCESSFUL) |
|
145 | if (status != RTEMS_SUCCESSFUL) | |
146 | { |
|
146 | { | |
147 | PRINTF1("in RECV *** ERR get_message_queue_id_recv %d\n", status) |
|
147 | PRINTF1("in RECV *** ERR get_message_queue_id_recv %d\n", status) | |
148 | } |
|
148 | } | |
149 |
|
149 | |||
150 | status = get_message_queue_id_send( &queue_send_id ); |
|
150 | status = get_message_queue_id_send( &queue_send_id ); | |
151 | if (status != RTEMS_SUCCESSFUL) |
|
151 | if (status != RTEMS_SUCCESSFUL) | |
152 | { |
|
152 | { | |
153 | PRINTF1("in RECV *** ERR get_message_queue_id_send %d\n", status) |
|
153 | PRINTF1("in RECV *** ERR get_message_queue_id_send %d\n", status) | |
154 | } |
|
154 | } | |
155 |
|
155 | |||
156 | BOOT_PRINTF("in RECV *** \n") |
|
156 | BOOT_PRINTF("in RECV *** \n") | |
157 |
|
157 | |||
158 | while(1) |
|
158 | while(1) | |
159 | { |
|
159 | { | |
160 | len = read( fdSPW, (char*) ¤tTC, CCSDS_TC_PKT_MAX_SIZE ); // the call to read is blocking |
|
160 | len = read( fdSPW, (char*) ¤tTC, CCSDS_TC_PKT_MAX_SIZE ); // the call to read is blocking | |
161 | if (len == -1){ // error during the read call |
|
161 | if (len == -1){ // error during the read call | |
162 | PRINTF1("in RECV *** last read call returned -1, ERRNO %d\n", errno) |
|
162 | PRINTF1("in RECV *** last read call returned -1, ERRNO %d\n", errno) | |
163 | } |
|
163 | } | |
164 | else { |
|
164 | else { | |
165 | if ( (len+1) < CCSDS_TC_PKT_MIN_SIZE ) { |
|
165 | if ( (len+1) < CCSDS_TC_PKT_MIN_SIZE ) { | |
166 | PRINTF("in RECV *** packet lenght too short\n") |
|
166 | PRINTF("in RECV *** packet lenght too short\n") | |
167 | } |
|
167 | } | |
168 | else { |
|
168 | else { | |
169 | estimatedPacketLength = (unsigned int) (len - CCSDS_TC_TM_PACKET_OFFSET - PROTID_RES_APP); // => -3 is for Prot ID, Reserved and User App bytes |
|
169 | estimatedPacketLength = (unsigned int) (len - CCSDS_TC_TM_PACKET_OFFSET - PROTID_RES_APP); // => -3 is for Prot ID, Reserved and User App bytes | |
170 | //PRINTF1("incoming TC with Length (byte): %d\n", len - 3); |
|
170 | //PRINTF1("incoming TC with Length (byte): %d\n", len - 3); | |
171 | currentTC_LEN_RCV[ 0 ] = (unsigned char) (estimatedPacketLength >> SHIFT_1_BYTE); |
|
171 | currentTC_LEN_RCV[ 0 ] = (unsigned char) (estimatedPacketLength >> SHIFT_1_BYTE); | |
172 | currentTC_LEN_RCV[ 1 ] = (unsigned char) (estimatedPacketLength ); |
|
172 | currentTC_LEN_RCV[ 1 ] = (unsigned char) (estimatedPacketLength ); | |
173 | // CHECK THE TC |
|
173 | // CHECK THE TC | |
174 | parserCode = tc_parser( ¤tTC, estimatedPacketLength, computed_CRC ) ; |
|
174 | parserCode = tc_parser( ¤tTC, estimatedPacketLength, computed_CRC ) ; | |
175 | if ( (parserCode == ILLEGAL_APID) || (parserCode == WRONG_LEN_PKT) |
|
175 | if ( (parserCode == ILLEGAL_APID) || (parserCode == WRONG_LEN_PKT) | |
176 | || (parserCode == INCOR_CHECKSUM) || (parserCode == ILL_TYPE) |
|
176 | || (parserCode == INCOR_CHECKSUM) || (parserCode == ILL_TYPE) | |
177 | || (parserCode == ILL_SUBTYPE) || (parserCode == WRONG_APP_DATA) |
|
177 | || (parserCode == ILL_SUBTYPE) || (parserCode == WRONG_APP_DATA) | |
178 | || (parserCode == WRONG_SRC_ID) ) |
|
178 | || (parserCode == WRONG_SRC_ID) ) | |
179 | { // send TM_LFR_TC_EXE_CORRUPTED |
|
179 | { // send TM_LFR_TC_EXE_CORRUPTED | |
180 | PRINTF1("TC corrupted received, with code: %d\n", parserCode); |
|
180 | PRINTF1("TC corrupted received, with code: %d\n", parserCode); | |
181 | if ( !( (currentTC.serviceType==TC_TYPE_TIME) && (currentTC.serviceSubType==TC_SUBTYPE_UPDT_TIME) ) |
|
181 | if ( !( (currentTC.serviceType==TC_TYPE_TIME) && (currentTC.serviceSubType==TC_SUBTYPE_UPDT_TIME) ) | |
182 | && |
|
182 | && | |
183 | !( (currentTC.serviceType==TC_TYPE_GEN) && (currentTC.serviceSubType==TC_SUBTYPE_UPDT_INFO)) |
|
183 | !( (currentTC.serviceType==TC_TYPE_GEN) && (currentTC.serviceSubType==TC_SUBTYPE_UPDT_INFO)) | |
184 | ) |
|
184 | ) | |
185 | { |
|
185 | { | |
186 | if ( parserCode == WRONG_SRC_ID ) |
|
186 | if ( parserCode == WRONG_SRC_ID ) | |
187 | { |
|
187 | { | |
188 | destinationID = SID_TC_GROUND; |
|
188 | destinationID = SID_TC_GROUND; | |
189 | } |
|
189 | } | |
190 | else |
|
190 | else | |
191 | { |
|
191 | { | |
192 | destinationID = currentTC.sourceID; |
|
192 | destinationID = currentTC.sourceID; | |
193 | } |
|
193 | } | |
194 | send_tm_lfr_tc_exe_corrupted( ¤tTC, queue_send_id, |
|
194 | send_tm_lfr_tc_exe_corrupted( ¤tTC, queue_send_id, | |
195 | computed_CRC, currentTC_LEN_RCV, |
|
195 | computed_CRC, currentTC_LEN_RCV, | |
196 | destinationID ); |
|
196 | destinationID ); | |
197 | } |
|
197 | } | |
198 | } |
|
198 | } | |
199 | else |
|
199 | else | |
200 | { // send valid TC to the action launcher |
|
200 | { // send valid TC to the action launcher | |
201 | status = rtems_message_queue_send( queue_recv_id, ¤tTC, |
|
201 | status = rtems_message_queue_send( queue_recv_id, ¤tTC, | |
202 | estimatedPacketLength + CCSDS_TC_TM_PACKET_OFFSET + PROTID_RES_APP); |
|
202 | estimatedPacketLength + CCSDS_TC_TM_PACKET_OFFSET + PROTID_RES_APP); | |
203 | } |
|
203 | } | |
204 | } |
|
204 | } | |
205 | } |
|
205 | } | |
206 |
|
206 | |||
207 | update_queue_max_count( queue_recv_id, &hk_lfr_q_rv_fifo_size_max ); |
|
207 | update_queue_max_count( queue_recv_id, &hk_lfr_q_rv_fifo_size_max ); | |
208 |
|
208 | |||
209 | } |
|
209 | } | |
210 | } |
|
210 | } | |
211 |
|
211 | |||
212 | rtems_task send_task( rtems_task_argument argument) |
|
212 | rtems_task send_task( rtems_task_argument argument) | |
213 | { |
|
213 | { | |
214 | /** This RTEMS task is dedicated to the transmission of TeleMetry packets. |
|
214 | /** This RTEMS task is dedicated to the transmission of TeleMetry packets. | |
215 | * |
|
215 | * | |
216 | * @param unused is the starting argument of the RTEMS task |
|
216 | * @param unused is the starting argument of the RTEMS task | |
217 | * |
|
217 | * | |
218 | * The SEND task waits for a message to become available in the dedicated RTEMS queue. When a message arrives: |
|
218 | * The SEND task waits for a message to become available in the dedicated RTEMS queue. When a message arrives: | |
219 | * - if the first byte is equal to CCSDS_DESTINATION_ID, the message is sent as is using the write system call. |
|
219 | * - if the first byte is equal to CCSDS_DESTINATION_ID, the message is sent as is using the write system call. | |
220 | * - if the first byte is not equal to CCSDS_DESTINATION_ID, the message is handled as a spw_ioctl_pkt_send. After |
|
220 | * - if the first byte is not equal to CCSDS_DESTINATION_ID, the message is handled as a spw_ioctl_pkt_send. After | |
221 | * analyzis, the packet is sent either using the write system call or using the ioctl call SPACEWIRE_IOCTRL_SEND, depending on the |
|
221 | * analyzis, the packet is sent either using the write system call or using the ioctl call SPACEWIRE_IOCTRL_SEND, depending on the | |
222 | * data it contains. |
|
222 | * data it contains. | |
223 | * |
|
223 | * | |
224 | */ |
|
224 | */ | |
225 |
|
225 | |||
226 | rtems_status_code status; // RTEMS status code |
|
226 | rtems_status_code status; // RTEMS status code | |
227 | char incomingData[MSG_QUEUE_SIZE_SEND]; // incoming data buffer |
|
227 | char incomingData[MSG_QUEUE_SIZE_SEND]; // incoming data buffer | |
228 | ring_node *incomingRingNodePtr; |
|
228 | ring_node *incomingRingNodePtr; | |
229 | int ring_node_address; |
|
229 | int ring_node_address; | |
230 | char *charPtr; |
|
230 | char *charPtr; | |
231 | spw_ioctl_pkt_send *spw_ioctl_send; |
|
231 | spw_ioctl_pkt_send *spw_ioctl_send; | |
232 | size_t size; // size of the incoming TC packet |
|
232 | size_t size; // size of the incoming TC packet | |
233 | rtems_id queue_send_id; |
|
233 | rtems_id queue_send_id; | |
234 | unsigned int sid; |
|
234 | unsigned int sid; | |
235 | unsigned char sidAsUnsignedChar; |
|
235 | unsigned char sidAsUnsignedChar; | |
236 | unsigned char type; |
|
236 | unsigned char type; | |
237 |
|
237 | |||
238 | incomingRingNodePtr = NULL; |
|
238 | incomingRingNodePtr = NULL; | |
239 | ring_node_address = 0; |
|
239 | ring_node_address = 0; | |
240 | charPtr = (char *) &ring_node_address; |
|
240 | charPtr = (char *) &ring_node_address; | |
241 | size = 0; |
|
241 | size = 0; | |
242 | queue_send_id = RTEMS_ID_NONE; |
|
242 | queue_send_id = RTEMS_ID_NONE; | |
243 | sid = 0; |
|
243 | sid = 0; | |
244 | sidAsUnsignedChar = 0; |
|
244 | sidAsUnsignedChar = 0; | |
245 |
|
245 | |||
246 | init_header_cwf( &headerCWF ); |
|
246 | init_header_cwf( &headerCWF ); | |
247 | init_header_swf( &headerSWF ); |
|
247 | init_header_swf( &headerSWF ); | |
248 | init_header_asm( &headerASM ); |
|
248 | init_header_asm( &headerASM ); | |
249 |
|
249 | |||
250 | status = get_message_queue_id_send( &queue_send_id ); |
|
250 | status = get_message_queue_id_send( &queue_send_id ); | |
251 | if (status != RTEMS_SUCCESSFUL) |
|
251 | if (status != RTEMS_SUCCESSFUL) | |
252 | { |
|
252 | { | |
253 | PRINTF1("in HOUS *** ERR get_message_queue_id_send %d\n", status) |
|
253 | PRINTF1("in HOUS *** ERR get_message_queue_id_send %d\n", status) | |
254 | } |
|
254 | } | |
255 |
|
255 | |||
256 | BOOT_PRINTF("in SEND *** \n") |
|
256 | BOOT_PRINTF("in SEND *** \n") | |
257 |
|
257 | |||
258 | while(1) |
|
258 | while(1) | |
259 | { |
|
259 | { | |
260 | status = rtems_message_queue_receive( queue_send_id, incomingData, &size, |
|
260 | status = rtems_message_queue_receive( queue_send_id, incomingData, &size, | |
261 | RTEMS_WAIT, RTEMS_NO_TIMEOUT ); |
|
261 | RTEMS_WAIT, RTEMS_NO_TIMEOUT ); | |
262 |
|
262 | |||
263 | if (status!=RTEMS_SUCCESSFUL) |
|
263 | if (status!=RTEMS_SUCCESSFUL) | |
264 | { |
|
264 | { | |
265 | PRINTF1("in SEND *** (1) ERR = %d\n", status) |
|
265 | PRINTF1("in SEND *** (1) ERR = %d\n", status) | |
266 | } |
|
266 | } | |
267 | else |
|
267 | else | |
268 | { |
|
268 | { | |
269 | if ( size == sizeof(ring_node*) ) |
|
269 | if ( size == sizeof(ring_node*) ) | |
270 | { |
|
270 | { | |
271 | charPtr[0] = incomingData[0]; |
|
271 | charPtr[0] = incomingData[0]; | |
272 | charPtr[1] = incomingData[1]; |
|
272 | charPtr[1] = incomingData[1]; | |
273 | charPtr[BYTE_2] = incomingData[BYTE_2]; |
|
273 | charPtr[BYTE_2] = incomingData[BYTE_2]; | |
274 | charPtr[BYTE_3] = incomingData[BYTE_3]; |
|
274 | charPtr[BYTE_3] = incomingData[BYTE_3]; | |
275 | incomingRingNodePtr = (ring_node*) ring_node_address; |
|
275 | incomingRingNodePtr = (ring_node*) ring_node_address; | |
276 | sid = incomingRingNodePtr->sid; |
|
276 | sid = incomingRingNodePtr->sid; | |
277 | if ( (sid==SID_NORM_CWF_LONG_F3) |
|
277 | if ( (sid==SID_NORM_CWF_LONG_F3) | |
278 | || (sid==SID_BURST_CWF_F2 ) |
|
278 | || (sid==SID_BURST_CWF_F2 ) | |
279 | || (sid==SID_SBM1_CWF_F1 ) |
|
279 | || (sid==SID_SBM1_CWF_F1 ) | |
280 | || (sid==SID_SBM2_CWF_F2 )) |
|
280 | || (sid==SID_SBM2_CWF_F2 )) | |
281 | { |
|
281 | { | |
282 | spw_send_waveform_CWF( incomingRingNodePtr, &headerCWF ); |
|
282 | spw_send_waveform_CWF( incomingRingNodePtr, &headerCWF ); | |
283 | } |
|
283 | } | |
284 | else if ( (sid==SID_NORM_SWF_F0) || (sid== SID_NORM_SWF_F1) || (sid==SID_NORM_SWF_F2) ) |
|
284 | else if ( (sid==SID_NORM_SWF_F0) || (sid== SID_NORM_SWF_F1) || (sid==SID_NORM_SWF_F2) ) | |
285 | { |
|
285 | { | |
286 | spw_send_waveform_SWF( incomingRingNodePtr, &headerSWF ); |
|
286 | spw_send_waveform_SWF( incomingRingNodePtr, &headerSWF ); | |
287 | } |
|
287 | } | |
288 | else if ( (sid==SID_NORM_CWF_F3) ) |
|
288 | else if ( (sid==SID_NORM_CWF_F3) ) | |
289 | { |
|
289 | { | |
290 | spw_send_waveform_CWF3_light( incomingRingNodePtr, &headerCWF ); |
|
290 | spw_send_waveform_CWF3_light( incomingRingNodePtr, &headerCWF ); | |
291 | } |
|
291 | } | |
292 | else if (sid==SID_NORM_ASM_F0) |
|
292 | else if (sid==SID_NORM_ASM_F0) | |
293 | { |
|
293 | { | |
294 | spw_send_asm_f0( incomingRingNodePtr, &headerASM ); |
|
294 | spw_send_asm_f0( incomingRingNodePtr, &headerASM ); | |
295 | } |
|
295 | } | |
296 | else if (sid==SID_NORM_ASM_F1) |
|
296 | else if (sid==SID_NORM_ASM_F1) | |
297 | { |
|
297 | { | |
298 | spw_send_asm_f1( incomingRingNodePtr, &headerASM ); |
|
298 | spw_send_asm_f1( incomingRingNodePtr, &headerASM ); | |
299 | } |
|
299 | } | |
300 | else if (sid==SID_NORM_ASM_F2) |
|
300 | else if (sid==SID_NORM_ASM_F2) | |
301 | { |
|
301 | { | |
302 | spw_send_asm_f2( incomingRingNodePtr, &headerASM ); |
|
302 | spw_send_asm_f2( incomingRingNodePtr, &headerASM ); | |
303 | } |
|
303 | } | |
304 | else if ( sid==TM_CODE_K_DUMP ) |
|
304 | else if ( sid==TM_CODE_K_DUMP ) | |
305 | { |
|
305 | { | |
306 | spw_send_k_dump( incomingRingNodePtr ); |
|
306 | spw_send_k_dump( incomingRingNodePtr ); | |
307 | } |
|
307 | } | |
308 | else |
|
308 | else | |
309 | { |
|
309 | { | |
310 | PRINTF1("unexpected sid = %d\n", sid); |
|
310 | PRINTF1("unexpected sid = %d\n", sid); | |
311 | } |
|
311 | } | |
312 | } |
|
312 | } | |
313 | else if ( incomingData[0] == CCSDS_DESTINATION_ID ) // the incoming message is a ccsds packet |
|
313 | else if ( incomingData[0] == CCSDS_DESTINATION_ID ) // the incoming message is a ccsds packet | |
314 | { |
|
314 | { | |
315 | sidAsUnsignedChar = (unsigned char) incomingData[ PACKET_POS_PA_LFR_SID_PKT ]; |
|
315 | sidAsUnsignedChar = (unsigned char) incomingData[ PACKET_POS_PA_LFR_SID_PKT ]; | |
316 | sid = sidAsUnsignedChar; |
|
316 | sid = sidAsUnsignedChar; | |
317 | type = (unsigned char) incomingData[ PACKET_POS_SERVICE_TYPE ]; |
|
317 | type = (unsigned char) incomingData[ PACKET_POS_SERVICE_TYPE ]; | |
318 | if (type == TM_TYPE_LFR_SCIENCE) // this is a BP packet, all other types are handled differently |
|
318 | if (type == TM_TYPE_LFR_SCIENCE) // this is a BP packet, all other types are handled differently | |
319 | // SET THE SEQUENCE_CNT PARAMETER IN CASE OF BP0 OR BP1 PACKETS |
|
319 | // SET THE SEQUENCE_CNT PARAMETER IN CASE OF BP0 OR BP1 PACKETS | |
320 | { |
|
320 | { | |
321 | increment_seq_counter_source_id( (unsigned char*) &incomingData[ PACKET_POS_SEQUENCE_CNT ], sid ); |
|
321 | increment_seq_counter_source_id( (unsigned char*) &incomingData[ PACKET_POS_SEQUENCE_CNT ], sid ); | |
322 | } |
|
322 | } | |
323 |
|
323 | |||
324 | status = write( fdSPW, incomingData, size ); |
|
324 | status = write( fdSPW, incomingData, size ); | |
325 | if (status == -1){ |
|
325 | if (status == -1){ | |
326 | PRINTF2("in SEND *** (2.a) ERRNO = %d, size = %d\n", errno, size) |
|
326 | PRINTF2("in SEND *** (2.a) ERRNO = %d, size = %d\n", errno, size) | |
327 | } |
|
327 | } | |
328 | } |
|
328 | } | |
329 | else // the incoming message is a spw_ioctl_pkt_send structure |
|
329 | else // the incoming message is a spw_ioctl_pkt_send structure | |
330 | { |
|
330 | { | |
331 | spw_ioctl_send = (spw_ioctl_pkt_send*) incomingData; |
|
331 | spw_ioctl_send = (spw_ioctl_pkt_send*) incomingData; | |
332 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_SEND, spw_ioctl_send ); |
|
332 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_SEND, spw_ioctl_send ); | |
333 | if (status == -1){ |
|
333 | if (status == -1){ | |
334 | PRINTF2("in SEND *** (2.b) ERRNO = %d, RTEMS = %d\n", errno, status) |
|
334 | PRINTF2("in SEND *** (2.b) ERRNO = %d, RTEMS = %d\n", errno, status) | |
335 | } |
|
335 | } | |
336 | } |
|
336 | } | |
337 | } |
|
337 | } | |
338 |
|
338 | |||
339 | update_queue_max_count( queue_send_id, &hk_lfr_q_sd_fifo_size_max ); |
|
339 | update_queue_max_count( queue_send_id, &hk_lfr_q_sd_fifo_size_max ); | |
340 |
|
340 | |||
341 | } |
|
341 | } | |
342 | } |
|
342 | } | |
343 |
|
343 | |||
344 | rtems_task link_task( rtems_task_argument argument ) |
|
344 | rtems_task link_task( rtems_task_argument argument ) | |
345 | { |
|
345 | { | |
346 | rtems_event_set event_out; |
|
346 | rtems_event_set event_out; | |
347 | rtems_status_code status; |
|
347 | rtems_status_code status; | |
348 | int linkStatus; |
|
348 | int linkStatus; | |
349 |
|
349 | |||
350 | event_out = EVENT_SETS_NONE_PENDING; |
|
350 | event_out = EVENT_SETS_NONE_PENDING; | |
351 | linkStatus = 0; |
|
351 | linkStatus = 0; | |
352 |
|
352 | |||
353 | BOOT_PRINTF("in LINK ***\n") |
|
353 | BOOT_PRINTF("in LINK ***\n") | |
354 |
|
354 | |||
355 | while(1) |
|
355 | while(1) | |
356 | { |
|
356 | { | |
357 | // wait for an RTEMS_EVENT |
|
357 | // wait for an RTEMS_EVENT | |
358 | rtems_event_receive( RTEMS_EVENT_0, |
|
358 | rtems_event_receive( RTEMS_EVENT_0, | |
359 | RTEMS_WAIT | RTEMS_EVENT_ANY, RTEMS_NO_TIMEOUT, &event_out); |
|
359 | RTEMS_WAIT | RTEMS_EVENT_ANY, RTEMS_NO_TIMEOUT, &event_out); | |
360 | PRINTF("in LINK *** wait for the link\n") |
|
360 | PRINTF("in LINK *** wait for the link\n") | |
361 | status = ioctl(fdSPW, SPACEWIRE_IOCTRL_GET_LINK_STATUS, &linkStatus); // get the link status |
|
361 | status = ioctl(fdSPW, SPACEWIRE_IOCTRL_GET_LINK_STATUS, &linkStatus); // get the link status | |
362 | while( linkStatus != SPW_LINK_OK) // wait for the link |
|
362 | while( linkStatus != SPW_LINK_OK) // wait for the link | |
363 | { |
|
363 | { | |
364 | status = rtems_task_wake_after( SPW_LINK_WAIT ); // monitor the link each 100ms |
|
364 | status = rtems_task_wake_after( SPW_LINK_WAIT ); // monitor the link each 100ms | |
365 | status = ioctl(fdSPW, SPACEWIRE_IOCTRL_GET_LINK_STATUS, &linkStatus); // get the link status |
|
365 | status = ioctl(fdSPW, SPACEWIRE_IOCTRL_GET_LINK_STATUS, &linkStatus); // get the link status | |
366 | watchdog_reload(); |
|
366 | watchdog_reload(); | |
367 | } |
|
367 | } | |
368 |
|
368 | |||
369 | spacewire_read_statistics(); |
|
369 | spacewire_read_statistics(); | |
370 | status = spacewire_stop_and_start_link( fdSPW ); |
|
370 | status = spacewire_stop_and_start_link( fdSPW ); | |
371 |
|
371 | |||
372 | if (status != RTEMS_SUCCESSFUL) |
|
372 | if (status != RTEMS_SUCCESSFUL) | |
373 | { |
|
373 | { | |
374 | PRINTF1("in LINK *** ERR link not started %d\n", status) |
|
374 | PRINTF1("in LINK *** ERR link not started %d\n", status) | |
375 | } |
|
375 | } | |
376 | else |
|
376 | else | |
377 | { |
|
377 | { | |
378 | PRINTF("in LINK *** OK link started\n") |
|
378 | PRINTF("in LINK *** OK link started\n") | |
379 | } |
|
379 | } | |
380 |
|
380 | |||
381 | // restart the SPIQ task |
|
381 | // restart the SPIQ task | |
382 | status = rtems_task_restart( Task_id[TASKID_SPIQ], 1 ); |
|
382 | status = rtems_task_restart( Task_id[TASKID_SPIQ], 1 ); | |
383 | if ( status != RTEMS_SUCCESSFUL ) { |
|
383 | if ( status != RTEMS_SUCCESSFUL ) { | |
384 | PRINTF("in SPIQ *** ERR restarting SPIQ Task\n") |
|
384 | PRINTF("in SPIQ *** ERR restarting SPIQ Task\n") | |
385 | } |
|
385 | } | |
386 |
|
386 | |||
387 | // restart RECV and SEND |
|
387 | // restart RECV and SEND | |
388 | status = rtems_task_restart( Task_id[ TASKID_SEND ], 1 ); |
|
388 | status = rtems_task_restart( Task_id[ TASKID_SEND ], 1 ); | |
389 | if ( status != RTEMS_SUCCESSFUL ) { |
|
389 | if ( status != RTEMS_SUCCESSFUL ) { | |
390 | PRINTF("in SPIQ *** ERR restarting SEND Task\n") |
|
390 | PRINTF("in SPIQ *** ERR restarting SEND Task\n") | |
391 | } |
|
391 | } | |
392 | status = rtems_task_restart( Task_id[ TASKID_RECV ], 1 ); |
|
392 | status = rtems_task_restart( Task_id[ TASKID_RECV ], 1 ); | |
393 | if ( status != RTEMS_SUCCESSFUL ) { |
|
393 | if ( status != RTEMS_SUCCESSFUL ) { | |
394 | PRINTF("in SPIQ *** ERR restarting RECV Task\n") |
|
394 | PRINTF("in SPIQ *** ERR restarting RECV Task\n") | |
395 | } |
|
395 | } | |
396 | } |
|
396 | } | |
397 | } |
|
397 | } | |
398 |
|
398 | |||
399 | //**************** |
|
399 | //**************** | |
400 | // OTHER FUNCTIONS |
|
400 | // OTHER FUNCTIONS | |
401 | int spacewire_open_link( void ) // by default, the driver resets the core: [SPW_CTRL_WRITE(pDev, SPW_CTRL_RESET);] |
|
401 | int spacewire_open_link( void ) // by default, the driver resets the core: [SPW_CTRL_WRITE(pDev, SPW_CTRL_RESET);] | |
402 | { |
|
402 | { | |
403 | /** This function opens the SpaceWire link. |
|
403 | /** This function opens the SpaceWire link. | |
404 | * |
|
404 | * | |
405 | * @return a valid file descriptor in case of success, -1 in case of a failure |
|
405 | * @return a valid file descriptor in case of success, -1 in case of a failure | |
406 | * |
|
406 | * | |
407 | */ |
|
407 | */ | |
408 | rtems_status_code status; |
|
408 | rtems_status_code status; | |
409 |
|
409 | |||
410 | status = RTEMS_SUCCESSFUL; |
|
410 | status = RTEMS_SUCCESSFUL; | |
411 |
|
411 | |||
412 | fdSPW = open(GRSPW_DEVICE_NAME, O_RDWR); // open the device. the open call resets the hardware |
|
412 | fdSPW = open(GRSPW_DEVICE_NAME, O_RDWR); // open the device. the open call resets the hardware | |
413 | if ( fdSPW < 0 ) { |
|
413 | if ( fdSPW < 0 ) { | |
414 | PRINTF1("ERR *** in configure_spw_link *** error opening "GRSPW_DEVICE_NAME" with ERR %d\n", errno) |
|
414 | PRINTF1("ERR *** in configure_spw_link *** error opening "GRSPW_DEVICE_NAME" with ERR %d\n", errno) | |
415 | } |
|
415 | } | |
416 | else |
|
416 | else | |
417 | { |
|
417 | { | |
418 | status = RTEMS_SUCCESSFUL; |
|
418 | status = RTEMS_SUCCESSFUL; | |
419 | } |
|
419 | } | |
420 |
|
420 | |||
421 | return status; |
|
421 | return status; | |
422 | } |
|
422 | } | |
423 |
|
423 | |||
424 | int spacewire_start_link( int fd ) |
|
424 | int spacewire_start_link( int fd ) | |
425 | { |
|
425 | { | |
426 | rtems_status_code status; |
|
426 | rtems_status_code status; | |
427 |
|
427 | |||
428 | status = ioctl( fd, SPACEWIRE_IOCTRL_START, -1); // returns successfuly if the link is started |
|
428 | status = ioctl( fd, SPACEWIRE_IOCTRL_START, -1); // returns successfuly if the link is started | |
429 | // -1 default hardcoded driver timeout |
|
429 | // -1 default hardcoded driver timeout | |
430 |
|
430 | |||
431 | return status; |
|
431 | return status; | |
432 | } |
|
432 | } | |
433 |
|
433 | |||
434 | int spacewire_stop_and_start_link( int fd ) |
|
434 | int spacewire_stop_and_start_link( int fd ) | |
435 | { |
|
435 | { | |
436 | rtems_status_code status; |
|
436 | rtems_status_code status; | |
437 |
|
437 | |||
438 | status = ioctl( fd, SPACEWIRE_IOCTRL_STOP); // start fails if link pDev->running != 0 |
|
438 | status = ioctl( fd, SPACEWIRE_IOCTRL_STOP); // start fails if link pDev->running != 0 | |
439 | status = ioctl( fd, SPACEWIRE_IOCTRL_START, -1); // returns successfuly if the link is started |
|
439 | status = ioctl( fd, SPACEWIRE_IOCTRL_START, -1); // returns successfuly if the link is started | |
440 | // -1 default hardcoded driver timeout |
|
440 | // -1 default hardcoded driver timeout | |
441 |
|
441 | |||
442 | return status; |
|
442 | return status; | |
443 | } |
|
443 | } | |
444 |
|
444 | |||
445 | int spacewire_configure_link( int fd ) |
|
445 | int spacewire_configure_link( int fd ) | |
446 | { |
|
446 | { | |
447 | /** This function configures the SpaceWire link. |
|
447 | /** This function configures the SpaceWire link. | |
448 | * |
|
448 | * | |
449 | * @return GR-RTEMS-DRIVER directive status codes: |
|
449 | * @return GR-RTEMS-DRIVER directive status codes: | |
450 | * - 22 EINVAL - Null pointer or an out of range value was given as the argument. |
|
450 | * - 22 EINVAL - Null pointer or an out of range value was given as the argument. | |
451 | * - 16 EBUSY - Only used for SEND. Returned when no descriptors are avialble in non-blocking mode. |
|
451 | * - 16 EBUSY - Only used for SEND. Returned when no descriptors are avialble in non-blocking mode. | |
452 | * - 88 ENOSYS - Returned for SET_DESTKEY if RMAP command handler is not available or if a non-implemented call is used. |
|
452 | * - 88 ENOSYS - Returned for SET_DESTKEY if RMAP command handler is not available or if a non-implemented call is used. | |
453 | * - 116 ETIMEDOUT - REturned for SET_PACKET_SIZE and START if the link could not be brought up. |
|
453 | * - 116 ETIMEDOUT - REturned for SET_PACKET_SIZE and START if the link could not be brought up. | |
454 | * - 12 ENOMEM - Returned for SET_PACKETSIZE if it was unable to allocate the new buffers. |
|
454 | * - 12 ENOMEM - Returned for SET_PACKETSIZE if it was unable to allocate the new buffers. | |
455 | * - 5 EIO - Error when writing to grswp hardware registers. |
|
455 | * - 5 EIO - Error when writing to grswp hardware registers. | |
456 | * - 2 ENOENT - No such file or directory |
|
456 | * - 2 ENOENT - No such file or directory | |
457 | */ |
|
457 | */ | |
458 |
|
458 | |||
459 | rtems_status_code status; |
|
459 | rtems_status_code status; | |
460 |
|
460 | |||
461 | spacewire_set_NP(1, REGS_ADDR_GRSPW); // [N]o [P]ort force |
|
461 | spacewire_set_NP(1, REGS_ADDR_GRSPW); // [N]o [P]ort force | |
462 | spacewire_set_RE(1, REGS_ADDR_GRSPW); // [R]MAP [E]nable, the dedicated call seems to break the no port force configuration |
|
462 | spacewire_set_RE(1, REGS_ADDR_GRSPW); // [R]MAP [E]nable, the dedicated call seems to break the no port force configuration | |
463 | spw_ioctl_packetsize packetsize; |
|
463 | spw_ioctl_packetsize packetsize; | |
464 |
|
464 | |||
465 | packetsize.rxsize = SPW_RXSIZE; |
|
465 | packetsize.rxsize = SPW_RXSIZE; | |
466 | packetsize.txdsize = SPW_TXDSIZE; |
|
466 | packetsize.txdsize = SPW_TXDSIZE; | |
467 | packetsize.txhsize = SPW_TXHSIZE; |
|
467 | packetsize.txhsize = SPW_TXHSIZE; | |
468 |
|
468 | |||
469 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_RXBLOCK, 1); // sets the blocking mode for reception |
|
469 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_RXBLOCK, 1); // sets the blocking mode for reception | |
470 | if (status!=RTEMS_SUCCESSFUL) { |
|
470 | if (status!=RTEMS_SUCCESSFUL) { | |
471 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_RXBLOCK\n") |
|
471 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_RXBLOCK\n") | |
472 | } |
|
472 | } | |
473 | // |
|
473 | // | |
474 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_EVENT_ID, Task_id[TASKID_SPIQ]); // sets the task ID to which an event is sent when a |
|
474 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_EVENT_ID, Task_id[TASKID_SPIQ]); // sets the task ID to which an event is sent when a | |
475 | if (status!=RTEMS_SUCCESSFUL) { |
|
475 | if (status!=RTEMS_SUCCESSFUL) { | |
476 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_EVENT_ID\n") // link-error interrupt occurs |
|
476 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_EVENT_ID\n") // link-error interrupt occurs | |
477 | } |
|
477 | } | |
478 | // |
|
478 | // | |
479 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_DISABLE_ERR, 0); // automatic link-disabling due to link-error interrupts |
|
479 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_DISABLE_ERR, 0); // automatic link-disabling due to link-error interrupts | |
480 | if (status!=RTEMS_SUCCESSFUL) { |
|
480 | if (status!=RTEMS_SUCCESSFUL) { | |
481 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_DISABLE_ERR\n") |
|
481 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_DISABLE_ERR\n") | |
482 | } |
|
482 | } | |
483 | // |
|
483 | // | |
484 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_LINK_ERR_IRQ, 1); // sets the link-error interrupt bit |
|
484 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_LINK_ERR_IRQ, 1); // sets the link-error interrupt bit | |
485 | if (status!=RTEMS_SUCCESSFUL) { |
|
485 | if (status!=RTEMS_SUCCESSFUL) { | |
486 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_LINK_ERR_IRQ\n") |
|
486 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_LINK_ERR_IRQ\n") | |
487 | } |
|
487 | } | |
488 | // |
|
488 | // | |
489 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_TXBLOCK, 1); // transmission blocks |
|
489 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_TXBLOCK, 1); // transmission blocks | |
490 | if (status!=RTEMS_SUCCESSFUL) { |
|
490 | if (status!=RTEMS_SUCCESSFUL) { | |
491 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_TXBLOCK\n") |
|
491 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_TXBLOCK\n") | |
492 | } |
|
492 | } | |
493 | // |
|
493 | // | |
494 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_TXBLOCK_ON_FULL, 1); // transmission blocks when no transmission descriptor is available |
|
494 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_TXBLOCK_ON_FULL, 1); // transmission blocks when no transmission descriptor is available | |
495 | if (status!=RTEMS_SUCCESSFUL) { |
|
495 | if (status!=RTEMS_SUCCESSFUL) { | |
496 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_TXBLOCK_ON_FULL\n") |
|
496 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_TXBLOCK_ON_FULL\n") | |
497 | } |
|
497 | } | |
498 | // |
|
498 | // | |
499 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_TCODE_CTRL, CONF_TCODE_CTRL); // [Time Rx : Time Tx : Link error : Tick-out IRQ] |
|
499 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_TCODE_CTRL, CONF_TCODE_CTRL); // [Time Rx : Time Tx : Link error : Tick-out IRQ] | |
500 | if (status!=RTEMS_SUCCESSFUL) { |
|
500 | if (status!=RTEMS_SUCCESSFUL) { | |
501 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_TCODE_CTRL,\n") |
|
501 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_TCODE_CTRL,\n") | |
502 | } |
|
502 | } | |
503 | // |
|
503 | // | |
504 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_PACKETSIZE, packetsize); // set rxsize, txdsize and txhsize |
|
504 | status = ioctl(fd, SPACEWIRE_IOCTRL_SET_PACKETSIZE, packetsize); // set rxsize, txdsize and txhsize | |
505 | if (status!=RTEMS_SUCCESSFUL) { |
|
505 | if (status!=RTEMS_SUCCESSFUL) { | |
506 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_PACKETSIZE,\n") |
|
506 | PRINTF("in SPIQ *** Error SPACEWIRE_IOCTRL_SET_PACKETSIZE,\n") | |
507 | } |
|
507 | } | |
508 |
|
508 | |||
509 | return status; |
|
509 | return status; | |
510 | } |
|
510 | } | |
511 |
|
511 | |||
512 | int spacewire_several_connect_attemps( void ) |
|
512 | int spacewire_several_connect_attemps( void ) | |
513 | { |
|
513 | { | |
514 | /** This function is executed by the SPIQ rtems_task wehn it has been awaken by an interruption raised by the SpaceWire driver. |
|
514 | /** This function is executed by the SPIQ rtems_task wehn it has been awaken by an interruption raised by the SpaceWire driver. | |
515 | * |
|
515 | * | |
516 | * @return RTEMS directive status code: |
|
516 | * @return RTEMS directive status code: | |
517 | * - RTEMS_UNSATISFIED is returned is the link is not in the running state after 10 s. |
|
517 | * - RTEMS_UNSATISFIED is returned is the link is not in the running state after 10 s. | |
518 | * - RTEMS_SUCCESSFUL is returned if the link is up before the timeout. |
|
518 | * - RTEMS_SUCCESSFUL is returned if the link is up before the timeout. | |
519 | * |
|
519 | * | |
520 | */ |
|
520 | */ | |
521 |
|
521 | |||
522 | rtems_status_code status_spw; |
|
522 | rtems_status_code status_spw; | |
523 | rtems_status_code status; |
|
523 | rtems_status_code status; | |
524 | int i; |
|
524 | int i; | |
525 |
|
525 | |||
526 | status_spw = RTEMS_SUCCESSFUL; |
|
526 | status_spw = RTEMS_SUCCESSFUL; | |
527 |
|
527 | |||
528 | i = 0; |
|
528 | i = 0; | |
529 | while (i < SY_LFR_DPU_CONNECT_ATTEMPT) |
|
529 | while (i < SY_LFR_DPU_CONNECT_ATTEMPT) | |
530 | { |
|
530 | { | |
531 | PRINTF1("in spacewire_reset_link *** link recovery, try %d\n", i); |
|
531 | PRINTF1("in spacewire_reset_link *** link recovery, try %d\n", i); | |
532 |
|
532 | |||
533 | // CLOSING THE DRIVER AT THIS POINT WILL MAKE THE SEND TASK BLOCK THE SYSTEM |
|
533 | // CLOSING THE DRIVER AT THIS POINT WILL MAKE THE SEND TASK BLOCK THE SYSTEM | |
534 |
|
534 | |||
535 | status = rtems_task_wake_after( SY_LFR_DPU_CONNECT_TIMEOUT ); // wait SY_LFR_DPU_CONNECT_TIMEOUT 1000 ms |
|
535 | status = rtems_task_wake_after( SY_LFR_DPU_CONNECT_TIMEOUT ); // wait SY_LFR_DPU_CONNECT_TIMEOUT 1000 ms | |
536 |
|
536 | |||
537 | status_spw = spacewire_stop_and_start_link( fdSPW ); |
|
537 | status_spw = spacewire_stop_and_start_link( fdSPW ); | |
538 |
|
538 | |||
539 | if ( status_spw != RTEMS_SUCCESSFUL ) |
|
539 | if ( status_spw != RTEMS_SUCCESSFUL ) | |
540 | { |
|
540 | { | |
541 | i = i + 1; |
|
541 | i = i + 1; | |
542 | PRINTF1("in spacewire_reset_link *** ERR spacewire_start_link code %d\n", status_spw); |
|
542 | PRINTF1("in spacewire_reset_link *** ERR spacewire_start_link code %d\n", status_spw); | |
543 | } |
|
543 | } | |
544 | else |
|
544 | else | |
545 | { |
|
545 | { | |
546 | i = SY_LFR_DPU_CONNECT_ATTEMPT; |
|
546 | i = SY_LFR_DPU_CONNECT_ATTEMPT; | |
547 | } |
|
547 | } | |
548 | } |
|
548 | } | |
549 |
|
549 | |||
550 | return status_spw; |
|
550 | return status_spw; | |
551 | } |
|
551 | } | |
552 |
|
552 | |||
553 | void spacewire_set_NP( unsigned char val, unsigned int regAddr ) // [N]o [P]ort force |
|
553 | void spacewire_set_NP( unsigned char val, unsigned int regAddr ) // [N]o [P]ort force | |
554 | { |
|
554 | { | |
555 | /** This function sets the [N]o [P]ort force bit of the GRSPW control register. |
|
555 | /** This function sets the [N]o [P]ort force bit of the GRSPW control register. | |
556 | * |
|
556 | * | |
557 | * @param val is the value, 0 or 1, used to set the value of the NP bit. |
|
557 | * @param val is the value, 0 or 1, used to set the value of the NP bit. | |
558 | * @param regAddr is the address of the GRSPW control register. |
|
558 | * @param regAddr is the address of the GRSPW control register. | |
559 | * |
|
559 | * | |
560 | * NP is the bit 20 of the GRSPW control register. |
|
560 | * NP is the bit 20 of the GRSPW control register. | |
561 | * |
|
561 | * | |
562 | */ |
|
562 | */ | |
563 |
|
563 | |||
564 | unsigned int *spwptr = (unsigned int*) regAddr; |
|
564 | unsigned int *spwptr = (unsigned int*) regAddr; | |
565 |
|
565 | |||
566 | if (val == 1) { |
|
566 | if (val == 1) { | |
567 | *spwptr = *spwptr | SPW_BIT_NP; // [NP] set the No port force bit |
|
567 | *spwptr = *spwptr | SPW_BIT_NP; // [NP] set the No port force bit | |
568 | } |
|
568 | } | |
569 | if (val== 0) { |
|
569 | if (val== 0) { | |
570 | *spwptr = *spwptr & SPW_BIT_NP_MASK; |
|
570 | *spwptr = *spwptr & SPW_BIT_NP_MASK; | |
571 | } |
|
571 | } | |
572 | } |
|
572 | } | |
573 |
|
573 | |||
574 | void spacewire_set_RE( unsigned char val, unsigned int regAddr ) // [R]MAP [E]nable |
|
574 | void spacewire_set_RE( unsigned char val, unsigned int regAddr ) // [R]MAP [E]nable | |
575 | { |
|
575 | { | |
576 | /** This function sets the [R]MAP [E]nable bit of the GRSPW control register. |
|
576 | /** This function sets the [R]MAP [E]nable bit of the GRSPW control register. | |
577 | * |
|
577 | * | |
578 | * @param val is the value, 0 or 1, used to set the value of the RE bit. |
|
578 | * @param val is the value, 0 or 1, used to set the value of the RE bit. | |
579 | * @param regAddr is the address of the GRSPW control register. |
|
579 | * @param regAddr is the address of the GRSPW control register. | |
580 | * |
|
580 | * | |
581 | * RE is the bit 16 of the GRSPW control register. |
|
581 | * RE is the bit 16 of the GRSPW control register. | |
582 | * |
|
582 | * | |
583 | */ |
|
583 | */ | |
584 |
|
584 | |||
585 | unsigned int *spwptr = (unsigned int*) regAddr; |
|
585 | unsigned int *spwptr = (unsigned int*) regAddr; | |
586 |
|
586 | |||
587 | if (val == 1) |
|
587 | if (val == 1) | |
588 | { |
|
588 | { | |
589 | *spwptr = *spwptr | SPW_BIT_RE; // [RE] set the RMAP Enable bit |
|
589 | *spwptr = *spwptr | SPW_BIT_RE; // [RE] set the RMAP Enable bit | |
590 | } |
|
590 | } | |
591 | if (val== 0) |
|
591 | if (val== 0) | |
592 | { |
|
592 | { | |
593 | *spwptr = *spwptr & SPW_BIT_RE_MASK; |
|
593 | *spwptr = *spwptr & SPW_BIT_RE_MASK; | |
594 | } |
|
594 | } | |
595 | } |
|
595 | } | |
596 |
|
596 | |||
597 | void spacewire_read_statistics( void ) |
|
597 | void spacewire_read_statistics( void ) | |
598 | { |
|
598 | { | |
599 | /** This function reads the SpaceWire statistics from the grspw RTEMS driver. |
|
599 | /** This function reads the SpaceWire statistics from the grspw RTEMS driver. | |
600 | * |
|
600 | * | |
601 | * @param void |
|
601 | * @param void | |
602 | * |
|
602 | * | |
603 | * @return void |
|
603 | * @return void | |
604 | * |
|
604 | * | |
605 | * Once they are read, the counters are stored in a global variable used during the building of the |
|
605 | * Once they are read, the counters are stored in a global variable used during the building of the | |
606 | * HK packets. |
|
606 | * HK packets. | |
607 | * |
|
607 | * | |
608 | */ |
|
608 | */ | |
609 |
|
609 | |||
610 | rtems_status_code status; |
|
610 | rtems_status_code status; | |
611 | spw_stats current; |
|
611 | spw_stats current; | |
612 |
|
612 | |||
613 | memset(¤t, 0, sizeof(spw_stats)); |
|
613 | memset(¤t, 0, sizeof(spw_stats)); | |
614 |
|
614 | |||
615 | spacewire_get_last_error(); |
|
615 | spacewire_get_last_error(); | |
616 |
|
616 | |||
617 | // read the current statistics |
|
617 | // read the current statistics | |
618 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_GET_STATISTICS, ¤t ); |
|
618 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_GET_STATISTICS, ¤t ); | |
619 |
|
619 | |||
620 | // clear the counters |
|
620 | // clear the counters | |
621 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_CLR_STATISTICS ); |
|
621 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_CLR_STATISTICS ); | |
622 |
|
622 | |||
623 | // typedef struct { |
|
623 | // typedef struct { | |
624 | // unsigned int tx_link_err; // NOT IN HK |
|
624 | // unsigned int tx_link_err; // NOT IN HK | |
625 | // unsigned int rx_rmap_header_crc_err; // NOT IN HK |
|
625 | // unsigned int rx_rmap_header_crc_err; // NOT IN HK | |
626 | // unsigned int rx_rmap_data_crc_err; // NOT IN HK |
|
626 | // unsigned int rx_rmap_data_crc_err; // NOT IN HK | |
627 | // unsigned int rx_eep_err; |
|
627 | // unsigned int rx_eep_err; | |
628 | // unsigned int rx_truncated; |
|
628 | // unsigned int rx_truncated; | |
629 | // unsigned int parity_err; |
|
629 | // unsigned int parity_err; | |
630 | // unsigned int escape_err; |
|
630 | // unsigned int escape_err; | |
631 | // unsigned int credit_err; |
|
631 | // unsigned int credit_err; | |
632 | // unsigned int write_sync_err; |
|
632 | // unsigned int write_sync_err; | |
633 | // unsigned int disconnect_err; |
|
633 | // unsigned int disconnect_err; | |
634 | // unsigned int early_ep; |
|
634 | // unsigned int early_ep; | |
635 | // unsigned int invalid_address; |
|
635 | // unsigned int invalid_address; | |
636 | // unsigned int packets_sent; |
|
636 | // unsigned int packets_sent; | |
637 | // unsigned int packets_received; |
|
637 | // unsigned int packets_received; | |
638 | // } spw_stats; |
|
638 | // } spw_stats; | |
639 |
|
639 | |||
640 | // rx_eep_err |
|
640 | // rx_eep_err | |
641 | grspw_stats.rx_eep_err = grspw_stats.rx_eep_err + current.rx_eep_err; |
|
641 | grspw_stats.rx_eep_err = grspw_stats.rx_eep_err + current.rx_eep_err; | |
642 | // rx_truncated |
|
642 | // rx_truncated | |
643 | grspw_stats.rx_truncated = grspw_stats.rx_truncated + current.rx_truncated; |
|
643 | grspw_stats.rx_truncated = grspw_stats.rx_truncated + current.rx_truncated; | |
644 | // parity_err |
|
644 | // parity_err | |
645 | grspw_stats.parity_err = grspw_stats.parity_err + current.parity_err; |
|
645 | grspw_stats.parity_err = grspw_stats.parity_err + current.parity_err; | |
646 | // escape_err |
|
646 | // escape_err | |
647 | grspw_stats.escape_err = grspw_stats.escape_err + current.escape_err; |
|
647 | grspw_stats.escape_err = grspw_stats.escape_err + current.escape_err; | |
648 | // credit_err |
|
648 | // credit_err | |
649 | grspw_stats.credit_err = grspw_stats.credit_err + current.credit_err; |
|
649 | grspw_stats.credit_err = grspw_stats.credit_err + current.credit_err; | |
650 | // write_sync_err |
|
650 | // write_sync_err | |
651 | grspw_stats.write_sync_err = grspw_stats.write_sync_err + current.write_sync_err; |
|
651 | grspw_stats.write_sync_err = grspw_stats.write_sync_err + current.write_sync_err; | |
652 | // disconnect_err |
|
652 | // disconnect_err | |
653 | grspw_stats.disconnect_err = grspw_stats.disconnect_err + current.disconnect_err; |
|
653 | grspw_stats.disconnect_err = grspw_stats.disconnect_err + current.disconnect_err; | |
654 | // early_ep |
|
654 | // early_ep | |
655 | grspw_stats.early_ep = grspw_stats.early_ep + current.early_ep; |
|
655 | grspw_stats.early_ep = grspw_stats.early_ep + current.early_ep; | |
656 | // invalid_address |
|
656 | // invalid_address | |
657 | grspw_stats.invalid_address = grspw_stats.invalid_address + current.invalid_address; |
|
657 | grspw_stats.invalid_address = grspw_stats.invalid_address + current.invalid_address; | |
658 | // packets_sent |
|
658 | // packets_sent | |
659 | grspw_stats.packets_sent = grspw_stats.packets_sent + current.packets_sent; |
|
659 | grspw_stats.packets_sent = grspw_stats.packets_sent + current.packets_sent; | |
660 | // packets_received |
|
660 | // packets_received | |
661 | grspw_stats.packets_received= grspw_stats.packets_received + current.packets_received; |
|
661 | grspw_stats.packets_received= grspw_stats.packets_received + current.packets_received; | |
662 |
|
662 | |||
663 | } |
|
663 | } | |
664 |
|
664 | |||
665 | void spacewire_get_last_error( void ) |
|
665 | void spacewire_get_last_error( void ) | |
666 | { |
|
666 | { | |
667 | static spw_stats previous = {0}; |
|
667 | static spw_stats previous = {0}; | |
668 | spw_stats current; |
|
668 | spw_stats current; | |
669 | rtems_status_code status; |
|
669 | rtems_status_code status; | |
670 |
|
670 | |||
671 | unsigned int hk_lfr_last_er_rid; |
|
671 | unsigned int hk_lfr_last_er_rid; | |
672 | unsigned char hk_lfr_last_er_code; |
|
672 | unsigned char hk_lfr_last_er_code; | |
673 | int coarseTime; |
|
673 | int coarseTime; | |
674 | int fineTime; |
|
674 | int fineTime; | |
675 | unsigned char update_hk_lfr_last_er; |
|
675 | unsigned char update_hk_lfr_last_er; | |
676 |
|
676 | |||
677 | memset(¤t, 0, sizeof(spw_stats)); |
|
677 | memset(¤t, 0, sizeof(spw_stats)); | |
678 | hk_lfr_last_er_rid = INIT_CHAR; |
|
678 | hk_lfr_last_er_rid = INIT_CHAR; | |
679 | hk_lfr_last_er_code = INIT_CHAR; |
|
679 | hk_lfr_last_er_code = INIT_CHAR; | |
680 | update_hk_lfr_last_er = INIT_CHAR; |
|
680 | update_hk_lfr_last_er = INIT_CHAR; | |
681 |
|
681 | |||
682 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_GET_STATISTICS, ¤t ); |
|
682 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_GET_STATISTICS, ¤t ); | |
683 |
|
683 | |||
684 | // get current time |
|
684 | // get current time | |
685 | coarseTime = time_management_regs->coarse_time; |
|
685 | coarseTime = time_management_regs->coarse_time; | |
686 | fineTime = time_management_regs->fine_time; |
|
686 | fineTime = time_management_regs->fine_time; | |
687 |
|
687 | |||
688 | // typedef struct { |
|
688 | // typedef struct { | |
689 | // unsigned int tx_link_err; // NOT IN HK |
|
689 | // unsigned int tx_link_err; // NOT IN HK | |
690 | // unsigned int rx_rmap_header_crc_err; // NOT IN HK |
|
690 | // unsigned int rx_rmap_header_crc_err; // NOT IN HK | |
691 | // unsigned int rx_rmap_data_crc_err; // NOT IN HK |
|
691 | // unsigned int rx_rmap_data_crc_err; // NOT IN HK | |
692 | // unsigned int rx_eep_err; |
|
692 | // unsigned int rx_eep_err; | |
693 | // unsigned int rx_truncated; |
|
693 | // unsigned int rx_truncated; | |
694 | // unsigned int parity_err; |
|
694 | // unsigned int parity_err; | |
695 | // unsigned int escape_err; |
|
695 | // unsigned int escape_err; | |
696 | // unsigned int credit_err; |
|
696 | // unsigned int credit_err; | |
697 | // unsigned int write_sync_err; |
|
697 | // unsigned int write_sync_err; | |
698 | // unsigned int disconnect_err; |
|
698 | // unsigned int disconnect_err; | |
699 | // unsigned int early_ep; |
|
699 | // unsigned int early_ep; | |
700 | // unsigned int invalid_address; |
|
700 | // unsigned int invalid_address; | |
701 | // unsigned int packets_sent; |
|
701 | // unsigned int packets_sent; | |
702 | // unsigned int packets_received; |
|
702 | // unsigned int packets_received; | |
703 | // } spw_stats; |
|
703 | // } spw_stats; | |
704 |
|
704 | |||
705 | // tx_link_err *** no code associated to this field |
|
705 | // tx_link_err *** no code associated to this field | |
706 | // rx_rmap_header_crc_err *** LE *** in HK |
|
706 | // rx_rmap_header_crc_err *** LE *** in HK | |
707 | if (previous.rx_rmap_header_crc_err != current.rx_rmap_header_crc_err) |
|
707 | if (previous.rx_rmap_header_crc_err != current.rx_rmap_header_crc_err) | |
708 | { |
|
708 | { | |
709 | hk_lfr_last_er_rid = RID_LE_LFR_DPU_SPW; |
|
709 | hk_lfr_last_er_rid = RID_LE_LFR_DPU_SPW; | |
710 | hk_lfr_last_er_code = CODE_HEADER_CRC; |
|
710 | hk_lfr_last_er_code = CODE_HEADER_CRC; | |
711 | update_hk_lfr_last_er = 1; |
|
711 | update_hk_lfr_last_er = 1; | |
712 | } |
|
712 | } | |
713 | // rx_rmap_data_crc_err *** LE *** NOT IN HK |
|
713 | // rx_rmap_data_crc_err *** LE *** NOT IN HK | |
714 | if (previous.rx_rmap_data_crc_err != current.rx_rmap_data_crc_err) |
|
714 | if (previous.rx_rmap_data_crc_err != current.rx_rmap_data_crc_err) | |
715 | { |
|
715 | { | |
716 | hk_lfr_last_er_rid = RID_LE_LFR_DPU_SPW; |
|
716 | hk_lfr_last_er_rid = RID_LE_LFR_DPU_SPW; | |
717 | hk_lfr_last_er_code = CODE_DATA_CRC; |
|
717 | hk_lfr_last_er_code = CODE_DATA_CRC; | |
718 | update_hk_lfr_last_er = 1; |
|
718 | update_hk_lfr_last_er = 1; | |
719 | } |
|
719 | } | |
720 | // rx_eep_err |
|
720 | // rx_eep_err | |
721 | if (previous.rx_eep_err != current.rx_eep_err) |
|
721 | if (previous.rx_eep_err != current.rx_eep_err) | |
722 | { |
|
722 | { | |
723 | hk_lfr_last_er_rid = RID_ME_LFR_DPU_SPW; |
|
723 | hk_lfr_last_er_rid = RID_ME_LFR_DPU_SPW; | |
724 | hk_lfr_last_er_code = CODE_EEP; |
|
724 | hk_lfr_last_er_code = CODE_EEP; | |
725 | update_hk_lfr_last_er = 1; |
|
725 | update_hk_lfr_last_er = 1; | |
726 | } |
|
726 | } | |
727 | // rx_truncated |
|
727 | // rx_truncated | |
728 | if (previous.rx_truncated != current.rx_truncated) |
|
728 | if (previous.rx_truncated != current.rx_truncated) | |
729 | { |
|
729 | { | |
730 | hk_lfr_last_er_rid = RID_ME_LFR_DPU_SPW; |
|
730 | hk_lfr_last_er_rid = RID_ME_LFR_DPU_SPW; | |
731 | hk_lfr_last_er_code = CODE_RX_TOO_BIG; |
|
731 | hk_lfr_last_er_code = CODE_RX_TOO_BIG; | |
732 | update_hk_lfr_last_er = 1; |
|
732 | update_hk_lfr_last_er = 1; | |
733 | } |
|
733 | } | |
734 | // parity_err |
|
734 | // parity_err | |
735 | if (previous.parity_err != current.parity_err) |
|
735 | if (previous.parity_err != current.parity_err) | |
736 | { |
|
736 | { | |
737 | hk_lfr_last_er_rid = RID_LE_LFR_DPU_SPW; |
|
737 | hk_lfr_last_er_rid = RID_LE_LFR_DPU_SPW; | |
738 | hk_lfr_last_er_code = CODE_PARITY; |
|
738 | hk_lfr_last_er_code = CODE_PARITY; | |
739 | update_hk_lfr_last_er = 1; |
|
739 | update_hk_lfr_last_er = 1; | |
740 | } |
|
740 | } | |
741 | // escape_err |
|
741 | // escape_err | |
742 | if (previous.parity_err != current.parity_err) |
|
742 | if (previous.parity_err != current.parity_err) | |
743 | { |
|
743 | { | |
744 | hk_lfr_last_er_rid = RID_LE_LFR_DPU_SPW; |
|
744 | hk_lfr_last_er_rid = RID_LE_LFR_DPU_SPW; | |
745 | hk_lfr_last_er_code = CODE_ESCAPE; |
|
745 | hk_lfr_last_er_code = CODE_ESCAPE; | |
746 | update_hk_lfr_last_er = 1; |
|
746 | update_hk_lfr_last_er = 1; | |
747 | } |
|
747 | } | |
748 | // credit_err |
|
748 | // credit_err | |
749 | if (previous.credit_err != current.credit_err) |
|
749 | if (previous.credit_err != current.credit_err) | |
750 | { |
|
750 | { | |
751 | hk_lfr_last_er_rid = RID_LE_LFR_DPU_SPW; |
|
751 | hk_lfr_last_er_rid = RID_LE_LFR_DPU_SPW; | |
752 | hk_lfr_last_er_code = CODE_CREDIT; |
|
752 | hk_lfr_last_er_code = CODE_CREDIT; | |
753 | update_hk_lfr_last_er = 1; |
|
753 | update_hk_lfr_last_er = 1; | |
754 | } |
|
754 | } | |
755 | // write_sync_err |
|
755 | // write_sync_err | |
756 | if (previous.write_sync_err != current.write_sync_err) |
|
756 | if (previous.write_sync_err != current.write_sync_err) | |
757 | { |
|
757 | { | |
758 | hk_lfr_last_er_rid = RID_LE_LFR_DPU_SPW; |
|
758 | hk_lfr_last_er_rid = RID_LE_LFR_DPU_SPW; | |
759 | hk_lfr_last_er_code = CODE_WRITE_SYNC; |
|
759 | hk_lfr_last_er_code = CODE_WRITE_SYNC; | |
760 | update_hk_lfr_last_er = 1; |
|
760 | update_hk_lfr_last_er = 1; | |
761 | } |
|
761 | } | |
762 | // disconnect_err |
|
762 | // disconnect_err | |
763 | if (previous.disconnect_err != current.disconnect_err) |
|
763 | if (previous.disconnect_err != current.disconnect_err) | |
764 | { |
|
764 | { | |
765 | hk_lfr_last_er_rid = RID_LE_LFR_DPU_SPW; |
|
765 | hk_lfr_last_er_rid = RID_LE_LFR_DPU_SPW; | |
766 | hk_lfr_last_er_code = CODE_DISCONNECT; |
|
766 | hk_lfr_last_er_code = CODE_DISCONNECT; | |
767 | update_hk_lfr_last_er = 1; |
|
767 | update_hk_lfr_last_er = 1; | |
768 | } |
|
768 | } | |
769 | // early_ep |
|
769 | // early_ep | |
770 | if (previous.early_ep != current.early_ep) |
|
770 | if (previous.early_ep != current.early_ep) | |
771 | { |
|
771 | { | |
772 | hk_lfr_last_er_rid = RID_ME_LFR_DPU_SPW; |
|
772 | hk_lfr_last_er_rid = RID_ME_LFR_DPU_SPW; | |
773 | hk_lfr_last_er_code = CODE_EARLY_EOP_EEP; |
|
773 | hk_lfr_last_er_code = CODE_EARLY_EOP_EEP; | |
774 | update_hk_lfr_last_er = 1; |
|
774 | update_hk_lfr_last_er = 1; | |
775 | } |
|
775 | } | |
776 | // invalid_address |
|
776 | // invalid_address | |
777 | if (previous.invalid_address != current.invalid_address) |
|
777 | if (previous.invalid_address != current.invalid_address) | |
778 | { |
|
778 | { | |
779 | hk_lfr_last_er_rid = RID_ME_LFR_DPU_SPW; |
|
779 | hk_lfr_last_er_rid = RID_ME_LFR_DPU_SPW; | |
780 | hk_lfr_last_er_code = CODE_INVALID_ADDRESS; |
|
780 | hk_lfr_last_er_code = CODE_INVALID_ADDRESS; | |
781 | update_hk_lfr_last_er = 1; |
|
781 | update_hk_lfr_last_er = 1; | |
782 | } |
|
782 | } | |
783 |
|
783 | |||
784 | // if a field has changed, update the hk_last_er fields |
|
784 | // if a field has changed, update the hk_last_er fields | |
785 | if (update_hk_lfr_last_er == 1) |
|
785 | if (update_hk_lfr_last_er == 1) | |
786 | { |
|
786 | { | |
787 | update_hk_lfr_last_er_fields( hk_lfr_last_er_rid, hk_lfr_last_er_code ); |
|
787 | update_hk_lfr_last_er_fields( hk_lfr_last_er_rid, hk_lfr_last_er_code ); | |
788 | } |
|
788 | } | |
789 |
|
789 | |||
790 | previous = current; |
|
790 | previous = current; | |
791 | } |
|
791 | } | |
792 |
|
792 | |||
793 | void update_hk_lfr_last_er_fields(unsigned int rid, unsigned char code) |
|
793 | void update_hk_lfr_last_er_fields(unsigned int rid, unsigned char code) | |
794 | { |
|
794 | { | |
795 | unsigned char *coarseTimePtr; |
|
795 | unsigned char *coarseTimePtr; | |
796 | unsigned char *fineTimePtr; |
|
796 | unsigned char *fineTimePtr; | |
797 |
|
797 | |||
798 | coarseTimePtr = (unsigned char*) &time_management_regs->coarse_time; |
|
798 | coarseTimePtr = (unsigned char*) &time_management_regs->coarse_time; | |
799 | fineTimePtr = (unsigned char*) &time_management_regs->fine_time; |
|
799 | fineTimePtr = (unsigned char*) &time_management_regs->fine_time; | |
800 |
|
800 | |||
801 | housekeeping_packet.hk_lfr_last_er_rid[0] = (unsigned char) ((rid & BYTE0_MASK) >> SHIFT_1_BYTE ); |
|
801 | housekeeping_packet.hk_lfr_last_er_rid[0] = (unsigned char) ((rid & BYTE0_MASK) >> SHIFT_1_BYTE ); | |
802 | housekeeping_packet.hk_lfr_last_er_rid[1] = (unsigned char) (rid & BYTE1_MASK); |
|
802 | housekeeping_packet.hk_lfr_last_er_rid[1] = (unsigned char) (rid & BYTE1_MASK); | |
803 | housekeeping_packet.hk_lfr_last_er_code = code; |
|
803 | housekeeping_packet.hk_lfr_last_er_code = code; | |
804 | housekeeping_packet.hk_lfr_last_er_time[0] = coarseTimePtr[0]; |
|
804 | housekeeping_packet.hk_lfr_last_er_time[0] = coarseTimePtr[0]; | |
805 | housekeeping_packet.hk_lfr_last_er_time[1] = coarseTimePtr[1]; |
|
805 | housekeeping_packet.hk_lfr_last_er_time[1] = coarseTimePtr[1]; | |
806 | housekeeping_packet.hk_lfr_last_er_time[BYTE_2] = coarseTimePtr[BYTE_2]; |
|
806 | housekeeping_packet.hk_lfr_last_er_time[BYTE_2] = coarseTimePtr[BYTE_2]; | |
807 | housekeeping_packet.hk_lfr_last_er_time[BYTE_3] = coarseTimePtr[BYTE_3]; |
|
807 | housekeeping_packet.hk_lfr_last_er_time[BYTE_3] = coarseTimePtr[BYTE_3]; | |
808 | housekeeping_packet.hk_lfr_last_er_time[BYTE_4] = fineTimePtr[BYTE_2]; |
|
808 | housekeeping_packet.hk_lfr_last_er_time[BYTE_4] = fineTimePtr[BYTE_2]; | |
809 | housekeeping_packet.hk_lfr_last_er_time[BYTE_5] = fineTimePtr[BYTE_3]; |
|
809 | housekeeping_packet.hk_lfr_last_er_time[BYTE_5] = fineTimePtr[BYTE_3]; | |
810 | } |
|
810 | } | |
811 |
|
811 | |||
812 | void update_hk_with_grspw_stats( void ) |
|
812 | void update_hk_with_grspw_stats( void ) | |
813 | { |
|
813 | { | |
814 | //**************************** |
|
814 | //**************************** | |
815 | // DPU_SPACEWIRE_IF_STATISTICS |
|
815 | // DPU_SPACEWIRE_IF_STATISTICS | |
816 | housekeeping_packet.hk_lfr_dpu_spw_pkt_rcv_cnt[0] = (unsigned char) (grspw_stats.packets_received >> SHIFT_1_BYTE); |
|
816 | housekeeping_packet.hk_lfr_dpu_spw_pkt_rcv_cnt[0] = (unsigned char) (grspw_stats.packets_received >> SHIFT_1_BYTE); | |
817 | housekeeping_packet.hk_lfr_dpu_spw_pkt_rcv_cnt[1] = (unsigned char) (grspw_stats.packets_received); |
|
817 | housekeeping_packet.hk_lfr_dpu_spw_pkt_rcv_cnt[1] = (unsigned char) (grspw_stats.packets_received); | |
818 | housekeeping_packet.hk_lfr_dpu_spw_pkt_sent_cnt[0] = (unsigned char) (grspw_stats.packets_sent >> SHIFT_1_BYTE); |
|
818 | housekeeping_packet.hk_lfr_dpu_spw_pkt_sent_cnt[0] = (unsigned char) (grspw_stats.packets_sent >> SHIFT_1_BYTE); | |
819 | housekeeping_packet.hk_lfr_dpu_spw_pkt_sent_cnt[1] = (unsigned char) (grspw_stats.packets_sent); |
|
819 | housekeeping_packet.hk_lfr_dpu_spw_pkt_sent_cnt[1] = (unsigned char) (grspw_stats.packets_sent); | |
820 |
|
820 | |||
821 | //****************************************** |
|
821 | //****************************************** | |
822 | // ERROR COUNTERS / SPACEWIRE / LOW SEVERITY |
|
822 | // ERROR COUNTERS / SPACEWIRE / LOW SEVERITY | |
823 | housekeeping_packet.hk_lfr_dpu_spw_parity = (unsigned char) grspw_stats.parity_err; |
|
823 | housekeeping_packet.hk_lfr_dpu_spw_parity = (unsigned char) grspw_stats.parity_err; | |
824 | housekeeping_packet.hk_lfr_dpu_spw_disconnect = (unsigned char) grspw_stats.disconnect_err; |
|
824 | housekeeping_packet.hk_lfr_dpu_spw_disconnect = (unsigned char) grspw_stats.disconnect_err; | |
825 | housekeeping_packet.hk_lfr_dpu_spw_escape = (unsigned char) grspw_stats.escape_err; |
|
825 | housekeeping_packet.hk_lfr_dpu_spw_escape = (unsigned char) grspw_stats.escape_err; | |
826 | housekeeping_packet.hk_lfr_dpu_spw_credit = (unsigned char) grspw_stats.credit_err; |
|
826 | housekeeping_packet.hk_lfr_dpu_spw_credit = (unsigned char) grspw_stats.credit_err; | |
827 | housekeeping_packet.hk_lfr_dpu_spw_write_sync = (unsigned char) grspw_stats.write_sync_err; |
|
827 | housekeeping_packet.hk_lfr_dpu_spw_write_sync = (unsigned char) grspw_stats.write_sync_err; | |
828 |
|
828 | |||
829 | //********************************************* |
|
829 | //********************************************* | |
830 | // ERROR COUNTERS / SPACEWIRE / MEDIUM SEVERITY |
|
830 | // ERROR COUNTERS / SPACEWIRE / MEDIUM SEVERITY | |
831 | housekeeping_packet.hk_lfr_dpu_spw_early_eop = (unsigned char) grspw_stats.early_ep; |
|
831 | housekeeping_packet.hk_lfr_dpu_spw_early_eop = (unsigned char) grspw_stats.early_ep; | |
832 | housekeeping_packet.hk_lfr_dpu_spw_invalid_addr = (unsigned char) grspw_stats.invalid_address; |
|
832 | housekeeping_packet.hk_lfr_dpu_spw_invalid_addr = (unsigned char) grspw_stats.invalid_address; | |
833 | housekeeping_packet.hk_lfr_dpu_spw_eep = (unsigned char) grspw_stats.rx_eep_err; |
|
833 | housekeeping_packet.hk_lfr_dpu_spw_eep = (unsigned char) grspw_stats.rx_eep_err; | |
834 | housekeeping_packet.hk_lfr_dpu_spw_rx_too_big = (unsigned char) grspw_stats.rx_truncated; |
|
834 | housekeeping_packet.hk_lfr_dpu_spw_rx_too_big = (unsigned char) grspw_stats.rx_truncated; | |
835 | } |
|
835 | } | |
836 |
|
836 | |||
837 | void spacewire_update_hk_lfr_link_state( unsigned char *hk_lfr_status_word_0 ) |
|
837 | void spacewire_update_hk_lfr_link_state( unsigned char *hk_lfr_status_word_0 ) | |
838 | { |
|
838 | { | |
839 | unsigned int *statusRegisterPtr; |
|
839 | unsigned int *statusRegisterPtr; | |
840 | unsigned char linkState; |
|
840 | unsigned char linkState; | |
841 |
|
841 | |||
842 | statusRegisterPtr = (unsigned int *) (REGS_ADDR_GRSPW + APB_OFFSET_GRSPW_STATUS_REGISTER); |
|
842 | statusRegisterPtr = (unsigned int *) (REGS_ADDR_GRSPW + APB_OFFSET_GRSPW_STATUS_REGISTER); | |
843 | linkState = |
|
843 | linkState = | |
844 | (unsigned char) ( ( (*statusRegisterPtr) >> SPW_LINK_STAT_POS) & STATUS_WORD_LINK_STATE_BITS); // [0000 0111] |
|
844 | (unsigned char) ( ( (*statusRegisterPtr) >> SPW_LINK_STAT_POS) & STATUS_WORD_LINK_STATE_BITS); // [0000 0111] | |
845 |
|
845 | |||
846 | *hk_lfr_status_word_0 = *hk_lfr_status_word_0 & STATUS_WORD_LINK_STATE_MASK; // [1111 1000] set link state to 0 |
|
846 | *hk_lfr_status_word_0 = *hk_lfr_status_word_0 & STATUS_WORD_LINK_STATE_MASK; // [1111 1000] set link state to 0 | |
847 |
|
847 | |||
848 | *hk_lfr_status_word_0 = *hk_lfr_status_word_0 | linkState; // update hk_lfr_dpu_spw_link_state |
|
848 | *hk_lfr_status_word_0 = *hk_lfr_status_word_0 | linkState; // update hk_lfr_dpu_spw_link_state | |
849 | } |
|
849 | } | |
850 |
|
850 | |||
851 | void increase_unsigned_char_counter( unsigned char *counter ) |
|
851 | void increase_unsigned_char_counter( unsigned char *counter ) | |
852 | { |
|
852 | { | |
853 | // update the number of valid timecodes that have been received |
|
853 | // update the number of valid timecodes that have been received | |
854 | if (*counter == UINT8_MAX) |
|
854 | if (*counter == UINT8_MAX) | |
855 | { |
|
855 | { | |
856 | *counter = 0; |
|
856 | *counter = 0; | |
857 | } |
|
857 | } | |
858 | else |
|
858 | else | |
859 | { |
|
859 | { | |
860 | *counter = *counter + 1; |
|
860 | *counter = *counter + 1; | |
861 | } |
|
861 | } | |
862 | } |
|
862 | } | |
863 |
|
863 | |||
864 | unsigned int check_timecode_and_previous_timecode_coherency(unsigned char currentTimecodeCtr) |
|
864 | unsigned int check_timecode_and_previous_timecode_coherency(unsigned char currentTimecodeCtr) | |
865 | { |
|
865 | { | |
866 | /** This function checks the coherency between the incoming timecode and the last valid timecode. |
|
866 | /** This function checks the coherency between the incoming timecode and the last valid timecode. | |
867 | * |
|
867 | * | |
868 | * @param currentTimecodeCtr is the incoming timecode |
|
868 | * @param currentTimecodeCtr is the incoming timecode | |
869 | * |
|
869 | * | |
870 | * @return returned codes:: |
|
870 | * @return returned codes:: | |
871 | * - LFR_DEFAULT |
|
871 | * - LFR_DEFAULT | |
872 | * - LFR_SUCCESSFUL |
|
872 | * - LFR_SUCCESSFUL | |
873 | * |
|
873 | * | |
874 | */ |
|
874 | */ | |
875 |
|
875 | |||
876 | static unsigned char firstTickout = 1; |
|
876 | static unsigned char firstTickout = 1; | |
877 | unsigned char ret; |
|
877 | unsigned char ret; | |
878 |
|
878 | |||
879 | ret = LFR_DEFAULT; |
|
879 | ret = LFR_DEFAULT; | |
880 |
|
880 | |||
881 | if (firstTickout == 0) |
|
881 | if (firstTickout == 0) | |
882 | { |
|
882 | { | |
883 | if (currentTimecodeCtr == 0) |
|
883 | if (currentTimecodeCtr == 0) | |
884 | { |
|
884 | { | |
885 | if (previousTimecodeCtr == SPW_TIMECODE_MAX) |
|
885 | if (previousTimecodeCtr == SPW_TIMECODE_MAX) | |
886 | { |
|
886 | { | |
887 | ret = LFR_SUCCESSFUL; |
|
887 | ret = LFR_SUCCESSFUL; | |
888 | } |
|
888 | } | |
889 | else |
|
889 | else | |
890 | { |
|
890 | { | |
891 | ret = LFR_DEFAULT; |
|
891 | ret = LFR_DEFAULT; | |
892 | } |
|
892 | } | |
893 | } |
|
893 | } | |
894 | else |
|
894 | else | |
895 | { |
|
895 | { | |
896 | if (currentTimecodeCtr == (previousTimecodeCtr +1)) |
|
896 | if (currentTimecodeCtr == (previousTimecodeCtr +1)) | |
897 | { |
|
897 | { | |
898 | ret = LFR_SUCCESSFUL; |
|
898 | ret = LFR_SUCCESSFUL; | |
899 | } |
|
899 | } | |
900 | else |
|
900 | else | |
901 | { |
|
901 | { | |
902 | ret = LFR_DEFAULT; |
|
902 | ret = LFR_DEFAULT; | |
903 | } |
|
903 | } | |
904 | } |
|
904 | } | |
905 | } |
|
905 | } | |
906 | else |
|
906 | else | |
907 | { |
|
907 | { | |
908 | firstTickout = 0; |
|
908 | firstTickout = 0; | |
909 | ret = LFR_SUCCESSFUL; |
|
909 | ret = LFR_SUCCESSFUL; | |
910 | } |
|
910 | } | |
911 |
|
911 | |||
912 | return ret; |
|
912 | return ret; | |
913 | } |
|
913 | } | |
914 |
|
914 | |||
915 | unsigned int check_timecode_and_internal_time_coherency(unsigned char timecode, unsigned char internalTime) |
|
915 | unsigned int check_timecode_and_internal_time_coherency(unsigned char timecode, unsigned char internalTime) | |
916 | { |
|
916 | { | |
917 | unsigned int ret; |
|
917 | unsigned int ret; | |
918 |
|
918 | |||
919 | ret = LFR_DEFAULT; |
|
919 | ret = LFR_DEFAULT; | |
920 |
|
920 | |||
921 | if (timecode == internalTime) |
|
921 | if (timecode == internalTime) | |
922 | { |
|
922 | { | |
923 | ret = LFR_SUCCESSFUL; |
|
923 | ret = LFR_SUCCESSFUL; | |
924 | } |
|
924 | } | |
925 | else |
|
925 | else | |
926 | { |
|
926 | { | |
927 | ret = LFR_DEFAULT; |
|
927 | ret = LFR_DEFAULT; | |
928 | } |
|
928 | } | |
929 |
|
929 | |||
930 | return ret; |
|
930 | return ret; | |
931 | } |
|
931 | } | |
932 |
|
932 | |||
933 | void timecode_irq_handler( void *pDev, void *regs, int minor, unsigned int tc ) |
|
933 | void timecode_irq_handler( void *pDev, void *regs, int minor, unsigned int tc ) | |
934 | { |
|
934 | { | |
935 | // a tickout has been emitted, perform actions on the incoming timecode |
|
935 | // a tickout has been emitted, perform actions on the incoming timecode | |
936 |
|
936 | |||
937 | unsigned char incomingTimecode; |
|
937 | unsigned char incomingTimecode; | |
938 | unsigned char updateTime; |
|
938 | unsigned char updateTime; | |
939 | unsigned char internalTime; |
|
939 | unsigned char internalTime; | |
940 | rtems_status_code status; |
|
940 | rtems_status_code status; | |
941 |
|
941 | |||
942 | incomingTimecode = (unsigned char) (grspwPtr[0] & TIMECODE_MASK); |
|
942 | incomingTimecode = (unsigned char) (grspwPtr[0] & TIMECODE_MASK); | |
943 | updateTime = time_management_regs->coarse_time_load & TIMECODE_MASK; |
|
943 | updateTime = time_management_regs->coarse_time_load & TIMECODE_MASK; | |
944 | internalTime = time_management_regs->coarse_time & TIMECODE_MASK; |
|
944 | internalTime = time_management_regs->coarse_time & TIMECODE_MASK; | |
945 |
|
945 | |||
946 | housekeeping_packet.hk_lfr_dpu_spw_last_timc = incomingTimecode; |
|
946 | housekeeping_packet.hk_lfr_dpu_spw_last_timc = incomingTimecode; | |
947 |
|
947 | |||
948 | // update the number of tickout that have been generated |
|
948 | // update the number of tickout that have been generated | |
949 | increase_unsigned_char_counter( &housekeeping_packet.hk_lfr_dpu_spw_tick_out_cnt ); |
|
949 | increase_unsigned_char_counter( &housekeeping_packet.hk_lfr_dpu_spw_tick_out_cnt ); | |
950 |
|
950 | |||
951 | //************************** |
|
951 | //************************** | |
952 | // HK_LFR_TIMECODE_ERRONEOUS |
|
952 | // HK_LFR_TIMECODE_ERRONEOUS | |
953 | // MISSING and INVALID are handled by the timecode_timer_routine service routine |
|
953 | // MISSING and INVALID are handled by the timecode_timer_routine service routine | |
954 | if (check_timecode_and_previous_timecode_coherency( incomingTimecode ) == LFR_DEFAULT) |
|
954 | if (check_timecode_and_previous_timecode_coherency( incomingTimecode ) == LFR_DEFAULT) | |
955 | { |
|
955 | { | |
956 | // this is unexpected but a tickout could have been raised despite of the timecode being erroneous |
|
956 | // this is unexpected but a tickout could have been raised despite of the timecode being erroneous | |
957 | increase_unsigned_char_counter( &housekeeping_packet.hk_lfr_timecode_erroneous ); |
|
957 | increase_unsigned_char_counter( &housekeeping_packet.hk_lfr_timecode_erroneous ); | |
958 | update_hk_lfr_last_er_fields( RID_LE_LFR_TIMEC, CODE_ERRONEOUS ); |
|
958 | update_hk_lfr_last_er_fields( RID_LE_LFR_TIMEC, CODE_ERRONEOUS ); | |
959 | } |
|
959 | } | |
960 |
|
960 | |||
961 | //************************ |
|
961 | //************************ | |
962 | // HK_LFR_TIME_TIMECODE_IT |
|
962 | // HK_LFR_TIME_TIMECODE_IT | |
963 | // check the coherency between the SpaceWire timecode and the Internal Time |
|
963 | // check the coherency between the SpaceWire timecode and the Internal Time | |
964 | if (check_timecode_and_internal_time_coherency( incomingTimecode, internalTime ) == LFR_DEFAULT) |
|
964 | if (check_timecode_and_internal_time_coherency( incomingTimecode, internalTime ) == LFR_DEFAULT) | |
965 | { |
|
965 | { | |
966 | increase_unsigned_char_counter( &housekeeping_packet.hk_lfr_time_timecode_it ); |
|
966 | increase_unsigned_char_counter( &housekeeping_packet.hk_lfr_time_timecode_it ); | |
967 | update_hk_lfr_last_er_fields( RID_LE_LFR_TIME, CODE_TIMECODE_IT ); |
|
967 | update_hk_lfr_last_er_fields( RID_LE_LFR_TIME, CODE_TIMECODE_IT ); | |
968 | } |
|
968 | } | |
969 |
|
969 | |||
970 | //******************** |
|
970 | //******************** | |
971 | // HK_LFR_TIMECODE_CTR |
|
971 | // HK_LFR_TIMECODE_CTR | |
972 | // check the value of the timecode with respect to the last TC_LFR_UPDATE_TIME => SSS-CP-FS-370 |
|
972 | // check the value of the timecode with respect to the last TC_LFR_UPDATE_TIME => SSS-CP-FS-370 | |
973 | if (oneTcLfrUpdateTimeReceived == 1) |
|
973 | if (oneTcLfrUpdateTimeReceived == 1) | |
974 | { |
|
974 | { | |
975 | if ( incomingTimecode != updateTime ) |
|
975 | if ( incomingTimecode != updateTime ) | |
976 | { |
|
976 | { | |
977 | increase_unsigned_char_counter( &housekeeping_packet.hk_lfr_time_timecode_ctr ); |
|
977 | increase_unsigned_char_counter( &housekeeping_packet.hk_lfr_time_timecode_ctr ); | |
978 | update_hk_lfr_last_er_fields( RID_LE_LFR_TIME, CODE_TIMECODE_CTR ); |
|
978 | update_hk_lfr_last_er_fields( RID_LE_LFR_TIME, CODE_TIMECODE_CTR ); | |
979 | } |
|
979 | } | |
980 | } |
|
980 | } | |
981 |
|
981 | |||
982 | // launch the timecode timer to detect missing or invalid timecodes |
|
982 | // launch the timecode timer to detect missing or invalid timecodes | |
983 | previousTimecodeCtr = incomingTimecode; // update the previousTimecodeCtr value |
|
983 | previousTimecodeCtr = incomingTimecode; // update the previousTimecodeCtr value | |
984 | status = rtems_timer_fire_after( timecode_timer_id, TIMECODE_TIMER_TIMEOUT, timecode_timer_routine, NULL ); |
|
984 | status = rtems_timer_fire_after( timecode_timer_id, TIMECODE_TIMER_TIMEOUT, timecode_timer_routine, NULL ); | |
985 | if (status != RTEMS_SUCCESSFUL) |
|
985 | if (status != RTEMS_SUCCESSFUL) | |
986 | { |
|
986 | { | |
987 | rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_14 ); |
|
987 | rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_14 ); | |
988 | } |
|
988 | } | |
989 | } |
|
989 | } | |
990 |
|
990 | |||
991 | rtems_timer_service_routine timecode_timer_routine( rtems_id timer_id, void *user_data ) |
|
991 | rtems_timer_service_routine timecode_timer_routine( rtems_id timer_id, void *user_data ) | |
992 | { |
|
992 | { | |
993 | static unsigned char initStep = 1; |
|
993 | static unsigned char initStep = 1; | |
994 |
|
994 | |||
995 | unsigned char currentTimecodeCtr; |
|
995 | unsigned char currentTimecodeCtr; | |
996 |
|
996 | |||
997 | currentTimecodeCtr = (unsigned char) (grspwPtr[0] & TIMECODE_MASK); |
|
997 | currentTimecodeCtr = (unsigned char) (grspwPtr[0] & TIMECODE_MASK); | |
998 |
|
998 | |||
999 | if (initStep == 1) |
|
999 | if (initStep == 1) | |
1000 | { |
|
1000 | { | |
1001 | if (currentTimecodeCtr == previousTimecodeCtr) |
|
1001 | if (currentTimecodeCtr == previousTimecodeCtr) | |
1002 | { |
|
1002 | { | |
1003 | //************************ |
|
1003 | //************************ | |
1004 | // HK_LFR_TIMECODE_MISSING |
|
1004 | // HK_LFR_TIMECODE_MISSING | |
1005 | // the timecode value has not changed, no valid timecode has been received, the timecode is MISSING |
|
1005 | // the timecode value has not changed, no valid timecode has been received, the timecode is MISSING | |
1006 | increase_unsigned_char_counter( &housekeeping_packet.hk_lfr_timecode_missing ); |
|
1006 | increase_unsigned_char_counter( &housekeeping_packet.hk_lfr_timecode_missing ); | |
1007 | update_hk_lfr_last_er_fields( RID_LE_LFR_TIMEC, CODE_MISSING ); |
|
1007 | update_hk_lfr_last_er_fields( RID_LE_LFR_TIMEC, CODE_MISSING ); | |
1008 | } |
|
1008 | } | |
1009 | else if (currentTimecodeCtr == (previousTimecodeCtr+1)) |
|
1009 | else if (currentTimecodeCtr == (previousTimecodeCtr+1)) | |
1010 | { |
|
1010 | { | |
1011 | // the timecode value has changed and the value is valid, this is unexpected because |
|
1011 | // the timecode value has changed and the value is valid, this is unexpected because | |
1012 | // the timer should not have fired, the timecode_irq_handler should have been raised |
|
1012 | // the timer should not have fired, the timecode_irq_handler should have been raised | |
1013 | } |
|
1013 | } | |
1014 | else |
|
1014 | else | |
1015 | { |
|
1015 | { | |
1016 | //************************ |
|
1016 | //************************ | |
1017 | // HK_LFR_TIMECODE_INVALID |
|
1017 | // HK_LFR_TIMECODE_INVALID | |
1018 | // the timecode value has changed and the value is not valid, no tickout has been generated |
|
1018 | // the timecode value has changed and the value is not valid, no tickout has been generated | |
1019 | // this is why the timer has fired |
|
1019 | // this is why the timer has fired | |
1020 | increase_unsigned_char_counter( &housekeeping_packet.hk_lfr_timecode_invalid ); |
|
1020 | increase_unsigned_char_counter( &housekeeping_packet.hk_lfr_timecode_invalid ); | |
1021 | update_hk_lfr_last_er_fields( RID_LE_LFR_TIMEC, CODE_INVALID ); |
|
1021 | update_hk_lfr_last_er_fields( RID_LE_LFR_TIMEC, CODE_INVALID ); | |
1022 | } |
|
1022 | } | |
1023 | } |
|
1023 | } | |
1024 | else |
|
1024 | else | |
1025 | { |
|
1025 | { | |
1026 | initStep = 1; |
|
1026 | initStep = 1; | |
1027 | //************************ |
|
1027 | //************************ | |
1028 | // HK_LFR_TIMECODE_MISSING |
|
1028 | // HK_LFR_TIMECODE_MISSING | |
1029 | increase_unsigned_char_counter( &housekeeping_packet.hk_lfr_timecode_missing ); |
|
1029 | increase_unsigned_char_counter( &housekeeping_packet.hk_lfr_timecode_missing ); | |
1030 | update_hk_lfr_last_er_fields( RID_LE_LFR_TIMEC, CODE_MISSING ); |
|
1030 | update_hk_lfr_last_er_fields( RID_LE_LFR_TIMEC, CODE_MISSING ); | |
1031 | } |
|
1031 | } | |
1032 |
|
1032 | |||
1033 | rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_13 ); |
|
1033 | rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_13 ); | |
1034 | } |
|
1034 | } | |
1035 |
|
1035 | |||
1036 | void init_header_cwf( Header_TM_LFR_SCIENCE_CWF_t *header ) |
|
1036 | void init_header_cwf( Header_TM_LFR_SCIENCE_CWF_t *header ) | |
1037 | { |
|
1037 | { | |
1038 | header->targetLogicalAddress = CCSDS_DESTINATION_ID; |
|
1038 | header->targetLogicalAddress = CCSDS_DESTINATION_ID; | |
1039 | header->protocolIdentifier = CCSDS_PROTOCOLE_ID; |
|
1039 | header->protocolIdentifier = CCSDS_PROTOCOLE_ID; | |
1040 | header->reserved = DEFAULT_RESERVED; |
|
1040 | header->reserved = DEFAULT_RESERVED; | |
1041 | header->userApplication = CCSDS_USER_APP; |
|
1041 | header->userApplication = CCSDS_USER_APP; | |
1042 | header->packetSequenceControl[0]= TM_PACKET_SEQ_CTRL_STANDALONE; |
|
1042 | header->packetSequenceControl[0]= TM_PACKET_SEQ_CTRL_STANDALONE; | |
1043 | header->packetSequenceControl[1]= TM_PACKET_SEQ_CNT_DEFAULT; |
|
1043 | header->packetSequenceControl[1]= TM_PACKET_SEQ_CNT_DEFAULT; | |
1044 | header->packetLength[0] = INIT_CHAR; |
|
1044 | header->packetLength[0] = INIT_CHAR; | |
1045 | header->packetLength[1] = INIT_CHAR; |
|
1045 | header->packetLength[1] = INIT_CHAR; | |
1046 | // DATA FIELD HEADER |
|
1046 | // DATA FIELD HEADER | |
1047 | header->spare1_pusVersion_spare2 = DEFAULT_SPARE1_PUSVERSION_SPARE2; |
|
1047 | header->spare1_pusVersion_spare2 = DEFAULT_SPARE1_PUSVERSION_SPARE2; | |
1048 | header->serviceType = TM_TYPE_LFR_SCIENCE; // service type |
|
1048 | header->serviceType = TM_TYPE_LFR_SCIENCE; // service type | |
1049 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_6; // service subtype |
|
1049 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_6; // service subtype | |
1050 | header->destinationID = TM_DESTINATION_ID_GROUND; |
|
1050 | header->destinationID = TM_DESTINATION_ID_GROUND; | |
1051 | header->time[BYTE_0] = INIT_CHAR; |
|
1051 | header->time[BYTE_0] = INIT_CHAR; | |
1052 | header->time[BYTE_1] = INIT_CHAR; |
|
1052 | header->time[BYTE_1] = INIT_CHAR; | |
1053 | header->time[BYTE_2] = INIT_CHAR; |
|
1053 | header->time[BYTE_2] = INIT_CHAR; | |
1054 | header->time[BYTE_3] = INIT_CHAR; |
|
1054 | header->time[BYTE_3] = INIT_CHAR; | |
1055 | header->time[BYTE_4] = INIT_CHAR; |
|
1055 | header->time[BYTE_4] = INIT_CHAR; | |
1056 | header->time[BYTE_5] = INIT_CHAR; |
|
1056 | header->time[BYTE_5] = INIT_CHAR; | |
1057 | // AUXILIARY DATA HEADER |
|
1057 | // AUXILIARY DATA HEADER | |
1058 | header->sid = INIT_CHAR; |
|
1058 | header->sid = INIT_CHAR; | |
1059 | header->pa_bia_status_info = DEFAULT_HKBIA; |
|
1059 | header->pa_bia_status_info = DEFAULT_HKBIA; | |
1060 | header->blkNr[0] = INIT_CHAR; |
|
1060 | header->blkNr[0] = INIT_CHAR; | |
1061 | header->blkNr[1] = INIT_CHAR; |
|
1061 | header->blkNr[1] = INIT_CHAR; | |
1062 | } |
|
1062 | } | |
1063 |
|
1063 | |||
1064 | void init_header_swf( Header_TM_LFR_SCIENCE_SWF_t *header ) |
|
1064 | void init_header_swf( Header_TM_LFR_SCIENCE_SWF_t *header ) | |
1065 | { |
|
1065 | { | |
1066 | header->targetLogicalAddress = CCSDS_DESTINATION_ID; |
|
1066 | header->targetLogicalAddress = CCSDS_DESTINATION_ID; | |
1067 | header->protocolIdentifier = CCSDS_PROTOCOLE_ID; |
|
1067 | header->protocolIdentifier = CCSDS_PROTOCOLE_ID; | |
1068 | header->reserved = DEFAULT_RESERVED; |
|
1068 | header->reserved = DEFAULT_RESERVED; | |
1069 | header->userApplication = CCSDS_USER_APP; |
|
1069 | header->userApplication = CCSDS_USER_APP; | |
1070 | header->packetID[0] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST >> SHIFT_1_BYTE); |
|
1070 | header->packetID[0] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST >> SHIFT_1_BYTE); | |
1071 | header->packetID[1] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST); |
|
1071 | header->packetID[1] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST); | |
1072 | header->packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE; |
|
1072 | header->packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE; | |
1073 | header->packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT; |
|
1073 | header->packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT; | |
1074 | header->packetLength[0] = (unsigned char) (TM_LEN_SCI_CWF_336 >> SHIFT_1_BYTE); |
|
1074 | header->packetLength[0] = (unsigned char) (TM_LEN_SCI_CWF_336 >> SHIFT_1_BYTE); | |
1075 | header->packetLength[1] = (unsigned char) (TM_LEN_SCI_CWF_336 ); |
|
1075 | header->packetLength[1] = (unsigned char) (TM_LEN_SCI_CWF_336 ); | |
1076 | // DATA FIELD HEADER |
|
1076 | // DATA FIELD HEADER | |
1077 | header->spare1_pusVersion_spare2 = DEFAULT_SPARE1_PUSVERSION_SPARE2; |
|
1077 | header->spare1_pusVersion_spare2 = DEFAULT_SPARE1_PUSVERSION_SPARE2; | |
1078 | header->serviceType = TM_TYPE_LFR_SCIENCE; // service type |
|
1078 | header->serviceType = TM_TYPE_LFR_SCIENCE; // service type | |
1079 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_6; // service subtype |
|
1079 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_6; // service subtype | |
1080 | header->destinationID = TM_DESTINATION_ID_GROUND; |
|
1080 | header->destinationID = TM_DESTINATION_ID_GROUND; | |
1081 | header->time[BYTE_0] = INIT_CHAR; |
|
1081 | header->time[BYTE_0] = INIT_CHAR; | |
1082 | header->time[BYTE_1] = INIT_CHAR; |
|
1082 | header->time[BYTE_1] = INIT_CHAR; | |
1083 | header->time[BYTE_2] = INIT_CHAR; |
|
1083 | header->time[BYTE_2] = INIT_CHAR; | |
1084 | header->time[BYTE_3] = INIT_CHAR; |
|
1084 | header->time[BYTE_3] = INIT_CHAR; | |
1085 | header->time[BYTE_4] = INIT_CHAR; |
|
1085 | header->time[BYTE_4] = INIT_CHAR; | |
1086 | header->time[BYTE_5] = INIT_CHAR; |
|
1086 | header->time[BYTE_5] = INIT_CHAR; | |
1087 | // AUXILIARY DATA HEADER |
|
1087 | // AUXILIARY DATA HEADER | |
1088 | header->sid = INIT_CHAR; |
|
1088 | header->sid = INIT_CHAR; | |
1089 | header->pa_bia_status_info = DEFAULT_HKBIA; |
|
1089 | header->pa_bia_status_info = DEFAULT_HKBIA; | |
1090 | header->pktCnt = PKTCNT_SWF; // PKT_CNT |
|
1090 | header->pktCnt = PKTCNT_SWF; // PKT_CNT | |
1091 | header->pktNr = INIT_CHAR; |
|
1091 | header->pktNr = INIT_CHAR; | |
1092 | header->blkNr[0] = (unsigned char) (BLK_NR_CWF >> SHIFT_1_BYTE); |
|
1092 | header->blkNr[0] = (unsigned char) (BLK_NR_CWF >> SHIFT_1_BYTE); | |
1093 | header->blkNr[1] = (unsigned char) (BLK_NR_CWF ); |
|
1093 | header->blkNr[1] = (unsigned char) (BLK_NR_CWF ); | |
1094 | } |
|
1094 | } | |
1095 |
|
1095 | |||
1096 | void init_header_asm( Header_TM_LFR_SCIENCE_ASM_t *header ) |
|
1096 | void init_header_asm( Header_TM_LFR_SCIENCE_ASM_t *header ) | |
1097 | { |
|
1097 | { | |
1098 | header->targetLogicalAddress = CCSDS_DESTINATION_ID; |
|
1098 | header->targetLogicalAddress = CCSDS_DESTINATION_ID; | |
1099 | header->protocolIdentifier = CCSDS_PROTOCOLE_ID; |
|
1099 | header->protocolIdentifier = CCSDS_PROTOCOLE_ID; | |
1100 | header->reserved = DEFAULT_RESERVED; |
|
1100 | header->reserved = DEFAULT_RESERVED; | |
1101 | header->userApplication = CCSDS_USER_APP; |
|
1101 | header->userApplication = CCSDS_USER_APP; | |
1102 | header->packetID[0] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST >> SHIFT_1_BYTE); |
|
1102 | header->packetID[0] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST >> SHIFT_1_BYTE); | |
1103 | header->packetID[1] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST); |
|
1103 | header->packetID[1] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST); | |
1104 | header->packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE; |
|
1104 | header->packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE; | |
1105 | header->packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT; |
|
1105 | header->packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT; | |
1106 | header->packetLength[0] = INIT_CHAR; |
|
1106 | header->packetLength[0] = INIT_CHAR; | |
1107 | header->packetLength[1] = INIT_CHAR; |
|
1107 | header->packetLength[1] = INIT_CHAR; | |
1108 | // DATA FIELD HEADER |
|
1108 | // DATA FIELD HEADER | |
1109 | header->spare1_pusVersion_spare2 = DEFAULT_SPARE1_PUSVERSION_SPARE2; |
|
1109 | header->spare1_pusVersion_spare2 = DEFAULT_SPARE1_PUSVERSION_SPARE2; | |
1110 | header->serviceType = TM_TYPE_LFR_SCIENCE; // service type |
|
1110 | header->serviceType = TM_TYPE_LFR_SCIENCE; // service type | |
1111 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_3; // service subtype |
|
1111 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_3; // service subtype | |
1112 | header->destinationID = TM_DESTINATION_ID_GROUND; |
|
1112 | header->destinationID = TM_DESTINATION_ID_GROUND; | |
1113 | header->time[BYTE_0] = INIT_CHAR; |
|
1113 | header->time[BYTE_0] = INIT_CHAR; | |
1114 | header->time[BYTE_1] = INIT_CHAR; |
|
1114 | header->time[BYTE_1] = INIT_CHAR; | |
1115 | header->time[BYTE_2] = INIT_CHAR; |
|
1115 | header->time[BYTE_2] = INIT_CHAR; | |
1116 | header->time[BYTE_3] = INIT_CHAR; |
|
1116 | header->time[BYTE_3] = INIT_CHAR; | |
1117 | header->time[BYTE_4] = INIT_CHAR; |
|
1117 | header->time[BYTE_4] = INIT_CHAR; | |
1118 | header->time[BYTE_5] = INIT_CHAR; |
|
1118 | header->time[BYTE_5] = INIT_CHAR; | |
1119 | // AUXILIARY DATA HEADER |
|
1119 | // AUXILIARY DATA HEADER | |
1120 | header->sid = INIT_CHAR; |
|
1120 | header->sid = INIT_CHAR; | |
1121 | header->pa_bia_status_info = INIT_CHAR; |
|
1121 | header->pa_bia_status_info = INIT_CHAR; | |
1122 | header->pa_lfr_pkt_cnt_asm = INIT_CHAR; |
|
1122 | header->pa_lfr_pkt_cnt_asm = INIT_CHAR; | |
1123 | header->pa_lfr_pkt_nr_asm = INIT_CHAR; |
|
1123 | header->pa_lfr_pkt_nr_asm = INIT_CHAR; | |
1124 | header->pa_lfr_asm_blk_nr[0] = INIT_CHAR; |
|
1124 | header->pa_lfr_asm_blk_nr[0] = INIT_CHAR; | |
1125 | header->pa_lfr_asm_blk_nr[1] = INIT_CHAR; |
|
1125 | header->pa_lfr_asm_blk_nr[1] = INIT_CHAR; | |
1126 | } |
|
1126 | } | |
1127 |
|
1127 | |||
1128 | int spw_send_waveform_CWF( ring_node *ring_node_to_send, |
|
1128 | int spw_send_waveform_CWF( ring_node *ring_node_to_send, | |
1129 | Header_TM_LFR_SCIENCE_CWF_t *header ) |
|
1129 | Header_TM_LFR_SCIENCE_CWF_t *header ) | |
1130 | { |
|
1130 | { | |
1131 | /** This function sends CWF CCSDS packets (F2, F1 or F0). |
|
1131 | /** This function sends CWF CCSDS packets (F2, F1 or F0). | |
1132 | * |
|
1132 | * | |
1133 | * @param waveform points to the buffer containing the data that will be send. |
|
1133 | * @param waveform points to the buffer containing the data that will be send. | |
1134 | * @param sid is the source identifier of the data that will be sent. |
|
1134 | * @param sid is the source identifier of the data that will be sent. | |
1135 | * @param headerCWF points to a table of headers that have been prepared for the data transmission. |
|
1135 | * @param headerCWF points to a table of headers that have been prepared for the data transmission. | |
1136 | * @param queue_id is the id of the rtems queue to which spw_ioctl_pkt_send structures will be send. The structures |
|
1136 | * @param queue_id is the id of the rtems queue to which spw_ioctl_pkt_send structures will be send. The structures | |
1137 | * contain information to setup the transmission of the data packets. |
|
1137 | * contain information to setup the transmission of the data packets. | |
1138 | * |
|
1138 | * | |
1139 | * One group of 2048 samples is sent as 7 consecutive packets, 6 packets containing 340 blocks and 8 packets containing 8 blocks. |
|
1139 | * One group of 2048 samples is sent as 7 consecutive packets, 6 packets containing 340 blocks and 8 packets containing 8 blocks. | |
1140 | * |
|
1140 | * | |
1141 | */ |
|
1141 | */ | |
1142 |
|
1142 | |||
1143 | unsigned int i; |
|
1143 | unsigned int i; | |
1144 | int ret; |
|
1144 | int ret; | |
1145 | unsigned int coarseTime; |
|
1145 | unsigned int coarseTime; | |
1146 | unsigned int fineTime; |
|
1146 | unsigned int fineTime; | |
1147 | rtems_status_code status; |
|
1147 | rtems_status_code status; | |
1148 | spw_ioctl_pkt_send spw_ioctl_send_CWF; |
|
1148 | spw_ioctl_pkt_send spw_ioctl_send_CWF; | |
1149 | int *dataPtr; |
|
1149 | int *dataPtr; | |
1150 | unsigned char sid; |
|
1150 | unsigned char sid; | |
1151 |
|
1151 | |||
1152 | spw_ioctl_send_CWF.hlen = HEADER_LENGTH_TM_LFR_SCIENCE_CWF; |
|
1152 | spw_ioctl_send_CWF.hlen = HEADER_LENGTH_TM_LFR_SCIENCE_CWF; | |
1153 | spw_ioctl_send_CWF.options = 0; |
|
1153 | spw_ioctl_send_CWF.options = 0; | |
1154 |
|
1154 | |||
1155 | ret = LFR_DEFAULT; |
|
1155 | ret = LFR_DEFAULT; | |
1156 | sid = (unsigned char) ring_node_to_send->sid; |
|
1156 | sid = (unsigned char) ring_node_to_send->sid; | |
1157 |
|
1157 | |||
1158 | coarseTime = ring_node_to_send->coarseTime; |
|
1158 | coarseTime = ring_node_to_send->coarseTime; | |
1159 | fineTime = ring_node_to_send->fineTime; |
|
1159 | fineTime = ring_node_to_send->fineTime; | |
1160 | dataPtr = (int*) ring_node_to_send->buffer_address; |
|
1160 | dataPtr = (int*) ring_node_to_send->buffer_address; | |
1161 |
|
1161 | |||
1162 | header->packetLength[0] = (unsigned char) (TM_LEN_SCI_CWF_336 >> SHIFT_1_BYTE); |
|
1162 | header->packetLength[0] = (unsigned char) (TM_LEN_SCI_CWF_336 >> SHIFT_1_BYTE); | |
1163 | header->packetLength[1] = (unsigned char) (TM_LEN_SCI_CWF_336 ); |
|
1163 | header->packetLength[1] = (unsigned char) (TM_LEN_SCI_CWF_336 ); | |
1164 | header->pa_bia_status_info = pa_bia_status_info; |
|
1164 | header->pa_bia_status_info = pa_bia_status_info; | |
1165 | header->sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
1165 | header->sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
1166 | header->blkNr[0] = (unsigned char) (BLK_NR_CWF >> SHIFT_1_BYTE); |
|
1166 | header->blkNr[0] = (unsigned char) (BLK_NR_CWF >> SHIFT_1_BYTE); | |
1167 | header->blkNr[1] = (unsigned char) (BLK_NR_CWF ); |
|
1167 | header->blkNr[1] = (unsigned char) (BLK_NR_CWF ); | |
1168 |
|
1168 | |||
1169 | for (i=0; i<NB_PACKETS_PER_GROUP_OF_CWF; i++) // send waveform |
|
1169 | for (i=0; i<NB_PACKETS_PER_GROUP_OF_CWF; i++) // send waveform | |
1170 | { |
|
1170 | { | |
1171 | spw_ioctl_send_CWF.data = (char*) &dataPtr[ (i * BLK_NR_CWF * NB_WORDS_SWF_BLK) ]; |
|
1171 | spw_ioctl_send_CWF.data = (char*) &dataPtr[ (i * BLK_NR_CWF * NB_WORDS_SWF_BLK) ]; | |
1172 | spw_ioctl_send_CWF.hdr = (char*) header; |
|
1172 | spw_ioctl_send_CWF.hdr = (char*) header; | |
1173 | // BUILD THE DATA |
|
1173 | // BUILD THE DATA | |
1174 | spw_ioctl_send_CWF.dlen = BLK_NR_CWF * NB_BYTES_SWF_BLK; |
|
1174 | spw_ioctl_send_CWF.dlen = BLK_NR_CWF * NB_BYTES_SWF_BLK; | |
1175 |
|
1175 | |||
1176 | // SET PACKET SEQUENCE CONTROL |
|
1176 | // SET PACKET SEQUENCE CONTROL | |
1177 | increment_seq_counter_source_id( header->packetSequenceControl, sid ); |
|
1177 | increment_seq_counter_source_id( header->packetSequenceControl, sid ); | |
1178 |
|
1178 | |||
1179 | // SET SID |
|
1179 | // SET SID | |
1180 | header->sid = sid; |
|
1180 | header->sid = sid; | |
1181 |
|
1181 | |||
1182 | // SET PACKET TIME |
|
1182 | // SET PACKET TIME | |
1183 | compute_acquisition_time( coarseTime, fineTime, sid, i, header->acquisitionTime); |
|
1183 | compute_acquisition_time( coarseTime, fineTime, sid, i, header->acquisitionTime); | |
1184 | // |
|
1184 | // | |
1185 | header->time[0] = header->acquisitionTime[0]; |
|
1185 | header->time[0] = header->acquisitionTime[0]; | |
1186 | header->time[1] = header->acquisitionTime[1]; |
|
1186 | header->time[1] = header->acquisitionTime[1]; | |
1187 | header->time[BYTE_2] = header->acquisitionTime[BYTE_2]; |
|
1187 | header->time[BYTE_2] = header->acquisitionTime[BYTE_2]; | |
1188 | header->time[BYTE_3] = header->acquisitionTime[BYTE_3]; |
|
1188 | header->time[BYTE_3] = header->acquisitionTime[BYTE_3]; | |
1189 | header->time[BYTE_4] = header->acquisitionTime[BYTE_4]; |
|
1189 | header->time[BYTE_4] = header->acquisitionTime[BYTE_4]; | |
1190 | header->time[BYTE_5] = header->acquisitionTime[BYTE_5]; |
|
1190 | header->time[BYTE_5] = header->acquisitionTime[BYTE_5]; | |
1191 |
|
1191 | |||
1192 | // SET PACKET ID |
|
1192 | // SET PACKET ID | |
1193 | if ( (sid == SID_SBM1_CWF_F1) || (sid == SID_SBM2_CWF_F2) ) |
|
1193 | if ( (sid == SID_SBM1_CWF_F1) || (sid == SID_SBM2_CWF_F2) ) | |
1194 | { |
|
1194 | { | |
1195 | header->packetID[0] = (unsigned char) (APID_TM_SCIENCE_SBM1_SBM2 >> SHIFT_1_BYTE); |
|
1195 | header->packetID[0] = (unsigned char) (APID_TM_SCIENCE_SBM1_SBM2 >> SHIFT_1_BYTE); | |
1196 | header->packetID[1] = (unsigned char) (APID_TM_SCIENCE_SBM1_SBM2); |
|
1196 | header->packetID[1] = (unsigned char) (APID_TM_SCIENCE_SBM1_SBM2); | |
1197 | } |
|
1197 | } | |
1198 | else |
|
1198 | else | |
1199 | { |
|
1199 | { | |
1200 | header->packetID[0] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST >> SHIFT_1_BYTE); |
|
1200 | header->packetID[0] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST >> SHIFT_1_BYTE); | |
1201 | header->packetID[1] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST); |
|
1201 | header->packetID[1] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST); | |
1202 | } |
|
1202 | } | |
1203 |
|
1203 | |||
1204 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_SEND, &spw_ioctl_send_CWF ); |
|
1204 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_SEND, &spw_ioctl_send_CWF ); | |
1205 | if (status != RTEMS_SUCCESSFUL) { |
|
1205 | if (status != RTEMS_SUCCESSFUL) { | |
1206 | ret = LFR_DEFAULT; |
|
1206 | ret = LFR_DEFAULT; | |
1207 | } |
|
1207 | } | |
1208 | } |
|
1208 | } | |
1209 |
|
1209 | |||
1210 | return ret; |
|
1210 | return ret; | |
1211 | } |
|
1211 | } | |
1212 |
|
1212 | |||
1213 | int spw_send_waveform_SWF( ring_node *ring_node_to_send, |
|
1213 | int spw_send_waveform_SWF( ring_node *ring_node_to_send, | |
1214 | Header_TM_LFR_SCIENCE_SWF_t *header ) |
|
1214 | Header_TM_LFR_SCIENCE_SWF_t *header ) | |
1215 | { |
|
1215 | { | |
1216 | /** This function sends SWF CCSDS packets (F2, F1 or F0). |
|
1216 | /** This function sends SWF CCSDS packets (F2, F1 or F0). | |
1217 | * |
|
1217 | * | |
1218 | * @param waveform points to the buffer containing the data that will be send. |
|
1218 | * @param waveform points to the buffer containing the data that will be send. | |
1219 | * @param sid is the source identifier of the data that will be sent. |
|
1219 | * @param sid is the source identifier of the data that will be sent. | |
1220 | * @param headerSWF points to a table of headers that have been prepared for the data transmission. |
|
1220 | * @param headerSWF points to a table of headers that have been prepared for the data transmission. | |
1221 | * @param queue_id is the id of the rtems queue to which spw_ioctl_pkt_send structures will be send. The structures |
|
1221 | * @param queue_id is the id of the rtems queue to which spw_ioctl_pkt_send structures will be send. The structures | |
1222 | * contain information to setup the transmission of the data packets. |
|
1222 | * contain information to setup the transmission of the data packets. | |
1223 | * |
|
1223 | * | |
1224 | * One group of 2048 samples is sent as 7 consecutive packets, 6 packets containing 340 blocks and 8 packets containing 8 blocks. |
|
1224 | * One group of 2048 samples is sent as 7 consecutive packets, 6 packets containing 340 blocks and 8 packets containing 8 blocks. | |
1225 | * |
|
1225 | * | |
1226 | */ |
|
1226 | */ | |
1227 |
|
1227 | |||
1228 | unsigned int i; |
|
1228 | unsigned int i; | |
1229 | int ret; |
|
1229 | int ret; | |
1230 | unsigned int coarseTime; |
|
1230 | unsigned int coarseTime; | |
1231 | unsigned int fineTime; |
|
1231 | unsigned int fineTime; | |
1232 | rtems_status_code status; |
|
1232 | rtems_status_code status; | |
1233 | spw_ioctl_pkt_send spw_ioctl_send_SWF; |
|
1233 | spw_ioctl_pkt_send spw_ioctl_send_SWF; | |
1234 | int *dataPtr; |
|
1234 | int *dataPtr; | |
1235 | unsigned char sid; |
|
1235 | unsigned char sid; | |
1236 |
|
1236 | |||
1237 | spw_ioctl_send_SWF.hlen = HEADER_LENGTH_TM_LFR_SCIENCE_SWF; |
|
1237 | spw_ioctl_send_SWF.hlen = HEADER_LENGTH_TM_LFR_SCIENCE_SWF; | |
1238 | spw_ioctl_send_SWF.options = 0; |
|
1238 | spw_ioctl_send_SWF.options = 0; | |
1239 |
|
1239 | |||
1240 | ret = LFR_DEFAULT; |
|
1240 | ret = LFR_DEFAULT; | |
1241 |
|
1241 | |||
1242 | coarseTime = ring_node_to_send->coarseTime; |
|
1242 | coarseTime = ring_node_to_send->coarseTime; | |
1243 | fineTime = ring_node_to_send->fineTime; |
|
1243 | fineTime = ring_node_to_send->fineTime; | |
1244 | dataPtr = (int*) ring_node_to_send->buffer_address; |
|
1244 | dataPtr = (int*) ring_node_to_send->buffer_address; | |
1245 | sid = ring_node_to_send->sid; |
|
1245 | sid = ring_node_to_send->sid; | |
1246 |
|
1246 | |||
1247 | header->pa_bia_status_info = pa_bia_status_info; |
|
1247 | header->pa_bia_status_info = pa_bia_status_info; | |
1248 | header->sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
1248 | header->sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
1249 |
|
1249 | |||
1250 | for (i=0; i<PKTCNT_SWF; i++) // send waveform |
|
1250 | for (i=0; i<PKTCNT_SWF; i++) // send waveform | |
1251 | { |
|
1251 | { | |
1252 | spw_ioctl_send_SWF.data = (char*) &dataPtr[ (i * BLK_NR_304 * NB_WORDS_SWF_BLK) ]; |
|
1252 | spw_ioctl_send_SWF.data = (char*) &dataPtr[ (i * BLK_NR_304 * NB_WORDS_SWF_BLK) ]; | |
1253 | spw_ioctl_send_SWF.hdr = (char*) header; |
|
1253 | spw_ioctl_send_SWF.hdr = (char*) header; | |
1254 |
|
1254 | |||
1255 | // SET PACKET SEQUENCE CONTROL |
|
1255 | // SET PACKET SEQUENCE CONTROL | |
1256 | increment_seq_counter_source_id( header->packetSequenceControl, sid ); |
|
1256 | increment_seq_counter_source_id( header->packetSequenceControl, sid ); | |
1257 |
|
1257 | |||
1258 | // SET PACKET LENGTH AND BLKNR |
|
1258 | // SET PACKET LENGTH AND BLKNR | |
1259 | if (i == (PKTCNT_SWF-1)) |
|
1259 | if (i == (PKTCNT_SWF-1)) | |
1260 | { |
|
1260 | { | |
1261 | spw_ioctl_send_SWF.dlen = BLK_NR_224 * NB_BYTES_SWF_BLK; |
|
1261 | spw_ioctl_send_SWF.dlen = BLK_NR_224 * NB_BYTES_SWF_BLK; | |
1262 | header->packetLength[0] = (unsigned char) (TM_LEN_SCI_SWF_224 >> SHIFT_1_BYTE); |
|
1262 | header->packetLength[0] = (unsigned char) (TM_LEN_SCI_SWF_224 >> SHIFT_1_BYTE); | |
1263 | header->packetLength[1] = (unsigned char) (TM_LEN_SCI_SWF_224 ); |
|
1263 | header->packetLength[1] = (unsigned char) (TM_LEN_SCI_SWF_224 ); | |
1264 | header->blkNr[0] = (unsigned char) (BLK_NR_224 >> SHIFT_1_BYTE); |
|
1264 | header->blkNr[0] = (unsigned char) (BLK_NR_224 >> SHIFT_1_BYTE); | |
1265 | header->blkNr[1] = (unsigned char) (BLK_NR_224 ); |
|
1265 | header->blkNr[1] = (unsigned char) (BLK_NR_224 ); | |
1266 | } |
|
1266 | } | |
1267 | else |
|
1267 | else | |
1268 | { |
|
1268 | { | |
1269 | spw_ioctl_send_SWF.dlen = BLK_NR_304 * NB_BYTES_SWF_BLK; |
|
1269 | spw_ioctl_send_SWF.dlen = BLK_NR_304 * NB_BYTES_SWF_BLK; | |
1270 | header->packetLength[0] = (unsigned char) (TM_LEN_SCI_SWF_304 >> SHIFT_1_BYTE); |
|
1270 | header->packetLength[0] = (unsigned char) (TM_LEN_SCI_SWF_304 >> SHIFT_1_BYTE); | |
1271 | header->packetLength[1] = (unsigned char) (TM_LEN_SCI_SWF_304 ); |
|
1271 | header->packetLength[1] = (unsigned char) (TM_LEN_SCI_SWF_304 ); | |
1272 | header->blkNr[0] = (unsigned char) (BLK_NR_304 >> SHIFT_1_BYTE); |
|
1272 | header->blkNr[0] = (unsigned char) (BLK_NR_304 >> SHIFT_1_BYTE); | |
1273 | header->blkNr[1] = (unsigned char) (BLK_NR_304 ); |
|
1273 | header->blkNr[1] = (unsigned char) (BLK_NR_304 ); | |
1274 | } |
|
1274 | } | |
1275 |
|
1275 | |||
1276 | // SET PACKET TIME |
|
1276 | // SET PACKET TIME | |
1277 | compute_acquisition_time( coarseTime, fineTime, sid, i, header->acquisitionTime ); |
|
1277 | compute_acquisition_time( coarseTime, fineTime, sid, i, header->acquisitionTime ); | |
1278 | // |
|
1278 | // | |
1279 | header->time[BYTE_0] = header->acquisitionTime[BYTE_0]; |
|
1279 | header->time[BYTE_0] = header->acquisitionTime[BYTE_0]; | |
1280 | header->time[BYTE_1] = header->acquisitionTime[BYTE_1]; |
|
1280 | header->time[BYTE_1] = header->acquisitionTime[BYTE_1]; | |
1281 | header->time[BYTE_2] = header->acquisitionTime[BYTE_2]; |
|
1281 | header->time[BYTE_2] = header->acquisitionTime[BYTE_2]; | |
1282 | header->time[BYTE_3] = header->acquisitionTime[BYTE_3]; |
|
1282 | header->time[BYTE_3] = header->acquisitionTime[BYTE_3]; | |
1283 | header->time[BYTE_4] = header->acquisitionTime[BYTE_4]; |
|
1283 | header->time[BYTE_4] = header->acquisitionTime[BYTE_4]; | |
1284 | header->time[BYTE_5] = header->acquisitionTime[BYTE_5]; |
|
1284 | header->time[BYTE_5] = header->acquisitionTime[BYTE_5]; | |
1285 |
|
1285 | |||
1286 | // SET SID |
|
1286 | // SET SID | |
1287 | header->sid = sid; |
|
1287 | header->sid = sid; | |
1288 |
|
1288 | |||
1289 | // SET PKTNR |
|
1289 | // SET PKTNR | |
1290 | header->pktNr = i+1; // PKT_NR |
|
1290 | header->pktNr = i+1; // PKT_NR | |
1291 |
|
1291 | |||
1292 | // SEND PACKET |
|
1292 | // SEND PACKET | |
1293 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_SEND, &spw_ioctl_send_SWF ); |
|
1293 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_SEND, &spw_ioctl_send_SWF ); | |
1294 | if (status != RTEMS_SUCCESSFUL) { |
|
1294 | if (status != RTEMS_SUCCESSFUL) { | |
1295 | ret = LFR_DEFAULT; |
|
1295 | ret = LFR_DEFAULT; | |
1296 | } |
|
1296 | } | |
1297 | } |
|
1297 | } | |
1298 |
|
1298 | |||
1299 | return ret; |
|
1299 | return ret; | |
1300 | } |
|
1300 | } | |
1301 |
|
1301 | |||
1302 | int spw_send_waveform_CWF3_light( ring_node *ring_node_to_send, |
|
1302 | int spw_send_waveform_CWF3_light( ring_node *ring_node_to_send, | |
1303 | Header_TM_LFR_SCIENCE_CWF_t *header ) |
|
1303 | Header_TM_LFR_SCIENCE_CWF_t *header ) | |
1304 | { |
|
1304 | { | |
1305 | /** This function sends CWF_F3 CCSDS packets without the b1, b2 and b3 data. |
|
1305 | /** This function sends CWF_F3 CCSDS packets without the b1, b2 and b3 data. | |
1306 | * |
|
1306 | * | |
1307 | * @param waveform points to the buffer containing the data that will be send. |
|
1307 | * @param waveform points to the buffer containing the data that will be send. | |
1308 | * @param headerCWF points to a table of headers that have been prepared for the data transmission. |
|
1308 | * @param headerCWF points to a table of headers that have been prepared for the data transmission. | |
1309 | * @param queue_id is the id of the rtems queue to which spw_ioctl_pkt_send structures will be send. The structures |
|
1309 | * @param queue_id is the id of the rtems queue to which spw_ioctl_pkt_send structures will be send. The structures | |
1310 | * contain information to setup the transmission of the data packets. |
|
1310 | * contain information to setup the transmission of the data packets. | |
1311 | * |
|
1311 | * | |
1312 | * By default, CWF_F3 packet are send without the b1, b2 and b3 data. This function rebuilds a data buffer |
|
1312 | * By default, CWF_F3 packet are send without the b1, b2 and b3 data. This function rebuilds a data buffer | |
1313 | * from the incoming data and sends it in 7 packets, 6 containing 340 blocks and 1 one containing 8 blocks. |
|
1313 | * from the incoming data and sends it in 7 packets, 6 containing 340 blocks and 1 one containing 8 blocks. | |
1314 | * |
|
1314 | * | |
1315 | */ |
|
1315 | */ | |
1316 |
|
1316 | |||
1317 | unsigned int i; |
|
1317 | unsigned int i; | |
1318 | int ret; |
|
1318 | int ret; | |
1319 | unsigned int coarseTime; |
|
1319 | unsigned int coarseTime; | |
1320 | unsigned int fineTime; |
|
1320 | unsigned int fineTime; | |
1321 | rtems_status_code status; |
|
1321 | rtems_status_code status; | |
1322 | spw_ioctl_pkt_send spw_ioctl_send_CWF; |
|
1322 | spw_ioctl_pkt_send spw_ioctl_send_CWF; | |
1323 | char *dataPtr; |
|
1323 | char *dataPtr; | |
1324 | unsigned char sid; |
|
1324 | unsigned char sid; | |
1325 |
|
1325 | |||
1326 | spw_ioctl_send_CWF.hlen = HEADER_LENGTH_TM_LFR_SCIENCE_CWF; |
|
1326 | spw_ioctl_send_CWF.hlen = HEADER_LENGTH_TM_LFR_SCIENCE_CWF; | |
1327 | spw_ioctl_send_CWF.options = 0; |
|
1327 | spw_ioctl_send_CWF.options = 0; | |
1328 |
|
1328 | |||
1329 | ret = LFR_DEFAULT; |
|
1329 | ret = LFR_DEFAULT; | |
1330 | sid = ring_node_to_send->sid; |
|
1330 | sid = ring_node_to_send->sid; | |
1331 |
|
1331 | |||
1332 | coarseTime = ring_node_to_send->coarseTime; |
|
1332 | coarseTime = ring_node_to_send->coarseTime; | |
1333 | fineTime = ring_node_to_send->fineTime; |
|
1333 | fineTime = ring_node_to_send->fineTime; | |
1334 | dataPtr = (char*) ring_node_to_send->buffer_address; |
|
1334 | dataPtr = (char*) ring_node_to_send->buffer_address; | |
1335 |
|
1335 | |||
1336 | header->packetLength[0] = (unsigned char) (TM_LEN_SCI_CWF_672 >> SHIFT_1_BYTE); |
|
1336 | header->packetLength[0] = (unsigned char) (TM_LEN_SCI_CWF_672 >> SHIFT_1_BYTE); | |
1337 | header->packetLength[1] = (unsigned char) (TM_LEN_SCI_CWF_672 ); |
|
1337 | header->packetLength[1] = (unsigned char) (TM_LEN_SCI_CWF_672 ); | |
1338 | header->pa_bia_status_info = pa_bia_status_info; |
|
1338 | header->pa_bia_status_info = pa_bia_status_info; | |
1339 | header->sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
1339 | header->sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
1340 | header->blkNr[0] = (unsigned char) (BLK_NR_CWF_SHORT_F3 >> SHIFT_1_BYTE); |
|
1340 | header->blkNr[0] = (unsigned char) (BLK_NR_CWF_SHORT_F3 >> SHIFT_1_BYTE); | |
1341 | header->blkNr[1] = (unsigned char) (BLK_NR_CWF_SHORT_F3 ); |
|
1341 | header->blkNr[1] = (unsigned char) (BLK_NR_CWF_SHORT_F3 ); | |
1342 |
|
1342 | |||
1343 | //********************* |
|
1343 | //********************* | |
1344 | // SEND CWF3_light DATA |
|
1344 | // SEND CWF3_light DATA | |
1345 | for (i=0; i<NB_PACKETS_PER_GROUP_OF_CWF_LIGHT; i++) // send waveform |
|
1345 | for (i=0; i<NB_PACKETS_PER_GROUP_OF_CWF_LIGHT; i++) // send waveform | |
1346 | { |
|
1346 | { | |
1347 | spw_ioctl_send_CWF.data = (char*) &dataPtr[ (i * BLK_NR_CWF_SHORT_F3 * NB_BYTES_CWF3_LIGHT_BLK) ]; |
|
1347 | spw_ioctl_send_CWF.data = (char*) &dataPtr[ (i * BLK_NR_CWF_SHORT_F3 * NB_BYTES_CWF3_LIGHT_BLK) ]; | |
1348 | spw_ioctl_send_CWF.hdr = (char*) header; |
|
1348 | spw_ioctl_send_CWF.hdr = (char*) header; | |
1349 | // BUILD THE DATA |
|
1349 | // BUILD THE DATA | |
1350 | spw_ioctl_send_CWF.dlen = BLK_NR_CWF_SHORT_F3 * NB_BYTES_CWF3_LIGHT_BLK; |
|
1350 | spw_ioctl_send_CWF.dlen = BLK_NR_CWF_SHORT_F3 * NB_BYTES_CWF3_LIGHT_BLK; | |
1351 |
|
1351 | |||
1352 | // SET PACKET SEQUENCE COUNTER |
|
1352 | // SET PACKET SEQUENCE COUNTER | |
1353 | increment_seq_counter_source_id( header->packetSequenceControl, sid ); |
|
1353 | increment_seq_counter_source_id( header->packetSequenceControl, sid ); | |
1354 |
|
1354 | |||
1355 | // SET SID |
|
1355 | // SET SID | |
1356 | header->sid = sid; |
|
1356 | header->sid = sid; | |
1357 |
|
1357 | |||
1358 | // SET PACKET TIME |
|
1358 | // SET PACKET TIME | |
1359 | compute_acquisition_time( coarseTime, fineTime, SID_NORM_CWF_F3, i, header->acquisitionTime ); |
|
1359 | compute_acquisition_time( coarseTime, fineTime, SID_NORM_CWF_F3, i, header->acquisitionTime ); | |
1360 | // |
|
1360 | // | |
1361 | header->time[BYTE_0] = header->acquisitionTime[BYTE_0]; |
|
1361 | header->time[BYTE_0] = header->acquisitionTime[BYTE_0]; | |
1362 | header->time[BYTE_1] = header->acquisitionTime[BYTE_1]; |
|
1362 | header->time[BYTE_1] = header->acquisitionTime[BYTE_1]; | |
1363 | header->time[BYTE_2] = header->acquisitionTime[BYTE_2]; |
|
1363 | header->time[BYTE_2] = header->acquisitionTime[BYTE_2]; | |
1364 | header->time[BYTE_3] = header->acquisitionTime[BYTE_3]; |
|
1364 | header->time[BYTE_3] = header->acquisitionTime[BYTE_3]; | |
1365 | header->time[BYTE_4] = header->acquisitionTime[BYTE_4]; |
|
1365 | header->time[BYTE_4] = header->acquisitionTime[BYTE_4]; | |
1366 | header->time[BYTE_5] = header->acquisitionTime[BYTE_5]; |
|
1366 | header->time[BYTE_5] = header->acquisitionTime[BYTE_5]; | |
1367 |
|
1367 | |||
1368 | // SET PACKET ID |
|
1368 | // SET PACKET ID | |
1369 | header->packetID[0] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST >> SHIFT_1_BYTE); |
|
1369 | header->packetID[0] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST >> SHIFT_1_BYTE); | |
1370 | header->packetID[1] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST); |
|
1370 | header->packetID[1] = (unsigned char) (APID_TM_SCIENCE_NORMAL_BURST); | |
1371 |
|
1371 | |||
1372 | // SEND PACKET |
|
1372 | // SEND PACKET | |
1373 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_SEND, &spw_ioctl_send_CWF ); |
|
1373 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_SEND, &spw_ioctl_send_CWF ); | |
1374 | if (status != RTEMS_SUCCESSFUL) { |
|
1374 | if (status != RTEMS_SUCCESSFUL) { | |
1375 | ret = LFR_DEFAULT; |
|
1375 | ret = LFR_DEFAULT; | |
1376 | } |
|
1376 | } | |
1377 | } |
|
1377 | } | |
1378 |
|
1378 | |||
1379 | return ret; |
|
1379 | return ret; | |
1380 | } |
|
1380 | } | |
1381 |
|
1381 | |||
1382 | void spw_send_asm_f0( ring_node *ring_node_to_send, |
|
1382 | void spw_send_asm_f0( ring_node *ring_node_to_send, | |
1383 | Header_TM_LFR_SCIENCE_ASM_t *header ) |
|
1383 | Header_TM_LFR_SCIENCE_ASM_t *header ) | |
1384 | { |
|
1384 | { | |
1385 | unsigned int i; |
|
1385 | unsigned int i; | |
1386 | unsigned int length = 0; |
|
1386 | unsigned int length = 0; | |
1387 | rtems_status_code status; |
|
1387 | rtems_status_code status; | |
1388 | unsigned int sid; |
|
1388 | unsigned int sid; | |
1389 | float *spectral_matrix; |
|
1389 | float *spectral_matrix; | |
1390 | int coarseTime; |
|
1390 | int coarseTime; | |
1391 | int fineTime; |
|
1391 | int fineTime; | |
1392 | spw_ioctl_pkt_send spw_ioctl_send_ASM; |
|
1392 | spw_ioctl_pkt_send spw_ioctl_send_ASM; | |
1393 |
|
1393 | |||
1394 | sid = ring_node_to_send->sid; |
|
1394 | sid = ring_node_to_send->sid; | |
1395 | spectral_matrix = (float*) ring_node_to_send->buffer_address; |
|
1395 | spectral_matrix = (float*) ring_node_to_send->buffer_address; | |
1396 | coarseTime = ring_node_to_send->coarseTime; |
|
1396 | coarseTime = ring_node_to_send->coarseTime; | |
1397 | fineTime = ring_node_to_send->fineTime; |
|
1397 | fineTime = ring_node_to_send->fineTime; | |
1398 |
|
1398 | |||
1399 | header->pa_bia_status_info = pa_bia_status_info; |
|
1399 | header->pa_bia_status_info = pa_bia_status_info; | |
1400 | header->sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
1400 | header->sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
1401 |
|
1401 | |||
1402 | for (i=0; i<PKTCNT_ASM; i++) |
|
1402 | for (i=0; i<PKTCNT_ASM; i++) | |
1403 | { |
|
1403 | { | |
1404 | if ((i==0) || (i==1)) |
|
1404 | if ((i==0) || (i==1)) | |
1405 | { |
|
1405 | { | |
1406 | spw_ioctl_send_ASM.dlen = DLEN_ASM_F0_PKT_1; |
|
1406 | spw_ioctl_send_ASM.dlen = DLEN_ASM_F0_PKT_1; | |
1407 | spw_ioctl_send_ASM.data = (char *) &spectral_matrix[ |
|
1407 | spw_ioctl_send_ASM.data = (char *) &spectral_matrix[ | |
1408 | ( (ASM_F0_INDICE_START + (i*NB_BINS_PER_PKT_ASM_F0_1) ) * NB_VALUES_PER_SM ) |
|
1408 | ( (ASM_F0_INDICE_START + (i*NB_BINS_PER_PKT_ASM_F0_1) ) * NB_VALUES_PER_SM ) | |
1409 | ]; |
|
1409 | ]; | |
1410 | length = PACKET_LENGTH_TM_LFR_SCIENCE_ASM_F0_1; |
|
1410 | length = PACKET_LENGTH_TM_LFR_SCIENCE_ASM_F0_1; | |
1411 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_6; |
|
1411 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_6; | |
1412 | header->pa_lfr_asm_blk_nr[0] = (unsigned char) ( (NB_BINS_PER_PKT_ASM_F0_1) >> SHIFT_1_BYTE ); // BLK_NR MSB |
|
1412 | header->pa_lfr_asm_blk_nr[0] = (unsigned char) ( (NB_BINS_PER_PKT_ASM_F0_1) >> SHIFT_1_BYTE ); // BLK_NR MSB | |
1413 | header->pa_lfr_asm_blk_nr[1] = (unsigned char) (NB_BINS_PER_PKT_ASM_F0_1); // BLK_NR LSB |
|
1413 | header->pa_lfr_asm_blk_nr[1] = (unsigned char) (NB_BINS_PER_PKT_ASM_F0_1); // BLK_NR LSB | |
1414 | } |
|
1414 | } | |
1415 | else |
|
1415 | else | |
1416 | { |
|
1416 | { | |
1417 | spw_ioctl_send_ASM.dlen = DLEN_ASM_F0_PKT_2; |
|
1417 | spw_ioctl_send_ASM.dlen = DLEN_ASM_F0_PKT_2; | |
1418 | spw_ioctl_send_ASM.data = (char*) &spectral_matrix[ |
|
1418 | spw_ioctl_send_ASM.data = (char*) &spectral_matrix[ | |
1419 | ( (ASM_F0_INDICE_START + (i*NB_BINS_PER_PKT_ASM_F0_1) ) * NB_VALUES_PER_SM ) |
|
1419 | ( (ASM_F0_INDICE_START + (i*NB_BINS_PER_PKT_ASM_F0_1) ) * NB_VALUES_PER_SM ) | |
1420 | ]; |
|
1420 | ]; | |
1421 | length = PACKET_LENGTH_TM_LFR_SCIENCE_ASM_F0_2; |
|
1421 | length = PACKET_LENGTH_TM_LFR_SCIENCE_ASM_F0_2; | |
1422 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_6; |
|
1422 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_6; | |
1423 | header->pa_lfr_asm_blk_nr[0] = (unsigned char) ( (NB_BINS_PER_PKT_ASM_F0_2) >> SHIFT_1_BYTE ); // BLK_NR MSB |
|
1423 | header->pa_lfr_asm_blk_nr[0] = (unsigned char) ( (NB_BINS_PER_PKT_ASM_F0_2) >> SHIFT_1_BYTE ); // BLK_NR MSB | |
1424 | header->pa_lfr_asm_blk_nr[1] = (unsigned char) (NB_BINS_PER_PKT_ASM_F0_2); // BLK_NR LSB |
|
1424 | header->pa_lfr_asm_blk_nr[1] = (unsigned char) (NB_BINS_PER_PKT_ASM_F0_2); // BLK_NR LSB | |
1425 | } |
|
1425 | } | |
1426 |
|
1426 | |||
1427 | spw_ioctl_send_ASM.hlen = HEADER_LENGTH_TM_LFR_SCIENCE_ASM; |
|
1427 | spw_ioctl_send_ASM.hlen = HEADER_LENGTH_TM_LFR_SCIENCE_ASM; | |
1428 | spw_ioctl_send_ASM.hdr = (char *) header; |
|
1428 | spw_ioctl_send_ASM.hdr = (char *) header; | |
1429 | spw_ioctl_send_ASM.options = 0; |
|
1429 | spw_ioctl_send_ASM.options = 0; | |
1430 |
|
1430 | |||
1431 | // (2) BUILD THE HEADER |
|
1431 | // (2) BUILD THE HEADER | |
1432 | increment_seq_counter_source_id( header->packetSequenceControl, sid ); |
|
1432 | increment_seq_counter_source_id( header->packetSequenceControl, sid ); | |
1433 | header->packetLength[0] = (unsigned char) (length >> SHIFT_1_BYTE); |
|
1433 | header->packetLength[0] = (unsigned char) (length >> SHIFT_1_BYTE); | |
1434 | header->packetLength[1] = (unsigned char) (length); |
|
1434 | header->packetLength[1] = (unsigned char) (length); | |
1435 | header->sid = (unsigned char) sid; // SID |
|
1435 | header->sid = (unsigned char) sid; // SID | |
1436 | header->pa_lfr_pkt_cnt_asm = PKTCNT_ASM; |
|
1436 | header->pa_lfr_pkt_cnt_asm = PKTCNT_ASM; | |
1437 | header->pa_lfr_pkt_nr_asm = (unsigned char) (i+1); |
|
1437 | header->pa_lfr_pkt_nr_asm = (unsigned char) (i+1); | |
1438 |
|
1438 | |||
1439 | // (3) SET PACKET TIME |
|
1439 | // (3) SET PACKET TIME | |
1440 | header->time[BYTE_0] = (unsigned char) (coarseTime >> SHIFT_3_BYTES); |
|
1440 | header->time[BYTE_0] = (unsigned char) (coarseTime >> SHIFT_3_BYTES); | |
1441 | header->time[BYTE_1] = (unsigned char) (coarseTime >> SHIFT_2_BYTES); |
|
1441 | header->time[BYTE_1] = (unsigned char) (coarseTime >> SHIFT_2_BYTES); | |
1442 | header->time[BYTE_2] = (unsigned char) (coarseTime >> SHIFT_1_BYTE); |
|
1442 | header->time[BYTE_2] = (unsigned char) (coarseTime >> SHIFT_1_BYTE); | |
1443 | header->time[BYTE_3] = (unsigned char) (coarseTime); |
|
1443 | header->time[BYTE_3] = (unsigned char) (coarseTime); | |
1444 | header->time[BYTE_4] = (unsigned char) (fineTime >> SHIFT_1_BYTE); |
|
1444 | header->time[BYTE_4] = (unsigned char) (fineTime >> SHIFT_1_BYTE); | |
1445 | header->time[BYTE_5] = (unsigned char) (fineTime); |
|
1445 | header->time[BYTE_5] = (unsigned char) (fineTime); | |
1446 | // |
|
1446 | // | |
1447 | header->acquisitionTime[BYTE_0] = header->time[BYTE_0]; |
|
1447 | header->acquisitionTime[BYTE_0] = header->time[BYTE_0]; | |
1448 | header->acquisitionTime[BYTE_1] = header->time[BYTE_1]; |
|
1448 | header->acquisitionTime[BYTE_1] = header->time[BYTE_1]; | |
1449 | header->acquisitionTime[BYTE_2] = header->time[BYTE_2]; |
|
1449 | header->acquisitionTime[BYTE_2] = header->time[BYTE_2]; | |
1450 | header->acquisitionTime[BYTE_3] = header->time[BYTE_3]; |
|
1450 | header->acquisitionTime[BYTE_3] = header->time[BYTE_3]; | |
1451 | header->acquisitionTime[BYTE_4] = header->time[BYTE_4]; |
|
1451 | header->acquisitionTime[BYTE_4] = header->time[BYTE_4]; | |
1452 | header->acquisitionTime[BYTE_5] = header->time[BYTE_5]; |
|
1452 | header->acquisitionTime[BYTE_5] = header->time[BYTE_5]; | |
1453 |
|
1453 | |||
1454 | // (4) SEND PACKET |
|
1454 | // (4) SEND PACKET | |
1455 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_SEND, &spw_ioctl_send_ASM ); |
|
1455 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_SEND, &spw_ioctl_send_ASM ); | |
1456 | if (status != RTEMS_SUCCESSFUL) { |
|
1456 | if (status != RTEMS_SUCCESSFUL) { | |
1457 | PRINTF1("in ASM_send *** ERR %d\n", (int) status) |
|
1457 | PRINTF1("in ASM_send *** ERR %d\n", (int) status) | |
1458 | } |
|
1458 | } | |
1459 | } |
|
1459 | } | |
1460 | } |
|
1460 | } | |
1461 |
|
1461 | |||
1462 | void spw_send_asm_f1( ring_node *ring_node_to_send, |
|
1462 | void spw_send_asm_f1( ring_node *ring_node_to_send, | |
1463 | Header_TM_LFR_SCIENCE_ASM_t *header ) |
|
1463 | Header_TM_LFR_SCIENCE_ASM_t *header ) | |
1464 | { |
|
1464 | { | |
1465 | unsigned int i; |
|
1465 | unsigned int i; | |
1466 | unsigned int length = 0; |
|
1466 | unsigned int length = 0; | |
1467 | rtems_status_code status; |
|
1467 | rtems_status_code status; | |
1468 | unsigned int sid; |
|
1468 | unsigned int sid; | |
1469 | float *spectral_matrix; |
|
1469 | float *spectral_matrix; | |
1470 | int coarseTime; |
|
1470 | int coarseTime; | |
1471 | int fineTime; |
|
1471 | int fineTime; | |
1472 | spw_ioctl_pkt_send spw_ioctl_send_ASM; |
|
1472 | spw_ioctl_pkt_send spw_ioctl_send_ASM; | |
1473 |
|
1473 | |||
1474 | sid = ring_node_to_send->sid; |
|
1474 | sid = ring_node_to_send->sid; | |
1475 | spectral_matrix = (float*) ring_node_to_send->buffer_address; |
|
1475 | spectral_matrix = (float*) ring_node_to_send->buffer_address; | |
1476 | coarseTime = ring_node_to_send->coarseTime; |
|
1476 | coarseTime = ring_node_to_send->coarseTime; | |
1477 | fineTime = ring_node_to_send->fineTime; |
|
1477 | fineTime = ring_node_to_send->fineTime; | |
1478 |
|
1478 | |||
1479 | header->pa_bia_status_info = pa_bia_status_info; |
|
1479 | header->pa_bia_status_info = pa_bia_status_info; | |
1480 | header->sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
1480 | header->sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
1481 |
|
1481 | |||
1482 | for (i=0; i<PKTCNT_ASM; i++) |
|
1482 | for (i=0; i<PKTCNT_ASM; i++) | |
1483 | { |
|
1483 | { | |
1484 | if ((i==0) || (i==1)) |
|
1484 | if ((i==0) || (i==1)) | |
1485 | { |
|
1485 | { | |
1486 | spw_ioctl_send_ASM.dlen = DLEN_ASM_F1_PKT_1; |
|
1486 | spw_ioctl_send_ASM.dlen = DLEN_ASM_F1_PKT_1; | |
1487 | spw_ioctl_send_ASM.data = (char *) &spectral_matrix[ |
|
1487 | spw_ioctl_send_ASM.data = (char *) &spectral_matrix[ | |
1488 | ( (ASM_F1_INDICE_START + (i*NB_BINS_PER_PKT_ASM_F1_1) ) * NB_VALUES_PER_SM ) |
|
1488 | ( (ASM_F1_INDICE_START + (i*NB_BINS_PER_PKT_ASM_F1_1) ) * NB_VALUES_PER_SM ) | |
1489 | ]; |
|
1489 | ]; | |
1490 | length = PACKET_LENGTH_TM_LFR_SCIENCE_ASM_F1_1; |
|
1490 | length = PACKET_LENGTH_TM_LFR_SCIENCE_ASM_F1_1; | |
1491 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_6; |
|
1491 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_6; | |
1492 | header->pa_lfr_asm_blk_nr[0] = (unsigned char) ( (NB_BINS_PER_PKT_ASM_F1_1) >> SHIFT_1_BYTE ); // BLK_NR MSB |
|
1492 | header->pa_lfr_asm_blk_nr[0] = (unsigned char) ( (NB_BINS_PER_PKT_ASM_F1_1) >> SHIFT_1_BYTE ); // BLK_NR MSB | |
1493 | header->pa_lfr_asm_blk_nr[1] = (unsigned char) (NB_BINS_PER_PKT_ASM_F1_1); // BLK_NR LSB |
|
1493 | header->pa_lfr_asm_blk_nr[1] = (unsigned char) (NB_BINS_PER_PKT_ASM_F1_1); // BLK_NR LSB | |
1494 | } |
|
1494 | } | |
1495 | else |
|
1495 | else | |
1496 | { |
|
1496 | { | |
1497 | spw_ioctl_send_ASM.dlen = DLEN_ASM_F1_PKT_2; |
|
1497 | spw_ioctl_send_ASM.dlen = DLEN_ASM_F1_PKT_2; | |
1498 | spw_ioctl_send_ASM.data = (char*) &spectral_matrix[ |
|
1498 | spw_ioctl_send_ASM.data = (char*) &spectral_matrix[ | |
1499 | ( (ASM_F1_INDICE_START + (i*NB_BINS_PER_PKT_ASM_F1_1) ) * NB_VALUES_PER_SM ) |
|
1499 | ( (ASM_F1_INDICE_START + (i*NB_BINS_PER_PKT_ASM_F1_1) ) * NB_VALUES_PER_SM ) | |
1500 | ]; |
|
1500 | ]; | |
1501 | length = PACKET_LENGTH_TM_LFR_SCIENCE_ASM_F1_2; |
|
1501 | length = PACKET_LENGTH_TM_LFR_SCIENCE_ASM_F1_2; | |
1502 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_6; |
|
1502 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_6; | |
1503 | header->pa_lfr_asm_blk_nr[0] = (unsigned char) ( (NB_BINS_PER_PKT_ASM_F1_2) >> SHIFT_1_BYTE ); // BLK_NR MSB |
|
1503 | header->pa_lfr_asm_blk_nr[0] = (unsigned char) ( (NB_BINS_PER_PKT_ASM_F1_2) >> SHIFT_1_BYTE ); // BLK_NR MSB | |
1504 | header->pa_lfr_asm_blk_nr[1] = (unsigned char) (NB_BINS_PER_PKT_ASM_F1_2); // BLK_NR LSB |
|
1504 | header->pa_lfr_asm_blk_nr[1] = (unsigned char) (NB_BINS_PER_PKT_ASM_F1_2); // BLK_NR LSB | |
1505 | } |
|
1505 | } | |
1506 |
|
1506 | |||
1507 | spw_ioctl_send_ASM.hlen = HEADER_LENGTH_TM_LFR_SCIENCE_ASM; |
|
1507 | spw_ioctl_send_ASM.hlen = HEADER_LENGTH_TM_LFR_SCIENCE_ASM; | |
1508 | spw_ioctl_send_ASM.hdr = (char *) header; |
|
1508 | spw_ioctl_send_ASM.hdr = (char *) header; | |
1509 | spw_ioctl_send_ASM.options = 0; |
|
1509 | spw_ioctl_send_ASM.options = 0; | |
1510 |
|
1510 | |||
1511 | // (2) BUILD THE HEADER |
|
1511 | // (2) BUILD THE HEADER | |
1512 | increment_seq_counter_source_id( header->packetSequenceControl, sid ); |
|
1512 | increment_seq_counter_source_id( header->packetSequenceControl, sid ); | |
1513 | header->packetLength[0] = (unsigned char) (length >> SHIFT_1_BYTE); |
|
1513 | header->packetLength[0] = (unsigned char) (length >> SHIFT_1_BYTE); | |
1514 | header->packetLength[1] = (unsigned char) (length); |
|
1514 | header->packetLength[1] = (unsigned char) (length); | |
1515 | header->sid = (unsigned char) sid; // SID |
|
1515 | header->sid = (unsigned char) sid; // SID | |
1516 | header->pa_lfr_pkt_cnt_asm = PKTCNT_ASM; |
|
1516 | header->pa_lfr_pkt_cnt_asm = PKTCNT_ASM; | |
1517 | header->pa_lfr_pkt_nr_asm = (unsigned char) (i+1); |
|
1517 | header->pa_lfr_pkt_nr_asm = (unsigned char) (i+1); | |
1518 |
|
1518 | |||
1519 | // (3) SET PACKET TIME |
|
1519 | // (3) SET PACKET TIME | |
1520 | header->time[BYTE_0] = (unsigned char) (coarseTime >> SHIFT_3_BYTES); |
|
1520 | header->time[BYTE_0] = (unsigned char) (coarseTime >> SHIFT_3_BYTES); | |
1521 | header->time[BYTE_1] = (unsigned char) (coarseTime >> SHIFT_2_BYTES); |
|
1521 | header->time[BYTE_1] = (unsigned char) (coarseTime >> SHIFT_2_BYTES); | |
1522 | header->time[BYTE_2] = (unsigned char) (coarseTime >> SHIFT_1_BYTE); |
|
1522 | header->time[BYTE_2] = (unsigned char) (coarseTime >> SHIFT_1_BYTE); | |
1523 | header->time[BYTE_3] = (unsigned char) (coarseTime); |
|
1523 | header->time[BYTE_3] = (unsigned char) (coarseTime); | |
1524 | header->time[BYTE_4] = (unsigned char) (fineTime >> SHIFT_1_BYTE); |
|
1524 | header->time[BYTE_4] = (unsigned char) (fineTime >> SHIFT_1_BYTE); | |
1525 | header->time[BYTE_5] = (unsigned char) (fineTime); |
|
1525 | header->time[BYTE_5] = (unsigned char) (fineTime); | |
1526 | // |
|
1526 | // | |
1527 | header->acquisitionTime[BYTE_0] = header->time[BYTE_0]; |
|
1527 | header->acquisitionTime[BYTE_0] = header->time[BYTE_0]; | |
1528 | header->acquisitionTime[BYTE_1] = header->time[BYTE_1]; |
|
1528 | header->acquisitionTime[BYTE_1] = header->time[BYTE_1]; | |
1529 | header->acquisitionTime[BYTE_2] = header->time[BYTE_2]; |
|
1529 | header->acquisitionTime[BYTE_2] = header->time[BYTE_2]; | |
1530 | header->acquisitionTime[BYTE_3] = header->time[BYTE_3]; |
|
1530 | header->acquisitionTime[BYTE_3] = header->time[BYTE_3]; | |
1531 | header->acquisitionTime[BYTE_4] = header->time[BYTE_4]; |
|
1531 | header->acquisitionTime[BYTE_4] = header->time[BYTE_4]; | |
1532 | header->acquisitionTime[BYTE_5] = header->time[BYTE_5]; |
|
1532 | header->acquisitionTime[BYTE_5] = header->time[BYTE_5]; | |
1533 |
|
1533 | |||
1534 | // (4) SEND PACKET |
|
1534 | // (4) SEND PACKET | |
1535 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_SEND, &spw_ioctl_send_ASM ); |
|
1535 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_SEND, &spw_ioctl_send_ASM ); | |
1536 | if (status != RTEMS_SUCCESSFUL) { |
|
1536 | if (status != RTEMS_SUCCESSFUL) { | |
1537 | PRINTF1("in ASM_send *** ERR %d\n", (int) status) |
|
1537 | PRINTF1("in ASM_send *** ERR %d\n", (int) status) | |
1538 | } |
|
1538 | } | |
1539 | } |
|
1539 | } | |
1540 | } |
|
1540 | } | |
1541 |
|
1541 | |||
1542 | void spw_send_asm_f2( ring_node *ring_node_to_send, |
|
1542 | void spw_send_asm_f2( ring_node *ring_node_to_send, | |
1543 | Header_TM_LFR_SCIENCE_ASM_t *header ) |
|
1543 | Header_TM_LFR_SCIENCE_ASM_t *header ) | |
1544 | { |
|
1544 | { | |
1545 | unsigned int i; |
|
1545 | unsigned int i; | |
1546 | unsigned int length = 0; |
|
1546 | unsigned int length = 0; | |
1547 | rtems_status_code status; |
|
1547 | rtems_status_code status; | |
1548 | unsigned int sid; |
|
1548 | unsigned int sid; | |
1549 | float *spectral_matrix; |
|
1549 | float *spectral_matrix; | |
1550 | int coarseTime; |
|
1550 | int coarseTime; | |
1551 | int fineTime; |
|
1551 | int fineTime; | |
1552 | spw_ioctl_pkt_send spw_ioctl_send_ASM; |
|
1552 | spw_ioctl_pkt_send spw_ioctl_send_ASM; | |
1553 |
|
1553 | |||
1554 | sid = ring_node_to_send->sid; |
|
1554 | sid = ring_node_to_send->sid; | |
1555 | spectral_matrix = (float*) ring_node_to_send->buffer_address; |
|
1555 | spectral_matrix = (float*) ring_node_to_send->buffer_address; | |
1556 | coarseTime = ring_node_to_send->coarseTime; |
|
1556 | coarseTime = ring_node_to_send->coarseTime; | |
1557 | fineTime = ring_node_to_send->fineTime; |
|
1557 | fineTime = ring_node_to_send->fineTime; | |
1558 |
|
1558 | |||
1559 | header->pa_bia_status_info = pa_bia_status_info; |
|
1559 | header->pa_bia_status_info = pa_bia_status_info; | |
1560 | header->sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
1560 | header->sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
1561 |
|
1561 | |||
1562 | for (i=0; i<PKTCNT_ASM; i++) |
|
1562 | for (i=0; i<PKTCNT_ASM; i++) | |
1563 | { |
|
1563 | { | |
1564 |
|
1564 | |||
1565 | spw_ioctl_send_ASM.dlen = DLEN_ASM_F2_PKT; |
|
1565 | spw_ioctl_send_ASM.dlen = DLEN_ASM_F2_PKT; | |
1566 | spw_ioctl_send_ASM.data = (char *) &spectral_matrix[ |
|
1566 | spw_ioctl_send_ASM.data = (char *) &spectral_matrix[ | |
1567 | ( (ASM_F2_INDICE_START + (i*NB_BINS_PER_PKT_ASM_F2) ) * NB_VALUES_PER_SM ) |
|
1567 | ( (ASM_F2_INDICE_START + (i*NB_BINS_PER_PKT_ASM_F2) ) * NB_VALUES_PER_SM ) | |
1568 | ]; |
|
1568 | ]; | |
1569 | length = PACKET_LENGTH_TM_LFR_SCIENCE_ASM_F2; |
|
1569 | length = PACKET_LENGTH_TM_LFR_SCIENCE_ASM_F2; | |
1570 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_3; |
|
1570 | header->serviceSubType = TM_SUBTYPE_LFR_SCIENCE_3; | |
1571 | header->pa_lfr_asm_blk_nr[0] = (unsigned char) ( (NB_BINS_PER_PKT_ASM_F2) >> SHIFT_1_BYTE ); // BLK_NR MSB |
|
1571 | header->pa_lfr_asm_blk_nr[0] = (unsigned char) ( (NB_BINS_PER_PKT_ASM_F2) >> SHIFT_1_BYTE ); // BLK_NR MSB | |
1572 | header->pa_lfr_asm_blk_nr[1] = (unsigned char) (NB_BINS_PER_PKT_ASM_F2); // BLK_NR LSB |
|
1572 | header->pa_lfr_asm_blk_nr[1] = (unsigned char) (NB_BINS_PER_PKT_ASM_F2); // BLK_NR LSB | |
1573 |
|
1573 | |||
1574 | spw_ioctl_send_ASM.hlen = HEADER_LENGTH_TM_LFR_SCIENCE_ASM; |
|
1574 | spw_ioctl_send_ASM.hlen = HEADER_LENGTH_TM_LFR_SCIENCE_ASM; | |
1575 | spw_ioctl_send_ASM.hdr = (char *) header; |
|
1575 | spw_ioctl_send_ASM.hdr = (char *) header; | |
1576 | spw_ioctl_send_ASM.options = 0; |
|
1576 | spw_ioctl_send_ASM.options = 0; | |
1577 |
|
1577 | |||
1578 | // (2) BUILD THE HEADER |
|
1578 | // (2) BUILD THE HEADER | |
1579 | increment_seq_counter_source_id( header->packetSequenceControl, sid ); |
|
1579 | increment_seq_counter_source_id( header->packetSequenceControl, sid ); | |
1580 | header->packetLength[0] = (unsigned char) (length >> SHIFT_1_BYTE); |
|
1580 | header->packetLength[0] = (unsigned char) (length >> SHIFT_1_BYTE); | |
1581 | header->packetLength[1] = (unsigned char) (length); |
|
1581 | header->packetLength[1] = (unsigned char) (length); | |
1582 | header->sid = (unsigned char) sid; // SID |
|
1582 | header->sid = (unsigned char) sid; // SID | |
1583 | header->pa_lfr_pkt_cnt_asm = PKTCNT_ASM; |
|
1583 | header->pa_lfr_pkt_cnt_asm = PKTCNT_ASM; | |
1584 | header->pa_lfr_pkt_nr_asm = (unsigned char) (i+1); |
|
1584 | header->pa_lfr_pkt_nr_asm = (unsigned char) (i+1); | |
1585 |
|
1585 | |||
1586 | // (3) SET PACKET TIME |
|
1586 | // (3) SET PACKET TIME | |
1587 | header->time[BYTE_0] = (unsigned char) (coarseTime >> SHIFT_3_BYTES); |
|
1587 | header->time[BYTE_0] = (unsigned char) (coarseTime >> SHIFT_3_BYTES); | |
1588 | header->time[BYTE_1] = (unsigned char) (coarseTime >> SHIFT_2_BYTES); |
|
1588 | header->time[BYTE_1] = (unsigned char) (coarseTime >> SHIFT_2_BYTES); | |
1589 | header->time[BYTE_2] = (unsigned char) (coarseTime >> SHIFT_1_BYTE); |
|
1589 | header->time[BYTE_2] = (unsigned char) (coarseTime >> SHIFT_1_BYTE); | |
1590 | header->time[BYTE_3] = (unsigned char) (coarseTime); |
|
1590 | header->time[BYTE_3] = (unsigned char) (coarseTime); | |
1591 | header->time[BYTE_4] = (unsigned char) (fineTime >> SHIFT_1_BYTE); |
|
1591 | header->time[BYTE_4] = (unsigned char) (fineTime >> SHIFT_1_BYTE); | |
1592 | header->time[BYTE_5] = (unsigned char) (fineTime); |
|
1592 | header->time[BYTE_5] = (unsigned char) (fineTime); | |
1593 | // |
|
1593 | // | |
1594 | header->acquisitionTime[BYTE_0] = header->time[BYTE_0]; |
|
1594 | header->acquisitionTime[BYTE_0] = header->time[BYTE_0]; | |
1595 | header->acquisitionTime[BYTE_1] = header->time[BYTE_1]; |
|
1595 | header->acquisitionTime[BYTE_1] = header->time[BYTE_1]; | |
1596 | header->acquisitionTime[BYTE_2] = header->time[BYTE_2]; |
|
1596 | header->acquisitionTime[BYTE_2] = header->time[BYTE_2]; | |
1597 | header->acquisitionTime[BYTE_3] = header->time[BYTE_3]; |
|
1597 | header->acquisitionTime[BYTE_3] = header->time[BYTE_3]; | |
1598 | header->acquisitionTime[BYTE_4] = header->time[BYTE_4]; |
|
1598 | header->acquisitionTime[BYTE_4] = header->time[BYTE_4]; | |
1599 | header->acquisitionTime[BYTE_5] = header->time[BYTE_5]; |
|
1599 | header->acquisitionTime[BYTE_5] = header->time[BYTE_5]; | |
1600 |
|
1600 | |||
1601 | // (4) SEND PACKET |
|
1601 | // (4) SEND PACKET | |
1602 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_SEND, &spw_ioctl_send_ASM ); |
|
1602 | status = ioctl( fdSPW, SPACEWIRE_IOCTRL_SEND, &spw_ioctl_send_ASM ); | |
1603 | if (status != RTEMS_SUCCESSFUL) { |
|
1603 | if (status != RTEMS_SUCCESSFUL) { | |
1604 | PRINTF1("in ASM_send *** ERR %d\n", (int) status) |
|
1604 | PRINTF1("in ASM_send *** ERR %d\n", (int) status) | |
1605 | } |
|
1605 | } | |
1606 | } |
|
1606 | } | |
1607 | } |
|
1607 | } | |
1608 |
|
1608 | |||
1609 | void spw_send_k_dump( ring_node *ring_node_to_send ) |
|
1609 | void spw_send_k_dump( ring_node *ring_node_to_send ) | |
1610 | { |
|
1610 | { | |
1611 | rtems_status_code status; |
|
1611 | rtems_status_code status; | |
1612 | Packet_TM_LFR_KCOEFFICIENTS_DUMP_t *kcoefficients_dump; |
|
1612 | Packet_TM_LFR_KCOEFFICIENTS_DUMP_t *kcoefficients_dump; | |
1613 | unsigned int packetLength; |
|
1613 | unsigned int packetLength; | |
1614 | unsigned int size; |
|
1614 | unsigned int size; | |
1615 |
|
1615 | |||
1616 | PRINTF("spw_send_k_dump\n") |
|
1616 | PRINTF("spw_send_k_dump\n") | |
1617 |
|
1617 | |||
1618 | kcoefficients_dump = (Packet_TM_LFR_KCOEFFICIENTS_DUMP_t *) ring_node_to_send->buffer_address; |
|
1618 | kcoefficients_dump = (Packet_TM_LFR_KCOEFFICIENTS_DUMP_t *) ring_node_to_send->buffer_address; | |
1619 |
|
1619 | |||
1620 | packetLength = (kcoefficients_dump->packetLength[0] * CONST_256) + kcoefficients_dump->packetLength[1]; |
|
1620 | packetLength = (kcoefficients_dump->packetLength[0] * CONST_256) + kcoefficients_dump->packetLength[1]; | |
1621 |
|
1621 | |||
1622 | size = packetLength + CCSDS_TC_TM_PACKET_OFFSET + CCSDS_PROTOCOLE_EXTRA_BYTES; |
|
1622 | size = packetLength + CCSDS_TC_TM_PACKET_OFFSET + CCSDS_PROTOCOLE_EXTRA_BYTES; | |
1623 |
|
1623 | |||
1624 | PRINTF2("packetLength %d, size %d\n", packetLength, size ) |
|
1624 | PRINTF2("packetLength %d, size %d\n", packetLength, size ) | |
1625 |
|
1625 | |||
1626 | status = write( fdSPW, (char *) ring_node_to_send->buffer_address, size ); |
|
1626 | status = write( fdSPW, (char *) ring_node_to_send->buffer_address, size ); | |
1627 |
|
1627 | |||
1628 | if (status == -1){ |
|
1628 | if (status == -1){ | |
1629 | PRINTF2("in SEND *** (2.a) ERRNO = %d, size = %d\n", errno, size) |
|
1629 | PRINTF2("in SEND *** (2.a) ERRNO = %d, size = %d\n", errno, size) | |
1630 | } |
|
1630 | } | |
1631 |
|
1631 | |||
1632 | ring_node_to_send->status = INIT_CHAR; |
|
1632 | ring_node_to_send->status = INIT_CHAR; | |
1633 | } |
|
1633 | } |
@@ -1,423 +1,423 | |||||
1 | /** Functions related to data processing. |
|
1 | /** Functions related to data processing. | |
2 | * |
|
2 | * | |
3 | * @file |
|
3 | * @file | |
4 | * @author P. LEROY |
|
4 | * @author P. LEROY | |
5 | * |
|
5 | * | |
6 | * These function are related to data processing, i.e. spectral matrices averaging and basic parameters computation. |
|
6 | * These function are related to data processing, i.e. spectral matrices averaging and basic parameters computation. | |
7 | * |
|
7 | * | |
8 | */ |
|
8 | */ | |
9 |
|
9 | |||
10 | #include "avf0_prc0.h" |
|
10 | #include "avf0_prc0.h" | |
11 |
|
11 | |||
12 | nb_sm_before_bp_asm_f0 nb_sm_before_f0 = {0}; |
|
12 | nb_sm_before_bp_asm_f0 nb_sm_before_f0 = {0}; | |
13 |
|
13 | |||
14 | //*** |
|
14 | //*** | |
15 | // F0 |
|
15 | // F0 | |
16 | ring_node_asm asm_ring_norm_f0 [ NB_RING_NODES_ASM_NORM_F0 ] = {0}; |
|
16 | ring_node_asm asm_ring_norm_f0 [ NB_RING_NODES_ASM_NORM_F0 ] = {0}; | |
17 | ring_node_asm asm_ring_burst_sbm_f0 [ NB_RING_NODES_ASM_BURST_SBM_F0 ] = {0}; |
|
17 | ring_node_asm asm_ring_burst_sbm_f0 [ NB_RING_NODES_ASM_BURST_SBM_F0 ] = {0}; | |
18 |
|
18 | |||
19 | ring_node ring_to_send_asm_f0 [ NB_RING_NODES_ASM_F0 ] = {0}; |
|
19 | ring_node ring_to_send_asm_f0 [ NB_RING_NODES_ASM_F0 ] = {0}; | |
20 | int buffer_asm_f0 [ NB_RING_NODES_ASM_F0 * TOTAL_SIZE_SM ] = {0}; |
|
20 | int buffer_asm_f0 [ NB_RING_NODES_ASM_F0 * TOTAL_SIZE_SM ] = {0}; | |
21 |
|
21 | |||
22 | float asm_f0_patched_norm [ TOTAL_SIZE_SM ] = {0}; |
|
22 | float asm_f0_patched_norm [ TOTAL_SIZE_SM ] = {0}; | |
23 | float asm_f0_patched_burst_sbm [ TOTAL_SIZE_SM ] = {0}; |
|
23 | float asm_f0_patched_burst_sbm [ TOTAL_SIZE_SM ] = {0}; | |
24 | float asm_f0_reorganized [ TOTAL_SIZE_SM ] = {0}; |
|
24 | float asm_f0_reorganized [ TOTAL_SIZE_SM ] = {0}; | |
25 |
|
25 | |||
26 | float compressed_sm_norm_f0[ TOTAL_SIZE_COMPRESSED_ASM_NORM_F0] = {0}; |
|
26 | float compressed_sm_norm_f0[ TOTAL_SIZE_COMPRESSED_ASM_NORM_F0] = {0}; | |
27 | float compressed_sm_sbm_f0 [ TOTAL_SIZE_COMPRESSED_ASM_SBM_F0 ] = {0}; |
|
27 | float compressed_sm_sbm_f0 [ TOTAL_SIZE_COMPRESSED_ASM_SBM_F0 ] = {0}; | |
28 |
|
28 | |||
29 | float k_coeff_intercalib_f0_norm[ NB_BINS_COMPRESSED_SM_F0 * NB_K_COEFF_PER_BIN ] = {0}; // 11 * 32 = 352 |
|
29 | float k_coeff_intercalib_f0_norm[ NB_BINS_COMPRESSED_SM_F0 * NB_K_COEFF_PER_BIN ] = {0}; // 11 * 32 = 352 | |
30 | float k_coeff_intercalib_f0_sbm[ NB_BINS_COMPRESSED_SM_SBM_F0 * NB_K_COEFF_PER_BIN ] = {0}; // 22 * 32 = 704 |
|
30 | float k_coeff_intercalib_f0_sbm[ NB_BINS_COMPRESSED_SM_SBM_F0 * NB_K_COEFF_PER_BIN ] = {0}; // 22 * 32 = 704 | |
31 |
|
31 | |||
32 | //************ |
|
32 | //************ | |
33 | // RTEMS TASKS |
|
33 | // RTEMS TASKS | |
34 |
|
34 | |||
35 | rtems_task avf0_task( rtems_task_argument lfrRequestedMode ) |
|
35 | rtems_task avf0_task( rtems_task_argument lfrRequestedMode ) | |
36 | { |
|
36 | { | |
37 | int i; |
|
37 | int i; | |
38 |
|
38 | |||
39 | rtems_event_set event_out; |
|
39 | rtems_event_set event_out; | |
40 | rtems_status_code status; |
|
40 | rtems_status_code status; | |
41 | rtems_id queue_id_prc0; |
|
41 | rtems_id queue_id_prc0; | |
42 | asm_msg msgForPRC; |
|
42 | asm_msg msgForPRC; | |
43 | ring_node *nodeForAveraging; |
|
43 | ring_node *nodeForAveraging; | |
44 | ring_node *ring_node_tab[NB_SM_BEFORE_AVF0_F1]; |
|
44 | ring_node *ring_node_tab[NB_SM_BEFORE_AVF0_F1]; | |
45 | ring_node_asm *current_ring_node_asm_burst_sbm_f0; |
|
45 | ring_node_asm *current_ring_node_asm_burst_sbm_f0; | |
46 | ring_node_asm *current_ring_node_asm_norm_f0; |
|
46 | ring_node_asm *current_ring_node_asm_norm_f0; | |
47 |
|
47 | |||
48 | unsigned int nb_norm_bp1; |
|
48 | unsigned int nb_norm_bp1; | |
49 | unsigned int nb_norm_bp2; |
|
49 | unsigned int nb_norm_bp2; | |
50 | unsigned int nb_norm_asm; |
|
50 | unsigned int nb_norm_asm; | |
51 | unsigned int nb_sbm_bp1; |
|
51 | unsigned int nb_sbm_bp1; | |
52 | unsigned int nb_sbm_bp2; |
|
52 | unsigned int nb_sbm_bp2; | |
53 |
|
53 | |||
54 | nb_norm_bp1 = 0; |
|
54 | nb_norm_bp1 = 0; | |
55 | nb_norm_bp2 = 0; |
|
55 | nb_norm_bp2 = 0; | |
56 | nb_norm_asm = 0; |
|
56 | nb_norm_asm = 0; | |
57 | nb_sbm_bp1 = 0; |
|
57 | nb_sbm_bp1 = 0; | |
58 | nb_sbm_bp2 = 0; |
|
58 | nb_sbm_bp2 = 0; | |
59 | event_out = EVENT_SETS_NONE_PENDING; |
|
59 | event_out = EVENT_SETS_NONE_PENDING; | |
60 | queue_id_prc0 = RTEMS_ID_NONE; |
|
60 | queue_id_prc0 = RTEMS_ID_NONE; | |
61 |
|
61 | |||
62 | reset_nb_sm_f0( lfrRequestedMode ); // reset the sm counters that drive the BP and ASM computations / transmissions |
|
62 | reset_nb_sm_f0( lfrRequestedMode ); // reset the sm counters that drive the BP and ASM computations / transmissions | |
63 | ASM_generic_init_ring( asm_ring_norm_f0, NB_RING_NODES_ASM_NORM_F0 ); |
|
63 | ASM_generic_init_ring( asm_ring_norm_f0, NB_RING_NODES_ASM_NORM_F0 ); | |
64 | ASM_generic_init_ring( asm_ring_burst_sbm_f0, NB_RING_NODES_ASM_BURST_SBM_F0 ); |
|
64 | ASM_generic_init_ring( asm_ring_burst_sbm_f0, NB_RING_NODES_ASM_BURST_SBM_F0 ); | |
65 | current_ring_node_asm_norm_f0 = asm_ring_norm_f0; |
|
65 | current_ring_node_asm_norm_f0 = asm_ring_norm_f0; | |
66 | current_ring_node_asm_burst_sbm_f0 = asm_ring_burst_sbm_f0; |
|
66 | current_ring_node_asm_burst_sbm_f0 = asm_ring_burst_sbm_f0; | |
67 |
|
67 | |||
68 | BOOT_PRINTF1("in AVFO *** lfrRequestedMode = %d\n", (int) lfrRequestedMode); |
|
68 | BOOT_PRINTF1("in AVFO *** lfrRequestedMode = %d\n", (int) lfrRequestedMode); | |
69 |
|
69 | |||
70 | status = get_message_queue_id_prc0( &queue_id_prc0 ); |
|
70 | status = get_message_queue_id_prc0( &queue_id_prc0 ); | |
71 | if (status != RTEMS_SUCCESSFUL) |
|
71 | if (status != RTEMS_SUCCESSFUL) | |
72 | { |
|
72 | { | |
73 | PRINTF1("in MATR *** ERR get_message_queue_id_prc0 %d\n", status) |
|
73 | PRINTF1("in MATR *** ERR get_message_queue_id_prc0 %d\n", status) | |
74 | } |
|
74 | } | |
75 |
|
75 | |||
76 | while(1){ |
|
76 | while(1){ | |
77 | rtems_event_receive(RTEMS_EVENT_0, RTEMS_WAIT, RTEMS_NO_TIMEOUT, &event_out); // wait for an RTEMS_EVENT0 |
|
77 | rtems_event_receive(RTEMS_EVENT_0, RTEMS_WAIT, RTEMS_NO_TIMEOUT, &event_out); // wait for an RTEMS_EVENT0 | |
78 |
|
78 | |||
79 | //**************************************** |
|
79 | //**************************************** | |
80 | // initialize the mesage for the MATR task |
|
80 | // initialize the mesage for the MATR task | |
81 | msgForPRC.norm = current_ring_node_asm_norm_f0; |
|
81 | msgForPRC.norm = current_ring_node_asm_norm_f0; | |
82 | msgForPRC.burst_sbm = current_ring_node_asm_burst_sbm_f0; |
|
82 | msgForPRC.burst_sbm = current_ring_node_asm_burst_sbm_f0; | |
83 | msgForPRC.event = EVENT_SETS_NONE_PENDING; // this composite event will be sent to the PRC0 task |
|
83 | msgForPRC.event = EVENT_SETS_NONE_PENDING; // this composite event will be sent to the PRC0 task | |
84 | // |
|
84 | // | |
85 | //**************************************** |
|
85 | //**************************************** | |
86 |
|
86 | |||
87 | nodeForAveraging = getRingNodeForAveraging( 0 ); |
|
87 | nodeForAveraging = getRingNodeForAveraging( 0 ); | |
88 |
|
88 | |||
89 | ring_node_tab[NB_SM_BEFORE_AVF0_F1-1] = nodeForAveraging; |
|
89 | ring_node_tab[NB_SM_BEFORE_AVF0_F1-1] = nodeForAveraging; | |
90 | for ( i = 1; i < (NB_SM_BEFORE_AVF0_F1); i++ ) |
|
90 | for ( i = 1; i < (NB_SM_BEFORE_AVF0_F1); i++ ) | |
91 | { |
|
91 | { | |
92 | nodeForAveraging = nodeForAveraging->previous; |
|
92 | nodeForAveraging = nodeForAveraging->previous; | |
93 | ring_node_tab[NB_SM_BEFORE_AVF0_F1 - i - 1] = nodeForAveraging; |
|
93 | ring_node_tab[NB_SM_BEFORE_AVF0_F1 - i - 1] = nodeForAveraging; | |
94 | } |
|
94 | } | |
95 |
|
95 | |||
96 | // compute the average and store it in the averaged_sm_f1 buffer |
|
96 | // compute the average and store it in the averaged_sm_f1 buffer | |
97 | SM_average( current_ring_node_asm_norm_f0->matrix, |
|
97 | SM_average( current_ring_node_asm_norm_f0->matrix, | |
98 | current_ring_node_asm_burst_sbm_f0->matrix, |
|
98 | current_ring_node_asm_burst_sbm_f0->matrix, | |
99 | ring_node_tab, |
|
99 | ring_node_tab, | |
100 | nb_norm_bp1, nb_sbm_bp1, |
|
100 | nb_norm_bp1, nb_sbm_bp1, | |
101 | &msgForPRC, 0 ); // 0 => frequency channel 0 |
|
101 | &msgForPRC, 0 ); // 0 => frequency channel 0 | |
102 |
|
102 | |||
103 | // update nb_average |
|
103 | // update nb_average | |
104 | nb_norm_bp1 = nb_norm_bp1 + NB_SM_BEFORE_AVF0_F1; |
|
104 | nb_norm_bp1 = nb_norm_bp1 + NB_SM_BEFORE_AVF0_F1; | |
105 | nb_norm_bp2 = nb_norm_bp2 + NB_SM_BEFORE_AVF0_F1; |
|
105 | nb_norm_bp2 = nb_norm_bp2 + NB_SM_BEFORE_AVF0_F1; | |
106 | nb_norm_asm = nb_norm_asm + NB_SM_BEFORE_AVF0_F1; |
|
106 | nb_norm_asm = nb_norm_asm + NB_SM_BEFORE_AVF0_F1; | |
107 | nb_sbm_bp1 = nb_sbm_bp1 + NB_SM_BEFORE_AVF0_F1; |
|
107 | nb_sbm_bp1 = nb_sbm_bp1 + NB_SM_BEFORE_AVF0_F1; | |
108 | nb_sbm_bp2 = nb_sbm_bp2 + NB_SM_BEFORE_AVF0_F1; |
|
108 | nb_sbm_bp2 = nb_sbm_bp2 + NB_SM_BEFORE_AVF0_F1; | |
109 |
|
109 | |||
110 | if (nb_sbm_bp1 == nb_sm_before_f0.burst_sbm_bp1) |
|
110 | if (nb_sbm_bp1 == nb_sm_before_f0.burst_sbm_bp1) | |
111 | { |
|
111 | { | |
112 | nb_sbm_bp1 = 0; |
|
112 | nb_sbm_bp1 = 0; | |
113 | // set another ring for the ASM storage |
|
113 | // set another ring for the ASM storage | |
114 | current_ring_node_asm_burst_sbm_f0 = current_ring_node_asm_burst_sbm_f0->next; |
|
114 | current_ring_node_asm_burst_sbm_f0 = current_ring_node_asm_burst_sbm_f0->next; | |
115 | if ( lfrCurrentMode == LFR_MODE_BURST ) |
|
115 | if ( lfrCurrentMode == LFR_MODE_BURST ) | |
116 | { |
|
116 | { | |
117 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_BURST_BP1_F0; |
|
117 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_BURST_BP1_F0; | |
118 | } |
|
118 | } | |
119 | else if ( (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) |
|
119 | else if ( (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) | |
120 | { |
|
120 | { | |
121 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_SBM_BP1_F0; |
|
121 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_SBM_BP1_F0; | |
122 | } |
|
122 | } | |
123 | } |
|
123 | } | |
124 |
|
124 | |||
125 | if (nb_sbm_bp2 == nb_sm_before_f0.burst_sbm_bp2) |
|
125 | if (nb_sbm_bp2 == nb_sm_before_f0.burst_sbm_bp2) | |
126 | { |
|
126 | { | |
127 | nb_sbm_bp2 = 0; |
|
127 | nb_sbm_bp2 = 0; | |
128 | if ( lfrCurrentMode == LFR_MODE_BURST ) |
|
128 | if ( lfrCurrentMode == LFR_MODE_BURST ) | |
129 | { |
|
129 | { | |
130 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_BURST_BP2_F0; |
|
130 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_BURST_BP2_F0; | |
131 | } |
|
131 | } | |
132 | else if ( (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) |
|
132 | else if ( (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) | |
133 | { |
|
133 | { | |
134 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_SBM_BP2_F0; |
|
134 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_SBM_BP2_F0; | |
135 | } |
|
135 | } | |
136 | } |
|
136 | } | |
137 |
|
137 | |||
138 | if (nb_norm_bp1 == nb_sm_before_f0.norm_bp1) |
|
138 | if (nb_norm_bp1 == nb_sm_before_f0.norm_bp1) | |
139 | { |
|
139 | { | |
140 | nb_norm_bp1 = 0; |
|
140 | nb_norm_bp1 = 0; | |
141 | // set another ring for the ASM storage |
|
141 | // set another ring for the ASM storage | |
142 | current_ring_node_asm_norm_f0 = current_ring_node_asm_norm_f0->next; |
|
142 | current_ring_node_asm_norm_f0 = current_ring_node_asm_norm_f0->next; | |
143 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) |
|
143 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) | |
144 | || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) |
|
144 | || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) | |
145 | { |
|
145 | { | |
146 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_BP1_F0; |
|
146 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_BP1_F0; | |
147 | } |
|
147 | } | |
148 | } |
|
148 | } | |
149 |
|
149 | |||
150 | if (nb_norm_bp2 == nb_sm_before_f0.norm_bp2) |
|
150 | if (nb_norm_bp2 == nb_sm_before_f0.norm_bp2) | |
151 | { |
|
151 | { | |
152 | nb_norm_bp2 = 0; |
|
152 | nb_norm_bp2 = 0; | |
153 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) |
|
153 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) | |
154 | || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) |
|
154 | || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) | |
155 | { |
|
155 | { | |
156 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_BP2_F0; |
|
156 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_BP2_F0; | |
157 | } |
|
157 | } | |
158 | } |
|
158 | } | |
159 |
|
159 | |||
160 | if (nb_norm_asm == nb_sm_before_f0.norm_asm) |
|
160 | if (nb_norm_asm == nb_sm_before_f0.norm_asm) | |
161 | { |
|
161 | { | |
162 | nb_norm_asm = 0; |
|
162 | nb_norm_asm = 0; | |
163 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) |
|
163 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) | |
164 | || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) |
|
164 | || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) | |
165 | { |
|
165 | { | |
166 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_ASM_F0; |
|
166 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_ASM_F0; | |
167 | } |
|
167 | } | |
168 | } |
|
168 | } | |
169 |
|
169 | |||
170 | //************************* |
|
170 | //************************* | |
171 | // send the message to PRC |
|
171 | // send the message to PRC | |
172 | if (msgForPRC.event != EVENT_SETS_NONE_PENDING) |
|
172 | if (msgForPRC.event != EVENT_SETS_NONE_PENDING) | |
173 | { |
|
173 | { | |
174 | status = rtems_message_queue_send( queue_id_prc0, (char *) &msgForPRC, MSG_QUEUE_SIZE_PRC0); |
|
174 | status = rtems_message_queue_send( queue_id_prc0, (char *) &msgForPRC, MSG_QUEUE_SIZE_PRC0); | |
175 | } |
|
175 | } | |
176 |
|
176 | |||
177 | if (status != RTEMS_SUCCESSFUL) { |
|
177 | if (status != RTEMS_SUCCESSFUL) { | |
178 | PRINTF1("in AVF0 *** Error sending message to PRC, code %d\n", status) |
|
178 | PRINTF1("in AVF0 *** Error sending message to PRC, code %d\n", status) | |
179 | } |
|
179 | } | |
180 | } |
|
180 | } | |
181 | } |
|
181 | } | |
182 |
|
182 | |||
183 | rtems_task prc0_task( rtems_task_argument lfrRequestedMode ) |
|
183 | rtems_task prc0_task( rtems_task_argument lfrRequestedMode ) | |
184 | { |
|
184 | { | |
185 | char incomingData[MSG_QUEUE_SIZE_SEND]; // incoming data buffer |
|
185 | char incomingData[MSG_QUEUE_SIZE_SEND]; // incoming data buffer | |
186 | size_t size; // size of the incoming TC packet |
|
186 | size_t size; // size of the incoming TC packet | |
187 | asm_msg *incomingMsg; |
|
187 | asm_msg *incomingMsg; | |
188 | // |
|
188 | // | |
189 | unsigned char sid; |
|
189 | unsigned char sid; | |
190 | rtems_status_code status; |
|
190 | rtems_status_code status; | |
191 | rtems_id queue_id; |
|
191 | rtems_id queue_id; | |
192 | rtems_id queue_id_q_p0; |
|
192 | rtems_id queue_id_q_p0; | |
193 | bp_packet_with_spare packet_norm_bp1; |
|
193 | bp_packet_with_spare __attribute__((aligned(4))) packet_norm_bp1; | |
194 | bp_packet packet_norm_bp2; |
|
194 | bp_packet __attribute__((aligned(4))) packet_norm_bp2; | |
195 | bp_packet packet_sbm_bp1; |
|
195 | bp_packet __attribute__((aligned(4))) packet_sbm_bp1; | |
196 | bp_packet packet_sbm_bp2; |
|
196 | bp_packet __attribute__((aligned(4))) packet_sbm_bp2; | |
197 | ring_node *current_ring_node_to_send_asm_f0; |
|
197 | ring_node *current_ring_node_to_send_asm_f0; | |
198 | float nbSMInASMNORM; |
|
198 | float nbSMInASMNORM; | |
199 | float nbSMInASMSBM; |
|
199 | float nbSMInASMSBM; | |
200 |
|
200 | |||
201 | size = 0; |
|
201 | size = 0; | |
202 | queue_id = RTEMS_ID_NONE; |
|
202 | queue_id = RTEMS_ID_NONE; | |
203 | queue_id_q_p0 = RTEMS_ID_NONE; |
|
203 | queue_id_q_p0 = RTEMS_ID_NONE; | |
204 | memset( &packet_norm_bp1, 0, sizeof(bp_packet_with_spare) ); |
|
204 | memset( &packet_norm_bp1, 0, sizeof(bp_packet_with_spare) ); | |
205 | memset( &packet_norm_bp2, 0, sizeof(bp_packet) ); |
|
205 | memset( &packet_norm_bp2, 0, sizeof(bp_packet) ); | |
206 | memset( &packet_sbm_bp1, 0, sizeof(bp_packet) ); |
|
206 | memset( &packet_sbm_bp1, 0, sizeof(bp_packet) ); | |
207 | memset( &packet_sbm_bp2, 0, sizeof(bp_packet) ); |
|
207 | memset( &packet_sbm_bp2, 0, sizeof(bp_packet) ); | |
208 |
|
208 | |||
209 | // init the ring of the averaged spectral matrices which will be transmitted to the DPU |
|
209 | // init the ring of the averaged spectral matrices which will be transmitted to the DPU | |
210 | init_ring( ring_to_send_asm_f0, NB_RING_NODES_ASM_F0, (volatile int*) buffer_asm_f0, TOTAL_SIZE_SM ); |
|
210 | init_ring( ring_to_send_asm_f0, NB_RING_NODES_ASM_F0, (volatile int*) buffer_asm_f0, TOTAL_SIZE_SM ); | |
211 | current_ring_node_to_send_asm_f0 = ring_to_send_asm_f0; |
|
211 | current_ring_node_to_send_asm_f0 = ring_to_send_asm_f0; | |
212 |
|
212 | |||
213 | //************* |
|
213 | //************* | |
214 | // NORM headers |
|
214 | // NORM headers | |
215 | BP_init_header_with_spare( &packet_norm_bp1, |
|
215 | BP_init_header_with_spare( &packet_norm_bp1, | |
216 | APID_TM_SCIENCE_NORMAL_BURST, SID_NORM_BP1_F0, |
|
216 | APID_TM_SCIENCE_NORMAL_BURST, SID_NORM_BP1_F0, | |
217 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP1_F0, NB_BINS_COMPRESSED_SM_F0 ); |
|
217 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP1_F0, NB_BINS_COMPRESSED_SM_F0 ); | |
218 | BP_init_header( &packet_norm_bp2, |
|
218 | BP_init_header( &packet_norm_bp2, | |
219 | APID_TM_SCIENCE_NORMAL_BURST, SID_NORM_BP2_F0, |
|
219 | APID_TM_SCIENCE_NORMAL_BURST, SID_NORM_BP2_F0, | |
220 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP2_F0, NB_BINS_COMPRESSED_SM_F0); |
|
220 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP2_F0, NB_BINS_COMPRESSED_SM_F0); | |
221 |
|
221 | |||
222 | //**************************** |
|
222 | //**************************** | |
223 | // BURST SBM1 and SBM2 headers |
|
223 | // BURST SBM1 and SBM2 headers | |
224 | if ( lfrRequestedMode == LFR_MODE_BURST ) |
|
224 | if ( lfrRequestedMode == LFR_MODE_BURST ) | |
225 | { |
|
225 | { | |
226 | BP_init_header( &packet_sbm_bp1, |
|
226 | BP_init_header( &packet_sbm_bp1, | |
227 | APID_TM_SCIENCE_NORMAL_BURST, SID_BURST_BP1_F0, |
|
227 | APID_TM_SCIENCE_NORMAL_BURST, SID_BURST_BP1_F0, | |
228 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP1_F0, NB_BINS_COMPRESSED_SM_SBM_F0); |
|
228 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP1_F0, NB_BINS_COMPRESSED_SM_SBM_F0); | |
229 | BP_init_header( &packet_sbm_bp2, |
|
229 | BP_init_header( &packet_sbm_bp2, | |
230 | APID_TM_SCIENCE_NORMAL_BURST, SID_BURST_BP2_F0, |
|
230 | APID_TM_SCIENCE_NORMAL_BURST, SID_BURST_BP2_F0, | |
231 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP2_F0, NB_BINS_COMPRESSED_SM_SBM_F0); |
|
231 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP2_F0, NB_BINS_COMPRESSED_SM_SBM_F0); | |
232 | } |
|
232 | } | |
233 | else if ( lfrRequestedMode == LFR_MODE_SBM1 ) |
|
233 | else if ( lfrRequestedMode == LFR_MODE_SBM1 ) | |
234 | { |
|
234 | { | |
235 | BP_init_header( &packet_sbm_bp1, |
|
235 | BP_init_header( &packet_sbm_bp1, | |
236 | APID_TM_SCIENCE_SBM1_SBM2, SID_SBM1_BP1_F0, |
|
236 | APID_TM_SCIENCE_SBM1_SBM2, SID_SBM1_BP1_F0, | |
237 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP1_F0, NB_BINS_COMPRESSED_SM_SBM_F0); |
|
237 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP1_F0, NB_BINS_COMPRESSED_SM_SBM_F0); | |
238 | BP_init_header( &packet_sbm_bp2, |
|
238 | BP_init_header( &packet_sbm_bp2, | |
239 | APID_TM_SCIENCE_SBM1_SBM2, SID_SBM1_BP2_F0, |
|
239 | APID_TM_SCIENCE_SBM1_SBM2, SID_SBM1_BP2_F0, | |
240 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP2_F0, NB_BINS_COMPRESSED_SM_SBM_F0); |
|
240 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP2_F0, NB_BINS_COMPRESSED_SM_SBM_F0); | |
241 | } |
|
241 | } | |
242 | else if ( lfrRequestedMode == LFR_MODE_SBM2 ) |
|
242 | else if ( lfrRequestedMode == LFR_MODE_SBM2 ) | |
243 | { |
|
243 | { | |
244 | BP_init_header( &packet_sbm_bp1, |
|
244 | BP_init_header( &packet_sbm_bp1, | |
245 | APID_TM_SCIENCE_SBM1_SBM2, SID_SBM2_BP1_F0, |
|
245 | APID_TM_SCIENCE_SBM1_SBM2, SID_SBM2_BP1_F0, | |
246 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP1_F0, NB_BINS_COMPRESSED_SM_SBM_F0); |
|
246 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP1_F0, NB_BINS_COMPRESSED_SM_SBM_F0); | |
247 | BP_init_header( &packet_sbm_bp2, |
|
247 | BP_init_header( &packet_sbm_bp2, | |
248 | APID_TM_SCIENCE_SBM1_SBM2, SID_SBM2_BP2_F0, |
|
248 | APID_TM_SCIENCE_SBM1_SBM2, SID_SBM2_BP2_F0, | |
249 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP2_F0, NB_BINS_COMPRESSED_SM_SBM_F0); |
|
249 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP2_F0, NB_BINS_COMPRESSED_SM_SBM_F0); | |
250 | } |
|
250 | } | |
251 | else |
|
251 | else | |
252 | { |
|
252 | { | |
253 | PRINTF1("in PRC0 *** lfrRequestedMode is %d, several headers not initialized\n", (unsigned int) lfrRequestedMode) |
|
253 | PRINTF1("in PRC0 *** lfrRequestedMode is %d, several headers not initialized\n", (unsigned int) lfrRequestedMode) | |
254 | } |
|
254 | } | |
255 |
|
255 | |||
256 | status = get_message_queue_id_send( &queue_id ); |
|
256 | status = get_message_queue_id_send( &queue_id ); | |
257 | if (status != RTEMS_SUCCESSFUL) |
|
257 | if (status != RTEMS_SUCCESSFUL) | |
258 | { |
|
258 | { | |
259 | PRINTF1("in PRC0 *** ERR get_message_queue_id_send %d\n", status) |
|
259 | PRINTF1("in PRC0 *** ERR get_message_queue_id_send %d\n", status) | |
260 | } |
|
260 | } | |
261 | status = get_message_queue_id_prc0( &queue_id_q_p0); |
|
261 | status = get_message_queue_id_prc0( &queue_id_q_p0); | |
262 | if (status != RTEMS_SUCCESSFUL) |
|
262 | if (status != RTEMS_SUCCESSFUL) | |
263 | { |
|
263 | { | |
264 | PRINTF1("in PRC0 *** ERR get_message_queue_id_prc0 %d\n", status) |
|
264 | PRINTF1("in PRC0 *** ERR get_message_queue_id_prc0 %d\n", status) | |
265 | } |
|
265 | } | |
266 |
|
266 | |||
267 | BOOT_PRINTF1("in PRC0 *** lfrRequestedMode = %d\n", (int) lfrRequestedMode) |
|
267 | BOOT_PRINTF1("in PRC0 *** lfrRequestedMode = %d\n", (int) lfrRequestedMode) | |
268 |
|
268 | |||
269 | while(1){ |
|
269 | while(1){ | |
270 | status = rtems_message_queue_receive( queue_id_q_p0, incomingData, &size, //************************************ |
|
270 | status = rtems_message_queue_receive( queue_id_q_p0, incomingData, &size, //************************************ | |
271 | RTEMS_WAIT, RTEMS_NO_TIMEOUT ); // wait for a message coming from AVF0 |
|
271 | RTEMS_WAIT, RTEMS_NO_TIMEOUT ); // wait for a message coming from AVF0 | |
272 |
|
272 | |||
273 | incomingMsg = (asm_msg*) incomingData; |
|
273 | incomingMsg = (asm_msg*) incomingData; | |
274 |
|
274 | |||
275 | ASM_patch( incomingMsg->norm->matrix, asm_f0_patched_norm ); |
|
275 | ASM_patch( incomingMsg->norm->matrix, asm_f0_patched_norm ); | |
276 | ASM_patch( incomingMsg->burst_sbm->matrix, asm_f0_patched_burst_sbm ); |
|
276 | ASM_patch( incomingMsg->burst_sbm->matrix, asm_f0_patched_burst_sbm ); | |
277 |
|
277 | |||
278 | nbSMInASMNORM = incomingMsg->numberOfSMInASMNORM; |
|
278 | nbSMInASMNORM = incomingMsg->numberOfSMInASMNORM; | |
279 | nbSMInASMSBM = incomingMsg->numberOfSMInASMSBM; |
|
279 | nbSMInASMSBM = incomingMsg->numberOfSMInASMSBM; | |
280 |
|
280 | |||
281 | //**************** |
|
281 | //**************** | |
282 | //**************** |
|
282 | //**************** | |
283 | // BURST SBM1 SBM2 |
|
283 | // BURST SBM1 SBM2 | |
284 | //**************** |
|
284 | //**************** | |
285 | //**************** |
|
285 | //**************** | |
286 | if ( (incomingMsg->event & RTEMS_EVENT_BURST_BP1_F0 ) || (incomingMsg->event & RTEMS_EVENT_SBM_BP1_F0 ) ) |
|
286 | if ( (incomingMsg->event & RTEMS_EVENT_BURST_BP1_F0 ) || (incomingMsg->event & RTEMS_EVENT_SBM_BP1_F0 ) ) | |
287 | { |
|
287 | { | |
288 | sid = getSID( incomingMsg->event ); |
|
288 | sid = getSID( incomingMsg->event ); | |
289 | // 1) compress the matrix for Basic Parameters calculation |
|
289 | // 1) compress the matrix for Basic Parameters calculation | |
290 | ASM_compress_reorganize_and_divide_mask( asm_f0_patched_burst_sbm, compressed_sm_sbm_f0, |
|
290 | ASM_compress_reorganize_and_divide_mask( asm_f0_patched_burst_sbm, compressed_sm_sbm_f0, | |
291 | nbSMInASMSBM, |
|
291 | nbSMInASMSBM, | |
292 | NB_BINS_COMPRESSED_SM_SBM_F0, NB_BINS_TO_AVERAGE_ASM_SBM_F0, |
|
292 | NB_BINS_COMPRESSED_SM_SBM_F0, NB_BINS_TO_AVERAGE_ASM_SBM_F0, | |
293 | ASM_F0_INDICE_START, CHANNELF0); |
|
293 | ASM_F0_INDICE_START, CHANNELF0); | |
294 | // 2) compute the BP1 set |
|
294 | // 2) compute the BP1 set | |
295 | BP1_set( compressed_sm_sbm_f0, k_coeff_intercalib_f0_sbm, NB_BINS_COMPRESSED_SM_SBM_F0, packet_sbm_bp1.data ); |
|
295 | BP1_set( compressed_sm_sbm_f0, k_coeff_intercalib_f0_sbm, NB_BINS_COMPRESSED_SM_SBM_F0, packet_sbm_bp1.data ); | |
296 | // 3) send the BP1 set |
|
296 | // 3) send the BP1 set | |
297 | set_time( packet_sbm_bp1.time, (unsigned char *) &incomingMsg->coarseTimeSBM ); |
|
297 | set_time( packet_sbm_bp1.time, (unsigned char *) &incomingMsg->coarseTimeSBM ); | |
298 | set_time( packet_sbm_bp1.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeSBM ); |
|
298 | set_time( packet_sbm_bp1.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeSBM ); | |
299 | packet_sbm_bp1.pa_bia_status_info = pa_bia_status_info; |
|
299 | packet_sbm_bp1.pa_bia_status_info = pa_bia_status_info; | |
300 | packet_sbm_bp1.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
300 | packet_sbm_bp1.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
301 | BP_send_s1_s2( (char *) &packet_sbm_bp1, queue_id, |
|
301 | BP_send_s1_s2( (char *) &packet_sbm_bp1, queue_id, | |
302 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP1_F0 + PACKET_LENGTH_DELTA, |
|
302 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP1_F0 + PACKET_LENGTH_DELTA, | |
303 | sid); |
|
303 | sid); | |
304 | // 4) compute the BP2 set if needed |
|
304 | // 4) compute the BP2 set if needed | |
305 | if ( (incomingMsg->event & RTEMS_EVENT_BURST_BP2_F0) || (incomingMsg->event & RTEMS_EVENT_SBM_BP2_F0) ) |
|
305 | if ( (incomingMsg->event & RTEMS_EVENT_BURST_BP2_F0) || (incomingMsg->event & RTEMS_EVENT_SBM_BP2_F0) ) | |
306 | { |
|
306 | { | |
307 | // 1) compute the BP2 set |
|
307 | // 1) compute the BP2 set | |
308 | BP2_set( compressed_sm_sbm_f0, NB_BINS_COMPRESSED_SM_SBM_F0, packet_sbm_bp2.data ); |
|
308 | BP2_set( compressed_sm_sbm_f0, NB_BINS_COMPRESSED_SM_SBM_F0, packet_sbm_bp2.data ); | |
309 | // 2) send the BP2 set |
|
309 | // 2) send the BP2 set | |
310 | set_time( packet_sbm_bp2.time, (unsigned char *) &incomingMsg->coarseTimeSBM ); |
|
310 | set_time( packet_sbm_bp2.time, (unsigned char *) &incomingMsg->coarseTimeSBM ); | |
311 | set_time( packet_sbm_bp2.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeSBM ); |
|
311 | set_time( packet_sbm_bp2.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeSBM ); | |
312 | packet_sbm_bp2.pa_bia_status_info = pa_bia_status_info; |
|
312 | packet_sbm_bp2.pa_bia_status_info = pa_bia_status_info; | |
313 | packet_sbm_bp2.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
313 | packet_sbm_bp2.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
314 | BP_send_s1_s2( (char *) &packet_sbm_bp2, queue_id, |
|
314 | BP_send_s1_s2( (char *) &packet_sbm_bp2, queue_id, | |
315 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP2_F0 + PACKET_LENGTH_DELTA, |
|
315 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP2_F0 + PACKET_LENGTH_DELTA, | |
316 | sid); |
|
316 | sid); | |
317 | } |
|
317 | } | |
318 | } |
|
318 | } | |
319 |
|
319 | |||
320 | //***** |
|
320 | //***** | |
321 | //***** |
|
321 | //***** | |
322 | // NORM |
|
322 | // NORM | |
323 | //***** |
|
323 | //***** | |
324 | //***** |
|
324 | //***** | |
325 | if (incomingMsg->event & RTEMS_EVENT_NORM_BP1_F0) |
|
325 | if (incomingMsg->event & RTEMS_EVENT_NORM_BP1_F0) | |
326 | { |
|
326 | { | |
327 | // 1) compress the matrix for Basic Parameters calculation |
|
327 | // 1) compress the matrix for Basic Parameters calculation | |
328 | ASM_compress_reorganize_and_divide_mask( asm_f0_patched_norm, compressed_sm_norm_f0, |
|
328 | ASM_compress_reorganize_and_divide_mask( asm_f0_patched_norm, compressed_sm_norm_f0, | |
329 | nbSMInASMNORM, |
|
329 | nbSMInASMNORM, | |
330 | NB_BINS_COMPRESSED_SM_F0, NB_BINS_TO_AVERAGE_ASM_F0, |
|
330 | NB_BINS_COMPRESSED_SM_F0, NB_BINS_TO_AVERAGE_ASM_F0, | |
331 | ASM_F0_INDICE_START, CHANNELF0 ); |
|
331 | ASM_F0_INDICE_START, CHANNELF0 ); | |
332 | // 2) compute the BP1 set |
|
332 | // 2) compute the BP1 set | |
333 | BP1_set( compressed_sm_norm_f0, k_coeff_intercalib_f0_norm, NB_BINS_COMPRESSED_SM_F0, packet_norm_bp1.data ); |
|
333 | BP1_set( compressed_sm_norm_f0, k_coeff_intercalib_f0_norm, NB_BINS_COMPRESSED_SM_F0, packet_norm_bp1.data ); | |
334 | // 3) send the BP1 set |
|
334 | // 3) send the BP1 set | |
335 | set_time( packet_norm_bp1.time, (unsigned char *) &incomingMsg->coarseTimeNORM ); |
|
335 | set_time( packet_norm_bp1.time, (unsigned char *) &incomingMsg->coarseTimeNORM ); | |
336 | set_time( packet_norm_bp1.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeNORM ); |
|
336 | set_time( packet_norm_bp1.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeNORM ); | |
337 | packet_norm_bp1.pa_bia_status_info = pa_bia_status_info; |
|
337 | packet_norm_bp1.pa_bia_status_info = pa_bia_status_info; | |
338 | packet_norm_bp1.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
338 | packet_norm_bp1.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
339 | BP_send( (char *) &packet_norm_bp1, queue_id, |
|
339 | BP_send( (char *) &packet_norm_bp1, queue_id, | |
340 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP1_F0 + PACKET_LENGTH_DELTA, |
|
340 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP1_F0 + PACKET_LENGTH_DELTA, | |
341 | SID_NORM_BP1_F0 ); |
|
341 | SID_NORM_BP1_F0 ); | |
342 | if (incomingMsg->event & RTEMS_EVENT_NORM_BP2_F0) |
|
342 | if (incomingMsg->event & RTEMS_EVENT_NORM_BP2_F0) | |
343 | { |
|
343 | { | |
344 | // 1) compute the BP2 set using the same ASM as the one used for BP1 |
|
344 | // 1) compute the BP2 set using the same ASM as the one used for BP1 | |
345 | BP2_set( compressed_sm_norm_f0, NB_BINS_COMPRESSED_SM_F0, packet_norm_bp2.data ); |
|
345 | BP2_set( compressed_sm_norm_f0, NB_BINS_COMPRESSED_SM_F0, packet_norm_bp2.data ); | |
346 | // 2) send the BP2 set |
|
346 | // 2) send the BP2 set | |
347 | set_time( packet_norm_bp2.time, (unsigned char *) &incomingMsg->coarseTimeNORM ); |
|
347 | set_time( packet_norm_bp2.time, (unsigned char *) &incomingMsg->coarseTimeNORM ); | |
348 | set_time( packet_norm_bp2.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeNORM ); |
|
348 | set_time( packet_norm_bp2.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeNORM ); | |
349 | packet_norm_bp2.pa_bia_status_info = pa_bia_status_info; |
|
349 | packet_norm_bp2.pa_bia_status_info = pa_bia_status_info; | |
350 | packet_norm_bp2.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
350 | packet_norm_bp2.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
351 | BP_send( (char *) &packet_norm_bp2, queue_id, |
|
351 | BP_send( (char *) &packet_norm_bp2, queue_id, | |
352 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP2_F0 + PACKET_LENGTH_DELTA, |
|
352 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP2_F0 + PACKET_LENGTH_DELTA, | |
353 | SID_NORM_BP2_F0); |
|
353 | SID_NORM_BP2_F0); | |
354 | } |
|
354 | } | |
355 | } |
|
355 | } | |
356 |
|
356 | |||
357 | if (incomingMsg->event & RTEMS_EVENT_NORM_ASM_F0) |
|
357 | if (incomingMsg->event & RTEMS_EVENT_NORM_ASM_F0) | |
358 | { |
|
358 | { | |
359 | // 1) reorganize the ASM and divide |
|
359 | // 1) reorganize the ASM and divide | |
360 | ASM_reorganize_and_divide( asm_f0_patched_norm, |
|
360 | ASM_reorganize_and_divide( asm_f0_patched_norm, | |
361 | (float*) current_ring_node_to_send_asm_f0->buffer_address, |
|
361 | (float*) current_ring_node_to_send_asm_f0->buffer_address, | |
362 | nbSMInASMNORM ); |
|
362 | nbSMInASMNORM ); | |
363 | current_ring_node_to_send_asm_f0->coarseTime = incomingMsg->coarseTimeNORM; |
|
363 | current_ring_node_to_send_asm_f0->coarseTime = incomingMsg->coarseTimeNORM; | |
364 | current_ring_node_to_send_asm_f0->fineTime = incomingMsg->fineTimeNORM; |
|
364 | current_ring_node_to_send_asm_f0->fineTime = incomingMsg->fineTimeNORM; | |
365 | current_ring_node_to_send_asm_f0->sid = SID_NORM_ASM_F0; |
|
365 | current_ring_node_to_send_asm_f0->sid = SID_NORM_ASM_F0; | |
366 |
|
366 | |||
367 | // 3) send the spectral matrix packets |
|
367 | // 3) send the spectral matrix packets | |
368 | status = rtems_message_queue_send( queue_id, ¤t_ring_node_to_send_asm_f0, sizeof( ring_node* ) ); |
|
368 | status = rtems_message_queue_send( queue_id, ¤t_ring_node_to_send_asm_f0, sizeof( ring_node* ) ); | |
369 |
|
369 | |||
370 | // change asm ring node |
|
370 | // change asm ring node | |
371 | current_ring_node_to_send_asm_f0 = current_ring_node_to_send_asm_f0->next; |
|
371 | current_ring_node_to_send_asm_f0 = current_ring_node_to_send_asm_f0->next; | |
372 | } |
|
372 | } | |
373 |
|
373 | |||
374 | update_queue_max_count( queue_id_q_p0, &hk_lfr_q_p0_fifo_size_max ); |
|
374 | update_queue_max_count( queue_id_q_p0, &hk_lfr_q_p0_fifo_size_max ); | |
375 |
|
375 | |||
376 | } |
|
376 | } | |
377 | } |
|
377 | } | |
378 |
|
378 | |||
379 | //********** |
|
379 | //********** | |
380 | // FUNCTIONS |
|
380 | // FUNCTIONS | |
381 |
|
381 | |||
382 | void reset_nb_sm_f0( unsigned char lfrMode ) |
|
382 | void reset_nb_sm_f0( unsigned char lfrMode ) | |
383 | { |
|
383 | { | |
384 | nb_sm_before_f0.norm_bp1 = parameter_dump_packet.sy_lfr_n_bp_p0 * NB_SM_PER_S_F0; |
|
384 | nb_sm_before_f0.norm_bp1 = parameter_dump_packet.sy_lfr_n_bp_p0 * NB_SM_PER_S_F0; | |
385 | nb_sm_before_f0.norm_bp2 = parameter_dump_packet.sy_lfr_n_bp_p1 * NB_SM_PER_S_F0; |
|
385 | nb_sm_before_f0.norm_bp2 = parameter_dump_packet.sy_lfr_n_bp_p1 * NB_SM_PER_S_F0; | |
386 | nb_sm_before_f0.norm_asm = |
|
386 | nb_sm_before_f0.norm_asm = | |
387 | ( (parameter_dump_packet.sy_lfr_n_asm_p[0] * 256) + parameter_dump_packet.sy_lfr_n_asm_p[1]) * NB_SM_PER_S_F0; |
|
387 | ( (parameter_dump_packet.sy_lfr_n_asm_p[0] * 256) + parameter_dump_packet.sy_lfr_n_asm_p[1]) * NB_SM_PER_S_F0; | |
388 | nb_sm_before_f0.sbm1_bp1 = parameter_dump_packet.sy_lfr_s1_bp_p0 * NB_SM_PER_S1_BP_P0; // 0.25 s per digit |
|
388 | nb_sm_before_f0.sbm1_bp1 = parameter_dump_packet.sy_lfr_s1_bp_p0 * NB_SM_PER_S1_BP_P0; // 0.25 s per digit | |
389 | nb_sm_before_f0.sbm1_bp2 = parameter_dump_packet.sy_lfr_s1_bp_p1 * NB_SM_PER_S_F0; |
|
389 | nb_sm_before_f0.sbm1_bp2 = parameter_dump_packet.sy_lfr_s1_bp_p1 * NB_SM_PER_S_F0; | |
390 | nb_sm_before_f0.sbm2_bp1 = parameter_dump_packet.sy_lfr_s2_bp_p0 * NB_SM_PER_S_F0; |
|
390 | nb_sm_before_f0.sbm2_bp1 = parameter_dump_packet.sy_lfr_s2_bp_p0 * NB_SM_PER_S_F0; | |
391 | nb_sm_before_f0.sbm2_bp2 = parameter_dump_packet.sy_lfr_s2_bp_p1 * NB_SM_PER_S_F0; |
|
391 | nb_sm_before_f0.sbm2_bp2 = parameter_dump_packet.sy_lfr_s2_bp_p1 * NB_SM_PER_S_F0; | |
392 | nb_sm_before_f0.burst_bp1 = parameter_dump_packet.sy_lfr_b_bp_p0 * NB_SM_PER_S_F0; |
|
392 | nb_sm_before_f0.burst_bp1 = parameter_dump_packet.sy_lfr_b_bp_p0 * NB_SM_PER_S_F0; | |
393 | nb_sm_before_f0.burst_bp2 = parameter_dump_packet.sy_lfr_b_bp_p1 * NB_SM_PER_S_F0; |
|
393 | nb_sm_before_f0.burst_bp2 = parameter_dump_packet.sy_lfr_b_bp_p1 * NB_SM_PER_S_F0; | |
394 |
|
394 | |||
395 | if (lfrMode == LFR_MODE_SBM1) |
|
395 | if (lfrMode == LFR_MODE_SBM1) | |
396 | { |
|
396 | { | |
397 | nb_sm_before_f0.burst_sbm_bp1 = nb_sm_before_f0.sbm1_bp1; |
|
397 | nb_sm_before_f0.burst_sbm_bp1 = nb_sm_before_f0.sbm1_bp1; | |
398 | nb_sm_before_f0.burst_sbm_bp2 = nb_sm_before_f0.sbm1_bp2; |
|
398 | nb_sm_before_f0.burst_sbm_bp2 = nb_sm_before_f0.sbm1_bp2; | |
399 | } |
|
399 | } | |
400 | else if (lfrMode == LFR_MODE_SBM2) |
|
400 | else if (lfrMode == LFR_MODE_SBM2) | |
401 | { |
|
401 | { | |
402 | nb_sm_before_f0.burst_sbm_bp1 = nb_sm_before_f0.sbm2_bp1; |
|
402 | nb_sm_before_f0.burst_sbm_bp1 = nb_sm_before_f0.sbm2_bp1; | |
403 | nb_sm_before_f0.burst_sbm_bp2 = nb_sm_before_f0.sbm2_bp2; |
|
403 | nb_sm_before_f0.burst_sbm_bp2 = nb_sm_before_f0.sbm2_bp2; | |
404 | } |
|
404 | } | |
405 | else if (lfrMode == LFR_MODE_BURST) |
|
405 | else if (lfrMode == LFR_MODE_BURST) | |
406 | { |
|
406 | { | |
407 | nb_sm_before_f0.burst_sbm_bp1 = nb_sm_before_f0.burst_bp1; |
|
407 | nb_sm_before_f0.burst_sbm_bp1 = nb_sm_before_f0.burst_bp1; | |
408 | nb_sm_before_f0.burst_sbm_bp2 = nb_sm_before_f0.burst_bp2; |
|
408 | nb_sm_before_f0.burst_sbm_bp2 = nb_sm_before_f0.burst_bp2; | |
409 | } |
|
409 | } | |
410 | else |
|
410 | else | |
411 | { |
|
411 | { | |
412 | nb_sm_before_f0.burst_sbm_bp1 = nb_sm_before_f0.burst_bp1; |
|
412 | nb_sm_before_f0.burst_sbm_bp1 = nb_sm_before_f0.burst_bp1; | |
413 | nb_sm_before_f0.burst_sbm_bp2 = nb_sm_before_f0.burst_bp2; |
|
413 | nb_sm_before_f0.burst_sbm_bp2 = nb_sm_before_f0.burst_bp2; | |
414 | } |
|
414 | } | |
415 | } |
|
415 | } | |
416 |
|
416 | |||
417 | void init_k_coefficients_prc0( void ) |
|
417 | void init_k_coefficients_prc0( void ) | |
418 | { |
|
418 | { | |
419 | init_k_coefficients( k_coeff_intercalib_f0_norm, NB_BINS_COMPRESSED_SM_F0 ); |
|
419 | init_k_coefficients( k_coeff_intercalib_f0_norm, NB_BINS_COMPRESSED_SM_F0 ); | |
420 |
|
420 | |||
421 | init_kcoeff_sbm_from_kcoeff_norm( k_coeff_intercalib_f0_norm, k_coeff_intercalib_f0_sbm, NB_BINS_COMPRESSED_SM_F0); |
|
421 | init_kcoeff_sbm_from_kcoeff_norm( k_coeff_intercalib_f0_norm, k_coeff_intercalib_f0_sbm, NB_BINS_COMPRESSED_SM_F0); | |
422 | } |
|
422 | } | |
423 |
|
423 |
@@ -1,407 +1,407 | |||||
1 | /** Functions related to data processing. |
|
1 | /** Functions related to data processing. | |
2 | * |
|
2 | * | |
3 | * @file |
|
3 | * @file | |
4 | * @author P. LEROY |
|
4 | * @author P. LEROY | |
5 | * |
|
5 | * | |
6 | * These function are related to data processing, i.e. spectral matrices averaging and basic parameters computation. |
|
6 | * These function are related to data processing, i.e. spectral matrices averaging and basic parameters computation. | |
7 | * |
|
7 | * | |
8 | */ |
|
8 | */ | |
9 |
|
9 | |||
10 | #include "avf1_prc1.h" |
|
10 | #include "avf1_prc1.h" | |
11 |
|
11 | |||
12 | nb_sm_before_bp_asm_f1 nb_sm_before_f1 = {0}; |
|
12 | nb_sm_before_bp_asm_f1 nb_sm_before_f1 = {0}; | |
13 |
|
13 | |||
14 | //*** |
|
14 | //*** | |
15 | // F1 |
|
15 | // F1 | |
16 | ring_node_asm asm_ring_norm_f1 [ NB_RING_NODES_ASM_NORM_F1 ] = {0}; |
|
16 | ring_node_asm asm_ring_norm_f1 [ NB_RING_NODES_ASM_NORM_F1 ] = {0}; | |
17 | ring_node_asm asm_ring_burst_sbm_f1 [ NB_RING_NODES_ASM_BURST_SBM_F1 ] = {0}; |
|
17 | ring_node_asm asm_ring_burst_sbm_f1 [ NB_RING_NODES_ASM_BURST_SBM_F1 ] = {0}; | |
18 |
|
18 | |||
19 | ring_node ring_to_send_asm_f1 [ NB_RING_NODES_ASM_F1 ] = {0}; |
|
19 | ring_node ring_to_send_asm_f1 [ NB_RING_NODES_ASM_F1 ] = {0}; | |
20 | int buffer_asm_f1 [ NB_RING_NODES_ASM_F1 * TOTAL_SIZE_SM ] = {0}; |
|
20 | int buffer_asm_f1 [ NB_RING_NODES_ASM_F1 * TOTAL_SIZE_SM ] = {0}; | |
21 |
|
21 | |||
22 | float asm_f1_patched_norm [ TOTAL_SIZE_SM ] = {0}; |
|
22 | float asm_f1_patched_norm [ TOTAL_SIZE_SM ] = {0}; | |
23 | float asm_f1_patched_burst_sbm [ TOTAL_SIZE_SM ] = {0}; |
|
23 | float asm_f1_patched_burst_sbm [ TOTAL_SIZE_SM ] = {0}; | |
24 | float asm_f1_reorganized [ TOTAL_SIZE_SM ] = {0}; |
|
24 | float asm_f1_reorganized [ TOTAL_SIZE_SM ] = {0}; | |
25 |
|
25 | |||
26 | float compressed_sm_norm_f1[ TOTAL_SIZE_COMPRESSED_ASM_NORM_F1] = {0}; |
|
26 | float compressed_sm_norm_f1[ TOTAL_SIZE_COMPRESSED_ASM_NORM_F1] = {0}; | |
27 | float compressed_sm_sbm_f1 [ TOTAL_SIZE_COMPRESSED_ASM_SBM_F1 ] = {0}; |
|
27 | float compressed_sm_sbm_f1 [ TOTAL_SIZE_COMPRESSED_ASM_SBM_F1 ] = {0}; | |
28 |
|
28 | |||
29 | float k_coeff_intercalib_f1_norm[ NB_BINS_COMPRESSED_SM_F1 * NB_K_COEFF_PER_BIN ] = {0}; // 13 * 32 = 416 |
|
29 | float k_coeff_intercalib_f1_norm[ NB_BINS_COMPRESSED_SM_F1 * NB_K_COEFF_PER_BIN ] = {0}; // 13 * 32 = 416 | |
30 | float k_coeff_intercalib_f1_sbm[ NB_BINS_COMPRESSED_SM_SBM_F1 * NB_K_COEFF_PER_BIN ] = {0}; // 26 * 32 = 832 |
|
30 | float k_coeff_intercalib_f1_sbm[ NB_BINS_COMPRESSED_SM_SBM_F1 * NB_K_COEFF_PER_BIN ] = {0}; // 26 * 32 = 832 | |
31 |
|
31 | |||
32 | //************ |
|
32 | //************ | |
33 | // RTEMS TASKS |
|
33 | // RTEMS TASKS | |
34 |
|
34 | |||
35 | rtems_task avf1_task( rtems_task_argument lfrRequestedMode ) |
|
35 | rtems_task avf1_task( rtems_task_argument lfrRequestedMode ) | |
36 | { |
|
36 | { | |
37 | int i; |
|
37 | int i; | |
38 |
|
38 | |||
39 | rtems_event_set event_out; |
|
39 | rtems_event_set event_out; | |
40 | rtems_status_code status; |
|
40 | rtems_status_code status; | |
41 | rtems_id queue_id_prc1; |
|
41 | rtems_id queue_id_prc1; | |
42 | asm_msg msgForPRC; |
|
42 | asm_msg msgForPRC; | |
43 | ring_node *nodeForAveraging; |
|
43 | ring_node *nodeForAveraging; | |
44 | ring_node *ring_node_tab[NB_SM_BEFORE_AVF0_F1]; |
|
44 | ring_node *ring_node_tab[NB_SM_BEFORE_AVF0_F1]; | |
45 | ring_node_asm *current_ring_node_asm_burst_sbm_f1; |
|
45 | ring_node_asm *current_ring_node_asm_burst_sbm_f1; | |
46 | ring_node_asm *current_ring_node_asm_norm_f1; |
|
46 | ring_node_asm *current_ring_node_asm_norm_f1; | |
47 |
|
47 | |||
48 | unsigned int nb_norm_bp1; |
|
48 | unsigned int nb_norm_bp1; | |
49 | unsigned int nb_norm_bp2; |
|
49 | unsigned int nb_norm_bp2; | |
50 | unsigned int nb_norm_asm; |
|
50 | unsigned int nb_norm_asm; | |
51 | unsigned int nb_sbm_bp1; |
|
51 | unsigned int nb_sbm_bp1; | |
52 | unsigned int nb_sbm_bp2; |
|
52 | unsigned int nb_sbm_bp2; | |
53 |
|
53 | |||
54 | event_out = EVENT_SETS_NONE_PENDING; |
|
54 | event_out = EVENT_SETS_NONE_PENDING; | |
55 | queue_id_prc1 = RTEMS_ID_NONE; |
|
55 | queue_id_prc1 = RTEMS_ID_NONE; | |
56 |
|
56 | |||
57 | nb_norm_bp1 = 0; |
|
57 | nb_norm_bp1 = 0; | |
58 | nb_norm_bp2 = 0; |
|
58 | nb_norm_bp2 = 0; | |
59 | nb_norm_asm = 0; |
|
59 | nb_norm_asm = 0; | |
60 | nb_sbm_bp1 = 0; |
|
60 | nb_sbm_bp1 = 0; | |
61 | nb_sbm_bp2 = 0; |
|
61 | nb_sbm_bp2 = 0; | |
62 |
|
62 | |||
63 | reset_nb_sm_f1( lfrRequestedMode ); // reset the sm counters that drive the BP and ASM computations / transmissions |
|
63 | reset_nb_sm_f1( lfrRequestedMode ); // reset the sm counters that drive the BP and ASM computations / transmissions | |
64 | ASM_generic_init_ring( asm_ring_norm_f1, NB_RING_NODES_ASM_NORM_F1 ); |
|
64 | ASM_generic_init_ring( asm_ring_norm_f1, NB_RING_NODES_ASM_NORM_F1 ); | |
65 | ASM_generic_init_ring( asm_ring_burst_sbm_f1, NB_RING_NODES_ASM_BURST_SBM_F1 ); |
|
65 | ASM_generic_init_ring( asm_ring_burst_sbm_f1, NB_RING_NODES_ASM_BURST_SBM_F1 ); | |
66 | current_ring_node_asm_norm_f1 = asm_ring_norm_f1; |
|
66 | current_ring_node_asm_norm_f1 = asm_ring_norm_f1; | |
67 | current_ring_node_asm_burst_sbm_f1 = asm_ring_burst_sbm_f1; |
|
67 | current_ring_node_asm_burst_sbm_f1 = asm_ring_burst_sbm_f1; | |
68 |
|
68 | |||
69 | BOOT_PRINTF1("in AVF1 *** lfrRequestedMode = %d\n", (int) lfrRequestedMode) |
|
69 | BOOT_PRINTF1("in AVF1 *** lfrRequestedMode = %d\n", (int) lfrRequestedMode) | |
70 |
|
70 | |||
71 | status = get_message_queue_id_prc1( &queue_id_prc1 ); |
|
71 | status = get_message_queue_id_prc1( &queue_id_prc1 ); | |
72 | if (status != RTEMS_SUCCESSFUL) |
|
72 | if (status != RTEMS_SUCCESSFUL) | |
73 | { |
|
73 | { | |
74 | PRINTF1("in AVF1 *** ERR get_message_queue_id_prc1 %d\n", status) |
|
74 | PRINTF1("in AVF1 *** ERR get_message_queue_id_prc1 %d\n", status) | |
75 | } |
|
75 | } | |
76 |
|
76 | |||
77 | while(1){ |
|
77 | while(1){ | |
78 | rtems_event_receive(RTEMS_EVENT_0, RTEMS_WAIT, RTEMS_NO_TIMEOUT, &event_out); // wait for an RTEMS_EVENT0 |
|
78 | rtems_event_receive(RTEMS_EVENT_0, RTEMS_WAIT, RTEMS_NO_TIMEOUT, &event_out); // wait for an RTEMS_EVENT0 | |
79 |
|
79 | |||
80 | //**************************************** |
|
80 | //**************************************** | |
81 | // initialize the mesage for the MATR task |
|
81 | // initialize the mesage for the MATR task | |
82 | msgForPRC.norm = current_ring_node_asm_norm_f1; |
|
82 | msgForPRC.norm = current_ring_node_asm_norm_f1; | |
83 | msgForPRC.burst_sbm = current_ring_node_asm_burst_sbm_f1; |
|
83 | msgForPRC.burst_sbm = current_ring_node_asm_burst_sbm_f1; | |
84 | msgForPRC.event = EVENT_SETS_NONE_PENDING; // this composite event will be sent to the PRC1 task |
|
84 | msgForPRC.event = EVENT_SETS_NONE_PENDING; // this composite event will be sent to the PRC1 task | |
85 | // |
|
85 | // | |
86 | //**************************************** |
|
86 | //**************************************** | |
87 |
|
87 | |||
88 | nodeForAveraging = getRingNodeForAveraging( 1 ); |
|
88 | nodeForAveraging = getRingNodeForAveraging( 1 ); | |
89 |
|
89 | |||
90 | ring_node_tab[NB_SM_BEFORE_AVF0_F1-1] = nodeForAveraging; |
|
90 | ring_node_tab[NB_SM_BEFORE_AVF0_F1-1] = nodeForAveraging; | |
91 | for ( i = 1; i < (NB_SM_BEFORE_AVF0_F1); i++ ) |
|
91 | for ( i = 1; i < (NB_SM_BEFORE_AVF0_F1); i++ ) | |
92 | { |
|
92 | { | |
93 | nodeForAveraging = nodeForAveraging->previous; |
|
93 | nodeForAveraging = nodeForAveraging->previous; | |
94 | ring_node_tab[NB_SM_BEFORE_AVF0_F1 - i - 1] = nodeForAveraging; |
|
94 | ring_node_tab[NB_SM_BEFORE_AVF0_F1 - i - 1] = nodeForAveraging; | |
95 | } |
|
95 | } | |
96 |
|
96 | |||
97 | // compute the average and store it in the averaged_sm_f1 buffer |
|
97 | // compute the average and store it in the averaged_sm_f1 buffer | |
98 | SM_average( current_ring_node_asm_norm_f1->matrix, |
|
98 | SM_average( current_ring_node_asm_norm_f1->matrix, | |
99 | current_ring_node_asm_burst_sbm_f1->matrix, |
|
99 | current_ring_node_asm_burst_sbm_f1->matrix, | |
100 | ring_node_tab, |
|
100 | ring_node_tab, | |
101 | nb_norm_bp1, nb_sbm_bp1, |
|
101 | nb_norm_bp1, nb_sbm_bp1, | |
102 | &msgForPRC, 1 ); // 1 => frequency channel 1 |
|
102 | &msgForPRC, 1 ); // 1 => frequency channel 1 | |
103 |
|
103 | |||
104 | // update nb_average |
|
104 | // update nb_average | |
105 | nb_norm_bp1 = nb_norm_bp1 + NB_SM_BEFORE_AVF0_F1; |
|
105 | nb_norm_bp1 = nb_norm_bp1 + NB_SM_BEFORE_AVF0_F1; | |
106 | nb_norm_bp2 = nb_norm_bp2 + NB_SM_BEFORE_AVF0_F1; |
|
106 | nb_norm_bp2 = nb_norm_bp2 + NB_SM_BEFORE_AVF0_F1; | |
107 | nb_norm_asm = nb_norm_asm + NB_SM_BEFORE_AVF0_F1; |
|
107 | nb_norm_asm = nb_norm_asm + NB_SM_BEFORE_AVF0_F1; | |
108 | nb_sbm_bp1 = nb_sbm_bp1 + NB_SM_BEFORE_AVF0_F1; |
|
108 | nb_sbm_bp1 = nb_sbm_bp1 + NB_SM_BEFORE_AVF0_F1; | |
109 | nb_sbm_bp2 = nb_sbm_bp2 + NB_SM_BEFORE_AVF0_F1; |
|
109 | nb_sbm_bp2 = nb_sbm_bp2 + NB_SM_BEFORE_AVF0_F1; | |
110 |
|
110 | |||
111 | if (nb_sbm_bp1 == nb_sm_before_f1.burst_sbm_bp1) |
|
111 | if (nb_sbm_bp1 == nb_sm_before_f1.burst_sbm_bp1) | |
112 | { |
|
112 | { | |
113 | nb_sbm_bp1 = 0; |
|
113 | nb_sbm_bp1 = 0; | |
114 | // set another ring for the ASM storage |
|
114 | // set another ring for the ASM storage | |
115 | current_ring_node_asm_burst_sbm_f1 = current_ring_node_asm_burst_sbm_f1->next; |
|
115 | current_ring_node_asm_burst_sbm_f1 = current_ring_node_asm_burst_sbm_f1->next; | |
116 | if ( lfrCurrentMode == LFR_MODE_BURST ) |
|
116 | if ( lfrCurrentMode == LFR_MODE_BURST ) | |
117 | { |
|
117 | { | |
118 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_BURST_BP1_F1; |
|
118 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_BURST_BP1_F1; | |
119 | } |
|
119 | } | |
120 | else if ( lfrCurrentMode == LFR_MODE_SBM2 ) |
|
120 | else if ( lfrCurrentMode == LFR_MODE_SBM2 ) | |
121 | { |
|
121 | { | |
122 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_SBM_BP1_F1; |
|
122 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_SBM_BP1_F1; | |
123 | } |
|
123 | } | |
124 | } |
|
124 | } | |
125 |
|
125 | |||
126 | if (nb_sbm_bp2 == nb_sm_before_f1.burst_sbm_bp2) |
|
126 | if (nb_sbm_bp2 == nb_sm_before_f1.burst_sbm_bp2) | |
127 | { |
|
127 | { | |
128 | nb_sbm_bp2 = 0; |
|
128 | nb_sbm_bp2 = 0; | |
129 | if ( lfrCurrentMode == LFR_MODE_BURST ) |
|
129 | if ( lfrCurrentMode == LFR_MODE_BURST ) | |
130 | { |
|
130 | { | |
131 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_BURST_BP2_F1; |
|
131 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_BURST_BP2_F1; | |
132 | } |
|
132 | } | |
133 | else if ( lfrCurrentMode == LFR_MODE_SBM2 ) |
|
133 | else if ( lfrCurrentMode == LFR_MODE_SBM2 ) | |
134 | { |
|
134 | { | |
135 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_SBM_BP2_F1; |
|
135 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_SBM_BP2_F1; | |
136 | } |
|
136 | } | |
137 | } |
|
137 | } | |
138 |
|
138 | |||
139 | if (nb_norm_bp1 == nb_sm_before_f1.norm_bp1) |
|
139 | if (nb_norm_bp1 == nb_sm_before_f1.norm_bp1) | |
140 | { |
|
140 | { | |
141 | nb_norm_bp1 = 0; |
|
141 | nb_norm_bp1 = 0; | |
142 | // set another ring for the ASM storage |
|
142 | // set another ring for the ASM storage | |
143 | current_ring_node_asm_norm_f1 = current_ring_node_asm_norm_f1->next; |
|
143 | current_ring_node_asm_norm_f1 = current_ring_node_asm_norm_f1->next; | |
144 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) |
|
144 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) | |
145 | || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) |
|
145 | || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) | |
146 | { |
|
146 | { | |
147 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_BP1_F1; |
|
147 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_BP1_F1; | |
148 | } |
|
148 | } | |
149 | } |
|
149 | } | |
150 |
|
150 | |||
151 | if (nb_norm_bp2 == nb_sm_before_f1.norm_bp2) |
|
151 | if (nb_norm_bp2 == nb_sm_before_f1.norm_bp2) | |
152 | { |
|
152 | { | |
153 | nb_norm_bp2 = 0; |
|
153 | nb_norm_bp2 = 0; | |
154 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) |
|
154 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) | |
155 | || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) |
|
155 | || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) | |
156 | { |
|
156 | { | |
157 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_BP2_F1; |
|
157 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_BP2_F1; | |
158 | } |
|
158 | } | |
159 | } |
|
159 | } | |
160 |
|
160 | |||
161 | if (nb_norm_asm == nb_sm_before_f1.norm_asm) |
|
161 | if (nb_norm_asm == nb_sm_before_f1.norm_asm) | |
162 | { |
|
162 | { | |
163 | nb_norm_asm = 0; |
|
163 | nb_norm_asm = 0; | |
164 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) |
|
164 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) | |
165 | || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) |
|
165 | || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) | |
166 | { |
|
166 | { | |
167 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_ASM_F1; |
|
167 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_ASM_F1; | |
168 | } |
|
168 | } | |
169 | } |
|
169 | } | |
170 |
|
170 | |||
171 | //************************* |
|
171 | //************************* | |
172 | // send the message to PRC |
|
172 | // send the message to PRC | |
173 | if (msgForPRC.event != EVENT_SETS_NONE_PENDING) |
|
173 | if (msgForPRC.event != EVENT_SETS_NONE_PENDING) | |
174 | { |
|
174 | { | |
175 | status = rtems_message_queue_send( queue_id_prc1, (char *) &msgForPRC, MSG_QUEUE_SIZE_PRC1); |
|
175 | status = rtems_message_queue_send( queue_id_prc1, (char *) &msgForPRC, MSG_QUEUE_SIZE_PRC1); | |
176 | } |
|
176 | } | |
177 |
|
177 | |||
178 | if (status != RTEMS_SUCCESSFUL) { |
|
178 | if (status != RTEMS_SUCCESSFUL) { | |
179 | PRINTF1("in AVF1 *** Error sending message to PRC1, code %d\n", status) |
|
179 | PRINTF1("in AVF1 *** Error sending message to PRC1, code %d\n", status) | |
180 | } |
|
180 | } | |
181 | } |
|
181 | } | |
182 | } |
|
182 | } | |
183 |
|
183 | |||
184 | rtems_task prc1_task( rtems_task_argument lfrRequestedMode ) |
|
184 | rtems_task prc1_task( rtems_task_argument lfrRequestedMode ) | |
185 | { |
|
185 | { | |
186 | char incomingData[MSG_QUEUE_SIZE_SEND]; // incoming data buffer |
|
186 | char incomingData[MSG_QUEUE_SIZE_SEND]; // incoming data buffer | |
187 | size_t size; // size of the incoming TC packet |
|
187 | size_t size; // size of the incoming TC packet | |
188 | asm_msg *incomingMsg; |
|
188 | asm_msg *incomingMsg; | |
189 | // |
|
189 | // | |
190 | unsigned char sid; |
|
190 | unsigned char sid; | |
191 | rtems_status_code status; |
|
191 | rtems_status_code status; | |
192 | rtems_id queue_id_send; |
|
192 | rtems_id queue_id_send; | |
193 | rtems_id queue_id_q_p1; |
|
193 | rtems_id queue_id_q_p1; | |
194 | bp_packet_with_spare packet_norm_bp1; |
|
194 | bp_packet_with_spare __attribute__((aligned(4))) packet_norm_bp1; | |
195 | bp_packet packet_norm_bp2; |
|
195 | bp_packet __attribute__((aligned(4))) packet_norm_bp2; | |
196 | bp_packet packet_sbm_bp1; |
|
196 | bp_packet __attribute__((aligned(4))) packet_sbm_bp1; | |
197 | bp_packet packet_sbm_bp2; |
|
197 | bp_packet __attribute__((aligned(4))) packet_sbm_bp2; | |
198 | ring_node *current_ring_node_to_send_asm_f1; |
|
198 | ring_node *current_ring_node_to_send_asm_f1; | |
199 | float nbSMInASMNORM; |
|
199 | float nbSMInASMNORM; | |
200 | float nbSMInASMSBM; |
|
200 | float nbSMInASMSBM; | |
201 |
|
201 | |||
202 | size = 0; |
|
202 | size = 0; | |
203 | queue_id_send = RTEMS_ID_NONE; |
|
203 | queue_id_send = RTEMS_ID_NONE; | |
204 | queue_id_q_p1 = RTEMS_ID_NONE; |
|
204 | queue_id_q_p1 = RTEMS_ID_NONE; | |
205 | memset( &packet_norm_bp1, 0, sizeof(bp_packet_with_spare) ); |
|
205 | memset( &packet_norm_bp1, 0, sizeof(bp_packet_with_spare) ); | |
206 | memset( &packet_norm_bp2, 0, sizeof(bp_packet) ); |
|
206 | memset( &packet_norm_bp2, 0, sizeof(bp_packet) ); | |
207 | memset( &packet_sbm_bp1, 0, sizeof(bp_packet) ); |
|
207 | memset( &packet_sbm_bp1, 0, sizeof(bp_packet) ); | |
208 | memset( &packet_sbm_bp2, 0, sizeof(bp_packet) ); |
|
208 | memset( &packet_sbm_bp2, 0, sizeof(bp_packet) ); | |
209 |
|
209 | |||
210 | // init the ring of the averaged spectral matrices which will be transmitted to the DPU |
|
210 | // init the ring of the averaged spectral matrices which will be transmitted to the DPU | |
211 | init_ring( ring_to_send_asm_f1, NB_RING_NODES_ASM_F1, (volatile int*) buffer_asm_f1, TOTAL_SIZE_SM ); |
|
211 | init_ring( ring_to_send_asm_f1, NB_RING_NODES_ASM_F1, (volatile int*) buffer_asm_f1, TOTAL_SIZE_SM ); | |
212 | current_ring_node_to_send_asm_f1 = ring_to_send_asm_f1; |
|
212 | current_ring_node_to_send_asm_f1 = ring_to_send_asm_f1; | |
213 |
|
213 | |||
214 | //************* |
|
214 | //************* | |
215 | // NORM headers |
|
215 | // NORM headers | |
216 | BP_init_header_with_spare( &packet_norm_bp1, |
|
216 | BP_init_header_with_spare( &packet_norm_bp1, | |
217 | APID_TM_SCIENCE_NORMAL_BURST, SID_NORM_BP1_F1, |
|
217 | APID_TM_SCIENCE_NORMAL_BURST, SID_NORM_BP1_F1, | |
218 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP1_F1, NB_BINS_COMPRESSED_SM_F1 ); |
|
218 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP1_F1, NB_BINS_COMPRESSED_SM_F1 ); | |
219 | BP_init_header( &packet_norm_bp2, |
|
219 | BP_init_header( &packet_norm_bp2, | |
220 | APID_TM_SCIENCE_NORMAL_BURST, SID_NORM_BP2_F1, |
|
220 | APID_TM_SCIENCE_NORMAL_BURST, SID_NORM_BP2_F1, | |
221 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP2_F1, NB_BINS_COMPRESSED_SM_F1); |
|
221 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP2_F1, NB_BINS_COMPRESSED_SM_F1); | |
222 |
|
222 | |||
223 | //*********************** |
|
223 | //*********************** | |
224 | // BURST and SBM2 headers |
|
224 | // BURST and SBM2 headers | |
225 | if ( lfrRequestedMode == LFR_MODE_BURST ) |
|
225 | if ( lfrRequestedMode == LFR_MODE_BURST ) | |
226 | { |
|
226 | { | |
227 | BP_init_header( &packet_sbm_bp1, |
|
227 | BP_init_header( &packet_sbm_bp1, | |
228 | APID_TM_SCIENCE_NORMAL_BURST, SID_BURST_BP1_F1, |
|
228 | APID_TM_SCIENCE_NORMAL_BURST, SID_BURST_BP1_F1, | |
229 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP1_F1, NB_BINS_COMPRESSED_SM_SBM_F1); |
|
229 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP1_F1, NB_BINS_COMPRESSED_SM_SBM_F1); | |
230 | BP_init_header( &packet_sbm_bp2, |
|
230 | BP_init_header( &packet_sbm_bp2, | |
231 | APID_TM_SCIENCE_NORMAL_BURST, SID_BURST_BP2_F1, |
|
231 | APID_TM_SCIENCE_NORMAL_BURST, SID_BURST_BP2_F1, | |
232 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP2_F1, NB_BINS_COMPRESSED_SM_SBM_F1); |
|
232 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP2_F1, NB_BINS_COMPRESSED_SM_SBM_F1); | |
233 | } |
|
233 | } | |
234 | else if ( lfrRequestedMode == LFR_MODE_SBM2 ) |
|
234 | else if ( lfrRequestedMode == LFR_MODE_SBM2 ) | |
235 | { |
|
235 | { | |
236 | BP_init_header( &packet_sbm_bp1, |
|
236 | BP_init_header( &packet_sbm_bp1, | |
237 | APID_TM_SCIENCE_SBM1_SBM2, SID_SBM2_BP1_F1, |
|
237 | APID_TM_SCIENCE_SBM1_SBM2, SID_SBM2_BP1_F1, | |
238 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP1_F1, NB_BINS_COMPRESSED_SM_SBM_F1); |
|
238 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP1_F1, NB_BINS_COMPRESSED_SM_SBM_F1); | |
239 | BP_init_header( &packet_sbm_bp2, |
|
239 | BP_init_header( &packet_sbm_bp2, | |
240 | APID_TM_SCIENCE_SBM1_SBM2, SID_SBM2_BP2_F1, |
|
240 | APID_TM_SCIENCE_SBM1_SBM2, SID_SBM2_BP2_F1, | |
241 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP2_F1, NB_BINS_COMPRESSED_SM_SBM_F1); |
|
241 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP2_F1, NB_BINS_COMPRESSED_SM_SBM_F1); | |
242 | } |
|
242 | } | |
243 | else |
|
243 | else | |
244 | { |
|
244 | { | |
245 | PRINTF1("in PRC1 *** lfrRequestedMode is %d, several headers not initialized\n", (unsigned int) lfrRequestedMode) |
|
245 | PRINTF1("in PRC1 *** lfrRequestedMode is %d, several headers not initialized\n", (unsigned int) lfrRequestedMode) | |
246 | } |
|
246 | } | |
247 |
|
247 | |||
248 | status = get_message_queue_id_send( &queue_id_send ); |
|
248 | status = get_message_queue_id_send( &queue_id_send ); | |
249 | if (status != RTEMS_SUCCESSFUL) |
|
249 | if (status != RTEMS_SUCCESSFUL) | |
250 | { |
|
250 | { | |
251 | PRINTF1("in PRC1 *** ERR get_message_queue_id_send %d\n", status) |
|
251 | PRINTF1("in PRC1 *** ERR get_message_queue_id_send %d\n", status) | |
252 | } |
|
252 | } | |
253 | status = get_message_queue_id_prc1( &queue_id_q_p1); |
|
253 | status = get_message_queue_id_prc1( &queue_id_q_p1); | |
254 | if (status != RTEMS_SUCCESSFUL) |
|
254 | if (status != RTEMS_SUCCESSFUL) | |
255 | { |
|
255 | { | |
256 | PRINTF1("in PRC1 *** ERR get_message_queue_id_prc1 %d\n", status) |
|
256 | PRINTF1("in PRC1 *** ERR get_message_queue_id_prc1 %d\n", status) | |
257 | } |
|
257 | } | |
258 |
|
258 | |||
259 | BOOT_PRINTF1("in PRC1 *** lfrRequestedMode = %d\n", (int) lfrRequestedMode) |
|
259 | BOOT_PRINTF1("in PRC1 *** lfrRequestedMode = %d\n", (int) lfrRequestedMode) | |
260 |
|
260 | |||
261 | while(1){ |
|
261 | while(1){ | |
262 | status = rtems_message_queue_receive( queue_id_q_p1, incomingData, &size, //************************************ |
|
262 | status = rtems_message_queue_receive( queue_id_q_p1, incomingData, &size, //************************************ | |
263 | RTEMS_WAIT, RTEMS_NO_TIMEOUT ); // wait for a message coming from AVF0 |
|
263 | RTEMS_WAIT, RTEMS_NO_TIMEOUT ); // wait for a message coming from AVF0 | |
264 |
|
264 | |||
265 | incomingMsg = (asm_msg*) incomingData; |
|
265 | incomingMsg = (asm_msg*) incomingData; | |
266 |
|
266 | |||
267 | ASM_patch( incomingMsg->norm->matrix, asm_f1_patched_norm ); |
|
267 | ASM_patch( incomingMsg->norm->matrix, asm_f1_patched_norm ); | |
268 | ASM_patch( incomingMsg->burst_sbm->matrix, asm_f1_patched_burst_sbm ); |
|
268 | ASM_patch( incomingMsg->burst_sbm->matrix, asm_f1_patched_burst_sbm ); | |
269 |
|
269 | |||
270 | nbSMInASMNORM = incomingMsg->numberOfSMInASMNORM; |
|
270 | nbSMInASMNORM = incomingMsg->numberOfSMInASMNORM; | |
271 | nbSMInASMSBM = incomingMsg->numberOfSMInASMSBM; |
|
271 | nbSMInASMSBM = incomingMsg->numberOfSMInASMSBM; | |
272 |
|
272 | |||
273 | //*********** |
|
273 | //*********** | |
274 | //*********** |
|
274 | //*********** | |
275 | // BURST SBM2 |
|
275 | // BURST SBM2 | |
276 | //*********** |
|
276 | //*********** | |
277 | //*********** |
|
277 | //*********** | |
278 | if ( (incomingMsg->event & RTEMS_EVENT_BURST_BP1_F1) || (incomingMsg->event & RTEMS_EVENT_SBM_BP1_F1) ) |
|
278 | if ( (incomingMsg->event & RTEMS_EVENT_BURST_BP1_F1) || (incomingMsg->event & RTEMS_EVENT_SBM_BP1_F1) ) | |
279 | { |
|
279 | { | |
280 | sid = getSID( incomingMsg->event ); |
|
280 | sid = getSID( incomingMsg->event ); | |
281 | // 1) compress the matrix for Basic Parameters calculation |
|
281 | // 1) compress the matrix for Basic Parameters calculation | |
282 | ASM_compress_reorganize_and_divide_mask( asm_f1_patched_burst_sbm, compressed_sm_sbm_f1, |
|
282 | ASM_compress_reorganize_and_divide_mask( asm_f1_patched_burst_sbm, compressed_sm_sbm_f1, | |
283 | nbSMInASMSBM, |
|
283 | nbSMInASMSBM, | |
284 | NB_BINS_COMPRESSED_SM_SBM_F1, NB_BINS_TO_AVERAGE_ASM_SBM_F1, |
|
284 | NB_BINS_COMPRESSED_SM_SBM_F1, NB_BINS_TO_AVERAGE_ASM_SBM_F1, | |
285 | ASM_F1_INDICE_START, CHANNELF1); |
|
285 | ASM_F1_INDICE_START, CHANNELF1); | |
286 | // 2) compute the BP1 set |
|
286 | // 2) compute the BP1 set | |
287 | BP1_set( compressed_sm_sbm_f1, k_coeff_intercalib_f1_sbm, NB_BINS_COMPRESSED_SM_SBM_F1, packet_sbm_bp1.data ); |
|
287 | BP1_set( compressed_sm_sbm_f1, k_coeff_intercalib_f1_sbm, NB_BINS_COMPRESSED_SM_SBM_F1, packet_sbm_bp1.data ); | |
288 | // 3) send the BP1 set |
|
288 | // 3) send the BP1 set | |
289 | set_time( packet_sbm_bp1.time, (unsigned char *) &incomingMsg->coarseTimeSBM ); |
|
289 | set_time( packet_sbm_bp1.time, (unsigned char *) &incomingMsg->coarseTimeSBM ); | |
290 | set_time( packet_sbm_bp1.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeSBM ); |
|
290 | set_time( packet_sbm_bp1.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeSBM ); | |
291 | packet_sbm_bp1.pa_bia_status_info = pa_bia_status_info; |
|
291 | packet_sbm_bp1.pa_bia_status_info = pa_bia_status_info; | |
292 | packet_sbm_bp1.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
292 | packet_sbm_bp1.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
293 | BP_send_s1_s2( (char *) &packet_sbm_bp1, queue_id_send, |
|
293 | BP_send_s1_s2( (char *) &packet_sbm_bp1, queue_id_send, | |
294 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP1_F1 + PACKET_LENGTH_DELTA, |
|
294 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP1_F1 + PACKET_LENGTH_DELTA, | |
295 | sid ); |
|
295 | sid ); | |
296 | // 4) compute the BP2 set if needed |
|
296 | // 4) compute the BP2 set if needed | |
297 | if ( (incomingMsg->event & RTEMS_EVENT_BURST_BP2_F1) || (incomingMsg->event & RTEMS_EVENT_SBM_BP2_F1) ) |
|
297 | if ( (incomingMsg->event & RTEMS_EVENT_BURST_BP2_F1) || (incomingMsg->event & RTEMS_EVENT_SBM_BP2_F1) ) | |
298 | { |
|
298 | { | |
299 | // 1) compute the BP2 set |
|
299 | // 1) compute the BP2 set | |
300 | BP2_set( compressed_sm_sbm_f1, NB_BINS_COMPRESSED_SM_SBM_F1, packet_sbm_bp2.data ); |
|
300 | BP2_set( compressed_sm_sbm_f1, NB_BINS_COMPRESSED_SM_SBM_F1, packet_sbm_bp2.data ); | |
301 | // 2) send the BP2 set |
|
301 | // 2) send the BP2 set | |
302 | set_time( packet_sbm_bp2.time, (unsigned char *) &incomingMsg->coarseTimeSBM ); |
|
302 | set_time( packet_sbm_bp2.time, (unsigned char *) &incomingMsg->coarseTimeSBM ); | |
303 | set_time( packet_sbm_bp2.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeSBM ); |
|
303 | set_time( packet_sbm_bp2.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeSBM ); | |
304 | packet_sbm_bp2.pa_bia_status_info = pa_bia_status_info; |
|
304 | packet_sbm_bp2.pa_bia_status_info = pa_bia_status_info; | |
305 | packet_sbm_bp2.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
305 | packet_sbm_bp2.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
306 | BP_send_s1_s2( (char *) &packet_sbm_bp2, queue_id_send, |
|
306 | BP_send_s1_s2( (char *) &packet_sbm_bp2, queue_id_send, | |
307 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP2_F1 + PACKET_LENGTH_DELTA, |
|
307 | PACKET_LENGTH_TM_LFR_SCIENCE_SBM_BP2_F1 + PACKET_LENGTH_DELTA, | |
308 | sid ); |
|
308 | sid ); | |
309 | } |
|
309 | } | |
310 | } |
|
310 | } | |
311 |
|
311 | |||
312 | //***** |
|
312 | //***** | |
313 | //***** |
|
313 | //***** | |
314 | // NORM |
|
314 | // NORM | |
315 | //***** |
|
315 | //***** | |
316 | //***** |
|
316 | //***** | |
317 | if (incomingMsg->event & RTEMS_EVENT_NORM_BP1_F1) |
|
317 | if (incomingMsg->event & RTEMS_EVENT_NORM_BP1_F1) | |
318 | { |
|
318 | { | |
319 | // 1) compress the matrix for Basic Parameters calculation |
|
319 | // 1) compress the matrix for Basic Parameters calculation | |
320 | ASM_compress_reorganize_and_divide_mask( asm_f1_patched_norm, compressed_sm_norm_f1, |
|
320 | ASM_compress_reorganize_and_divide_mask( asm_f1_patched_norm, compressed_sm_norm_f1, | |
321 | nbSMInASMNORM, |
|
321 | nbSMInASMNORM, | |
322 | NB_BINS_COMPRESSED_SM_F1, NB_BINS_TO_AVERAGE_ASM_F1, |
|
322 | NB_BINS_COMPRESSED_SM_F1, NB_BINS_TO_AVERAGE_ASM_F1, | |
323 | ASM_F1_INDICE_START, CHANNELF1 ); |
|
323 | ASM_F1_INDICE_START, CHANNELF1 ); | |
324 | // 2) compute the BP1 set |
|
324 | // 2) compute the BP1 set | |
325 | BP1_set( compressed_sm_norm_f1, k_coeff_intercalib_f1_norm, NB_BINS_COMPRESSED_SM_F1, packet_norm_bp1.data ); |
|
325 | BP1_set( compressed_sm_norm_f1, k_coeff_intercalib_f1_norm, NB_BINS_COMPRESSED_SM_F1, packet_norm_bp1.data ); | |
326 | // 3) send the BP1 set |
|
326 | // 3) send the BP1 set | |
327 | set_time( packet_norm_bp1.time, (unsigned char *) &incomingMsg->coarseTimeNORM ); |
|
327 | set_time( packet_norm_bp1.time, (unsigned char *) &incomingMsg->coarseTimeNORM ); | |
328 | set_time( packet_norm_bp1.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeNORM ); |
|
328 | set_time( packet_norm_bp1.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeNORM ); | |
329 | packet_norm_bp1.pa_bia_status_info = pa_bia_status_info; |
|
329 | packet_norm_bp1.pa_bia_status_info = pa_bia_status_info; | |
330 | packet_norm_bp1.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
330 | packet_norm_bp1.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
331 | BP_send( (char *) &packet_norm_bp1, queue_id_send, |
|
331 | BP_send( (char *) &packet_norm_bp1, queue_id_send, | |
332 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP1_F1 + PACKET_LENGTH_DELTA, |
|
332 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP1_F1 + PACKET_LENGTH_DELTA, | |
333 | SID_NORM_BP1_F1 ); |
|
333 | SID_NORM_BP1_F1 ); | |
334 | if (incomingMsg->event & RTEMS_EVENT_NORM_BP2_F1) |
|
334 | if (incomingMsg->event & RTEMS_EVENT_NORM_BP2_F1) | |
335 | { |
|
335 | { | |
336 | // 1) compute the BP2 set |
|
336 | // 1) compute the BP2 set | |
337 | BP2_set( compressed_sm_norm_f1, NB_BINS_COMPRESSED_SM_F1, packet_norm_bp2.data ); |
|
337 | BP2_set( compressed_sm_norm_f1, NB_BINS_COMPRESSED_SM_F1, packet_norm_bp2.data ); | |
338 | // 2) send the BP2 set |
|
338 | // 2) send the BP2 set | |
339 | set_time( packet_norm_bp2.time, (unsigned char *) &incomingMsg->coarseTimeNORM ); |
|
339 | set_time( packet_norm_bp2.time, (unsigned char *) &incomingMsg->coarseTimeNORM ); | |
340 | set_time( packet_norm_bp2.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeNORM ); |
|
340 | set_time( packet_norm_bp2.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeNORM ); | |
341 | packet_norm_bp2.pa_bia_status_info = pa_bia_status_info; |
|
341 | packet_norm_bp2.pa_bia_status_info = pa_bia_status_info; | |
342 | packet_norm_bp2.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
342 | packet_norm_bp2.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
343 | BP_send( (char *) &packet_norm_bp2, queue_id_send, |
|
343 | BP_send( (char *) &packet_norm_bp2, queue_id_send, | |
344 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP2_F1 + PACKET_LENGTH_DELTA, |
|
344 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP2_F1 + PACKET_LENGTH_DELTA, | |
345 | SID_NORM_BP2_F1 ); |
|
345 | SID_NORM_BP2_F1 ); | |
346 | } |
|
346 | } | |
347 | } |
|
347 | } | |
348 |
|
348 | |||
349 | if (incomingMsg->event & RTEMS_EVENT_NORM_ASM_F1) |
|
349 | if (incomingMsg->event & RTEMS_EVENT_NORM_ASM_F1) | |
350 | { |
|
350 | { | |
351 | // 1) reorganize the ASM and divide |
|
351 | // 1) reorganize the ASM and divide | |
352 | ASM_reorganize_and_divide( asm_f1_patched_norm, |
|
352 | ASM_reorganize_and_divide( asm_f1_patched_norm, | |
353 | (float*) current_ring_node_to_send_asm_f1->buffer_address, |
|
353 | (float*) current_ring_node_to_send_asm_f1->buffer_address, | |
354 | nbSMInASMNORM ); |
|
354 | nbSMInASMNORM ); | |
355 | current_ring_node_to_send_asm_f1->coarseTime = incomingMsg->coarseTimeNORM; |
|
355 | current_ring_node_to_send_asm_f1->coarseTime = incomingMsg->coarseTimeNORM; | |
356 | current_ring_node_to_send_asm_f1->fineTime = incomingMsg->fineTimeNORM; |
|
356 | current_ring_node_to_send_asm_f1->fineTime = incomingMsg->fineTimeNORM; | |
357 | current_ring_node_to_send_asm_f1->sid = SID_NORM_ASM_F1; |
|
357 | current_ring_node_to_send_asm_f1->sid = SID_NORM_ASM_F1; | |
358 |
|
358 | |||
359 | // 3) send the spectral matrix packets |
|
359 | // 3) send the spectral matrix packets | |
360 | status = rtems_message_queue_send( queue_id_send, ¤t_ring_node_to_send_asm_f1, sizeof( ring_node* ) ); |
|
360 | status = rtems_message_queue_send( queue_id_send, ¤t_ring_node_to_send_asm_f1, sizeof( ring_node* ) ); | |
361 |
|
361 | |||
362 | // change asm ring node |
|
362 | // change asm ring node | |
363 | current_ring_node_to_send_asm_f1 = current_ring_node_to_send_asm_f1->next; |
|
363 | current_ring_node_to_send_asm_f1 = current_ring_node_to_send_asm_f1->next; | |
364 | } |
|
364 | } | |
365 |
|
365 | |||
366 | update_queue_max_count( queue_id_q_p1, &hk_lfr_q_p1_fifo_size_max ); |
|
366 | update_queue_max_count( queue_id_q_p1, &hk_lfr_q_p1_fifo_size_max ); | |
367 |
|
367 | |||
368 | } |
|
368 | } | |
369 | } |
|
369 | } | |
370 |
|
370 | |||
371 | //********** |
|
371 | //********** | |
372 | // FUNCTIONS |
|
372 | // FUNCTIONS | |
373 |
|
373 | |||
374 | void reset_nb_sm_f1( unsigned char lfrMode ) |
|
374 | void reset_nb_sm_f1( unsigned char lfrMode ) | |
375 | { |
|
375 | { | |
376 | nb_sm_before_f1.norm_bp1 = parameter_dump_packet.sy_lfr_n_bp_p0 * NB_SM_PER_S_F1; |
|
376 | nb_sm_before_f1.norm_bp1 = parameter_dump_packet.sy_lfr_n_bp_p0 * NB_SM_PER_S_F1; | |
377 | nb_sm_before_f1.norm_bp2 = parameter_dump_packet.sy_lfr_n_bp_p1 * NB_SM_PER_S_F1; |
|
377 | nb_sm_before_f1.norm_bp2 = parameter_dump_packet.sy_lfr_n_bp_p1 * NB_SM_PER_S_F1; | |
378 | nb_sm_before_f1.norm_asm = |
|
378 | nb_sm_before_f1.norm_asm = | |
379 | ( (parameter_dump_packet.sy_lfr_n_asm_p[0] * 256) + parameter_dump_packet.sy_lfr_n_asm_p[1]) * NB_SM_PER_S_F1; |
|
379 | ( (parameter_dump_packet.sy_lfr_n_asm_p[0] * 256) + parameter_dump_packet.sy_lfr_n_asm_p[1]) * NB_SM_PER_S_F1; | |
380 | nb_sm_before_f1.sbm2_bp1 = parameter_dump_packet.sy_lfr_s2_bp_p0 * NB_SM_PER_S_F1; |
|
380 | nb_sm_before_f1.sbm2_bp1 = parameter_dump_packet.sy_lfr_s2_bp_p0 * NB_SM_PER_S_F1; | |
381 | nb_sm_before_f1.sbm2_bp2 = parameter_dump_packet.sy_lfr_s2_bp_p1 * NB_SM_PER_S_F1; |
|
381 | nb_sm_before_f1.sbm2_bp2 = parameter_dump_packet.sy_lfr_s2_bp_p1 * NB_SM_PER_S_F1; | |
382 | nb_sm_before_f1.burst_bp1 = parameter_dump_packet.sy_lfr_b_bp_p0 * NB_SM_PER_S_F1; |
|
382 | nb_sm_before_f1.burst_bp1 = parameter_dump_packet.sy_lfr_b_bp_p0 * NB_SM_PER_S_F1; | |
383 | nb_sm_before_f1.burst_bp2 = parameter_dump_packet.sy_lfr_b_bp_p1 * NB_SM_PER_S_F1; |
|
383 | nb_sm_before_f1.burst_bp2 = parameter_dump_packet.sy_lfr_b_bp_p1 * NB_SM_PER_S_F1; | |
384 |
|
384 | |||
385 | if (lfrMode == LFR_MODE_SBM2) |
|
385 | if (lfrMode == LFR_MODE_SBM2) | |
386 | { |
|
386 | { | |
387 | nb_sm_before_f1.burst_sbm_bp1 = nb_sm_before_f1.sbm2_bp1; |
|
387 | nb_sm_before_f1.burst_sbm_bp1 = nb_sm_before_f1.sbm2_bp1; | |
388 | nb_sm_before_f1.burst_sbm_bp2 = nb_sm_before_f1.sbm2_bp2; |
|
388 | nb_sm_before_f1.burst_sbm_bp2 = nb_sm_before_f1.sbm2_bp2; | |
389 | } |
|
389 | } | |
390 | else if (lfrMode == LFR_MODE_BURST) |
|
390 | else if (lfrMode == LFR_MODE_BURST) | |
391 | { |
|
391 | { | |
392 | nb_sm_before_f1.burst_sbm_bp1 = nb_sm_before_f1.burst_bp1; |
|
392 | nb_sm_before_f1.burst_sbm_bp1 = nb_sm_before_f1.burst_bp1; | |
393 | nb_sm_before_f1.burst_sbm_bp2 = nb_sm_before_f1.burst_bp2; |
|
393 | nb_sm_before_f1.burst_sbm_bp2 = nb_sm_before_f1.burst_bp2; | |
394 | } |
|
394 | } | |
395 | else |
|
395 | else | |
396 | { |
|
396 | { | |
397 | nb_sm_before_f1.burst_sbm_bp1 = nb_sm_before_f1.burst_bp1; |
|
397 | nb_sm_before_f1.burst_sbm_bp1 = nb_sm_before_f1.burst_bp1; | |
398 | nb_sm_before_f1.burst_sbm_bp2 = nb_sm_before_f1.burst_bp2; |
|
398 | nb_sm_before_f1.burst_sbm_bp2 = nb_sm_before_f1.burst_bp2; | |
399 | } |
|
399 | } | |
400 | } |
|
400 | } | |
401 |
|
401 | |||
402 | void init_k_coefficients_prc1( void ) |
|
402 | void init_k_coefficients_prc1( void ) | |
403 | { |
|
403 | { | |
404 | init_k_coefficients( k_coeff_intercalib_f1_norm, NB_BINS_COMPRESSED_SM_F1 ); |
|
404 | init_k_coefficients( k_coeff_intercalib_f1_norm, NB_BINS_COMPRESSED_SM_F1 ); | |
405 |
|
405 | |||
406 | init_kcoeff_sbm_from_kcoeff_norm( k_coeff_intercalib_f1_norm, k_coeff_intercalib_f1_sbm, NB_BINS_COMPRESSED_SM_F1); |
|
406 | init_kcoeff_sbm_from_kcoeff_norm( k_coeff_intercalib_f1_norm, k_coeff_intercalib_f1_sbm, NB_BINS_COMPRESSED_SM_F1); | |
407 | } |
|
407 | } |
@@ -1,332 +1,332 | |||||
1 | /** Functions related to data processing. |
|
1 | /** Functions related to data processing. | |
2 | * |
|
2 | * | |
3 | * @file |
|
3 | * @file | |
4 | * @author P. LEROY |
|
4 | * @author P. LEROY | |
5 | * |
|
5 | * | |
6 | * These function are related to data processing, i.e. spectral matrices averaging and basic parameters computation. |
|
6 | * These function are related to data processing, i.e. spectral matrices averaging and basic parameters computation. | |
7 | * |
|
7 | * | |
8 | */ |
|
8 | */ | |
9 |
|
9 | |||
10 | #include "avf2_prc2.h" |
|
10 | #include "avf2_prc2.h" | |
11 |
|
11 | |||
12 | nb_sm_before_bp_asm_f2 nb_sm_before_f2 = {0}; |
|
12 | nb_sm_before_bp_asm_f2 nb_sm_before_f2 = {0}; | |
13 |
|
13 | |||
14 | //*** |
|
14 | //*** | |
15 | // F2 |
|
15 | // F2 | |
16 | ring_node_asm asm_ring_norm_f2 [ NB_RING_NODES_ASM_NORM_F2 ] = {0}; |
|
16 | ring_node_asm asm_ring_norm_f2 [ NB_RING_NODES_ASM_NORM_F2 ] = {0}; | |
17 |
|
17 | |||
18 | ring_node ring_to_send_asm_f2 [ NB_RING_NODES_ASM_F2 ] = {0}; |
|
18 | ring_node ring_to_send_asm_f2 [ NB_RING_NODES_ASM_F2 ] = {0}; | |
19 | int buffer_asm_f2 [ NB_RING_NODES_ASM_F2 * TOTAL_SIZE_SM ] = {0}; |
|
19 | int buffer_asm_f2 [ NB_RING_NODES_ASM_F2 * TOTAL_SIZE_SM ] = {0}; | |
20 |
|
20 | |||
21 | float asm_f2_patched_norm [ TOTAL_SIZE_SM ] = {0}; |
|
21 | float asm_f2_patched_norm [ TOTAL_SIZE_SM ] = {0}; | |
22 | float asm_f2_reorganized [ TOTAL_SIZE_SM ] = {0}; |
|
22 | float asm_f2_reorganized [ TOTAL_SIZE_SM ] = {0}; | |
23 |
|
23 | |||
24 | float compressed_sm_norm_f2[ TOTAL_SIZE_COMPRESSED_ASM_NORM_F2] = {0}; |
|
24 | float compressed_sm_norm_f2[ TOTAL_SIZE_COMPRESSED_ASM_NORM_F2] = {0}; | |
25 |
|
25 | |||
26 | float k_coeff_intercalib_f2[ NB_BINS_COMPRESSED_SM_F2 * NB_K_COEFF_PER_BIN ] = {0}; // 12 * 32 = 384 |
|
26 | float k_coeff_intercalib_f2[ NB_BINS_COMPRESSED_SM_F2 * NB_K_COEFF_PER_BIN ] = {0}; // 12 * 32 = 384 | |
27 |
|
27 | |||
28 | //************ |
|
28 | //************ | |
29 | // RTEMS TASKS |
|
29 | // RTEMS TASKS | |
30 |
|
30 | |||
31 | //*** |
|
31 | //*** | |
32 | // F2 |
|
32 | // F2 | |
33 | rtems_task avf2_task( rtems_task_argument argument ) |
|
33 | rtems_task avf2_task( rtems_task_argument argument ) | |
34 | { |
|
34 | { | |
35 | rtems_event_set event_out; |
|
35 | rtems_event_set event_out; | |
36 | rtems_status_code status; |
|
36 | rtems_status_code status; | |
37 | rtems_id queue_id_prc2; |
|
37 | rtems_id queue_id_prc2; | |
38 | asm_msg msgForPRC; |
|
38 | asm_msg msgForPRC; | |
39 | ring_node *nodeForAveraging; |
|
39 | ring_node *nodeForAveraging; | |
40 | ring_node_asm *current_ring_node_asm_norm_f2; |
|
40 | ring_node_asm *current_ring_node_asm_norm_f2; | |
41 |
|
41 | |||
42 | unsigned int nb_norm_bp1; |
|
42 | unsigned int nb_norm_bp1; | |
43 | unsigned int nb_norm_bp2; |
|
43 | unsigned int nb_norm_bp2; | |
44 | unsigned int nb_norm_asm; |
|
44 | unsigned int nb_norm_asm; | |
45 |
|
45 | |||
46 | event_out = EVENT_SETS_NONE_PENDING; |
|
46 | event_out = EVENT_SETS_NONE_PENDING; | |
47 | queue_id_prc2 = RTEMS_ID_NONE; |
|
47 | queue_id_prc2 = RTEMS_ID_NONE; | |
48 | nb_norm_bp1 = 0; |
|
48 | nb_norm_bp1 = 0; | |
49 | nb_norm_bp2 = 0; |
|
49 | nb_norm_bp2 = 0; | |
50 | nb_norm_asm = 0; |
|
50 | nb_norm_asm = 0; | |
51 |
|
51 | |||
52 | reset_nb_sm_f2( ); // reset the sm counters that drive the BP and ASM computations / transmissions |
|
52 | reset_nb_sm_f2( ); // reset the sm counters that drive the BP and ASM computations / transmissions | |
53 | ASM_generic_init_ring( asm_ring_norm_f2, NB_RING_NODES_ASM_NORM_F2 ); |
|
53 | ASM_generic_init_ring( asm_ring_norm_f2, NB_RING_NODES_ASM_NORM_F2 ); | |
54 | current_ring_node_asm_norm_f2 = asm_ring_norm_f2; |
|
54 | current_ring_node_asm_norm_f2 = asm_ring_norm_f2; | |
55 |
|
55 | |||
56 | BOOT_PRINTF("in AVF2 ***\n") |
|
56 | BOOT_PRINTF("in AVF2 ***\n") | |
57 |
|
57 | |||
58 | status = get_message_queue_id_prc2( &queue_id_prc2 ); |
|
58 | status = get_message_queue_id_prc2( &queue_id_prc2 ); | |
59 | if (status != RTEMS_SUCCESSFUL) |
|
59 | if (status != RTEMS_SUCCESSFUL) | |
60 | { |
|
60 | { | |
61 | PRINTF1("in AVF2 *** ERR get_message_queue_id_prc2 %d\n", status) |
|
61 | PRINTF1("in AVF2 *** ERR get_message_queue_id_prc2 %d\n", status) | |
62 | } |
|
62 | } | |
63 |
|
63 | |||
64 | while(1){ |
|
64 | while(1){ | |
65 | rtems_event_receive(RTEMS_EVENT_0, RTEMS_WAIT, RTEMS_NO_TIMEOUT, &event_out); // wait for an RTEMS_EVENT0 |
|
65 | rtems_event_receive(RTEMS_EVENT_0, RTEMS_WAIT, RTEMS_NO_TIMEOUT, &event_out); // wait for an RTEMS_EVENT0 | |
66 |
|
66 | |||
67 | //**************************************** |
|
67 | //**************************************** | |
68 | // initialize the mesage for the MATR task |
|
68 | // initialize the mesage for the MATR task | |
69 | msgForPRC.norm = current_ring_node_asm_norm_f2; |
|
69 | msgForPRC.norm = current_ring_node_asm_norm_f2; | |
70 | msgForPRC.burst_sbm = NULL; |
|
70 | msgForPRC.burst_sbm = NULL; | |
71 | msgForPRC.event = EVENT_SETS_NONE_PENDING; // this composite event will be sent to the PRC2 task |
|
71 | msgForPRC.event = EVENT_SETS_NONE_PENDING; // this composite event will be sent to the PRC2 task | |
72 | // |
|
72 | // | |
73 | //**************************************** |
|
73 | //**************************************** | |
74 |
|
74 | |||
75 | nodeForAveraging = getRingNodeForAveraging( CHANNELF2 ); |
|
75 | nodeForAveraging = getRingNodeForAveraging( CHANNELF2 ); | |
76 |
|
76 | |||
77 | // compute the average and store it in the averaged_sm_f2 buffer |
|
77 | // compute the average and store it in the averaged_sm_f2 buffer | |
78 | SM_average_f2( current_ring_node_asm_norm_f2->matrix, |
|
78 | SM_average_f2( current_ring_node_asm_norm_f2->matrix, | |
79 | nodeForAveraging, |
|
79 | nodeForAveraging, | |
80 | nb_norm_bp1, |
|
80 | nb_norm_bp1, | |
81 | &msgForPRC ); |
|
81 | &msgForPRC ); | |
82 |
|
82 | |||
83 | // update nb_average |
|
83 | // update nb_average | |
84 | nb_norm_bp1 = nb_norm_bp1 + NB_SM_BEFORE_AVF2; |
|
84 | nb_norm_bp1 = nb_norm_bp1 + NB_SM_BEFORE_AVF2; | |
85 | nb_norm_bp2 = nb_norm_bp2 + NB_SM_BEFORE_AVF2; |
|
85 | nb_norm_bp2 = nb_norm_bp2 + NB_SM_BEFORE_AVF2; | |
86 | nb_norm_asm = nb_norm_asm + NB_SM_BEFORE_AVF2; |
|
86 | nb_norm_asm = nb_norm_asm + NB_SM_BEFORE_AVF2; | |
87 |
|
87 | |||
88 | if (nb_norm_bp1 == nb_sm_before_f2.norm_bp1) |
|
88 | if (nb_norm_bp1 == nb_sm_before_f2.norm_bp1) | |
89 | { |
|
89 | { | |
90 | nb_norm_bp1 = 0; |
|
90 | nb_norm_bp1 = 0; | |
91 | // set another ring for the ASM storage |
|
91 | // set another ring for the ASM storage | |
92 | current_ring_node_asm_norm_f2 = current_ring_node_asm_norm_f2->next; |
|
92 | current_ring_node_asm_norm_f2 = current_ring_node_asm_norm_f2->next; | |
93 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) || (lfrCurrentMode == LFR_MODE_SBM1) |
|
93 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) || (lfrCurrentMode == LFR_MODE_SBM1) | |
94 | || (lfrCurrentMode == LFR_MODE_SBM2) ) |
|
94 | || (lfrCurrentMode == LFR_MODE_SBM2) ) | |
95 | { |
|
95 | { | |
96 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_BP1_F2; |
|
96 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_BP1_F2; | |
97 | } |
|
97 | } | |
98 | } |
|
98 | } | |
99 |
|
99 | |||
100 | if (nb_norm_bp2 == nb_sm_before_f2.norm_bp2) |
|
100 | if (nb_norm_bp2 == nb_sm_before_f2.norm_bp2) | |
101 | { |
|
101 | { | |
102 | nb_norm_bp2 = 0; |
|
102 | nb_norm_bp2 = 0; | |
103 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) || (lfrCurrentMode == LFR_MODE_SBM1) |
|
103 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) || (lfrCurrentMode == LFR_MODE_SBM1) | |
104 | || (lfrCurrentMode == LFR_MODE_SBM2) ) |
|
104 | || (lfrCurrentMode == LFR_MODE_SBM2) ) | |
105 | { |
|
105 | { | |
106 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_BP2_F2; |
|
106 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_BP2_F2; | |
107 | } |
|
107 | } | |
108 | } |
|
108 | } | |
109 |
|
109 | |||
110 | if (nb_norm_asm == nb_sm_before_f2.norm_asm) |
|
110 | if (nb_norm_asm == nb_sm_before_f2.norm_asm) | |
111 | { |
|
111 | { | |
112 | nb_norm_asm = 0; |
|
112 | nb_norm_asm = 0; | |
113 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) || (lfrCurrentMode == LFR_MODE_SBM1) |
|
113 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) || (lfrCurrentMode == LFR_MODE_SBM1) | |
114 | || (lfrCurrentMode == LFR_MODE_SBM2) ) |
|
114 | || (lfrCurrentMode == LFR_MODE_SBM2) ) | |
115 | { |
|
115 | { | |
116 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_ASM_F2; |
|
116 | msgForPRC.event = msgForPRC.event | RTEMS_EVENT_NORM_ASM_F2; | |
117 | } |
|
117 | } | |
118 | } |
|
118 | } | |
119 |
|
119 | |||
120 | //************************* |
|
120 | //************************* | |
121 | // send the message to PRC2 |
|
121 | // send the message to PRC2 | |
122 | if (msgForPRC.event != EVENT_SETS_NONE_PENDING) |
|
122 | if (msgForPRC.event != EVENT_SETS_NONE_PENDING) | |
123 | { |
|
123 | { | |
124 | status = rtems_message_queue_send( queue_id_prc2, (char *) &msgForPRC, MSG_QUEUE_SIZE_PRC2); |
|
124 | status = rtems_message_queue_send( queue_id_prc2, (char *) &msgForPRC, MSG_QUEUE_SIZE_PRC2); | |
125 | } |
|
125 | } | |
126 |
|
126 | |||
127 | if (status != RTEMS_SUCCESSFUL) { |
|
127 | if (status != RTEMS_SUCCESSFUL) { | |
128 | PRINTF1("in AVF2 *** Error sending message to PRC2, code %d\n", status) |
|
128 | PRINTF1("in AVF2 *** Error sending message to PRC2, code %d\n", status) | |
129 | } |
|
129 | } | |
130 | } |
|
130 | } | |
131 | } |
|
131 | } | |
132 |
|
132 | |||
133 | rtems_task prc2_task( rtems_task_argument argument ) |
|
133 | rtems_task prc2_task( rtems_task_argument argument ) | |
134 | { |
|
134 | { | |
135 | char incomingData[MSG_QUEUE_SIZE_SEND]; // incoming data buffer |
|
135 | char incomingData[MSG_QUEUE_SIZE_SEND]; // incoming data buffer | |
136 | size_t size; // size of the incoming TC packet |
|
136 | size_t size; // size of the incoming TC packet | |
137 | asm_msg *incomingMsg; |
|
137 | asm_msg *incomingMsg; | |
138 | // |
|
138 | // | |
139 | rtems_status_code status; |
|
139 | rtems_status_code status; | |
140 | rtems_id queue_id_send; |
|
140 | rtems_id queue_id_send; | |
141 | rtems_id queue_id_q_p2; |
|
141 | rtems_id queue_id_q_p2; | |
142 | bp_packet packet_norm_bp1; |
|
142 | bp_packet __attribute__((aligned(4))) packet_norm_bp1; | |
143 | bp_packet packet_norm_bp2; |
|
143 | bp_packet __attribute__((aligned(4))) packet_norm_bp2; | |
144 | ring_node *current_ring_node_to_send_asm_f2; |
|
144 | ring_node *current_ring_node_to_send_asm_f2; | |
145 | float nbSMInASMNORM; |
|
145 | float nbSMInASMNORM; | |
146 |
|
146 | |||
147 | unsigned long long int localTime; |
|
147 | unsigned long long int localTime; | |
148 |
|
148 | |||
149 | size = 0; |
|
149 | size = 0; | |
150 | queue_id_send = RTEMS_ID_NONE; |
|
150 | queue_id_send = RTEMS_ID_NONE; | |
151 | queue_id_q_p2 = RTEMS_ID_NONE; |
|
151 | queue_id_q_p2 = RTEMS_ID_NONE; | |
152 | memset( &packet_norm_bp1, 0, sizeof(bp_packet) ); |
|
152 | memset( &packet_norm_bp1, 0, sizeof(bp_packet) ); | |
153 | memset( &packet_norm_bp2, 0, sizeof(bp_packet) ); |
|
153 | memset( &packet_norm_bp2, 0, sizeof(bp_packet) ); | |
154 |
|
154 | |||
155 | // init the ring of the averaged spectral matrices which will be transmitted to the DPU |
|
155 | // init the ring of the averaged spectral matrices which will be transmitted to the DPU | |
156 | init_ring( ring_to_send_asm_f2, NB_RING_NODES_ASM_F2, (volatile int*) buffer_asm_f2, TOTAL_SIZE_SM ); |
|
156 | init_ring( ring_to_send_asm_f2, NB_RING_NODES_ASM_F2, (volatile int*) buffer_asm_f2, TOTAL_SIZE_SM ); | |
157 | current_ring_node_to_send_asm_f2 = ring_to_send_asm_f2; |
|
157 | current_ring_node_to_send_asm_f2 = ring_to_send_asm_f2; | |
158 |
|
158 | |||
159 | //************* |
|
159 | //************* | |
160 | // NORM headers |
|
160 | // NORM headers | |
161 | BP_init_header( &packet_norm_bp1, |
|
161 | BP_init_header( &packet_norm_bp1, | |
162 | APID_TM_SCIENCE_NORMAL_BURST, SID_NORM_BP1_F2, |
|
162 | APID_TM_SCIENCE_NORMAL_BURST, SID_NORM_BP1_F2, | |
163 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP1_F2, NB_BINS_COMPRESSED_SM_F2 ); |
|
163 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP1_F2, NB_BINS_COMPRESSED_SM_F2 ); | |
164 | BP_init_header( &packet_norm_bp2, |
|
164 | BP_init_header( &packet_norm_bp2, | |
165 | APID_TM_SCIENCE_NORMAL_BURST, SID_NORM_BP2_F2, |
|
165 | APID_TM_SCIENCE_NORMAL_BURST, SID_NORM_BP2_F2, | |
166 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP2_F2, NB_BINS_COMPRESSED_SM_F2 ); |
|
166 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP2_F2, NB_BINS_COMPRESSED_SM_F2 ); | |
167 |
|
167 | |||
168 | status = get_message_queue_id_send( &queue_id_send ); |
|
168 | status = get_message_queue_id_send( &queue_id_send ); | |
169 | if (status != RTEMS_SUCCESSFUL) |
|
169 | if (status != RTEMS_SUCCESSFUL) | |
170 | { |
|
170 | { | |
171 | PRINTF1("in PRC2 *** ERR get_message_queue_id_send %d\n", status) |
|
171 | PRINTF1("in PRC2 *** ERR get_message_queue_id_send %d\n", status) | |
172 | } |
|
172 | } | |
173 | status = get_message_queue_id_prc2( &queue_id_q_p2); |
|
173 | status = get_message_queue_id_prc2( &queue_id_q_p2); | |
174 | if (status != RTEMS_SUCCESSFUL) |
|
174 | if (status != RTEMS_SUCCESSFUL) | |
175 | { |
|
175 | { | |
176 | PRINTF1("in PRC2 *** ERR get_message_queue_id_prc2 %d\n", status) |
|
176 | PRINTF1("in PRC2 *** ERR get_message_queue_id_prc2 %d\n", status) | |
177 | } |
|
177 | } | |
178 |
|
178 | |||
179 | BOOT_PRINTF("in PRC2 ***\n") |
|
179 | BOOT_PRINTF("in PRC2 ***\n") | |
180 |
|
180 | |||
181 | while(1){ |
|
181 | while(1){ | |
182 | status = rtems_message_queue_receive( queue_id_q_p2, incomingData, &size, //************************************ |
|
182 | status = rtems_message_queue_receive( queue_id_q_p2, incomingData, &size, //************************************ | |
183 | RTEMS_WAIT, RTEMS_NO_TIMEOUT ); // wait for a message coming from AVF2 |
|
183 | RTEMS_WAIT, RTEMS_NO_TIMEOUT ); // wait for a message coming from AVF2 | |
184 |
|
184 | |||
185 | incomingMsg = (asm_msg*) incomingData; |
|
185 | incomingMsg = (asm_msg*) incomingData; | |
186 |
|
186 | |||
187 | ASM_patch( incomingMsg->norm->matrix, asm_f2_patched_norm ); |
|
187 | ASM_patch( incomingMsg->norm->matrix, asm_f2_patched_norm ); | |
188 |
|
188 | |||
189 | localTime = getTimeAsUnsignedLongLongInt( ); |
|
189 | localTime = getTimeAsUnsignedLongLongInt( ); | |
190 |
|
190 | |||
191 | nbSMInASMNORM = incomingMsg->numberOfSMInASMNORM; |
|
191 | nbSMInASMNORM = incomingMsg->numberOfSMInASMNORM; | |
192 |
|
192 | |||
193 | //***** |
|
193 | //***** | |
194 | //***** |
|
194 | //***** | |
195 | // NORM |
|
195 | // NORM | |
196 | //***** |
|
196 | //***** | |
197 | //***** |
|
197 | //***** | |
198 | // 1) compress the matrix for Basic Parameters calculation |
|
198 | // 1) compress the matrix for Basic Parameters calculation | |
199 | ASM_compress_reorganize_and_divide_mask( asm_f2_patched_norm, compressed_sm_norm_f2, |
|
199 | ASM_compress_reorganize_and_divide_mask( asm_f2_patched_norm, compressed_sm_norm_f2, | |
200 | nbSMInASMNORM, |
|
200 | nbSMInASMNORM, | |
201 | NB_BINS_COMPRESSED_SM_F2, NB_BINS_TO_AVERAGE_ASM_F2, |
|
201 | NB_BINS_COMPRESSED_SM_F2, NB_BINS_TO_AVERAGE_ASM_F2, | |
202 | ASM_F2_INDICE_START, CHANNELF2 ); |
|
202 | ASM_F2_INDICE_START, CHANNELF2 ); | |
203 | // BP1_F2 |
|
203 | // BP1_F2 | |
204 | if (incomingMsg->event & RTEMS_EVENT_NORM_BP1_F2) |
|
204 | if (incomingMsg->event & RTEMS_EVENT_NORM_BP1_F2) | |
205 | { |
|
205 | { | |
206 | // 1) compute the BP1 set |
|
206 | // 1) compute the BP1 set | |
207 | BP1_set( compressed_sm_norm_f2, k_coeff_intercalib_f2, NB_BINS_COMPRESSED_SM_F2, packet_norm_bp1.data ); |
|
207 | BP1_set( compressed_sm_norm_f2, k_coeff_intercalib_f2, NB_BINS_COMPRESSED_SM_F2, packet_norm_bp1.data ); | |
208 | // 2) send the BP1 set |
|
208 | // 2) send the BP1 set | |
209 | set_time( packet_norm_bp1.time, (unsigned char *) &incomingMsg->coarseTimeNORM ); |
|
209 | set_time( packet_norm_bp1.time, (unsigned char *) &incomingMsg->coarseTimeNORM ); | |
210 | set_time( packet_norm_bp1.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeNORM ); |
|
210 | set_time( packet_norm_bp1.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeNORM ); | |
211 | packet_norm_bp1.pa_bia_status_info = pa_bia_status_info; |
|
211 | packet_norm_bp1.pa_bia_status_info = pa_bia_status_info; | |
212 | packet_norm_bp1.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
212 | packet_norm_bp1.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
213 | BP_send( (char *) &packet_norm_bp1, queue_id_send, |
|
213 | BP_send( (char *) &packet_norm_bp1, queue_id_send, | |
214 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP1_F2 + PACKET_LENGTH_DELTA, |
|
214 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP1_F2 + PACKET_LENGTH_DELTA, | |
215 | SID_NORM_BP1_F2 ); |
|
215 | SID_NORM_BP1_F2 ); | |
216 | } |
|
216 | } | |
217 | // BP2_F2 |
|
217 | // BP2_F2 | |
218 | if (incomingMsg->event & RTEMS_EVENT_NORM_BP2_F2) |
|
218 | if (incomingMsg->event & RTEMS_EVENT_NORM_BP2_F2) | |
219 | { |
|
219 | { | |
220 | // 1) compute the BP2 set |
|
220 | // 1) compute the BP2 set | |
221 | BP2_set( compressed_sm_norm_f2, NB_BINS_COMPRESSED_SM_F2, packet_norm_bp2.data ); |
|
221 | BP2_set( compressed_sm_norm_f2, NB_BINS_COMPRESSED_SM_F2, packet_norm_bp2.data ); | |
222 | // 2) send the BP2 set |
|
222 | // 2) send the BP2 set | |
223 | set_time( packet_norm_bp2.time, (unsigned char *) &incomingMsg->coarseTimeNORM ); |
|
223 | set_time( packet_norm_bp2.time, (unsigned char *) &incomingMsg->coarseTimeNORM ); | |
224 | set_time( packet_norm_bp2.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeNORM ); |
|
224 | set_time( packet_norm_bp2.acquisitionTime, (unsigned char *) &incomingMsg->coarseTimeNORM ); | |
225 | packet_norm_bp2.pa_bia_status_info = pa_bia_status_info; |
|
225 | packet_norm_bp2.pa_bia_status_info = pa_bia_status_info; | |
226 | packet_norm_bp2.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; |
|
226 | packet_norm_bp2.sy_lfr_common_parameters = parameter_dump_packet.sy_lfr_common_parameters; | |
227 | BP_send( (char *) &packet_norm_bp2, queue_id_send, |
|
227 | BP_send( (char *) &packet_norm_bp2, queue_id_send, | |
228 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP2_F2 + PACKET_LENGTH_DELTA, |
|
228 | PACKET_LENGTH_TM_LFR_SCIENCE_NORM_BP2_F2 + PACKET_LENGTH_DELTA, | |
229 | SID_NORM_BP2_F2 ); |
|
229 | SID_NORM_BP2_F2 ); | |
230 | } |
|
230 | } | |
231 |
|
231 | |||
232 | if (incomingMsg->event & RTEMS_EVENT_NORM_ASM_F2) |
|
232 | if (incomingMsg->event & RTEMS_EVENT_NORM_ASM_F2) | |
233 | { |
|
233 | { | |
234 | // 1) reorganize the ASM and divide |
|
234 | // 1) reorganize the ASM and divide | |
235 | ASM_reorganize_and_divide( asm_f2_patched_norm, |
|
235 | ASM_reorganize_and_divide( asm_f2_patched_norm, | |
236 | (float*) current_ring_node_to_send_asm_f2->buffer_address, |
|
236 | (float*) current_ring_node_to_send_asm_f2->buffer_address, | |
237 | nb_sm_before_f2.norm_bp1 ); |
|
237 | nb_sm_before_f2.norm_bp1 ); | |
238 | current_ring_node_to_send_asm_f2->coarseTime = incomingMsg->coarseTimeNORM; |
|
238 | current_ring_node_to_send_asm_f2->coarseTime = incomingMsg->coarseTimeNORM; | |
239 | current_ring_node_to_send_asm_f2->fineTime = incomingMsg->fineTimeNORM; |
|
239 | current_ring_node_to_send_asm_f2->fineTime = incomingMsg->fineTimeNORM; | |
240 | current_ring_node_to_send_asm_f2->sid = SID_NORM_ASM_F2; |
|
240 | current_ring_node_to_send_asm_f2->sid = SID_NORM_ASM_F2; | |
241 |
|
241 | |||
242 | // 3) send the spectral matrix packets |
|
242 | // 3) send the spectral matrix packets | |
243 | status = rtems_message_queue_send( queue_id_send, ¤t_ring_node_to_send_asm_f2, sizeof( ring_node* ) ); |
|
243 | status = rtems_message_queue_send( queue_id_send, ¤t_ring_node_to_send_asm_f2, sizeof( ring_node* ) ); | |
244 |
|
244 | |||
245 | // change asm ring node |
|
245 | // change asm ring node | |
246 | current_ring_node_to_send_asm_f2 = current_ring_node_to_send_asm_f2->next; |
|
246 | current_ring_node_to_send_asm_f2 = current_ring_node_to_send_asm_f2->next; | |
247 | } |
|
247 | } | |
248 |
|
248 | |||
249 | update_queue_max_count( queue_id_q_p2, &hk_lfr_q_p2_fifo_size_max ); |
|
249 | update_queue_max_count( queue_id_q_p2, &hk_lfr_q_p2_fifo_size_max ); | |
250 |
|
250 | |||
251 | } |
|
251 | } | |
252 | } |
|
252 | } | |
253 |
|
253 | |||
254 | //********** |
|
254 | //********** | |
255 | // FUNCTIONS |
|
255 | // FUNCTIONS | |
256 |
|
256 | |||
257 | void reset_nb_sm_f2( void ) |
|
257 | void reset_nb_sm_f2( void ) | |
258 | { |
|
258 | { | |
259 | nb_sm_before_f2.norm_bp1 = parameter_dump_packet.sy_lfr_n_bp_p0; |
|
259 | nb_sm_before_f2.norm_bp1 = parameter_dump_packet.sy_lfr_n_bp_p0; | |
260 | nb_sm_before_f2.norm_bp2 = parameter_dump_packet.sy_lfr_n_bp_p1; |
|
260 | nb_sm_before_f2.norm_bp2 = parameter_dump_packet.sy_lfr_n_bp_p1; | |
261 | nb_sm_before_f2.norm_asm = (parameter_dump_packet.sy_lfr_n_asm_p[0] * CONST_256) + parameter_dump_packet.sy_lfr_n_asm_p[1]; |
|
261 | nb_sm_before_f2.norm_asm = (parameter_dump_packet.sy_lfr_n_asm_p[0] * CONST_256) + parameter_dump_packet.sy_lfr_n_asm_p[1]; | |
262 | } |
|
262 | } | |
263 |
|
263 | |||
264 | void SM_average_f2( float *averaged_spec_mat_f2, |
|
264 | void SM_average_f2( float *averaged_spec_mat_f2, | |
265 | ring_node *ring_node, |
|
265 | ring_node *ring_node, | |
266 | unsigned int nbAverageNormF2, |
|
266 | unsigned int nbAverageNormF2, | |
267 | asm_msg *msgForMATR ) |
|
267 | asm_msg *msgForMATR ) | |
268 | { |
|
268 | { | |
269 | float sum; |
|
269 | float sum; | |
270 | unsigned int i; |
|
270 | unsigned int i; | |
271 | unsigned char keepMatrix; |
|
271 | unsigned char keepMatrix; | |
272 |
|
272 | |||
273 | // test acquisitionTime validity |
|
273 | // test acquisitionTime validity | |
274 | keepMatrix = acquisitionTimeIsValid( ring_node->coarseTime, ring_node->fineTime, CHANNELF2 ); |
|
274 | keepMatrix = acquisitionTimeIsValid( ring_node->coarseTime, ring_node->fineTime, CHANNELF2 ); | |
275 |
|
275 | |||
276 | for(i=0; i<TOTAL_SIZE_SM; i++) |
|
276 | for(i=0; i<TOTAL_SIZE_SM; i++) | |
277 | { |
|
277 | { | |
278 | sum = ( (int *) (ring_node->buffer_address) ) [ i ]; |
|
278 | sum = ( (int *) (ring_node->buffer_address) ) [ i ]; | |
279 | if ( (nbAverageNormF2 == 0) ) // average initialization |
|
279 | if ( (nbAverageNormF2 == 0) ) // average initialization | |
280 | { |
|
280 | { | |
281 | if (keepMatrix == 1) // keep the matrix and add it to the average |
|
281 | if (keepMatrix == 1) // keep the matrix and add it to the average | |
282 | { |
|
282 | { | |
283 | averaged_spec_mat_f2[ i ] = sum; |
|
283 | averaged_spec_mat_f2[ i ] = sum; | |
284 | } |
|
284 | } | |
285 | else // drop the matrix and initialize the average |
|
285 | else // drop the matrix and initialize the average | |
286 | { |
|
286 | { | |
287 | averaged_spec_mat_f2[ i ] = INIT_FLOAT; |
|
287 | averaged_spec_mat_f2[ i ] = INIT_FLOAT; | |
288 | } |
|
288 | } | |
289 | msgForMATR->coarseTimeNORM = ring_node->coarseTime; |
|
289 | msgForMATR->coarseTimeNORM = ring_node->coarseTime; | |
290 | msgForMATR->fineTimeNORM = ring_node->fineTime; |
|
290 | msgForMATR->fineTimeNORM = ring_node->fineTime; | |
291 | } |
|
291 | } | |
292 | else |
|
292 | else | |
293 | { |
|
293 | { | |
294 | if (keepMatrix == 1) // keep the matrix and add it to the average |
|
294 | if (keepMatrix == 1) // keep the matrix and add it to the average | |
295 | { |
|
295 | { | |
296 | averaged_spec_mat_f2[ i ] = ( averaged_spec_mat_f2[ i ] + sum ); |
|
296 | averaged_spec_mat_f2[ i ] = ( averaged_spec_mat_f2[ i ] + sum ); | |
297 | } |
|
297 | } | |
298 | else |
|
298 | else | |
299 | { |
|
299 | { | |
300 | // nothing to do, the matrix is not valid |
|
300 | // nothing to do, the matrix is not valid | |
301 | } |
|
301 | } | |
302 | } |
|
302 | } | |
303 | } |
|
303 | } | |
304 |
|
304 | |||
305 | if (keepMatrix == 1) |
|
305 | if (keepMatrix == 1) | |
306 | { |
|
306 | { | |
307 | if ( (nbAverageNormF2 == 0) ) |
|
307 | if ( (nbAverageNormF2 == 0) ) | |
308 | { |
|
308 | { | |
309 | msgForMATR->numberOfSMInASMNORM = 1; |
|
309 | msgForMATR->numberOfSMInASMNORM = 1; | |
310 | } |
|
310 | } | |
311 | else |
|
311 | else | |
312 | { |
|
312 | { | |
313 | msgForMATR->numberOfSMInASMNORM++; |
|
313 | msgForMATR->numberOfSMInASMNORM++; | |
314 | } |
|
314 | } | |
315 | } |
|
315 | } | |
316 | else |
|
316 | else | |
317 | { |
|
317 | { | |
318 | if ( (nbAverageNormF2 == 0) ) |
|
318 | if ( (nbAverageNormF2 == 0) ) | |
319 | { |
|
319 | { | |
320 | msgForMATR->numberOfSMInASMNORM = 0; |
|
320 | msgForMATR->numberOfSMInASMNORM = 0; | |
321 | } |
|
321 | } | |
322 | else |
|
322 | else | |
323 | { |
|
323 | { | |
324 | // nothing to do |
|
324 | // nothing to do | |
325 | } |
|
325 | } | |
326 | } |
|
326 | } | |
327 | } |
|
327 | } | |
328 |
|
328 | |||
329 | void init_k_coefficients_prc2( void ) |
|
329 | void init_k_coefficients_prc2( void ) | |
330 | { |
|
330 | { | |
331 | init_k_coefficients( k_coeff_intercalib_f2, NB_BINS_COMPRESSED_SM_F2); |
|
331 | init_k_coefficients( k_coeff_intercalib_f2, NB_BINS_COMPRESSED_SM_F2); | |
332 | } |
|
332 | } |
@@ -1,1664 +1,1670 | |||||
1 | /** Functions and tasks related to TeleCommand handling. |
|
1 | /** Functions and tasks related to TeleCommand handling. | |
2 | * |
|
2 | * | |
3 | * @file |
|
3 | * @file | |
4 | * @author P. LEROY |
|
4 | * @author P. LEROY | |
5 | * |
|
5 | * | |
6 | * A group of functions to handle TeleCommands:\n |
|
6 | * A group of functions to handle TeleCommands:\n | |
7 | * action launching\n |
|
7 | * action launching\n | |
8 | * TC parsing\n |
|
8 | * TC parsing\n | |
9 | * ... |
|
9 | * ... | |
10 | * |
|
10 | * | |
11 | */ |
|
11 | */ | |
12 |
|
12 | |||
13 | #include "tc_handler.h" |
|
13 | #include "tc_handler.h" | |
14 | #include "math.h" |
|
14 | #include "math.h" | |
15 |
|
15 | |||
16 | //*********** |
|
16 | //*********** | |
17 | // RTEMS TASK |
|
17 | // RTEMS TASK | |
18 |
|
18 | |||
19 | rtems_task actn_task( rtems_task_argument unused ) |
|
19 | rtems_task actn_task( rtems_task_argument unused ) | |
20 | { |
|
20 | { | |
21 | /** This RTEMS task is responsible for launching actions upton the reception of valid TeleCommands. |
|
21 | /** This RTEMS task is responsible for launching actions upton the reception of valid TeleCommands. | |
22 | * |
|
22 | * | |
23 | * @param unused is the starting argument of the RTEMS task |
|
23 | * @param unused is the starting argument of the RTEMS task | |
24 | * |
|
24 | * | |
25 | * The ACTN task waits for data coming from an RTEMS msesage queue. When data arrives, it launches specific actions depending |
|
25 | * The ACTN task waits for data coming from an RTEMS msesage queue. When data arrives, it launches specific actions depending | |
26 | * on the incoming TeleCommand. |
|
26 | * on the incoming TeleCommand. | |
27 | * |
|
27 | * | |
28 | */ |
|
28 | */ | |
29 |
|
29 | |||
30 | int result; |
|
30 | int result; | |
31 | rtems_status_code status; // RTEMS status code |
|
31 | rtems_status_code status; // RTEMS status code | |
32 | ccsdsTelecommandPacket_t TC; // TC sent to the ACTN task |
|
32 | ccsdsTelecommandPacket_t __attribute__((aligned(4))) TC; // TC sent to the ACTN task | |
33 | size_t size; // size of the incoming TC packet |
|
33 | size_t size; // size of the incoming TC packet | |
34 | unsigned char subtype; // subtype of the current TC packet |
|
34 | unsigned char subtype; // subtype of the current TC packet | |
35 | unsigned char time[BYTES_PER_TIME]; |
|
35 | unsigned char time[BYTES_PER_TIME]; | |
36 | rtems_id queue_rcv_id; |
|
36 | rtems_id queue_rcv_id; | |
37 | rtems_id queue_snd_id; |
|
37 | rtems_id queue_snd_id; | |
38 |
|
38 | |||
39 | memset(&TC, 0, sizeof(ccsdsTelecommandPacket_t)); |
|
39 | memset(&TC, 0, sizeof(ccsdsTelecommandPacket_t)); | |
40 | size = 0; |
|
40 | size = 0; | |
41 | queue_rcv_id = RTEMS_ID_NONE; |
|
41 | queue_rcv_id = RTEMS_ID_NONE; | |
42 | queue_snd_id = RTEMS_ID_NONE; |
|
42 | queue_snd_id = RTEMS_ID_NONE; | |
43 |
|
43 | |||
44 | status = get_message_queue_id_recv( &queue_rcv_id ); |
|
44 | status = get_message_queue_id_recv( &queue_rcv_id ); | |
45 | if (status != RTEMS_SUCCESSFUL) |
|
45 | if (status != RTEMS_SUCCESSFUL) | |
46 | { |
|
46 | { | |
47 | PRINTF1("in ACTN *** ERR get_message_queue_id_recv %d\n", status) |
|
47 | PRINTF1("in ACTN *** ERR get_message_queue_id_recv %d\n", status) | |
48 | } |
|
48 | } | |
49 |
|
49 | |||
50 | status = get_message_queue_id_send( &queue_snd_id ); |
|
50 | status = get_message_queue_id_send( &queue_snd_id ); | |
51 | if (status != RTEMS_SUCCESSFUL) |
|
51 | if (status != RTEMS_SUCCESSFUL) | |
52 | { |
|
52 | { | |
53 | PRINTF1("in ACTN *** ERR get_message_queue_id_send %d\n", status) |
|
53 | PRINTF1("in ACTN *** ERR get_message_queue_id_send %d\n", status) | |
54 | } |
|
54 | } | |
55 |
|
55 | |||
56 | result = LFR_SUCCESSFUL; |
|
56 | result = LFR_SUCCESSFUL; | |
57 | subtype = 0; // subtype of the current TC packet |
|
57 | subtype = 0; // subtype of the current TC packet | |
58 |
|
58 | |||
59 | BOOT_PRINTF("in ACTN *** \n"); |
|
59 | BOOT_PRINTF("in ACTN *** \n"); | |
60 |
|
60 | |||
61 | while(1) |
|
61 | while(1) | |
62 | { |
|
62 | { | |
63 | status = rtems_message_queue_receive( queue_rcv_id, (char*) &TC, &size, |
|
63 | status = rtems_message_queue_receive( queue_rcv_id, (char*) &TC, &size, | |
64 | RTEMS_WAIT, RTEMS_NO_TIMEOUT); |
|
64 | RTEMS_WAIT, RTEMS_NO_TIMEOUT); | |
65 | getTime( time ); // set time to the current time |
|
65 | getTime( time ); // set time to the current time | |
66 | if (status!=RTEMS_SUCCESSFUL) |
|
66 | if (status!=RTEMS_SUCCESSFUL) | |
67 | { |
|
67 | { | |
68 | PRINTF1("ERR *** in task ACTN *** error receiving a message, code %d \n", status) |
|
68 | PRINTF1("ERR *** in task ACTN *** error receiving a message, code %d \n", status) | |
69 | } |
|
69 | } | |
70 | else |
|
70 | else | |
71 | { |
|
71 | { | |
72 | subtype = TC.serviceSubType; |
|
72 | subtype = TC.serviceSubType; | |
73 | switch(subtype) |
|
73 | switch(subtype) | |
74 | { |
|
74 | { | |
75 | case TC_SUBTYPE_RESET: |
|
75 | case TC_SUBTYPE_RESET: | |
76 | result = action_reset( &TC, queue_snd_id, time ); |
|
76 | result = action_reset( &TC, queue_snd_id, time ); | |
77 | close_action( &TC, result, queue_snd_id ); |
|
77 | close_action( &TC, result, queue_snd_id ); | |
78 | break; |
|
78 | break; | |
79 | case TC_SUBTYPE_LOAD_COMM: |
|
79 | case TC_SUBTYPE_LOAD_COMM: | |
80 | result = action_load_common_par( &TC ); |
|
80 | result = action_load_common_par( &TC ); | |
81 | close_action( &TC, result, queue_snd_id ); |
|
81 | close_action( &TC, result, queue_snd_id ); | |
82 | break; |
|
82 | break; | |
83 | case TC_SUBTYPE_LOAD_NORM: |
|
83 | case TC_SUBTYPE_LOAD_NORM: | |
84 | result = action_load_normal_par( &TC, queue_snd_id, time ); |
|
84 | result = action_load_normal_par( &TC, queue_snd_id, time ); | |
85 | close_action( &TC, result, queue_snd_id ); |
|
85 | close_action( &TC, result, queue_snd_id ); | |
86 | break; |
|
86 | break; | |
87 | case TC_SUBTYPE_LOAD_BURST: |
|
87 | case TC_SUBTYPE_LOAD_BURST: | |
88 | result = action_load_burst_par( &TC, queue_snd_id, time ); |
|
88 | result = action_load_burst_par( &TC, queue_snd_id, time ); | |
89 | close_action( &TC, result, queue_snd_id ); |
|
89 | close_action( &TC, result, queue_snd_id ); | |
90 | break; |
|
90 | break; | |
91 | case TC_SUBTYPE_LOAD_SBM1: |
|
91 | case TC_SUBTYPE_LOAD_SBM1: | |
92 | result = action_load_sbm1_par( &TC, queue_snd_id, time ); |
|
92 | result = action_load_sbm1_par( &TC, queue_snd_id, time ); | |
93 | close_action( &TC, result, queue_snd_id ); |
|
93 | close_action( &TC, result, queue_snd_id ); | |
94 | break; |
|
94 | break; | |
95 | case TC_SUBTYPE_LOAD_SBM2: |
|
95 | case TC_SUBTYPE_LOAD_SBM2: | |
96 | result = action_load_sbm2_par( &TC, queue_snd_id, time ); |
|
96 | result = action_load_sbm2_par( &TC, queue_snd_id, time ); | |
97 | close_action( &TC, result, queue_snd_id ); |
|
97 | close_action( &TC, result, queue_snd_id ); | |
98 | break; |
|
98 | break; | |
99 | case TC_SUBTYPE_DUMP: |
|
99 | case TC_SUBTYPE_DUMP: | |
100 | result = action_dump_par( &TC, queue_snd_id ); |
|
100 | result = action_dump_par( &TC, queue_snd_id ); | |
101 | close_action( &TC, result, queue_snd_id ); |
|
101 | close_action( &TC, result, queue_snd_id ); | |
102 | break; |
|
102 | break; | |
103 | case TC_SUBTYPE_ENTER: |
|
103 | case TC_SUBTYPE_ENTER: | |
104 | result = action_enter_mode( &TC, queue_snd_id ); |
|
104 | result = action_enter_mode( &TC, queue_snd_id ); | |
105 | close_action( &TC, result, queue_snd_id ); |
|
105 | close_action( &TC, result, queue_snd_id ); | |
106 | break; |
|
106 | break; | |
107 | case TC_SUBTYPE_UPDT_INFO: |
|
107 | case TC_SUBTYPE_UPDT_INFO: | |
108 | result = action_update_info( &TC, queue_snd_id ); |
|
108 | result = action_update_info( &TC, queue_snd_id ); | |
109 | close_action( &TC, result, queue_snd_id ); |
|
109 | close_action( &TC, result, queue_snd_id ); | |
110 | break; |
|
110 | break; | |
111 | case TC_SUBTYPE_EN_CAL: |
|
111 | case TC_SUBTYPE_EN_CAL: | |
112 | result = action_enable_calibration( &TC, queue_snd_id, time ); |
|
112 | result = action_enable_calibration( &TC, queue_snd_id, time ); | |
113 | close_action( &TC, result, queue_snd_id ); |
|
113 | close_action( &TC, result, queue_snd_id ); | |
114 | break; |
|
114 | break; | |
115 | case TC_SUBTYPE_DIS_CAL: |
|
115 | case TC_SUBTYPE_DIS_CAL: | |
116 | result = action_disable_calibration( &TC, queue_snd_id, time ); |
|
116 | result = action_disable_calibration( &TC, queue_snd_id, time ); | |
117 | close_action( &TC, result, queue_snd_id ); |
|
117 | close_action( &TC, result, queue_snd_id ); | |
118 | break; |
|
118 | break; | |
119 | case TC_SUBTYPE_LOAD_K: |
|
119 | case TC_SUBTYPE_LOAD_K: | |
120 | result = action_load_kcoefficients( &TC, queue_snd_id, time ); |
|
120 | result = action_load_kcoefficients( &TC, queue_snd_id, time ); | |
121 | close_action( &TC, result, queue_snd_id ); |
|
121 | close_action( &TC, result, queue_snd_id ); | |
122 | break; |
|
122 | break; | |
123 | case TC_SUBTYPE_DUMP_K: |
|
123 | case TC_SUBTYPE_DUMP_K: | |
124 | result = action_dump_kcoefficients( &TC, queue_snd_id, time ); |
|
124 | result = action_dump_kcoefficients( &TC, queue_snd_id, time ); | |
125 | close_action( &TC, result, queue_snd_id ); |
|
125 | close_action( &TC, result, queue_snd_id ); | |
126 | break; |
|
126 | break; | |
127 | case TC_SUBTYPE_LOAD_FBINS: |
|
127 | case TC_SUBTYPE_LOAD_FBINS: | |
128 | result = action_load_fbins_mask( &TC, queue_snd_id, time ); |
|
128 | result = action_load_fbins_mask( &TC, queue_snd_id, time ); | |
129 | close_action( &TC, result, queue_snd_id ); |
|
129 | close_action( &TC, result, queue_snd_id ); | |
130 | break; |
|
130 | break; | |
131 | case TC_SUBTYPE_LOAD_FILTER_PAR: |
|
131 | case TC_SUBTYPE_LOAD_FILTER_PAR: | |
132 | result = action_load_filter_par( &TC, queue_snd_id, time ); |
|
132 | result = action_load_filter_par( &TC, queue_snd_id, time ); | |
133 | close_action( &TC, result, queue_snd_id ); |
|
133 | close_action( &TC, result, queue_snd_id ); | |
134 | break; |
|
134 | break; | |
135 | case TC_SUBTYPE_UPDT_TIME: |
|
135 | case TC_SUBTYPE_UPDT_TIME: | |
136 | result = action_update_time( &TC ); |
|
136 | result = action_update_time( &TC ); | |
137 | close_action( &TC, result, queue_snd_id ); |
|
137 | close_action( &TC, result, queue_snd_id ); | |
138 | break; |
|
138 | break; | |
139 | default: |
|
139 | default: | |
140 | break; |
|
140 | break; | |
141 | } |
|
141 | } | |
142 | } |
|
142 | } | |
143 | } |
|
143 | } | |
144 | } |
|
144 | } | |
145 |
|
145 | |||
146 | //*********** |
|
146 | //*********** | |
147 | // TC ACTIONS |
|
147 | // TC ACTIONS | |
148 |
|
148 | |||
149 | int action_reset(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) |
|
149 | int action_reset(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) | |
150 | { |
|
150 | { | |
151 | /** This function executes specific actions when a TC_LFR_RESET TeleCommand has been received. |
|
151 | /** This function executes specific actions when a TC_LFR_RESET TeleCommand has been received. | |
152 | * |
|
152 | * | |
153 | * @param TC points to the TeleCommand packet that is being processed |
|
153 | * @param TC points to the TeleCommand packet that is being processed | |
154 | * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver |
|
154 | * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver | |
155 | * |
|
155 | * | |
156 | */ |
|
156 | */ | |
157 |
|
157 | |||
158 | PRINTF("this is the end!!!\n"); |
|
158 | PRINTF("this is the end!!!\n"); | |
159 | exit(0); |
|
159 | exit(0); | |
160 |
|
160 | |||
161 | send_tm_lfr_tc_exe_not_implemented( TC, queue_id, time ); |
|
161 | send_tm_lfr_tc_exe_not_implemented( TC, queue_id, time ); | |
162 |
|
162 | |||
163 | return LFR_DEFAULT; |
|
163 | return LFR_DEFAULT; | |
164 | } |
|
164 | } | |
165 |
|
165 | |||
166 | int action_enter_mode(ccsdsTelecommandPacket_t *TC, rtems_id queue_id ) |
|
166 | int action_enter_mode(ccsdsTelecommandPacket_t *TC, rtems_id queue_id ) | |
167 | { |
|
167 | { | |
168 | /** This function executes specific actions when a TC_LFR_ENTER_MODE TeleCommand has been received. |
|
168 | /** This function executes specific actions when a TC_LFR_ENTER_MODE TeleCommand has been received. | |
169 | * |
|
169 | * | |
170 | * @param TC points to the TeleCommand packet that is being processed |
|
170 | * @param TC points to the TeleCommand packet that is being processed | |
171 | * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver |
|
171 | * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver | |
172 | * |
|
172 | * | |
173 | */ |
|
173 | */ | |
174 |
|
174 | |||
175 | rtems_status_code status; |
|
175 | rtems_status_code status; | |
176 | unsigned char requestedMode; |
|
176 | unsigned char requestedMode; | |
177 | unsigned int *transitionCoarseTime_ptr; |
|
177 | unsigned int *transitionCoarseTime_ptr; | |
178 | unsigned int transitionCoarseTime; |
|
178 | unsigned int transitionCoarseTime; | |
179 | unsigned char * bytePosPtr; |
|
179 | unsigned char * bytePosPtr; | |
180 |
|
180 | |||
|
181 | printf("(0)\n"); | |||
181 | bytePosPtr = (unsigned char *) &TC->packetID; |
|
182 | bytePosPtr = (unsigned char *) &TC->packetID; | |
182 |
|
183 | printf("(1)\n"); | ||
183 | requestedMode = bytePosPtr[ BYTE_POS_CP_MODE_LFR_SET ]; |
|
184 | requestedMode = bytePosPtr[ BYTE_POS_CP_MODE_LFR_SET ]; | |
184 | transitionCoarseTime_ptr = (unsigned int *) ( &bytePosPtr[ BYTE_POS_CP_LFR_ENTER_MODE_TIME ] ); |
|
185 | printf("(2)\n"); | |
185 | transitionCoarseTime = (*transitionCoarseTime_ptr) & COARSE_TIME_MASK; |
|
186 | copyInt32ByChar( &transitionCoarseTime, &bytePosPtr[ BYTE_POS_CP_LFR_ENTER_MODE_TIME ] ); | |
186 |
|
187 | printf("(3)\n"); | ||
|
188 | transitionCoarseTime = transitionCoarseTime & COARSE_TIME_MASK; | |||
|
189 | printf("(4)\n"); | |||
187 | status = check_mode_value( requestedMode ); |
|
190 | status = check_mode_value( requestedMode ); | |
|
191 | printf("(5)\n"); | |||
188 |
|
192 | |||
189 | if ( status != LFR_SUCCESSFUL ) // the mode value is inconsistent |
|
193 | if ( status != LFR_SUCCESSFUL ) // the mode value is inconsistent | |
190 | { |
|
194 | { | |
191 | send_tm_lfr_tc_exe_inconsistent( TC, queue_id, BYTE_POS_CP_MODE_LFR_SET, requestedMode ); |
|
195 | send_tm_lfr_tc_exe_inconsistent( TC, queue_id, BYTE_POS_CP_MODE_LFR_SET, requestedMode ); | |
192 | } |
|
196 | } | |
193 |
|
197 | |||
194 | else // the mode value is valid, check the transition |
|
198 | else // the mode value is valid, check the transition | |
195 | { |
|
199 | { | |
196 | status = check_mode_transition(requestedMode); |
|
200 | status = check_mode_transition(requestedMode); | |
197 | if (status != LFR_SUCCESSFUL) |
|
201 | if (status != LFR_SUCCESSFUL) | |
198 | { |
|
202 | { | |
199 | PRINTF("ERR *** in action_enter_mode *** check_mode_transition\n") |
|
203 | PRINTF("ERR *** in action_enter_mode *** check_mode_transition\n") | |
200 | send_tm_lfr_tc_exe_not_executable( TC, queue_id ); |
|
204 | send_tm_lfr_tc_exe_not_executable( TC, queue_id ); | |
201 | } |
|
205 | } | |
202 | } |
|
206 | } | |
203 |
|
207 | |||
204 | if ( status == LFR_SUCCESSFUL ) // the transition is valid, check the date |
|
208 | if ( status == LFR_SUCCESSFUL ) // the transition is valid, check the date | |
205 | { |
|
209 | { | |
206 | status = check_transition_date( transitionCoarseTime ); |
|
210 | status = check_transition_date( transitionCoarseTime ); | |
207 | if (status != LFR_SUCCESSFUL) |
|
211 | if (status != LFR_SUCCESSFUL) | |
208 | { |
|
212 | { | |
209 | PRINTF("ERR *** in action_enter_mode *** check_transition_date\n"); |
|
213 | PRINTF("ERR *** in action_enter_mode *** check_transition_date\n"); | |
210 | send_tm_lfr_tc_exe_not_executable(TC, queue_id ); |
|
214 | send_tm_lfr_tc_exe_not_executable(TC, queue_id ); | |
211 | } |
|
215 | } | |
212 | } |
|
216 | } | |
213 |
|
217 | |||
214 | if ( status == LFR_SUCCESSFUL ) // the date is valid, enter the mode |
|
218 | if ( status == LFR_SUCCESSFUL ) // the date is valid, enter the mode | |
215 | { |
|
219 | { | |
216 | PRINTF1("OK *** in action_enter_mode *** enter mode %d\n", requestedMode); |
|
220 | PRINTF1("OK *** in action_enter_mode *** enter mode %d\n", requestedMode); | |
217 |
|
221 | |||
218 | switch(requestedMode) |
|
222 | switch(requestedMode) | |
219 | { |
|
223 | { | |
220 | case LFR_MODE_STANDBY: |
|
224 | case LFR_MODE_STANDBY: | |
221 | status = enter_mode_standby(); |
|
225 | status = enter_mode_standby(); | |
222 | break; |
|
226 | break; | |
223 | case LFR_MODE_NORMAL: |
|
227 | case LFR_MODE_NORMAL: | |
224 | status = enter_mode_normal( transitionCoarseTime ); |
|
228 | status = enter_mode_normal( transitionCoarseTime ); | |
225 | break; |
|
229 | break; | |
226 | case LFR_MODE_BURST: |
|
230 | case LFR_MODE_BURST: | |
227 | status = enter_mode_burst( transitionCoarseTime ); |
|
231 | status = enter_mode_burst( transitionCoarseTime ); | |
228 | break; |
|
232 | break; | |
229 | case LFR_MODE_SBM1: |
|
233 | case LFR_MODE_SBM1: | |
230 | status = enter_mode_sbm1( transitionCoarseTime ); |
|
234 | status = enter_mode_sbm1( transitionCoarseTime ); | |
231 | break; |
|
235 | break; | |
232 | case LFR_MODE_SBM2: |
|
236 | case LFR_MODE_SBM2: | |
233 | status = enter_mode_sbm2( transitionCoarseTime ); |
|
237 | status = enter_mode_sbm2( transitionCoarseTime ); | |
234 | break; |
|
238 | break; | |
235 | default: |
|
239 | default: | |
236 | break; |
|
240 | break; | |
237 | } |
|
241 | } | |
238 |
|
242 | |||
239 | if (status != RTEMS_SUCCESSFUL) |
|
243 | if (status != RTEMS_SUCCESSFUL) | |
240 | { |
|
244 | { | |
241 | status = LFR_EXE_ERROR; |
|
245 | status = LFR_EXE_ERROR; | |
242 | } |
|
246 | } | |
243 | } |
|
247 | } | |
244 |
|
248 | |||
245 | return status; |
|
249 | return status; | |
246 | } |
|
250 | } | |
247 |
|
251 | |||
248 | int action_update_info(ccsdsTelecommandPacket_t *TC, rtems_id queue_id) |
|
252 | int action_update_info(ccsdsTelecommandPacket_t *TC, rtems_id queue_id) | |
249 | { |
|
253 | { | |
250 | /** This function executes specific actions when a TC_LFR_UPDATE_INFO TeleCommand has been received. |
|
254 | /** This function executes specific actions when a TC_LFR_UPDATE_INFO TeleCommand has been received. | |
251 | * |
|
255 | * | |
252 | * @param TC points to the TeleCommand packet that is being processed |
|
256 | * @param TC points to the TeleCommand packet that is being processed | |
253 | * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver |
|
257 | * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver | |
254 | * |
|
258 | * | |
255 | * @return LFR directive status code: |
|
259 | * @return LFR directive status code: | |
256 | * - LFR_DEFAULT |
|
260 | * - LFR_DEFAULT | |
257 | * - LFR_SUCCESSFUL |
|
261 | * - LFR_SUCCESSFUL | |
258 | * |
|
262 | * | |
259 | */ |
|
263 | */ | |
260 |
|
264 | |||
261 | unsigned int val; |
|
265 | unsigned int val; | |
262 | int result; |
|
266 | int result; | |
263 | unsigned int status; |
|
267 | unsigned int status; | |
264 | unsigned char mode; |
|
268 | unsigned char mode; | |
265 | unsigned char * bytePosPtr; |
|
269 | unsigned char * bytePosPtr; | |
266 |
|
270 | |||
267 | bytePosPtr = (unsigned char *) &TC->packetID; |
|
271 | bytePosPtr = (unsigned char *) &TC->packetID; | |
268 |
|
272 | |||
269 | // check LFR mode |
|
273 | // check LFR mode | |
270 | mode = (bytePosPtr[ BYTE_POS_UPDATE_INFO_PARAMETERS_SET5 ] & BITS_LFR_MODE) >> SHIFT_LFR_MODE; |
|
274 | mode = (bytePosPtr[ BYTE_POS_UPDATE_INFO_PARAMETERS_SET5 ] & BITS_LFR_MODE) >> SHIFT_LFR_MODE; | |
271 | status = check_update_info_hk_lfr_mode( mode ); |
|
275 | status = check_update_info_hk_lfr_mode( mode ); | |
272 | if (status == LFR_SUCCESSFUL) // check TDS mode |
|
276 | if (status == LFR_SUCCESSFUL) // check TDS mode | |
273 | { |
|
277 | { | |
274 | mode = (bytePosPtr[ BYTE_POS_UPDATE_INFO_PARAMETERS_SET6 ] & BITS_TDS_MODE) >> SHIFT_TDS_MODE; |
|
278 | mode = (bytePosPtr[ BYTE_POS_UPDATE_INFO_PARAMETERS_SET6 ] & BITS_TDS_MODE) >> SHIFT_TDS_MODE; | |
275 | status = check_update_info_hk_tds_mode( mode ); |
|
279 | status = check_update_info_hk_tds_mode( mode ); | |
276 | } |
|
280 | } | |
277 | if (status == LFR_SUCCESSFUL) // check THR mode |
|
281 | if (status == LFR_SUCCESSFUL) // check THR mode | |
278 | { |
|
282 | { | |
279 | mode = (bytePosPtr[ BYTE_POS_UPDATE_INFO_PARAMETERS_SET6 ] & BITS_THR_MODE); |
|
283 | mode = (bytePosPtr[ BYTE_POS_UPDATE_INFO_PARAMETERS_SET6 ] & BITS_THR_MODE); | |
280 | status = check_update_info_hk_thr_mode( mode ); |
|
284 | status = check_update_info_hk_thr_mode( mode ); | |
281 | } |
|
285 | } | |
282 | if (status == LFR_SUCCESSFUL) // if the parameter check is successful |
|
286 | if (status == LFR_SUCCESSFUL) // if the parameter check is successful | |
283 | { |
|
287 | { | |
284 | val = (housekeeping_packet.hk_lfr_update_info_tc_cnt[0] * CONST_256) |
|
288 | val = (housekeeping_packet.hk_lfr_update_info_tc_cnt[0] * CONST_256) | |
285 | + housekeeping_packet.hk_lfr_update_info_tc_cnt[1]; |
|
289 | + housekeeping_packet.hk_lfr_update_info_tc_cnt[1]; | |
286 | val++; |
|
290 | val++; | |
287 | housekeeping_packet.hk_lfr_update_info_tc_cnt[0] = (unsigned char) (val >> SHIFT_1_BYTE); |
|
291 | housekeeping_packet.hk_lfr_update_info_tc_cnt[0] = (unsigned char) (val >> SHIFT_1_BYTE); | |
288 | housekeeping_packet.hk_lfr_update_info_tc_cnt[1] = (unsigned char) (val); |
|
292 | housekeeping_packet.hk_lfr_update_info_tc_cnt[1] = (unsigned char) (val); | |
289 | } |
|
293 | } | |
290 |
|
294 | |||
291 | // pa_bia_status_info |
|
295 | // pa_bia_status_info | |
292 | // => pa_bia_mode_mux_set 3 bits |
|
296 | // => pa_bia_mode_mux_set 3 bits | |
293 | // => pa_bia_mode_hv_enabled 1 bit |
|
297 | // => pa_bia_mode_hv_enabled 1 bit | |
294 | // => pa_bia_mode_bias1_enabled 1 bit |
|
298 | // => pa_bia_mode_bias1_enabled 1 bit | |
295 | // => pa_bia_mode_bias2_enabled 1 bit |
|
299 | // => pa_bia_mode_bias2_enabled 1 bit | |
296 | // => pa_bia_mode_bias3_enabled 1 bit |
|
300 | // => pa_bia_mode_bias3_enabled 1 bit | |
297 | // => pa_bia_on_off (cp_dpu_bias_on_off) |
|
301 | // => pa_bia_on_off (cp_dpu_bias_on_off) | |
298 | pa_bia_status_info = bytePosPtr[ BYTE_POS_UPDATE_INFO_PARAMETERS_SET2 ] & BITS_BIA; // [1111 1110] |
|
302 | pa_bia_status_info = bytePosPtr[ BYTE_POS_UPDATE_INFO_PARAMETERS_SET2 ] & BITS_BIA; // [1111 1110] | |
299 | pa_bia_status_info = pa_bia_status_info |
|
303 | pa_bia_status_info = pa_bia_status_info | |
300 | | (bytePosPtr[ BYTE_POS_UPDATE_INFO_PARAMETERS_SET1 ] & 1); |
|
304 | | (bytePosPtr[ BYTE_POS_UPDATE_INFO_PARAMETERS_SET1 ] & 1); | |
301 |
|
305 | |||
302 | // REACTION_WHEELS_FREQUENCY, copy the incoming parameters in the local variable (to be copied in HK packets) |
|
306 | // REACTION_WHEELS_FREQUENCY, copy the incoming parameters in the local variable (to be copied in HK packets) | |
303 |
|
307 | |||
304 | //cp_rpw_sc_rw_f_flags = bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW_F_FLAGS ]; |
|
308 | //cp_rpw_sc_rw_f_flags = bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW_F_FLAGS ]; | |
305 | getReactionWheelsFrequencies( TC ); |
|
309 | getReactionWheelsFrequencies( TC ); | |
306 | set_hk_lfr_sc_rw_f_flags(); |
|
310 | set_hk_lfr_sc_rw_f_flags(); | |
307 | build_sy_lfr_rw_masks(); |
|
311 | build_sy_lfr_rw_masks(); | |
308 |
|
312 | |||
309 | // once the masks are built, they have to be merged with the fbins_mask |
|
313 | // once the masks are built, they have to be merged with the fbins_mask | |
310 | merge_fbins_masks(); |
|
314 | merge_fbins_masks(); | |
311 |
|
315 | |||
312 | result = status; |
|
316 | result = status; | |
313 |
|
317 | |||
314 | return result; |
|
318 | return result; | |
315 | } |
|
319 | } | |
316 |
|
320 | |||
317 | int action_enable_calibration(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) |
|
321 | int action_enable_calibration(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) | |
318 | { |
|
322 | { | |
319 | /** This function executes specific actions when a TC_LFR_ENABLE_CALIBRATION TeleCommand has been received. |
|
323 | /** This function executes specific actions when a TC_LFR_ENABLE_CALIBRATION TeleCommand has been received. | |
320 | * |
|
324 | * | |
321 | * @param TC points to the TeleCommand packet that is being processed |
|
325 | * @param TC points to the TeleCommand packet that is being processed | |
322 | * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver |
|
326 | * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver | |
323 | * |
|
327 | * | |
324 | */ |
|
328 | */ | |
325 |
|
329 | |||
326 | int result; |
|
330 | int result; | |
327 |
|
331 | |||
328 | result = LFR_DEFAULT; |
|
332 | result = LFR_DEFAULT; | |
329 |
|
333 | |||
330 | setCalibration( true ); |
|
334 | setCalibration( true ); | |
331 |
|
335 | |||
332 | result = LFR_SUCCESSFUL; |
|
336 | result = LFR_SUCCESSFUL; | |
333 |
|
337 | |||
334 | return result; |
|
338 | return result; | |
335 | } |
|
339 | } | |
336 |
|
340 | |||
337 | int action_disable_calibration(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) |
|
341 | int action_disable_calibration(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) | |
338 | { |
|
342 | { | |
339 | /** This function executes specific actions when a TC_LFR_DISABLE_CALIBRATION TeleCommand has been received. |
|
343 | /** This function executes specific actions when a TC_LFR_DISABLE_CALIBRATION TeleCommand has been received. | |
340 | * |
|
344 | * | |
341 | * @param TC points to the TeleCommand packet that is being processed |
|
345 | * @param TC points to the TeleCommand packet that is being processed | |
342 | * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver |
|
346 | * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver | |
343 | * |
|
347 | * | |
344 | */ |
|
348 | */ | |
345 |
|
349 | |||
346 | int result; |
|
350 | int result; | |
347 |
|
351 | |||
348 | result = LFR_DEFAULT; |
|
352 | result = LFR_DEFAULT; | |
349 |
|
353 | |||
350 | setCalibration( false ); |
|
354 | setCalibration( false ); | |
351 |
|
355 | |||
352 | result = LFR_SUCCESSFUL; |
|
356 | result = LFR_SUCCESSFUL; | |
353 |
|
357 | |||
354 | return result; |
|
358 | return result; | |
355 | } |
|
359 | } | |
356 |
|
360 | |||
357 | int action_update_time(ccsdsTelecommandPacket_t *TC) |
|
361 | int action_update_time(ccsdsTelecommandPacket_t *TC) | |
358 | { |
|
362 | { | |
359 | /** This function executes specific actions when a TC_LFR_UPDATE_TIME TeleCommand has been received. |
|
363 | /** This function executes specific actions when a TC_LFR_UPDATE_TIME TeleCommand has been received. | |
360 | * |
|
364 | * | |
361 | * @param TC points to the TeleCommand packet that is being processed |
|
365 | * @param TC points to the TeleCommand packet that is being processed | |
362 | * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver |
|
366 | * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver | |
363 | * |
|
367 | * | |
364 | * @return LFR_SUCCESSFUL |
|
368 | * @return LFR_SUCCESSFUL | |
365 | * |
|
369 | * | |
366 | */ |
|
370 | */ | |
367 |
|
371 | |||
368 | unsigned int val; |
|
372 | unsigned int val; | |
369 |
|
373 | |||
370 | time_management_regs->coarse_time_load = (TC->dataAndCRC[BYTE_0] << SHIFT_3_BYTES) |
|
374 | time_management_regs->coarse_time_load = (TC->dataAndCRC[BYTE_0] << SHIFT_3_BYTES) | |
371 | + (TC->dataAndCRC[BYTE_1] << SHIFT_2_BYTES) |
|
375 | + (TC->dataAndCRC[BYTE_1] << SHIFT_2_BYTES) | |
372 | + (TC->dataAndCRC[BYTE_2] << SHIFT_1_BYTE) |
|
376 | + (TC->dataAndCRC[BYTE_2] << SHIFT_1_BYTE) | |
373 | + TC->dataAndCRC[BYTE_3]; |
|
377 | + TC->dataAndCRC[BYTE_3]; | |
374 |
|
378 | |||
375 | val = (housekeeping_packet.hk_lfr_update_time_tc_cnt[0] * CONST_256) |
|
379 | val = (housekeeping_packet.hk_lfr_update_time_tc_cnt[0] * CONST_256) | |
376 | + housekeeping_packet.hk_lfr_update_time_tc_cnt[1]; |
|
380 | + housekeeping_packet.hk_lfr_update_time_tc_cnt[1]; | |
377 | val++; |
|
381 | val++; | |
378 | housekeeping_packet.hk_lfr_update_time_tc_cnt[0] = (unsigned char) (val >> SHIFT_1_BYTE); |
|
382 | housekeeping_packet.hk_lfr_update_time_tc_cnt[0] = (unsigned char) (val >> SHIFT_1_BYTE); | |
379 | housekeeping_packet.hk_lfr_update_time_tc_cnt[1] = (unsigned char) (val); |
|
383 | housekeeping_packet.hk_lfr_update_time_tc_cnt[1] = (unsigned char) (val); | |
380 |
|
384 | |||
381 | oneTcLfrUpdateTimeReceived = 1; |
|
385 | oneTcLfrUpdateTimeReceived = 1; | |
382 |
|
386 | |||
383 | return LFR_SUCCESSFUL; |
|
387 | return LFR_SUCCESSFUL; | |
384 | } |
|
388 | } | |
385 |
|
389 | |||
386 | //******************* |
|
390 | //******************* | |
387 | // ENTERING THE MODES |
|
391 | // ENTERING THE MODES | |
388 | int check_mode_value( unsigned char requestedMode ) |
|
392 | int check_mode_value( unsigned char requestedMode ) | |
389 | { |
|
393 | { | |
390 | int status; |
|
394 | int status; | |
391 |
|
395 | |||
392 | status = LFR_DEFAULT; |
|
396 | status = LFR_DEFAULT; | |
393 |
|
397 | |||
394 | if ( (requestedMode != LFR_MODE_STANDBY) |
|
398 | if ( (requestedMode != LFR_MODE_STANDBY) | |
395 | && (requestedMode != LFR_MODE_NORMAL) && (requestedMode != LFR_MODE_BURST) |
|
399 | && (requestedMode != LFR_MODE_NORMAL) && (requestedMode != LFR_MODE_BURST) | |
396 | && (requestedMode != LFR_MODE_SBM1) && (requestedMode != LFR_MODE_SBM2) ) |
|
400 | && (requestedMode != LFR_MODE_SBM1) && (requestedMode != LFR_MODE_SBM2) ) | |
397 | { |
|
401 | { | |
398 | status = LFR_DEFAULT; |
|
402 | status = LFR_DEFAULT; | |
399 | } |
|
403 | } | |
400 | else |
|
404 | else | |
401 | { |
|
405 | { | |
402 | status = LFR_SUCCESSFUL; |
|
406 | status = LFR_SUCCESSFUL; | |
403 | } |
|
407 | } | |
404 |
|
408 | |||
405 | return status; |
|
409 | return status; | |
406 | } |
|
410 | } | |
407 |
|
411 | |||
408 | int check_mode_transition( unsigned char requestedMode ) |
|
412 | int check_mode_transition( unsigned char requestedMode ) | |
409 | { |
|
413 | { | |
410 | /** This function checks the validity of the transition requested by the TC_LFR_ENTER_MODE. |
|
414 | /** This function checks the validity of the transition requested by the TC_LFR_ENTER_MODE. | |
411 | * |
|
415 | * | |
412 | * @param requestedMode is the mode requested by the TC_LFR_ENTER_MODE |
|
416 | * @param requestedMode is the mode requested by the TC_LFR_ENTER_MODE | |
413 | * |
|
417 | * | |
414 | * @return LFR directive status codes: |
|
418 | * @return LFR directive status codes: | |
415 | * - LFR_SUCCESSFUL - the transition is authorized |
|
419 | * - LFR_SUCCESSFUL - the transition is authorized | |
416 | * - LFR_DEFAULT - the transition is not authorized |
|
420 | * - LFR_DEFAULT - the transition is not authorized | |
417 | * |
|
421 | * | |
418 | */ |
|
422 | */ | |
419 |
|
423 | |||
420 | int status; |
|
424 | int status; | |
421 |
|
425 | |||
422 | switch (requestedMode) |
|
426 | switch (requestedMode) | |
423 | { |
|
427 | { | |
424 | case LFR_MODE_STANDBY: |
|
428 | case LFR_MODE_STANDBY: | |
425 | if ( lfrCurrentMode == LFR_MODE_STANDBY ) { |
|
429 | if ( lfrCurrentMode == LFR_MODE_STANDBY ) { | |
426 | status = LFR_DEFAULT; |
|
430 | status = LFR_DEFAULT; | |
427 | } |
|
431 | } | |
428 | else |
|
432 | else | |
429 | { |
|
433 | { | |
430 | status = LFR_SUCCESSFUL; |
|
434 | status = LFR_SUCCESSFUL; | |
431 | } |
|
435 | } | |
432 | break; |
|
436 | break; | |
433 | case LFR_MODE_NORMAL: |
|
437 | case LFR_MODE_NORMAL: | |
434 | if ( lfrCurrentMode == LFR_MODE_NORMAL ) { |
|
438 | if ( lfrCurrentMode == LFR_MODE_NORMAL ) { | |
435 | status = LFR_DEFAULT; |
|
439 | status = LFR_DEFAULT; | |
436 | } |
|
440 | } | |
437 | else { |
|
441 | else { | |
438 | status = LFR_SUCCESSFUL; |
|
442 | status = LFR_SUCCESSFUL; | |
439 | } |
|
443 | } | |
440 | break; |
|
444 | break; | |
441 | case LFR_MODE_BURST: |
|
445 | case LFR_MODE_BURST: | |
442 | if ( lfrCurrentMode == LFR_MODE_BURST ) { |
|
446 | if ( lfrCurrentMode == LFR_MODE_BURST ) { | |
443 | status = LFR_DEFAULT; |
|
447 | status = LFR_DEFAULT; | |
444 | } |
|
448 | } | |
445 | else { |
|
449 | else { | |
446 | status = LFR_SUCCESSFUL; |
|
450 | status = LFR_SUCCESSFUL; | |
447 | } |
|
451 | } | |
448 | break; |
|
452 | break; | |
449 | case LFR_MODE_SBM1: |
|
453 | case LFR_MODE_SBM1: | |
450 | if ( lfrCurrentMode == LFR_MODE_SBM1 ) { |
|
454 | if ( lfrCurrentMode == LFR_MODE_SBM1 ) { | |
451 | status = LFR_DEFAULT; |
|
455 | status = LFR_DEFAULT; | |
452 | } |
|
456 | } | |
453 | else { |
|
457 | else { | |
454 | status = LFR_SUCCESSFUL; |
|
458 | status = LFR_SUCCESSFUL; | |
455 | } |
|
459 | } | |
456 | break; |
|
460 | break; | |
457 | case LFR_MODE_SBM2: |
|
461 | case LFR_MODE_SBM2: | |
458 | if ( lfrCurrentMode == LFR_MODE_SBM2 ) { |
|
462 | if ( lfrCurrentMode == LFR_MODE_SBM2 ) { | |
459 | status = LFR_DEFAULT; |
|
463 | status = LFR_DEFAULT; | |
460 | } |
|
464 | } | |
461 | else { |
|
465 | else { | |
462 | status = LFR_SUCCESSFUL; |
|
466 | status = LFR_SUCCESSFUL; | |
463 | } |
|
467 | } | |
464 | break; |
|
468 | break; | |
465 | default: |
|
469 | default: | |
466 | status = LFR_DEFAULT; |
|
470 | status = LFR_DEFAULT; | |
467 | break; |
|
471 | break; | |
468 | } |
|
472 | } | |
469 |
|
473 | |||
470 | return status; |
|
474 | return status; | |
471 | } |
|
475 | } | |
472 |
|
476 | |||
473 | void update_last_valid_transition_date( unsigned int transitionCoarseTime ) |
|
477 | void update_last_valid_transition_date( unsigned int transitionCoarseTime ) | |
474 | { |
|
478 | { | |
475 | if (transitionCoarseTime == 0) |
|
479 | if (transitionCoarseTime == 0) | |
476 | { |
|
480 | { | |
477 | lastValidEnterModeTime = time_management_regs->coarse_time + 1; |
|
481 | lastValidEnterModeTime = time_management_regs->coarse_time + 1; | |
478 | PRINTF1("lastValidEnterModeTime = 0x%x (transitionCoarseTime = 0 => coarse_time+1)\n", lastValidEnterModeTime); |
|
482 | PRINTF1("lastValidEnterModeTime = 0x%x (transitionCoarseTime = 0 => coarse_time+1)\n", lastValidEnterModeTime); | |
479 | } |
|
483 | } | |
480 | else |
|
484 | else | |
481 | { |
|
485 | { | |
482 | lastValidEnterModeTime = transitionCoarseTime; |
|
486 | lastValidEnterModeTime = transitionCoarseTime; | |
483 | PRINTF1("lastValidEnterModeTime = 0x%x\n", transitionCoarseTime); |
|
487 | PRINTF1("lastValidEnterModeTime = 0x%x\n", transitionCoarseTime); | |
484 | } |
|
488 | } | |
485 | } |
|
489 | } | |
486 |
|
490 | |||
487 | int check_transition_date( unsigned int transitionCoarseTime ) |
|
491 | int check_transition_date( unsigned int transitionCoarseTime ) | |
488 | { |
|
492 | { | |
489 | int status; |
|
493 | int status; | |
490 | unsigned int localCoarseTime; |
|
494 | unsigned int localCoarseTime; | |
491 | unsigned int deltaCoarseTime; |
|
495 | unsigned int deltaCoarseTime; | |
492 |
|
496 | |||
493 | status = LFR_SUCCESSFUL; |
|
497 | status = LFR_SUCCESSFUL; | |
494 |
|
498 | |||
495 | if (transitionCoarseTime == 0) // transition time = 0 means an instant transition |
|
499 | if (transitionCoarseTime == 0) // transition time = 0 means an instant transition | |
496 | { |
|
500 | { | |
497 | status = LFR_SUCCESSFUL; |
|
501 | status = LFR_SUCCESSFUL; | |
498 | } |
|
502 | } | |
499 | else |
|
503 | else | |
500 | { |
|
504 | { | |
501 | localCoarseTime = time_management_regs->coarse_time & COARSE_TIME_MASK; |
|
505 | localCoarseTime = time_management_regs->coarse_time & COARSE_TIME_MASK; | |
502 |
|
506 | |||
503 | PRINTF2("localTime = %x, transitionTime = %x\n", localCoarseTime, transitionCoarseTime); |
|
507 | PRINTF2("localTime = %x, transitionTime = %x\n", localCoarseTime, transitionCoarseTime); | |
504 |
|
508 | |||
505 | if ( transitionCoarseTime <= localCoarseTime ) // SSS-CP-EQS-322 |
|
509 | if ( transitionCoarseTime <= localCoarseTime ) // SSS-CP-EQS-322 | |
506 | { |
|
510 | { | |
507 | status = LFR_DEFAULT; |
|
511 | status = LFR_DEFAULT; | |
508 | PRINTF("ERR *** in check_transition_date *** transitionCoarseTime <= localCoarseTime\n"); |
|
512 | PRINTF("ERR *** in check_transition_date *** transitionCoarseTime <= localCoarseTime\n"); | |
509 | } |
|
513 | } | |
510 |
|
514 | |||
511 | if (status == LFR_SUCCESSFUL) |
|
515 | if (status == LFR_SUCCESSFUL) | |
512 | { |
|
516 | { | |
513 | deltaCoarseTime = transitionCoarseTime - localCoarseTime; |
|
517 | deltaCoarseTime = transitionCoarseTime - localCoarseTime; | |
514 | if ( deltaCoarseTime > MAX_DELTA_COARSE_TIME ) // SSS-CP-EQS-323 |
|
518 | if ( deltaCoarseTime > MAX_DELTA_COARSE_TIME ) // SSS-CP-EQS-323 | |
515 | { |
|
519 | { | |
516 | status = LFR_DEFAULT; |
|
520 | status = LFR_DEFAULT; | |
517 | PRINTF1("ERR *** in check_transition_date *** deltaCoarseTime = %x\n", deltaCoarseTime) |
|
521 | PRINTF1("ERR *** in check_transition_date *** deltaCoarseTime = %x\n", deltaCoarseTime) | |
518 | } |
|
522 | } | |
519 | } |
|
523 | } | |
520 | } |
|
524 | } | |
521 |
|
525 | |||
522 | return status; |
|
526 | return status; | |
523 | } |
|
527 | } | |
524 |
|
528 | |||
525 | int restart_asm_activities( unsigned char lfrRequestedMode ) |
|
529 | int restart_asm_activities( unsigned char lfrRequestedMode ) | |
526 | { |
|
530 | { | |
527 | rtems_status_code status; |
|
531 | rtems_status_code status; | |
528 |
|
532 | |||
529 | status = stop_spectral_matrices(); |
|
533 | status = stop_spectral_matrices(); | |
530 |
|
534 | |||
531 | thisIsAnASMRestart = 1; |
|
535 | thisIsAnASMRestart = 1; | |
532 |
|
536 | |||
533 | status = restart_asm_tasks( lfrRequestedMode ); |
|
537 | status = restart_asm_tasks( lfrRequestedMode ); | |
534 |
|
538 | |||
535 | launch_spectral_matrix(); |
|
539 | launch_spectral_matrix(); | |
536 |
|
540 | |||
537 | return status; |
|
541 | return status; | |
538 | } |
|
542 | } | |
539 |
|
543 | |||
540 | int stop_spectral_matrices( void ) |
|
544 | int stop_spectral_matrices( void ) | |
541 | { |
|
545 | { | |
542 | /** This function stops and restarts the current mode average spectral matrices activities. |
|
546 | /** This function stops and restarts the current mode average spectral matrices activities. | |
543 | * |
|
547 | * | |
544 | * @return RTEMS directive status codes: |
|
548 | * @return RTEMS directive status codes: | |
545 | * - RTEMS_SUCCESSFUL - task restarted successfully |
|
549 | * - RTEMS_SUCCESSFUL - task restarted successfully | |
546 | * - RTEMS_INVALID_ID - task id invalid |
|
550 | * - RTEMS_INVALID_ID - task id invalid | |
547 | * - RTEMS_ALREADY_SUSPENDED - task already suspended |
|
551 | * - RTEMS_ALREADY_SUSPENDED - task already suspended | |
548 | * |
|
552 | * | |
549 | */ |
|
553 | */ | |
550 |
|
554 | |||
551 | rtems_status_code status; |
|
555 | rtems_status_code status; | |
552 |
|
556 | |||
553 | status = RTEMS_SUCCESSFUL; |
|
557 | status = RTEMS_SUCCESSFUL; | |
554 |
|
558 | |||
555 | // (1) mask interruptions |
|
559 | // (1) mask interruptions | |
556 | LEON_Mask_interrupt( IRQ_SPECTRAL_MATRIX ); // mask spectral matrix interrupt |
|
560 | LEON_Mask_interrupt( IRQ_SPECTRAL_MATRIX ); // mask spectral matrix interrupt | |
557 |
|
561 | |||
558 | // (2) reset spectral matrices registers |
|
562 | // (2) reset spectral matrices registers | |
559 | set_sm_irq_onNewMatrix( 0 ); // stop the spectral matrices |
|
563 | set_sm_irq_onNewMatrix( 0 ); // stop the spectral matrices | |
560 | reset_sm_status(); |
|
564 | reset_sm_status(); | |
561 |
|
565 | |||
562 | // (3) clear interruptions |
|
566 | // (3) clear interruptions | |
563 | LEON_Clear_interrupt( IRQ_SPECTRAL_MATRIX ); // clear spectral matrix interrupt |
|
567 | LEON_Clear_interrupt( IRQ_SPECTRAL_MATRIX ); // clear spectral matrix interrupt | |
564 |
|
568 | |||
565 | // suspend several tasks |
|
569 | // suspend several tasks | |
566 | if (lfrCurrentMode != LFR_MODE_STANDBY) { |
|
570 | if (lfrCurrentMode != LFR_MODE_STANDBY) { | |
567 | status = suspend_asm_tasks(); |
|
571 | status = suspend_asm_tasks(); | |
568 | } |
|
572 | } | |
569 |
|
573 | |||
570 | if (status != RTEMS_SUCCESSFUL) |
|
574 | if (status != RTEMS_SUCCESSFUL) | |
571 | { |
|
575 | { | |
572 | PRINTF1("in stop_current_mode *** in suspend_science_tasks *** ERR code: %d\n", status) |
|
576 | PRINTF1("in stop_current_mode *** in suspend_science_tasks *** ERR code: %d\n", status) | |
573 | } |
|
577 | } | |
574 |
|
578 | |||
575 | return status; |
|
579 | return status; | |
576 | } |
|
580 | } | |
577 |
|
581 | |||
578 | int stop_current_mode( void ) |
|
582 | int stop_current_mode( void ) | |
579 | { |
|
583 | { | |
580 | /** This function stops the current mode by masking interrupt lines and suspending science tasks. |
|
584 | /** This function stops the current mode by masking interrupt lines and suspending science tasks. | |
581 | * |
|
585 | * | |
582 | * @return RTEMS directive status codes: |
|
586 | * @return RTEMS directive status codes: | |
583 | * - RTEMS_SUCCESSFUL - task restarted successfully |
|
587 | * - RTEMS_SUCCESSFUL - task restarted successfully | |
584 | * - RTEMS_INVALID_ID - task id invalid |
|
588 | * - RTEMS_INVALID_ID - task id invalid | |
585 | * - RTEMS_ALREADY_SUSPENDED - task already suspended |
|
589 | * - RTEMS_ALREADY_SUSPENDED - task already suspended | |
586 | * |
|
590 | * | |
587 | */ |
|
591 | */ | |
588 |
|
592 | |||
589 | rtems_status_code status; |
|
593 | rtems_status_code status; | |
590 |
|
594 | |||
591 | status = RTEMS_SUCCESSFUL; |
|
595 | status = RTEMS_SUCCESSFUL; | |
592 |
|
596 | |||
593 | // (1) mask interruptions |
|
597 | // (1) mask interruptions | |
594 | LEON_Mask_interrupt( IRQ_WAVEFORM_PICKER ); // mask waveform picker interrupt |
|
598 | LEON_Mask_interrupt( IRQ_WAVEFORM_PICKER ); // mask waveform picker interrupt | |
595 | LEON_Mask_interrupt( IRQ_SPECTRAL_MATRIX ); // clear spectral matrix interrupt |
|
599 | LEON_Mask_interrupt( IRQ_SPECTRAL_MATRIX ); // clear spectral matrix interrupt | |
596 |
|
600 | |||
597 | // (2) reset waveform picker registers |
|
601 | // (2) reset waveform picker registers | |
598 | reset_wfp_burst_enable(); // reset burst and enable bits |
|
602 | reset_wfp_burst_enable(); // reset burst and enable bits | |
599 | reset_wfp_status(); // reset all the status bits |
|
603 | reset_wfp_status(); // reset all the status bits | |
600 |
|
604 | |||
601 | // (3) reset spectral matrices registers |
|
605 | // (3) reset spectral matrices registers | |
602 | set_sm_irq_onNewMatrix( 0 ); // stop the spectral matrices |
|
606 | set_sm_irq_onNewMatrix( 0 ); // stop the spectral matrices | |
603 | reset_sm_status(); |
|
607 | reset_sm_status(); | |
604 |
|
608 | |||
605 | // reset lfr VHDL module |
|
609 | // reset lfr VHDL module | |
606 | reset_lfr(); |
|
610 | reset_lfr(); | |
607 |
|
611 | |||
608 | reset_extractSWF(); // reset the extractSWF flag to false |
|
612 | reset_extractSWF(); // reset the extractSWF flag to false | |
609 |
|
613 | |||
610 | // (4) clear interruptions |
|
614 | // (4) clear interruptions | |
611 | LEON_Clear_interrupt( IRQ_WAVEFORM_PICKER ); // clear waveform picker interrupt |
|
615 | LEON_Clear_interrupt( IRQ_WAVEFORM_PICKER ); // clear waveform picker interrupt | |
612 | LEON_Clear_interrupt( IRQ_SPECTRAL_MATRIX ); // clear spectral matrix interrupt |
|
616 | LEON_Clear_interrupt( IRQ_SPECTRAL_MATRIX ); // clear spectral matrix interrupt | |
613 |
|
617 | |||
614 | // suspend several tasks |
|
618 | // suspend several tasks | |
615 | if (lfrCurrentMode != LFR_MODE_STANDBY) { |
|
619 | if (lfrCurrentMode != LFR_MODE_STANDBY) { | |
616 | status = suspend_science_tasks(); |
|
620 | status = suspend_science_tasks(); | |
617 | } |
|
621 | } | |
618 |
|
622 | |||
619 | if (status != RTEMS_SUCCESSFUL) |
|
623 | if (status != RTEMS_SUCCESSFUL) | |
620 | { |
|
624 | { | |
621 | PRINTF1("in stop_current_mode *** in suspend_science_tasks *** ERR code: %d\n", status) |
|
625 | PRINTF1("in stop_current_mode *** in suspend_science_tasks *** ERR code: %d\n", status) | |
622 | } |
|
626 | } | |
623 |
|
627 | |||
624 | return status; |
|
628 | return status; | |
625 | } |
|
629 | } | |
626 |
|
630 | |||
627 | int enter_mode_standby( void ) |
|
631 | int enter_mode_standby( void ) | |
628 | { |
|
632 | { | |
629 | /** This function is used to put LFR in the STANDBY mode. |
|
633 | /** This function is used to put LFR in the STANDBY mode. | |
630 | * |
|
634 | * | |
631 | * @param transitionCoarseTime is the requested transition time contained in the TC_LFR_ENTER_MODE |
|
635 | * @param transitionCoarseTime is the requested transition time contained in the TC_LFR_ENTER_MODE | |
632 | * |
|
636 | * | |
633 | * @return RTEMS directive status codes: |
|
637 | * @return RTEMS directive status codes: | |
634 | * - RTEMS_SUCCESSFUL - task restarted successfully |
|
638 | * - RTEMS_SUCCESSFUL - task restarted successfully | |
635 | * - RTEMS_INVALID_ID - task id invalid |
|
639 | * - RTEMS_INVALID_ID - task id invalid | |
636 | * - RTEMS_INCORRECT_STATE - task never started |
|
640 | * - RTEMS_INCORRECT_STATE - task never started | |
637 | * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task |
|
641 | * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task | |
638 | * |
|
642 | * | |
639 | * The STANDBY mode does not depends on a specific transition date, the effect of the TC_LFR_ENTER_MODE |
|
643 | * The STANDBY mode does not depends on a specific transition date, the effect of the TC_LFR_ENTER_MODE | |
640 | * is immediate. |
|
644 | * is immediate. | |
641 | * |
|
645 | * | |
642 | */ |
|
646 | */ | |
643 |
|
647 | |||
644 | int status; |
|
648 | int status; | |
645 |
|
649 | |||
646 | status = stop_current_mode(); // STOP THE CURRENT MODE |
|
650 | status = stop_current_mode(); // STOP THE CURRENT MODE | |
647 |
|
651 | |||
648 | #ifdef PRINT_TASK_STATISTICS |
|
652 | #ifdef PRINT_TASK_STATISTICS | |
649 | rtems_cpu_usage_report(); |
|
653 | rtems_cpu_usage_report(); | |
650 | #endif |
|
654 | #endif | |
651 |
|
655 | |||
652 | #ifdef PRINT_STACK_REPORT |
|
656 | #ifdef PRINT_STACK_REPORT | |
653 | PRINTF("stack report selected\n") |
|
657 | PRINTF("stack report selected\n") | |
654 | rtems_stack_checker_report_usage(); |
|
658 | rtems_stack_checker_report_usage(); | |
655 | #endif |
|
659 | #endif | |
656 |
|
660 | |||
657 | return status; |
|
661 | return status; | |
658 | } |
|
662 | } | |
659 |
|
663 | |||
660 | int enter_mode_normal( unsigned int transitionCoarseTime ) |
|
664 | int enter_mode_normal( unsigned int transitionCoarseTime ) | |
661 | { |
|
665 | { | |
662 | /** This function is used to start the NORMAL mode. |
|
666 | /** This function is used to start the NORMAL mode. | |
663 | * |
|
667 | * | |
664 | * @param transitionCoarseTime is the requested transition time contained in the TC_LFR_ENTER_MODE |
|
668 | * @param transitionCoarseTime is the requested transition time contained in the TC_LFR_ENTER_MODE | |
665 | * |
|
669 | * | |
666 | * @return RTEMS directive status codes: |
|
670 | * @return RTEMS directive status codes: | |
667 | * - RTEMS_SUCCESSFUL - task restarted successfully |
|
671 | * - RTEMS_SUCCESSFUL - task restarted successfully | |
668 | * - RTEMS_INVALID_ID - task id invalid |
|
672 | * - RTEMS_INVALID_ID - task id invalid | |
669 | * - RTEMS_INCORRECT_STATE - task never started |
|
673 | * - RTEMS_INCORRECT_STATE - task never started | |
670 | * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task |
|
674 | * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task | |
671 | * |
|
675 | * | |
672 | * The way the NORMAL mode is started depends on the LFR current mode. If LFR is in SBM1 or SBM2, |
|
676 | * The way the NORMAL mode is started depends on the LFR current mode. If LFR is in SBM1 or SBM2, | |
673 | * the snapshots are not restarted, only ASM, BP and CWF data generation are affected. |
|
677 | * the snapshots are not restarted, only ASM, BP and CWF data generation are affected. | |
674 | * |
|
678 | * | |
675 | */ |
|
679 | */ | |
676 |
|
680 | |||
677 | int status; |
|
681 | int status; | |
678 |
|
682 | |||
679 | #ifdef PRINT_TASK_STATISTICS |
|
683 | #ifdef PRINT_TASK_STATISTICS | |
680 | rtems_cpu_usage_reset(); |
|
684 | rtems_cpu_usage_reset(); | |
681 | #endif |
|
685 | #endif | |
682 |
|
686 | |||
683 | status = RTEMS_UNSATISFIED; |
|
687 | status = RTEMS_UNSATISFIED; | |
684 |
|
688 | |||
|
689 | printf("hop\n"); | |||
|
690 | ||||
685 | switch( lfrCurrentMode ) |
|
691 | switch( lfrCurrentMode ) | |
686 | { |
|
692 | { | |
687 | case LFR_MODE_STANDBY: |
|
693 | case LFR_MODE_STANDBY: | |
688 | status = restart_science_tasks( LFR_MODE_NORMAL ); // restart science tasks |
|
694 | status = restart_science_tasks( LFR_MODE_NORMAL ); // restart science tasks | |
689 | if (status == RTEMS_SUCCESSFUL) // relaunch spectral_matrix and waveform_picker modules |
|
695 | if (status == RTEMS_SUCCESSFUL) // relaunch spectral_matrix and waveform_picker modules | |
690 | { |
|
696 | { | |
691 | launch_spectral_matrix( ); |
|
697 | launch_spectral_matrix( ); | |
692 | launch_waveform_picker( LFR_MODE_NORMAL, transitionCoarseTime ); |
|
698 | launch_waveform_picker( LFR_MODE_NORMAL, transitionCoarseTime ); | |
693 | } |
|
699 | } | |
694 | break; |
|
700 | break; | |
695 | case LFR_MODE_BURST: |
|
701 | case LFR_MODE_BURST: | |
696 | status = stop_current_mode(); // stop the current mode |
|
702 | status = stop_current_mode(); // stop the current mode | |
697 | status = restart_science_tasks( LFR_MODE_NORMAL ); // restart the science tasks |
|
703 | status = restart_science_tasks( LFR_MODE_NORMAL ); // restart the science tasks | |
698 | if (status == RTEMS_SUCCESSFUL) // relaunch spectral_matrix and waveform_picker modules |
|
704 | if (status == RTEMS_SUCCESSFUL) // relaunch spectral_matrix and waveform_picker modules | |
699 | { |
|
705 | { | |
700 | launch_spectral_matrix( ); |
|
706 | launch_spectral_matrix( ); | |
701 | launch_waveform_picker( LFR_MODE_NORMAL, transitionCoarseTime ); |
|
707 | launch_waveform_picker( LFR_MODE_NORMAL, transitionCoarseTime ); | |
702 | } |
|
708 | } | |
703 | break; |
|
709 | break; | |
704 | case LFR_MODE_SBM1: |
|
710 | case LFR_MODE_SBM1: | |
705 | status = restart_asm_activities( LFR_MODE_NORMAL ); // this is necessary to restart ASM tasks to update the parameters |
|
711 | status = restart_asm_activities( LFR_MODE_NORMAL ); // this is necessary to restart ASM tasks to update the parameters | |
706 | status = LFR_SUCCESSFUL; // lfrCurrentMode will be updated after the execution of close_action |
|
712 | status = LFR_SUCCESSFUL; // lfrCurrentMode will be updated after the execution of close_action | |
707 | update_last_valid_transition_date( transitionCoarseTime ); |
|
713 | update_last_valid_transition_date( transitionCoarseTime ); | |
708 | break; |
|
714 | break; | |
709 | case LFR_MODE_SBM2: |
|
715 | case LFR_MODE_SBM2: | |
710 | status = restart_asm_activities( LFR_MODE_NORMAL ); // this is necessary to restart ASM tasks to update the parameters |
|
716 | status = restart_asm_activities( LFR_MODE_NORMAL ); // this is necessary to restart ASM tasks to update the parameters | |
711 | status = LFR_SUCCESSFUL; // lfrCurrentMode will be updated after the execution of close_action |
|
717 | status = LFR_SUCCESSFUL; // lfrCurrentMode will be updated after the execution of close_action | |
712 | update_last_valid_transition_date( transitionCoarseTime ); |
|
718 | update_last_valid_transition_date( transitionCoarseTime ); | |
713 | break; |
|
719 | break; | |
714 | default: |
|
720 | default: | |
715 | break; |
|
721 | break; | |
716 | } |
|
722 | } | |
717 |
|
723 | |||
718 | if (status != RTEMS_SUCCESSFUL) |
|
724 | if (status != RTEMS_SUCCESSFUL) | |
719 | { |
|
725 | { | |
720 | PRINTF1("ERR *** in enter_mode_normal *** status = %d\n", status) |
|
726 | PRINTF1("ERR *** in enter_mode_normal *** status = %d\n", status) | |
721 | status = RTEMS_UNSATISFIED; |
|
727 | status = RTEMS_UNSATISFIED; | |
722 | } |
|
728 | } | |
723 |
|
729 | |||
724 | return status; |
|
730 | return status; | |
725 | } |
|
731 | } | |
726 |
|
732 | |||
727 | int enter_mode_burst( unsigned int transitionCoarseTime ) |
|
733 | int enter_mode_burst( unsigned int transitionCoarseTime ) | |
728 | { |
|
734 | { | |
729 | /** This function is used to start the BURST mode. |
|
735 | /** This function is used to start the BURST mode. | |
730 | * |
|
736 | * | |
731 | * @param transitionCoarseTime is the requested transition time contained in the TC_LFR_ENTER_MODE |
|
737 | * @param transitionCoarseTime is the requested transition time contained in the TC_LFR_ENTER_MODE | |
732 | * |
|
738 | * | |
733 | * @return RTEMS directive status codes: |
|
739 | * @return RTEMS directive status codes: | |
734 | * - RTEMS_SUCCESSFUL - task restarted successfully |
|
740 | * - RTEMS_SUCCESSFUL - task restarted successfully | |
735 | * - RTEMS_INVALID_ID - task id invalid |
|
741 | * - RTEMS_INVALID_ID - task id invalid | |
736 | * - RTEMS_INCORRECT_STATE - task never started |
|
742 | * - RTEMS_INCORRECT_STATE - task never started | |
737 | * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task |
|
743 | * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task | |
738 | * |
|
744 | * | |
739 | * The way the BURST mode is started does not depend on the LFR current mode. |
|
745 | * The way the BURST mode is started does not depend on the LFR current mode. | |
740 | * |
|
746 | * | |
741 | */ |
|
747 | */ | |
742 |
|
748 | |||
743 |
|
749 | |||
744 | int status; |
|
750 | int status; | |
745 |
|
751 | |||
746 | #ifdef PRINT_TASK_STATISTICS |
|
752 | #ifdef PRINT_TASK_STATISTICS | |
747 | rtems_cpu_usage_reset(); |
|
753 | rtems_cpu_usage_reset(); | |
748 | #endif |
|
754 | #endif | |
749 |
|
755 | |||
750 | status = stop_current_mode(); // stop the current mode |
|
756 | status = stop_current_mode(); // stop the current mode | |
751 | status = restart_science_tasks( LFR_MODE_BURST ); // restart the science tasks |
|
757 | status = restart_science_tasks( LFR_MODE_BURST ); // restart the science tasks | |
752 | if (status == RTEMS_SUCCESSFUL) // relaunch spectral_matrix and waveform_picker modules |
|
758 | if (status == RTEMS_SUCCESSFUL) // relaunch spectral_matrix and waveform_picker modules | |
753 | { |
|
759 | { | |
754 | launch_spectral_matrix( ); |
|
760 | launch_spectral_matrix( ); | |
755 | launch_waveform_picker( LFR_MODE_BURST, transitionCoarseTime ); |
|
761 | launch_waveform_picker( LFR_MODE_BURST, transitionCoarseTime ); | |
756 | } |
|
762 | } | |
757 |
|
763 | |||
758 | if (status != RTEMS_SUCCESSFUL) |
|
764 | if (status != RTEMS_SUCCESSFUL) | |
759 | { |
|
765 | { | |
760 | PRINTF1("ERR *** in enter_mode_burst *** status = %d\n", status) |
|
766 | PRINTF1("ERR *** in enter_mode_burst *** status = %d\n", status) | |
761 | status = RTEMS_UNSATISFIED; |
|
767 | status = RTEMS_UNSATISFIED; | |
762 | } |
|
768 | } | |
763 |
|
769 | |||
764 | return status; |
|
770 | return status; | |
765 | } |
|
771 | } | |
766 |
|
772 | |||
767 | int enter_mode_sbm1( unsigned int transitionCoarseTime ) |
|
773 | int enter_mode_sbm1( unsigned int transitionCoarseTime ) | |
768 | { |
|
774 | { | |
769 | /** This function is used to start the SBM1 mode. |
|
775 | /** This function is used to start the SBM1 mode. | |
770 | * |
|
776 | * | |
771 | * @param transitionCoarseTime is the requested transition time contained in the TC_LFR_ENTER_MODE |
|
777 | * @param transitionCoarseTime is the requested transition time contained in the TC_LFR_ENTER_MODE | |
772 | * |
|
778 | * | |
773 | * @return RTEMS directive status codes: |
|
779 | * @return RTEMS directive status codes: | |
774 | * - RTEMS_SUCCESSFUL - task restarted successfully |
|
780 | * - RTEMS_SUCCESSFUL - task restarted successfully | |
775 | * - RTEMS_INVALID_ID - task id invalid |
|
781 | * - RTEMS_INVALID_ID - task id invalid | |
776 | * - RTEMS_INCORRECT_STATE - task never started |
|
782 | * - RTEMS_INCORRECT_STATE - task never started | |
777 | * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task |
|
783 | * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task | |
778 | * |
|
784 | * | |
779 | * The way the SBM1 mode is started depends on the LFR current mode. If LFR is in NORMAL or SBM2, |
|
785 | * The way the SBM1 mode is started depends on the LFR current mode. If LFR is in NORMAL or SBM2, | |
780 | * the snapshots are not restarted, only ASM, BP and CWF data generation are affected. In other |
|
786 | * the snapshots are not restarted, only ASM, BP and CWF data generation are affected. In other | |
781 | * cases, the acquisition is completely restarted. |
|
787 | * cases, the acquisition is completely restarted. | |
782 | * |
|
788 | * | |
783 | */ |
|
789 | */ | |
784 |
|
790 | |||
785 | int status; |
|
791 | int status; | |
786 |
|
792 | |||
787 | #ifdef PRINT_TASK_STATISTICS |
|
793 | #ifdef PRINT_TASK_STATISTICS | |
788 | rtems_cpu_usage_reset(); |
|
794 | rtems_cpu_usage_reset(); | |
789 | #endif |
|
795 | #endif | |
790 |
|
796 | |||
791 | status = RTEMS_UNSATISFIED; |
|
797 | status = RTEMS_UNSATISFIED; | |
792 |
|
798 | |||
793 | switch( lfrCurrentMode ) |
|
799 | switch( lfrCurrentMode ) | |
794 | { |
|
800 | { | |
795 | case LFR_MODE_STANDBY: |
|
801 | case LFR_MODE_STANDBY: | |
796 | status = restart_science_tasks( LFR_MODE_SBM1 ); // restart science tasks |
|
802 | status = restart_science_tasks( LFR_MODE_SBM1 ); // restart science tasks | |
797 | if (status == RTEMS_SUCCESSFUL) // relaunch spectral_matrix and waveform_picker modules |
|
803 | if (status == RTEMS_SUCCESSFUL) // relaunch spectral_matrix and waveform_picker modules | |
798 | { |
|
804 | { | |
799 | launch_spectral_matrix( ); |
|
805 | launch_spectral_matrix( ); | |
800 | launch_waveform_picker( LFR_MODE_SBM1, transitionCoarseTime ); |
|
806 | launch_waveform_picker( LFR_MODE_SBM1, transitionCoarseTime ); | |
801 | } |
|
807 | } | |
802 | break; |
|
808 | break; | |
803 | case LFR_MODE_NORMAL: // lfrCurrentMode will be updated after the execution of close_action |
|
809 | case LFR_MODE_NORMAL: // lfrCurrentMode will be updated after the execution of close_action | |
804 | status = restart_asm_activities( LFR_MODE_SBM1 ); |
|
810 | status = restart_asm_activities( LFR_MODE_SBM1 ); | |
805 | status = LFR_SUCCESSFUL; |
|
811 | status = LFR_SUCCESSFUL; | |
806 | update_last_valid_transition_date( transitionCoarseTime ); |
|
812 | update_last_valid_transition_date( transitionCoarseTime ); | |
807 | break; |
|
813 | break; | |
808 | case LFR_MODE_BURST: |
|
814 | case LFR_MODE_BURST: | |
809 | status = stop_current_mode(); // stop the current mode |
|
815 | status = stop_current_mode(); // stop the current mode | |
810 | status = restart_science_tasks( LFR_MODE_SBM1 ); // restart the science tasks |
|
816 | status = restart_science_tasks( LFR_MODE_SBM1 ); // restart the science tasks | |
811 | if (status == RTEMS_SUCCESSFUL) // relaunch spectral_matrix and waveform_picker modules |
|
817 | if (status == RTEMS_SUCCESSFUL) // relaunch spectral_matrix and waveform_picker modules | |
812 | { |
|
818 | { | |
813 | launch_spectral_matrix( ); |
|
819 | launch_spectral_matrix( ); | |
814 | launch_waveform_picker( LFR_MODE_SBM1, transitionCoarseTime ); |
|
820 | launch_waveform_picker( LFR_MODE_SBM1, transitionCoarseTime ); | |
815 | } |
|
821 | } | |
816 | break; |
|
822 | break; | |
817 | case LFR_MODE_SBM2: |
|
823 | case LFR_MODE_SBM2: | |
818 | status = restart_asm_activities( LFR_MODE_SBM1 ); |
|
824 | status = restart_asm_activities( LFR_MODE_SBM1 ); | |
819 | status = LFR_SUCCESSFUL; // lfrCurrentMode will be updated after the execution of close_action |
|
825 | status = LFR_SUCCESSFUL; // lfrCurrentMode will be updated after the execution of close_action | |
820 | update_last_valid_transition_date( transitionCoarseTime ); |
|
826 | update_last_valid_transition_date( transitionCoarseTime ); | |
821 | break; |
|
827 | break; | |
822 | default: |
|
828 | default: | |
823 | break; |
|
829 | break; | |
824 | } |
|
830 | } | |
825 |
|
831 | |||
826 | if (status != RTEMS_SUCCESSFUL) |
|
832 | if (status != RTEMS_SUCCESSFUL) | |
827 | { |
|
833 | { | |
828 | PRINTF1("ERR *** in enter_mode_sbm1 *** status = %d\n", status); |
|
834 | PRINTF1("ERR *** in enter_mode_sbm1 *** status = %d\n", status); | |
829 | status = RTEMS_UNSATISFIED; |
|
835 | status = RTEMS_UNSATISFIED; | |
830 | } |
|
836 | } | |
831 |
|
837 | |||
832 | return status; |
|
838 | return status; | |
833 | } |
|
839 | } | |
834 |
|
840 | |||
835 | int enter_mode_sbm2( unsigned int transitionCoarseTime ) |
|
841 | int enter_mode_sbm2( unsigned int transitionCoarseTime ) | |
836 | { |
|
842 | { | |
837 | /** This function is used to start the SBM2 mode. |
|
843 | /** This function is used to start the SBM2 mode. | |
838 | * |
|
844 | * | |
839 | * @param transitionCoarseTime is the requested transition time contained in the TC_LFR_ENTER_MODE |
|
845 | * @param transitionCoarseTime is the requested transition time contained in the TC_LFR_ENTER_MODE | |
840 | * |
|
846 | * | |
841 | * @return RTEMS directive status codes: |
|
847 | * @return RTEMS directive status codes: | |
842 | * - RTEMS_SUCCESSFUL - task restarted successfully |
|
848 | * - RTEMS_SUCCESSFUL - task restarted successfully | |
843 | * - RTEMS_INVALID_ID - task id invalid |
|
849 | * - RTEMS_INVALID_ID - task id invalid | |
844 | * - RTEMS_INCORRECT_STATE - task never started |
|
850 | * - RTEMS_INCORRECT_STATE - task never started | |
845 | * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task |
|
851 | * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task | |
846 | * |
|
852 | * | |
847 | * The way the SBM2 mode is started depends on the LFR current mode. If LFR is in NORMAL or SBM1, |
|
853 | * The way the SBM2 mode is started depends on the LFR current mode. If LFR is in NORMAL or SBM1, | |
848 | * the snapshots are not restarted, only ASM, BP and CWF data generation are affected. In other |
|
854 | * the snapshots are not restarted, only ASM, BP and CWF data generation are affected. In other | |
849 | * cases, the acquisition is completely restarted. |
|
855 | * cases, the acquisition is completely restarted. | |
850 | * |
|
856 | * | |
851 | */ |
|
857 | */ | |
852 |
|
858 | |||
853 | int status; |
|
859 | int status; | |
854 |
|
860 | |||
855 | #ifdef PRINT_TASK_STATISTICS |
|
861 | #ifdef PRINT_TASK_STATISTICS | |
856 | rtems_cpu_usage_reset(); |
|
862 | rtems_cpu_usage_reset(); | |
857 | #endif |
|
863 | #endif | |
858 |
|
864 | |||
859 | status = RTEMS_UNSATISFIED; |
|
865 | status = RTEMS_UNSATISFIED; | |
860 |
|
866 | |||
861 | switch( lfrCurrentMode ) |
|
867 | switch( lfrCurrentMode ) | |
862 | { |
|
868 | { | |
863 | case LFR_MODE_STANDBY: |
|
869 | case LFR_MODE_STANDBY: | |
864 | status = restart_science_tasks( LFR_MODE_SBM2 ); // restart science tasks |
|
870 | status = restart_science_tasks( LFR_MODE_SBM2 ); // restart science tasks | |
865 | if (status == RTEMS_SUCCESSFUL) // relaunch spectral_matrix and waveform_picker modules |
|
871 | if (status == RTEMS_SUCCESSFUL) // relaunch spectral_matrix and waveform_picker modules | |
866 | { |
|
872 | { | |
867 | launch_spectral_matrix( ); |
|
873 | launch_spectral_matrix( ); | |
868 | launch_waveform_picker( LFR_MODE_SBM2, transitionCoarseTime ); |
|
874 | launch_waveform_picker( LFR_MODE_SBM2, transitionCoarseTime ); | |
869 | } |
|
875 | } | |
870 | break; |
|
876 | break; | |
871 | case LFR_MODE_NORMAL: |
|
877 | case LFR_MODE_NORMAL: | |
872 | status = restart_asm_activities( LFR_MODE_SBM2 ); |
|
878 | status = restart_asm_activities( LFR_MODE_SBM2 ); | |
873 | status = LFR_SUCCESSFUL; // lfrCurrentMode will be updated after the execution of close_action |
|
879 | status = LFR_SUCCESSFUL; // lfrCurrentMode will be updated after the execution of close_action | |
874 | update_last_valid_transition_date( transitionCoarseTime ); |
|
880 | update_last_valid_transition_date( transitionCoarseTime ); | |
875 | break; |
|
881 | break; | |
876 | case LFR_MODE_BURST: |
|
882 | case LFR_MODE_BURST: | |
877 | status = stop_current_mode(); // stop the current mode |
|
883 | status = stop_current_mode(); // stop the current mode | |
878 | status = restart_science_tasks( LFR_MODE_SBM2 ); // restart the science tasks |
|
884 | status = restart_science_tasks( LFR_MODE_SBM2 ); // restart the science tasks | |
879 | if (status == RTEMS_SUCCESSFUL) // relaunch spectral_matrix and waveform_picker modules |
|
885 | if (status == RTEMS_SUCCESSFUL) // relaunch spectral_matrix and waveform_picker modules | |
880 | { |
|
886 | { | |
881 | launch_spectral_matrix( ); |
|
887 | launch_spectral_matrix( ); | |
882 | launch_waveform_picker( LFR_MODE_SBM2, transitionCoarseTime ); |
|
888 | launch_waveform_picker( LFR_MODE_SBM2, transitionCoarseTime ); | |
883 | } |
|
889 | } | |
884 | break; |
|
890 | break; | |
885 | case LFR_MODE_SBM1: |
|
891 | case LFR_MODE_SBM1: | |
886 | status = restart_asm_activities( LFR_MODE_SBM2 ); |
|
892 | status = restart_asm_activities( LFR_MODE_SBM2 ); | |
887 | status = LFR_SUCCESSFUL; // lfrCurrentMode will be updated after the execution of close_action |
|
893 | status = LFR_SUCCESSFUL; // lfrCurrentMode will be updated after the execution of close_action | |
888 | update_last_valid_transition_date( transitionCoarseTime ); |
|
894 | update_last_valid_transition_date( transitionCoarseTime ); | |
889 | break; |
|
895 | break; | |
890 | default: |
|
896 | default: | |
891 | break; |
|
897 | break; | |
892 | } |
|
898 | } | |
893 |
|
899 | |||
894 | if (status != RTEMS_SUCCESSFUL) |
|
900 | if (status != RTEMS_SUCCESSFUL) | |
895 | { |
|
901 | { | |
896 | PRINTF1("ERR *** in enter_mode_sbm2 *** status = %d\n", status) |
|
902 | PRINTF1("ERR *** in enter_mode_sbm2 *** status = %d\n", status) | |
897 | status = RTEMS_UNSATISFIED; |
|
903 | status = RTEMS_UNSATISFIED; | |
898 | } |
|
904 | } | |
899 |
|
905 | |||
900 | return status; |
|
906 | return status; | |
901 | } |
|
907 | } | |
902 |
|
908 | |||
903 | int restart_science_tasks( unsigned char lfrRequestedMode ) |
|
909 | int restart_science_tasks( unsigned char lfrRequestedMode ) | |
904 | { |
|
910 | { | |
905 | /** This function is used to restart all science tasks. |
|
911 | /** This function is used to restart all science tasks. | |
906 | * |
|
912 | * | |
907 | * @return RTEMS directive status codes: |
|
913 | * @return RTEMS directive status codes: | |
908 | * - RTEMS_SUCCESSFUL - task restarted successfully |
|
914 | * - RTEMS_SUCCESSFUL - task restarted successfully | |
909 | * - RTEMS_INVALID_ID - task id invalid |
|
915 | * - RTEMS_INVALID_ID - task id invalid | |
910 | * - RTEMS_INCORRECT_STATE - task never started |
|
916 | * - RTEMS_INCORRECT_STATE - task never started | |
911 | * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task |
|
917 | * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task | |
912 | * |
|
918 | * | |
913 | * Science tasks are AVF0, PRC0, WFRM, CWF3, CW2, CWF1 |
|
919 | * Science tasks are AVF0, PRC0, WFRM, CWF3, CW2, CWF1 | |
914 | * |
|
920 | * | |
915 | */ |
|
921 | */ | |
916 |
|
922 | |||
917 | rtems_status_code status[NB_SCIENCE_TASKS]; |
|
923 | rtems_status_code status[NB_SCIENCE_TASKS]; | |
918 | rtems_status_code ret; |
|
924 | rtems_status_code ret; | |
919 |
|
925 | |||
920 | ret = RTEMS_SUCCESSFUL; |
|
926 | ret = RTEMS_SUCCESSFUL; | |
921 |
|
927 | |||
922 | status[STATUS_0] = rtems_task_restart( Task_id[TASKID_AVF0], lfrRequestedMode ); |
|
928 | status[STATUS_0] = rtems_task_restart( Task_id[TASKID_AVF0], lfrRequestedMode ); | |
923 | if (status[STATUS_0] != RTEMS_SUCCESSFUL) |
|
929 | if (status[STATUS_0] != RTEMS_SUCCESSFUL) | |
924 | { |
|
930 | { | |
925 | PRINTF1("in restart_science_task *** AVF0 ERR %d\n", status[STATUS_0]) |
|
931 | PRINTF1("in restart_science_task *** AVF0 ERR %d\n", status[STATUS_0]) | |
926 | } |
|
932 | } | |
927 |
|
933 | |||
928 | status[STATUS_1] = rtems_task_restart( Task_id[TASKID_PRC0], lfrRequestedMode ); |
|
934 | status[STATUS_1] = rtems_task_restart( Task_id[TASKID_PRC0], lfrRequestedMode ); | |
929 | if (status[STATUS_1] != RTEMS_SUCCESSFUL) |
|
935 | if (status[STATUS_1] != RTEMS_SUCCESSFUL) | |
930 | { |
|
936 | { | |
931 | PRINTF1("in restart_science_task *** PRC0 ERR %d\n", status[STATUS_1]) |
|
937 | PRINTF1("in restart_science_task *** PRC0 ERR %d\n", status[STATUS_1]) | |
932 | } |
|
938 | } | |
933 |
|
939 | |||
934 | status[STATUS_2] = rtems_task_restart( Task_id[TASKID_WFRM],1 ); |
|
940 | status[STATUS_2] = rtems_task_restart( Task_id[TASKID_WFRM],1 ); | |
935 | if (status[STATUS_2] != RTEMS_SUCCESSFUL) |
|
941 | if (status[STATUS_2] != RTEMS_SUCCESSFUL) | |
936 | { |
|
942 | { | |
937 | PRINTF1("in restart_science_task *** WFRM ERR %d\n", status[STATUS_2]) |
|
943 | PRINTF1("in restart_science_task *** WFRM ERR %d\n", status[STATUS_2]) | |
938 | } |
|
944 | } | |
939 |
|
945 | |||
940 | status[STATUS_3] = rtems_task_restart( Task_id[TASKID_CWF3],1 ); |
|
946 | status[STATUS_3] = rtems_task_restart( Task_id[TASKID_CWF3],1 ); | |
941 | if (status[STATUS_3] != RTEMS_SUCCESSFUL) |
|
947 | if (status[STATUS_3] != RTEMS_SUCCESSFUL) | |
942 | { |
|
948 | { | |
943 | PRINTF1("in restart_science_task *** CWF3 ERR %d\n", status[STATUS_3]) |
|
949 | PRINTF1("in restart_science_task *** CWF3 ERR %d\n", status[STATUS_3]) | |
944 | } |
|
950 | } | |
945 |
|
951 | |||
946 | status[STATUS_4] = rtems_task_restart( Task_id[TASKID_CWF2],1 ); |
|
952 | status[STATUS_4] = rtems_task_restart( Task_id[TASKID_CWF2],1 ); | |
947 | if (status[STATUS_4] != RTEMS_SUCCESSFUL) |
|
953 | if (status[STATUS_4] != RTEMS_SUCCESSFUL) | |
948 | { |
|
954 | { | |
949 | PRINTF1("in restart_science_task *** CWF2 ERR %d\n", status[STATUS_4]) |
|
955 | PRINTF1("in restart_science_task *** CWF2 ERR %d\n", status[STATUS_4]) | |
950 | } |
|
956 | } | |
951 |
|
957 | |||
952 | status[STATUS_5] = rtems_task_restart( Task_id[TASKID_CWF1],1 ); |
|
958 | status[STATUS_5] = rtems_task_restart( Task_id[TASKID_CWF1],1 ); | |
953 | if (status[STATUS_5] != RTEMS_SUCCESSFUL) |
|
959 | if (status[STATUS_5] != RTEMS_SUCCESSFUL) | |
954 | { |
|
960 | { | |
955 | PRINTF1("in restart_science_task *** CWF1 ERR %d\n", status[STATUS_5]) |
|
961 | PRINTF1("in restart_science_task *** CWF1 ERR %d\n", status[STATUS_5]) | |
956 | } |
|
962 | } | |
957 |
|
963 | |||
958 | status[STATUS_6] = rtems_task_restart( Task_id[TASKID_AVF1], lfrRequestedMode ); |
|
964 | status[STATUS_6] = rtems_task_restart( Task_id[TASKID_AVF1], lfrRequestedMode ); | |
959 | if (status[STATUS_6] != RTEMS_SUCCESSFUL) |
|
965 | if (status[STATUS_6] != RTEMS_SUCCESSFUL) | |
960 | { |
|
966 | { | |
961 | PRINTF1("in restart_science_task *** AVF1 ERR %d\n", status[STATUS_6]) |
|
967 | PRINTF1("in restart_science_task *** AVF1 ERR %d\n", status[STATUS_6]) | |
962 | } |
|
968 | } | |
963 |
|
969 | |||
964 | status[STATUS_7] = rtems_task_restart( Task_id[TASKID_PRC1],lfrRequestedMode ); |
|
970 | status[STATUS_7] = rtems_task_restart( Task_id[TASKID_PRC1],lfrRequestedMode ); | |
965 | if (status[STATUS_7] != RTEMS_SUCCESSFUL) |
|
971 | if (status[STATUS_7] != RTEMS_SUCCESSFUL) | |
966 | { |
|
972 | { | |
967 | PRINTF1("in restart_science_task *** PRC1 ERR %d\n", status[STATUS_7]) |
|
973 | PRINTF1("in restart_science_task *** PRC1 ERR %d\n", status[STATUS_7]) | |
968 | } |
|
974 | } | |
969 |
|
975 | |||
970 | status[STATUS_8] = rtems_task_restart( Task_id[TASKID_AVF2], 1 ); |
|
976 | status[STATUS_8] = rtems_task_restart( Task_id[TASKID_AVF2], 1 ); | |
971 | if (status[STATUS_8] != RTEMS_SUCCESSFUL) |
|
977 | if (status[STATUS_8] != RTEMS_SUCCESSFUL) | |
972 | { |
|
978 | { | |
973 | PRINTF1("in restart_science_task *** AVF2 ERR %d\n", status[STATUS_8]) |
|
979 | PRINTF1("in restart_science_task *** AVF2 ERR %d\n", status[STATUS_8]) | |
974 | } |
|
980 | } | |
975 |
|
981 | |||
976 | status[STATUS_9] = rtems_task_restart( Task_id[TASKID_PRC2], 1 ); |
|
982 | status[STATUS_9] = rtems_task_restart( Task_id[TASKID_PRC2], 1 ); | |
977 | if (status[STATUS_9] != RTEMS_SUCCESSFUL) |
|
983 | if (status[STATUS_9] != RTEMS_SUCCESSFUL) | |
978 | { |
|
984 | { | |
979 | PRINTF1("in restart_science_task *** PRC2 ERR %d\n", status[STATUS_9]) |
|
985 | PRINTF1("in restart_science_task *** PRC2 ERR %d\n", status[STATUS_9]) | |
980 | } |
|
986 | } | |
981 |
|
987 | |||
982 | if ( (status[STATUS_0] != RTEMS_SUCCESSFUL) || (status[STATUS_1] != RTEMS_SUCCESSFUL) || |
|
988 | if ( (status[STATUS_0] != RTEMS_SUCCESSFUL) || (status[STATUS_1] != RTEMS_SUCCESSFUL) || | |
983 | (status[STATUS_2] != RTEMS_SUCCESSFUL) || (status[STATUS_3] != RTEMS_SUCCESSFUL) || |
|
989 | (status[STATUS_2] != RTEMS_SUCCESSFUL) || (status[STATUS_3] != RTEMS_SUCCESSFUL) || | |
984 | (status[STATUS_4] != RTEMS_SUCCESSFUL) || (status[STATUS_5] != RTEMS_SUCCESSFUL) || |
|
990 | (status[STATUS_4] != RTEMS_SUCCESSFUL) || (status[STATUS_5] != RTEMS_SUCCESSFUL) || | |
985 | (status[STATUS_6] != RTEMS_SUCCESSFUL) || (status[STATUS_7] != RTEMS_SUCCESSFUL) || |
|
991 | (status[STATUS_6] != RTEMS_SUCCESSFUL) || (status[STATUS_7] != RTEMS_SUCCESSFUL) || | |
986 | (status[STATUS_8] != RTEMS_SUCCESSFUL) || (status[STATUS_9] != RTEMS_SUCCESSFUL) ) |
|
992 | (status[STATUS_8] != RTEMS_SUCCESSFUL) || (status[STATUS_9] != RTEMS_SUCCESSFUL) ) | |
987 | { |
|
993 | { | |
988 | ret = RTEMS_UNSATISFIED; |
|
994 | ret = RTEMS_UNSATISFIED; | |
989 | } |
|
995 | } | |
990 |
|
996 | |||
991 | return ret; |
|
997 | return ret; | |
992 | } |
|
998 | } | |
993 |
|
999 | |||
994 | int restart_asm_tasks( unsigned char lfrRequestedMode ) |
|
1000 | int restart_asm_tasks( unsigned char lfrRequestedMode ) | |
995 | { |
|
1001 | { | |
996 | /** This function is used to restart average spectral matrices tasks. |
|
1002 | /** This function is used to restart average spectral matrices tasks. | |
997 | * |
|
1003 | * | |
998 | * @return RTEMS directive status codes: |
|
1004 | * @return RTEMS directive status codes: | |
999 | * - RTEMS_SUCCESSFUL - task restarted successfully |
|
1005 | * - RTEMS_SUCCESSFUL - task restarted successfully | |
1000 | * - RTEMS_INVALID_ID - task id invalid |
|
1006 | * - RTEMS_INVALID_ID - task id invalid | |
1001 | * - RTEMS_INCORRECT_STATE - task never started |
|
1007 | * - RTEMS_INCORRECT_STATE - task never started | |
1002 | * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task |
|
1008 | * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task | |
1003 | * |
|
1009 | * | |
1004 | * ASM tasks are AVF0, PRC0, AVF1, PRC1, AVF2 and PRC2 |
|
1010 | * ASM tasks are AVF0, PRC0, AVF1, PRC1, AVF2 and PRC2 | |
1005 | * |
|
1011 | * | |
1006 | */ |
|
1012 | */ | |
1007 |
|
1013 | |||
1008 | rtems_status_code status[NB_ASM_TASKS]; |
|
1014 | rtems_status_code status[NB_ASM_TASKS]; | |
1009 | rtems_status_code ret; |
|
1015 | rtems_status_code ret; | |
1010 |
|
1016 | |||
1011 | ret = RTEMS_SUCCESSFUL; |
|
1017 | ret = RTEMS_SUCCESSFUL; | |
1012 |
|
1018 | |||
1013 | status[STATUS_0] = rtems_task_restart( Task_id[TASKID_AVF0], lfrRequestedMode ); |
|
1019 | status[STATUS_0] = rtems_task_restart( Task_id[TASKID_AVF0], lfrRequestedMode ); | |
1014 | if (status[STATUS_0] != RTEMS_SUCCESSFUL) |
|
1020 | if (status[STATUS_0] != RTEMS_SUCCESSFUL) | |
1015 | { |
|
1021 | { | |
1016 | PRINTF1("in restart_science_task *** AVF0 ERR %d\n", status[STATUS_0]) |
|
1022 | PRINTF1("in restart_science_task *** AVF0 ERR %d\n", status[STATUS_0]) | |
1017 | } |
|
1023 | } | |
1018 |
|
1024 | |||
1019 | status[STATUS_1] = rtems_task_restart( Task_id[TASKID_PRC0], lfrRequestedMode ); |
|
1025 | status[STATUS_1] = rtems_task_restart( Task_id[TASKID_PRC0], lfrRequestedMode ); | |
1020 | if (status[STATUS_1] != RTEMS_SUCCESSFUL) |
|
1026 | if (status[STATUS_1] != RTEMS_SUCCESSFUL) | |
1021 | { |
|
1027 | { | |
1022 | PRINTF1("in restart_science_task *** PRC0 ERR %d\n", status[STATUS_1]) |
|
1028 | PRINTF1("in restart_science_task *** PRC0 ERR %d\n", status[STATUS_1]) | |
1023 | } |
|
1029 | } | |
1024 |
|
1030 | |||
1025 | status[STATUS_2] = rtems_task_restart( Task_id[TASKID_AVF1], lfrRequestedMode ); |
|
1031 | status[STATUS_2] = rtems_task_restart( Task_id[TASKID_AVF1], lfrRequestedMode ); | |
1026 | if (status[STATUS_2] != RTEMS_SUCCESSFUL) |
|
1032 | if (status[STATUS_2] != RTEMS_SUCCESSFUL) | |
1027 | { |
|
1033 | { | |
1028 | PRINTF1("in restart_science_task *** AVF1 ERR %d\n", status[STATUS_2]) |
|
1034 | PRINTF1("in restart_science_task *** AVF1 ERR %d\n", status[STATUS_2]) | |
1029 | } |
|
1035 | } | |
1030 |
|
1036 | |||
1031 | status[STATUS_3] = rtems_task_restart( Task_id[TASKID_PRC1],lfrRequestedMode ); |
|
1037 | status[STATUS_3] = rtems_task_restart( Task_id[TASKID_PRC1],lfrRequestedMode ); | |
1032 | if (status[STATUS_3] != RTEMS_SUCCESSFUL) |
|
1038 | if (status[STATUS_3] != RTEMS_SUCCESSFUL) | |
1033 | { |
|
1039 | { | |
1034 | PRINTF1("in restart_science_task *** PRC1 ERR %d\n", status[STATUS_3]) |
|
1040 | PRINTF1("in restart_science_task *** PRC1 ERR %d\n", status[STATUS_3]) | |
1035 | } |
|
1041 | } | |
1036 |
|
1042 | |||
1037 | status[STATUS_4] = rtems_task_restart( Task_id[TASKID_AVF2], 1 ); |
|
1043 | status[STATUS_4] = rtems_task_restart( Task_id[TASKID_AVF2], 1 ); | |
1038 | if (status[STATUS_4] != RTEMS_SUCCESSFUL) |
|
1044 | if (status[STATUS_4] != RTEMS_SUCCESSFUL) | |
1039 | { |
|
1045 | { | |
1040 | PRINTF1("in restart_science_task *** AVF2 ERR %d\n", status[STATUS_4]) |
|
1046 | PRINTF1("in restart_science_task *** AVF2 ERR %d\n", status[STATUS_4]) | |
1041 | } |
|
1047 | } | |
1042 |
|
1048 | |||
1043 | status[STATUS_5] = rtems_task_restart( Task_id[TASKID_PRC2], 1 ); |
|
1049 | status[STATUS_5] = rtems_task_restart( Task_id[TASKID_PRC2], 1 ); | |
1044 | if (status[STATUS_5] != RTEMS_SUCCESSFUL) |
|
1050 | if (status[STATUS_5] != RTEMS_SUCCESSFUL) | |
1045 | { |
|
1051 | { | |
1046 | PRINTF1("in restart_science_task *** PRC2 ERR %d\n", status[STATUS_5]) |
|
1052 | PRINTF1("in restart_science_task *** PRC2 ERR %d\n", status[STATUS_5]) | |
1047 | } |
|
1053 | } | |
1048 |
|
1054 | |||
1049 | if ( (status[STATUS_0] != RTEMS_SUCCESSFUL) || (status[STATUS_1] != RTEMS_SUCCESSFUL) || |
|
1055 | if ( (status[STATUS_0] != RTEMS_SUCCESSFUL) || (status[STATUS_1] != RTEMS_SUCCESSFUL) || | |
1050 | (status[STATUS_2] != RTEMS_SUCCESSFUL) || (status[STATUS_3] != RTEMS_SUCCESSFUL) || |
|
1056 | (status[STATUS_2] != RTEMS_SUCCESSFUL) || (status[STATUS_3] != RTEMS_SUCCESSFUL) || | |
1051 | (status[STATUS_4] != RTEMS_SUCCESSFUL) || (status[STATUS_5] != RTEMS_SUCCESSFUL) ) |
|
1057 | (status[STATUS_4] != RTEMS_SUCCESSFUL) || (status[STATUS_5] != RTEMS_SUCCESSFUL) ) | |
1052 | { |
|
1058 | { | |
1053 | ret = RTEMS_UNSATISFIED; |
|
1059 | ret = RTEMS_UNSATISFIED; | |
1054 | } |
|
1060 | } | |
1055 |
|
1061 | |||
1056 | return ret; |
|
1062 | return ret; | |
1057 | } |
|
1063 | } | |
1058 |
|
1064 | |||
1059 | int suspend_science_tasks( void ) |
|
1065 | int suspend_science_tasks( void ) | |
1060 | { |
|
1066 | { | |
1061 | /** This function suspends the science tasks. |
|
1067 | /** This function suspends the science tasks. | |
1062 | * |
|
1068 | * | |
1063 | * @return RTEMS directive status codes: |
|
1069 | * @return RTEMS directive status codes: | |
1064 | * - RTEMS_SUCCESSFUL - task restarted successfully |
|
1070 | * - RTEMS_SUCCESSFUL - task restarted successfully | |
1065 | * - RTEMS_INVALID_ID - task id invalid |
|
1071 | * - RTEMS_INVALID_ID - task id invalid | |
1066 | * - RTEMS_ALREADY_SUSPENDED - task already suspended |
|
1072 | * - RTEMS_ALREADY_SUSPENDED - task already suspended | |
1067 | * |
|
1073 | * | |
1068 | */ |
|
1074 | */ | |
1069 |
|
1075 | |||
1070 | rtems_status_code status; |
|
1076 | rtems_status_code status; | |
1071 |
|
1077 | |||
1072 | PRINTF("in suspend_science_tasks\n") |
|
1078 | PRINTF("in suspend_science_tasks\n") | |
1073 |
|
1079 | |||
1074 | status = rtems_task_suspend( Task_id[TASKID_AVF0] ); // suspend AVF0 |
|
1080 | status = rtems_task_suspend( Task_id[TASKID_AVF0] ); // suspend AVF0 | |
1075 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1081 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1076 | { |
|
1082 | { | |
1077 | PRINTF1("in suspend_science_task *** AVF0 ERR %d\n", status) |
|
1083 | PRINTF1("in suspend_science_task *** AVF0 ERR %d\n", status) | |
1078 | } |
|
1084 | } | |
1079 | else |
|
1085 | else | |
1080 | { |
|
1086 | { | |
1081 | status = RTEMS_SUCCESSFUL; |
|
1087 | status = RTEMS_SUCCESSFUL; | |
1082 | } |
|
1088 | } | |
1083 | if (status == RTEMS_SUCCESSFUL) // suspend PRC0 |
|
1089 | if (status == RTEMS_SUCCESSFUL) // suspend PRC0 | |
1084 | { |
|
1090 | { | |
1085 | status = rtems_task_suspend( Task_id[TASKID_PRC0] ); |
|
1091 | status = rtems_task_suspend( Task_id[TASKID_PRC0] ); | |
1086 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1092 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1087 | { |
|
1093 | { | |
1088 | PRINTF1("in suspend_science_task *** PRC0 ERR %d\n", status) |
|
1094 | PRINTF1("in suspend_science_task *** PRC0 ERR %d\n", status) | |
1089 | } |
|
1095 | } | |
1090 | else |
|
1096 | else | |
1091 | { |
|
1097 | { | |
1092 | status = RTEMS_SUCCESSFUL; |
|
1098 | status = RTEMS_SUCCESSFUL; | |
1093 | } |
|
1099 | } | |
1094 | } |
|
1100 | } | |
1095 | if (status == RTEMS_SUCCESSFUL) // suspend AVF1 |
|
1101 | if (status == RTEMS_SUCCESSFUL) // suspend AVF1 | |
1096 | { |
|
1102 | { | |
1097 | status = rtems_task_suspend( Task_id[TASKID_AVF1] ); |
|
1103 | status = rtems_task_suspend( Task_id[TASKID_AVF1] ); | |
1098 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1104 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1099 | { |
|
1105 | { | |
1100 | PRINTF1("in suspend_science_task *** AVF1 ERR %d\n", status) |
|
1106 | PRINTF1("in suspend_science_task *** AVF1 ERR %d\n", status) | |
1101 | } |
|
1107 | } | |
1102 | else |
|
1108 | else | |
1103 | { |
|
1109 | { | |
1104 | status = RTEMS_SUCCESSFUL; |
|
1110 | status = RTEMS_SUCCESSFUL; | |
1105 | } |
|
1111 | } | |
1106 | } |
|
1112 | } | |
1107 | if (status == RTEMS_SUCCESSFUL) // suspend PRC1 |
|
1113 | if (status == RTEMS_SUCCESSFUL) // suspend PRC1 | |
1108 | { |
|
1114 | { | |
1109 | status = rtems_task_suspend( Task_id[TASKID_PRC1] ); |
|
1115 | status = rtems_task_suspend( Task_id[TASKID_PRC1] ); | |
1110 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1116 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1111 | { |
|
1117 | { | |
1112 | PRINTF1("in suspend_science_task *** PRC1 ERR %d\n", status) |
|
1118 | PRINTF1("in suspend_science_task *** PRC1 ERR %d\n", status) | |
1113 | } |
|
1119 | } | |
1114 | else |
|
1120 | else | |
1115 | { |
|
1121 | { | |
1116 | status = RTEMS_SUCCESSFUL; |
|
1122 | status = RTEMS_SUCCESSFUL; | |
1117 | } |
|
1123 | } | |
1118 | } |
|
1124 | } | |
1119 | if (status == RTEMS_SUCCESSFUL) // suspend AVF2 |
|
1125 | if (status == RTEMS_SUCCESSFUL) // suspend AVF2 | |
1120 | { |
|
1126 | { | |
1121 | status = rtems_task_suspend( Task_id[TASKID_AVF2] ); |
|
1127 | status = rtems_task_suspend( Task_id[TASKID_AVF2] ); | |
1122 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1128 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1123 | { |
|
1129 | { | |
1124 | PRINTF1("in suspend_science_task *** AVF2 ERR %d\n", status) |
|
1130 | PRINTF1("in suspend_science_task *** AVF2 ERR %d\n", status) | |
1125 | } |
|
1131 | } | |
1126 | else |
|
1132 | else | |
1127 | { |
|
1133 | { | |
1128 | status = RTEMS_SUCCESSFUL; |
|
1134 | status = RTEMS_SUCCESSFUL; | |
1129 | } |
|
1135 | } | |
1130 | } |
|
1136 | } | |
1131 | if (status == RTEMS_SUCCESSFUL) // suspend PRC2 |
|
1137 | if (status == RTEMS_SUCCESSFUL) // suspend PRC2 | |
1132 | { |
|
1138 | { | |
1133 | status = rtems_task_suspend( Task_id[TASKID_PRC2] ); |
|
1139 | status = rtems_task_suspend( Task_id[TASKID_PRC2] ); | |
1134 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1140 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1135 | { |
|
1141 | { | |
1136 | PRINTF1("in suspend_science_task *** PRC2 ERR %d\n", status) |
|
1142 | PRINTF1("in suspend_science_task *** PRC2 ERR %d\n", status) | |
1137 | } |
|
1143 | } | |
1138 | else |
|
1144 | else | |
1139 | { |
|
1145 | { | |
1140 | status = RTEMS_SUCCESSFUL; |
|
1146 | status = RTEMS_SUCCESSFUL; | |
1141 | } |
|
1147 | } | |
1142 | } |
|
1148 | } | |
1143 | if (status == RTEMS_SUCCESSFUL) // suspend WFRM |
|
1149 | if (status == RTEMS_SUCCESSFUL) // suspend WFRM | |
1144 | { |
|
1150 | { | |
1145 | status = rtems_task_suspend( Task_id[TASKID_WFRM] ); |
|
1151 | status = rtems_task_suspend( Task_id[TASKID_WFRM] ); | |
1146 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1152 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1147 | { |
|
1153 | { | |
1148 | PRINTF1("in suspend_science_task *** WFRM ERR %d\n", status) |
|
1154 | PRINTF1("in suspend_science_task *** WFRM ERR %d\n", status) | |
1149 | } |
|
1155 | } | |
1150 | else |
|
1156 | else | |
1151 | { |
|
1157 | { | |
1152 | status = RTEMS_SUCCESSFUL; |
|
1158 | status = RTEMS_SUCCESSFUL; | |
1153 | } |
|
1159 | } | |
1154 | } |
|
1160 | } | |
1155 | if (status == RTEMS_SUCCESSFUL) // suspend CWF3 |
|
1161 | if (status == RTEMS_SUCCESSFUL) // suspend CWF3 | |
1156 | { |
|
1162 | { | |
1157 | status = rtems_task_suspend( Task_id[TASKID_CWF3] ); |
|
1163 | status = rtems_task_suspend( Task_id[TASKID_CWF3] ); | |
1158 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1164 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1159 | { |
|
1165 | { | |
1160 | PRINTF1("in suspend_science_task *** CWF3 ERR %d\n", status) |
|
1166 | PRINTF1("in suspend_science_task *** CWF3 ERR %d\n", status) | |
1161 | } |
|
1167 | } | |
1162 | else |
|
1168 | else | |
1163 | { |
|
1169 | { | |
1164 | status = RTEMS_SUCCESSFUL; |
|
1170 | status = RTEMS_SUCCESSFUL; | |
1165 | } |
|
1171 | } | |
1166 | } |
|
1172 | } | |
1167 | if (status == RTEMS_SUCCESSFUL) // suspend CWF2 |
|
1173 | if (status == RTEMS_SUCCESSFUL) // suspend CWF2 | |
1168 | { |
|
1174 | { | |
1169 | status = rtems_task_suspend( Task_id[TASKID_CWF2] ); |
|
1175 | status = rtems_task_suspend( Task_id[TASKID_CWF2] ); | |
1170 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1176 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1171 | { |
|
1177 | { | |
1172 | PRINTF1("in suspend_science_task *** CWF2 ERR %d\n", status) |
|
1178 | PRINTF1("in suspend_science_task *** CWF2 ERR %d\n", status) | |
1173 | } |
|
1179 | } | |
1174 | else |
|
1180 | else | |
1175 | { |
|
1181 | { | |
1176 | status = RTEMS_SUCCESSFUL; |
|
1182 | status = RTEMS_SUCCESSFUL; | |
1177 | } |
|
1183 | } | |
1178 | } |
|
1184 | } | |
1179 | if (status == RTEMS_SUCCESSFUL) // suspend CWF1 |
|
1185 | if (status == RTEMS_SUCCESSFUL) // suspend CWF1 | |
1180 | { |
|
1186 | { | |
1181 | status = rtems_task_suspend( Task_id[TASKID_CWF1] ); |
|
1187 | status = rtems_task_suspend( Task_id[TASKID_CWF1] ); | |
1182 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1188 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1183 | { |
|
1189 | { | |
1184 | PRINTF1("in suspend_science_task *** CWF1 ERR %d\n", status) |
|
1190 | PRINTF1("in suspend_science_task *** CWF1 ERR %d\n", status) | |
1185 | } |
|
1191 | } | |
1186 | else |
|
1192 | else | |
1187 | { |
|
1193 | { | |
1188 | status = RTEMS_SUCCESSFUL; |
|
1194 | status = RTEMS_SUCCESSFUL; | |
1189 | } |
|
1195 | } | |
1190 | } |
|
1196 | } | |
1191 |
|
1197 | |||
1192 | return status; |
|
1198 | return status; | |
1193 | } |
|
1199 | } | |
1194 |
|
1200 | |||
1195 | int suspend_asm_tasks( void ) |
|
1201 | int suspend_asm_tasks( void ) | |
1196 | { |
|
1202 | { | |
1197 | /** This function suspends the science tasks. |
|
1203 | /** This function suspends the science tasks. | |
1198 | * |
|
1204 | * | |
1199 | * @return RTEMS directive status codes: |
|
1205 | * @return RTEMS directive status codes: | |
1200 | * - RTEMS_SUCCESSFUL - task restarted successfully |
|
1206 | * - RTEMS_SUCCESSFUL - task restarted successfully | |
1201 | * - RTEMS_INVALID_ID - task id invalid |
|
1207 | * - RTEMS_INVALID_ID - task id invalid | |
1202 | * - RTEMS_ALREADY_SUSPENDED - task already suspended |
|
1208 | * - RTEMS_ALREADY_SUSPENDED - task already suspended | |
1203 | * |
|
1209 | * | |
1204 | */ |
|
1210 | */ | |
1205 |
|
1211 | |||
1206 | rtems_status_code status; |
|
1212 | rtems_status_code status; | |
1207 |
|
1213 | |||
1208 | PRINTF("in suspend_science_tasks\n") |
|
1214 | PRINTF("in suspend_science_tasks\n") | |
1209 |
|
1215 | |||
1210 | status = rtems_task_suspend( Task_id[TASKID_AVF0] ); // suspend AVF0 |
|
1216 | status = rtems_task_suspend( Task_id[TASKID_AVF0] ); // suspend AVF0 | |
1211 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1217 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1212 | { |
|
1218 | { | |
1213 | PRINTF1("in suspend_science_task *** AVF0 ERR %d\n", status) |
|
1219 | PRINTF1("in suspend_science_task *** AVF0 ERR %d\n", status) | |
1214 | } |
|
1220 | } | |
1215 | else |
|
1221 | else | |
1216 | { |
|
1222 | { | |
1217 | status = RTEMS_SUCCESSFUL; |
|
1223 | status = RTEMS_SUCCESSFUL; | |
1218 | } |
|
1224 | } | |
1219 |
|
1225 | |||
1220 | if (status == RTEMS_SUCCESSFUL) // suspend PRC0 |
|
1226 | if (status == RTEMS_SUCCESSFUL) // suspend PRC0 | |
1221 | { |
|
1227 | { | |
1222 | status = rtems_task_suspend( Task_id[TASKID_PRC0] ); |
|
1228 | status = rtems_task_suspend( Task_id[TASKID_PRC0] ); | |
1223 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1229 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1224 | { |
|
1230 | { | |
1225 | PRINTF1("in suspend_science_task *** PRC0 ERR %d\n", status) |
|
1231 | PRINTF1("in suspend_science_task *** PRC0 ERR %d\n", status) | |
1226 | } |
|
1232 | } | |
1227 | else |
|
1233 | else | |
1228 | { |
|
1234 | { | |
1229 | status = RTEMS_SUCCESSFUL; |
|
1235 | status = RTEMS_SUCCESSFUL; | |
1230 | } |
|
1236 | } | |
1231 | } |
|
1237 | } | |
1232 |
|
1238 | |||
1233 | if (status == RTEMS_SUCCESSFUL) // suspend AVF1 |
|
1239 | if (status == RTEMS_SUCCESSFUL) // suspend AVF1 | |
1234 | { |
|
1240 | { | |
1235 | status = rtems_task_suspend( Task_id[TASKID_AVF1] ); |
|
1241 | status = rtems_task_suspend( Task_id[TASKID_AVF1] ); | |
1236 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1242 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1237 | { |
|
1243 | { | |
1238 | PRINTF1("in suspend_science_task *** AVF1 ERR %d\n", status) |
|
1244 | PRINTF1("in suspend_science_task *** AVF1 ERR %d\n", status) | |
1239 | } |
|
1245 | } | |
1240 | else |
|
1246 | else | |
1241 | { |
|
1247 | { | |
1242 | status = RTEMS_SUCCESSFUL; |
|
1248 | status = RTEMS_SUCCESSFUL; | |
1243 | } |
|
1249 | } | |
1244 | } |
|
1250 | } | |
1245 |
|
1251 | |||
1246 | if (status == RTEMS_SUCCESSFUL) // suspend PRC1 |
|
1252 | if (status == RTEMS_SUCCESSFUL) // suspend PRC1 | |
1247 | { |
|
1253 | { | |
1248 | status = rtems_task_suspend( Task_id[TASKID_PRC1] ); |
|
1254 | status = rtems_task_suspend( Task_id[TASKID_PRC1] ); | |
1249 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1255 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1250 | { |
|
1256 | { | |
1251 | PRINTF1("in suspend_science_task *** PRC1 ERR %d\n", status) |
|
1257 | PRINTF1("in suspend_science_task *** PRC1 ERR %d\n", status) | |
1252 | } |
|
1258 | } | |
1253 | else |
|
1259 | else | |
1254 | { |
|
1260 | { | |
1255 | status = RTEMS_SUCCESSFUL; |
|
1261 | status = RTEMS_SUCCESSFUL; | |
1256 | } |
|
1262 | } | |
1257 | } |
|
1263 | } | |
1258 |
|
1264 | |||
1259 | if (status == RTEMS_SUCCESSFUL) // suspend AVF2 |
|
1265 | if (status == RTEMS_SUCCESSFUL) // suspend AVF2 | |
1260 | { |
|
1266 | { | |
1261 | status = rtems_task_suspend( Task_id[TASKID_AVF2] ); |
|
1267 | status = rtems_task_suspend( Task_id[TASKID_AVF2] ); | |
1262 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1268 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1263 | { |
|
1269 | { | |
1264 | PRINTF1("in suspend_science_task *** AVF2 ERR %d\n", status) |
|
1270 | PRINTF1("in suspend_science_task *** AVF2 ERR %d\n", status) | |
1265 | } |
|
1271 | } | |
1266 | else |
|
1272 | else | |
1267 | { |
|
1273 | { | |
1268 | status = RTEMS_SUCCESSFUL; |
|
1274 | status = RTEMS_SUCCESSFUL; | |
1269 | } |
|
1275 | } | |
1270 | } |
|
1276 | } | |
1271 |
|
1277 | |||
1272 | if (status == RTEMS_SUCCESSFUL) // suspend PRC2 |
|
1278 | if (status == RTEMS_SUCCESSFUL) // suspend PRC2 | |
1273 | { |
|
1279 | { | |
1274 | status = rtems_task_suspend( Task_id[TASKID_PRC2] ); |
|
1280 | status = rtems_task_suspend( Task_id[TASKID_PRC2] ); | |
1275 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) |
|
1281 | if ((status != RTEMS_SUCCESSFUL) && (status != RTEMS_ALREADY_SUSPENDED)) | |
1276 | { |
|
1282 | { | |
1277 | PRINTF1("in suspend_science_task *** PRC2 ERR %d\n", status) |
|
1283 | PRINTF1("in suspend_science_task *** PRC2 ERR %d\n", status) | |
1278 | } |
|
1284 | } | |
1279 | else |
|
1285 | else | |
1280 | { |
|
1286 | { | |
1281 | status = RTEMS_SUCCESSFUL; |
|
1287 | status = RTEMS_SUCCESSFUL; | |
1282 | } |
|
1288 | } | |
1283 | } |
|
1289 | } | |
1284 |
|
1290 | |||
1285 | return status; |
|
1291 | return status; | |
1286 | } |
|
1292 | } | |
1287 |
|
1293 | |||
1288 | void launch_waveform_picker( unsigned char mode, unsigned int transitionCoarseTime ) |
|
1294 | void launch_waveform_picker( unsigned char mode, unsigned int transitionCoarseTime ) | |
1289 | { |
|
1295 | { | |
1290 |
|
1296 | |||
1291 | WFP_reset_current_ring_nodes(); |
|
1297 | WFP_reset_current_ring_nodes(); | |
1292 |
|
1298 | |||
1293 | reset_waveform_picker_regs(); |
|
1299 | reset_waveform_picker_regs(); | |
1294 |
|
1300 | |||
1295 | set_wfp_burst_enable_register( mode ); |
|
1301 | set_wfp_burst_enable_register( mode ); | |
1296 |
|
1302 | |||
1297 | LEON_Clear_interrupt( IRQ_WAVEFORM_PICKER ); |
|
1303 | LEON_Clear_interrupt( IRQ_WAVEFORM_PICKER ); | |
1298 | LEON_Unmask_interrupt( IRQ_WAVEFORM_PICKER ); |
|
1304 | LEON_Unmask_interrupt( IRQ_WAVEFORM_PICKER ); | |
1299 |
|
1305 | |||
1300 | if (transitionCoarseTime == 0) |
|
1306 | if (transitionCoarseTime == 0) | |
1301 | { |
|
1307 | { | |
1302 | // instant transition means transition on the next valid date |
|
1308 | // instant transition means transition on the next valid date | |
1303 | // this is mandatory to have a good snapshot period and a good correction of the snapshot period |
|
1309 | // this is mandatory to have a good snapshot period and a good correction of the snapshot period | |
1304 | waveform_picker_regs->start_date = time_management_regs->coarse_time + 1; |
|
1310 | waveform_picker_regs->start_date = time_management_regs->coarse_time + 1; | |
1305 | } |
|
1311 | } | |
1306 | else |
|
1312 | else | |
1307 | { |
|
1313 | { | |
1308 | waveform_picker_regs->start_date = transitionCoarseTime; |
|
1314 | waveform_picker_regs->start_date = transitionCoarseTime; | |
1309 | } |
|
1315 | } | |
1310 |
|
1316 | |||
1311 | update_last_valid_transition_date(waveform_picker_regs->start_date); |
|
1317 | update_last_valid_transition_date(waveform_picker_regs->start_date); | |
1312 |
|
1318 | |||
1313 | } |
|
1319 | } | |
1314 |
|
1320 | |||
1315 | void launch_spectral_matrix( void ) |
|
1321 | void launch_spectral_matrix( void ) | |
1316 | { |
|
1322 | { | |
1317 | SM_reset_current_ring_nodes(); |
|
1323 | SM_reset_current_ring_nodes(); | |
1318 |
|
1324 | |||
1319 | reset_spectral_matrix_regs(); |
|
1325 | reset_spectral_matrix_regs(); | |
1320 |
|
1326 | |||
1321 | reset_nb_sm(); |
|
1327 | reset_nb_sm(); | |
1322 |
|
1328 | |||
1323 | set_sm_irq_onNewMatrix( 1 ); |
|
1329 | set_sm_irq_onNewMatrix( 1 ); | |
1324 |
|
1330 | |||
1325 | LEON_Clear_interrupt( IRQ_SPECTRAL_MATRIX ); |
|
1331 | LEON_Clear_interrupt( IRQ_SPECTRAL_MATRIX ); | |
1326 | LEON_Unmask_interrupt( IRQ_SPECTRAL_MATRIX ); |
|
1332 | LEON_Unmask_interrupt( IRQ_SPECTRAL_MATRIX ); | |
1327 |
|
1333 | |||
1328 | } |
|
1334 | } | |
1329 |
|
1335 | |||
1330 | void set_sm_irq_onNewMatrix( unsigned char value ) |
|
1336 | void set_sm_irq_onNewMatrix( unsigned char value ) | |
1331 | { |
|
1337 | { | |
1332 | if (value == 1) |
|
1338 | if (value == 1) | |
1333 | { |
|
1339 | { | |
1334 | spectral_matrix_regs->config = spectral_matrix_regs->config | BIT_IRQ_ON_NEW_MATRIX; |
|
1340 | spectral_matrix_regs->config = spectral_matrix_regs->config | BIT_IRQ_ON_NEW_MATRIX; | |
1335 | } |
|
1341 | } | |
1336 | else |
|
1342 | else | |
1337 | { |
|
1343 | { | |
1338 | spectral_matrix_regs->config = spectral_matrix_regs->config & MASK_IRQ_ON_NEW_MATRIX; // 1110 |
|
1344 | spectral_matrix_regs->config = spectral_matrix_regs->config & MASK_IRQ_ON_NEW_MATRIX; // 1110 | |
1339 | } |
|
1345 | } | |
1340 | } |
|
1346 | } | |
1341 |
|
1347 | |||
1342 | void set_sm_irq_onError( unsigned char value ) |
|
1348 | void set_sm_irq_onError( unsigned char value ) | |
1343 | { |
|
1349 | { | |
1344 | if (value == 1) |
|
1350 | if (value == 1) | |
1345 | { |
|
1351 | { | |
1346 | spectral_matrix_regs->config = spectral_matrix_regs->config | BIT_IRQ_ON_ERROR; |
|
1352 | spectral_matrix_regs->config = spectral_matrix_regs->config | BIT_IRQ_ON_ERROR; | |
1347 | } |
|
1353 | } | |
1348 | else |
|
1354 | else | |
1349 | { |
|
1355 | { | |
1350 | spectral_matrix_regs->config = spectral_matrix_regs->config & MASK_IRQ_ON_ERROR; // 1101 |
|
1356 | spectral_matrix_regs->config = spectral_matrix_regs->config & MASK_IRQ_ON_ERROR; // 1101 | |
1351 | } |
|
1357 | } | |
1352 | } |
|
1358 | } | |
1353 |
|
1359 | |||
1354 | //***************************** |
|
1360 | //***************************** | |
1355 | // CONFIGURE CALIBRATION SIGNAL |
|
1361 | // CONFIGURE CALIBRATION SIGNAL | |
1356 | void setCalibrationPrescaler( unsigned int prescaler ) |
|
1362 | void setCalibrationPrescaler( unsigned int prescaler ) | |
1357 | { |
|
1363 | { | |
1358 | // prescaling of the master clock (25 MHz) |
|
1364 | // prescaling of the master clock (25 MHz) | |
1359 | // master clock is divided by 2^prescaler |
|
1365 | // master clock is divided by 2^prescaler | |
1360 | time_management_regs->calPrescaler = prescaler; |
|
1366 | time_management_regs->calPrescaler = prescaler; | |
1361 | } |
|
1367 | } | |
1362 |
|
1368 | |||
1363 | void setCalibrationDivisor( unsigned int divisionFactor ) |
|
1369 | void setCalibrationDivisor( unsigned int divisionFactor ) | |
1364 | { |
|
1370 | { | |
1365 | // division of the prescaled clock by the division factor |
|
1371 | // division of the prescaled clock by the division factor | |
1366 | time_management_regs->calDivisor = divisionFactor; |
|
1372 | time_management_regs->calDivisor = divisionFactor; | |
1367 | } |
|
1373 | } | |
1368 |
|
1374 | |||
1369 | void setCalibrationData( void ) |
|
1375 | void setCalibrationData( void ) | |
1370 | { |
|
1376 | { | |
1371 | /** This function is used to store the values used to drive the DAC in order to generate the SCM calibration signal |
|
1377 | /** This function is used to store the values used to drive the DAC in order to generate the SCM calibration signal | |
1372 | * |
|
1378 | * | |
1373 | * @param void |
|
1379 | * @param void | |
1374 | * |
|
1380 | * | |
1375 | * @return void |
|
1381 | * @return void | |
1376 | * |
|
1382 | * | |
1377 | */ |
|
1383 | */ | |
1378 |
|
1384 | |||
1379 | unsigned int k; |
|
1385 | unsigned int k; | |
1380 | unsigned short data; |
|
1386 | unsigned short data; | |
1381 | float val; |
|
1387 | float val; | |
1382 | float Ts; |
|
1388 | float Ts; | |
1383 |
|
1389 | |||
1384 | time_management_regs->calDataPtr = INIT_CHAR; |
|
1390 | time_management_regs->calDataPtr = INIT_CHAR; | |
1385 |
|
1391 | |||
1386 | Ts = 1 / CAL_FS; |
|
1392 | Ts = 1 / CAL_FS; | |
1387 |
|
1393 | |||
1388 | // build the signal for the SCM calibration |
|
1394 | // build the signal for the SCM calibration | |
1389 | for (k = 0; k < CAL_NB_PTS; k++) |
|
1395 | for (k = 0; k < CAL_NB_PTS; k++) | |
1390 | { |
|
1396 | { | |
1391 | val = sin( 2 * pi * CAL_F0 * k * Ts ) |
|
1397 | val = sin( 2 * pi * CAL_F0 * k * Ts ) | |
1392 | + sin( 2 * pi * CAL_F1 * k * Ts ); |
|
1398 | + sin( 2 * pi * CAL_F1 * k * Ts ); | |
1393 | data = (unsigned short) ((val * CAL_SCALE_FACTOR) + CONST_2048); |
|
1399 | data = (unsigned short) ((val * CAL_SCALE_FACTOR) + CONST_2048); | |
1394 | time_management_regs->calData = data & CAL_DATA_MASK; |
|
1400 | time_management_regs->calData = data & CAL_DATA_MASK; | |
1395 | } |
|
1401 | } | |
1396 | } |
|
1402 | } | |
1397 |
|
1403 | |||
1398 | void setCalibrationDataInterleaved( void ) |
|
1404 | void setCalibrationDataInterleaved( void ) | |
1399 | { |
|
1405 | { | |
1400 | /** This function is used to store the values used to drive the DAC in order to generate the SCM calibration signal |
|
1406 | /** This function is used to store the values used to drive the DAC in order to generate the SCM calibration signal | |
1401 | * |
|
1407 | * | |
1402 | * @param void |
|
1408 | * @param void | |
1403 | * |
|
1409 | * | |
1404 | * @return void |
|
1410 | * @return void | |
1405 | * |
|
1411 | * | |
1406 | * In interleaved mode, one can store more values than in normal mode. |
|
1412 | * In interleaved mode, one can store more values than in normal mode. | |
1407 | * The data are stored in bunch of 18 bits, 12 bits from one sample and 6 bits from another sample. |
|
1413 | * The data are stored in bunch of 18 bits, 12 bits from one sample and 6 bits from another sample. | |
1408 | * T store 3 values, one need two write operations. |
|
1414 | * T store 3 values, one need two write operations. | |
1409 | * s1 [ b11 b10 b9 b8 b7 b6 ] s0 [ b11 b10 b9 b8 b7 b6 b5 b3 b2 b1 b0 ] |
|
1415 | * s1 [ b11 b10 b9 b8 b7 b6 ] s0 [ b11 b10 b9 b8 b7 b6 b5 b3 b2 b1 b0 ] | |
1410 | * s1 [ b5 b4 b3 b2 b1 b0 ] s2 [ b11 b10 b9 b8 b7 b6 b5 b3 b2 b1 b0 ] |
|
1416 | * s1 [ b5 b4 b3 b2 b1 b0 ] s2 [ b11 b10 b9 b8 b7 b6 b5 b3 b2 b1 b0 ] | |
1411 | * |
|
1417 | * | |
1412 | */ |
|
1418 | */ | |
1413 |
|
1419 | |||
1414 | unsigned int k; |
|
1420 | unsigned int k; | |
1415 | float val; |
|
1421 | float val; | |
1416 | float Ts; |
|
1422 | float Ts; | |
1417 | unsigned short data[CAL_NB_PTS_INTER]; |
|
1423 | unsigned short data[CAL_NB_PTS_INTER]; | |
1418 | unsigned char *dataPtr; |
|
1424 | unsigned char *dataPtr; | |
1419 |
|
1425 | |||
1420 | Ts = 1 / CAL_FS_INTER; |
|
1426 | Ts = 1 / CAL_FS_INTER; | |
1421 |
|
1427 | |||
1422 | time_management_regs->calDataPtr = INIT_CHAR; |
|
1428 | time_management_regs->calDataPtr = INIT_CHAR; | |
1423 |
|
1429 | |||
1424 | // build the signal for the SCM calibration |
|
1430 | // build the signal for the SCM calibration | |
1425 | for (k=0; k<CAL_NB_PTS_INTER; k++) |
|
1431 | for (k=0; k<CAL_NB_PTS_INTER; k++) | |
1426 | { |
|
1432 | { | |
1427 | val = sin( 2 * pi * CAL_F0 * k * Ts ) |
|
1433 | val = sin( 2 * pi * CAL_F0 * k * Ts ) | |
1428 | + sin( 2 * pi * CAL_F1 * k * Ts ); |
|
1434 | + sin( 2 * pi * CAL_F1 * k * Ts ); | |
1429 | data[k] = (unsigned short) ((val * CONST_512) + CONST_2048); |
|
1435 | data[k] = (unsigned short) ((val * CONST_512) + CONST_2048); | |
1430 | } |
|
1436 | } | |
1431 |
|
1437 | |||
1432 | // write the signal in interleaved mode |
|
1438 | // write the signal in interleaved mode | |
1433 | for (k=0; k < STEPS_FOR_STORAGE_INTER; k++) |
|
1439 | for (k=0; k < STEPS_FOR_STORAGE_INTER; k++) | |
1434 | { |
|
1440 | { | |
1435 | dataPtr = (unsigned char*) &data[ (k * BYTES_FOR_2_SAMPLES) + 2 ]; |
|
1441 | dataPtr = (unsigned char*) &data[ (k * BYTES_FOR_2_SAMPLES) + 2 ]; | |
1436 | time_management_regs->calData = ( data[ k * BYTES_FOR_2_SAMPLES ] & CAL_DATA_MASK ) |
|
1442 | time_management_regs->calData = ( data[ k * BYTES_FOR_2_SAMPLES ] & CAL_DATA_MASK ) | |
1437 | + ( (dataPtr[0] & CAL_DATA_MASK_INTER) << CAL_DATA_SHIFT_INTER); |
|
1443 | + ( (dataPtr[0] & CAL_DATA_MASK_INTER) << CAL_DATA_SHIFT_INTER); | |
1438 | time_management_regs->calData = ( data[(k * BYTES_FOR_2_SAMPLES) + 1] & CAL_DATA_MASK ) |
|
1444 | time_management_regs->calData = ( data[(k * BYTES_FOR_2_SAMPLES) + 1] & CAL_DATA_MASK ) | |
1439 | + ( (dataPtr[1] & CAL_DATA_MASK_INTER) << CAL_DATA_SHIFT_INTER); |
|
1445 | + ( (dataPtr[1] & CAL_DATA_MASK_INTER) << CAL_DATA_SHIFT_INTER); | |
1440 | } |
|
1446 | } | |
1441 | } |
|
1447 | } | |
1442 |
|
1448 | |||
1443 | void setCalibrationReload( bool state) |
|
1449 | void setCalibrationReload( bool state) | |
1444 | { |
|
1450 | { | |
1445 | if (state == true) |
|
1451 | if (state == true) | |
1446 | { |
|
1452 | { | |
1447 | time_management_regs->calDACCtrl = time_management_regs->calDACCtrl | BIT_CAL_RELOAD; // [0001 0000] |
|
1453 | time_management_regs->calDACCtrl = time_management_regs->calDACCtrl | BIT_CAL_RELOAD; // [0001 0000] | |
1448 | } |
|
1454 | } | |
1449 | else |
|
1455 | else | |
1450 | { |
|
1456 | { | |
1451 | time_management_regs->calDACCtrl = time_management_regs->calDACCtrl & MASK_CAL_RELOAD; // [1110 1111] |
|
1457 | time_management_regs->calDACCtrl = time_management_regs->calDACCtrl & MASK_CAL_RELOAD; // [1110 1111] | |
1452 | } |
|
1458 | } | |
1453 | } |
|
1459 | } | |
1454 |
|
1460 | |||
1455 | void setCalibrationEnable( bool state ) |
|
1461 | void setCalibrationEnable( bool state ) | |
1456 | { |
|
1462 | { | |
1457 | // this bit drives the multiplexer |
|
1463 | // this bit drives the multiplexer | |
1458 | if (state == true) |
|
1464 | if (state == true) | |
1459 | { |
|
1465 | { | |
1460 | time_management_regs->calDACCtrl = time_management_regs->calDACCtrl | BIT_CAL_ENABLE; // [0100 0000] |
|
1466 | time_management_regs->calDACCtrl = time_management_regs->calDACCtrl | BIT_CAL_ENABLE; // [0100 0000] | |
1461 | } |
|
1467 | } | |
1462 | else |
|
1468 | else | |
1463 | { |
|
1469 | { | |
1464 | time_management_regs->calDACCtrl = time_management_regs->calDACCtrl & MASK_CAL_ENABLE; // [1011 1111] |
|
1470 | time_management_regs->calDACCtrl = time_management_regs->calDACCtrl & MASK_CAL_ENABLE; // [1011 1111] | |
1465 | } |
|
1471 | } | |
1466 | } |
|
1472 | } | |
1467 |
|
1473 | |||
1468 | void setCalibrationInterleaved( bool state ) |
|
1474 | void setCalibrationInterleaved( bool state ) | |
1469 | { |
|
1475 | { | |
1470 | // this bit drives the multiplexer |
|
1476 | // this bit drives the multiplexer | |
1471 | if (state == true) |
|
1477 | if (state == true) | |
1472 | { |
|
1478 | { | |
1473 | time_management_regs->calDACCtrl = time_management_regs->calDACCtrl | BIT_SET_INTERLEAVED; // [0010 0000] |
|
1479 | time_management_regs->calDACCtrl = time_management_regs->calDACCtrl | BIT_SET_INTERLEAVED; // [0010 0000] | |
1474 | } |
|
1480 | } | |
1475 | else |
|
1481 | else | |
1476 | { |
|
1482 | { | |
1477 | time_management_regs->calDACCtrl = time_management_regs->calDACCtrl & MASK_SET_INTERLEAVED; // [1101 1111] |
|
1483 | time_management_regs->calDACCtrl = time_management_regs->calDACCtrl & MASK_SET_INTERLEAVED; // [1101 1111] | |
1478 | } |
|
1484 | } | |
1479 | } |
|
1485 | } | |
1480 |
|
1486 | |||
1481 | void setCalibration( bool state ) |
|
1487 | void setCalibration( bool state ) | |
1482 | { |
|
1488 | { | |
1483 | if (state == true) |
|
1489 | if (state == true) | |
1484 | { |
|
1490 | { | |
1485 | setCalibrationEnable( true ); |
|
1491 | setCalibrationEnable( true ); | |
1486 | setCalibrationReload( false ); |
|
1492 | setCalibrationReload( false ); | |
1487 | set_hk_lfr_calib_enable( true ); |
|
1493 | set_hk_lfr_calib_enable( true ); | |
1488 | } |
|
1494 | } | |
1489 | else |
|
1495 | else | |
1490 | { |
|
1496 | { | |
1491 | setCalibrationEnable( false ); |
|
1497 | setCalibrationEnable( false ); | |
1492 | setCalibrationReload( true ); |
|
1498 | setCalibrationReload( true ); | |
1493 | set_hk_lfr_calib_enable( false ); |
|
1499 | set_hk_lfr_calib_enable( false ); | |
1494 | } |
|
1500 | } | |
1495 | } |
|
1501 | } | |
1496 |
|
1502 | |||
1497 | void configureCalibration( bool interleaved ) |
|
1503 | void configureCalibration( bool interleaved ) | |
1498 | { |
|
1504 | { | |
1499 | setCalibration( false ); |
|
1505 | setCalibration( false ); | |
1500 | if ( interleaved == true ) |
|
1506 | if ( interleaved == true ) | |
1501 | { |
|
1507 | { | |
1502 | setCalibrationInterleaved( true ); |
|
1508 | setCalibrationInterleaved( true ); | |
1503 | setCalibrationPrescaler( 0 ); // 25 MHz => 25 000 000 |
|
1509 | setCalibrationPrescaler( 0 ); // 25 MHz => 25 000 000 | |
1504 | setCalibrationDivisor( CAL_F_DIVISOR_INTER ); // => 240 384 |
|
1510 | setCalibrationDivisor( CAL_F_DIVISOR_INTER ); // => 240 384 | |
1505 | setCalibrationDataInterleaved(); |
|
1511 | setCalibrationDataInterleaved(); | |
1506 | } |
|
1512 | } | |
1507 | else |
|
1513 | else | |
1508 | { |
|
1514 | { | |
1509 | setCalibrationPrescaler( 0 ); // 25 MHz => 25 000 000 |
|
1515 | setCalibrationPrescaler( 0 ); // 25 MHz => 25 000 000 | |
1510 | setCalibrationDivisor( CAL_F_DIVISOR ); // => 160 256 (39 - 1) |
|
1516 | setCalibrationDivisor( CAL_F_DIVISOR ); // => 160 256 (39 - 1) | |
1511 | setCalibrationData(); |
|
1517 | setCalibrationData(); | |
1512 | } |
|
1518 | } | |
1513 | } |
|
1519 | } | |
1514 |
|
1520 | |||
1515 | //**************** |
|
1521 | //**************** | |
1516 | // CLOSING ACTIONS |
|
1522 | // CLOSING ACTIONS | |
1517 | void update_last_TC_exe( ccsdsTelecommandPacket_t *TC, unsigned char * time ) |
|
1523 | void update_last_TC_exe( ccsdsTelecommandPacket_t *TC, unsigned char * time ) | |
1518 | { |
|
1524 | { | |
1519 | /** This function is used to update the HK packets statistics after a successful TC execution. |
|
1525 | /** This function is used to update the HK packets statistics after a successful TC execution. | |
1520 | * |
|
1526 | * | |
1521 | * @param TC points to the TC being processed |
|
1527 | * @param TC points to the TC being processed | |
1522 | * @param time is the time used to date the TC execution |
|
1528 | * @param time is the time used to date the TC execution | |
1523 | * |
|
1529 | * | |
1524 | */ |
|
1530 | */ | |
1525 |
|
1531 | |||
1526 | unsigned int val; |
|
1532 | unsigned int val; | |
1527 |
|
1533 | |||
1528 | housekeeping_packet.hk_lfr_last_exe_tc_id[0] = TC->packetID[0]; |
|
1534 | housekeeping_packet.hk_lfr_last_exe_tc_id[0] = TC->packetID[0]; | |
1529 | housekeeping_packet.hk_lfr_last_exe_tc_id[1] = TC->packetID[1]; |
|
1535 | housekeeping_packet.hk_lfr_last_exe_tc_id[1] = TC->packetID[1]; | |
1530 | housekeeping_packet.hk_lfr_last_exe_tc_type[0] = INIT_CHAR; |
|
1536 | housekeeping_packet.hk_lfr_last_exe_tc_type[0] = INIT_CHAR; | |
1531 | housekeeping_packet.hk_lfr_last_exe_tc_type[1] = TC->serviceType; |
|
1537 | housekeeping_packet.hk_lfr_last_exe_tc_type[1] = TC->serviceType; | |
1532 | housekeeping_packet.hk_lfr_last_exe_tc_subtype[0] = INIT_CHAR; |
|
1538 | housekeeping_packet.hk_lfr_last_exe_tc_subtype[0] = INIT_CHAR; | |
1533 | housekeeping_packet.hk_lfr_last_exe_tc_subtype[1] = TC->serviceSubType; |
|
1539 | housekeeping_packet.hk_lfr_last_exe_tc_subtype[1] = TC->serviceSubType; | |
1534 | housekeeping_packet.hk_lfr_last_exe_tc_time[BYTE_0] = time[BYTE_0]; |
|
1540 | housekeeping_packet.hk_lfr_last_exe_tc_time[BYTE_0] = time[BYTE_0]; | |
1535 | housekeeping_packet.hk_lfr_last_exe_tc_time[BYTE_1] = time[BYTE_1]; |
|
1541 | housekeeping_packet.hk_lfr_last_exe_tc_time[BYTE_1] = time[BYTE_1]; | |
1536 | housekeeping_packet.hk_lfr_last_exe_tc_time[BYTE_2] = time[BYTE_2]; |
|
1542 | housekeeping_packet.hk_lfr_last_exe_tc_time[BYTE_2] = time[BYTE_2]; | |
1537 | housekeeping_packet.hk_lfr_last_exe_tc_time[BYTE_3] = time[BYTE_3]; |
|
1543 | housekeeping_packet.hk_lfr_last_exe_tc_time[BYTE_3] = time[BYTE_3]; | |
1538 | housekeeping_packet.hk_lfr_last_exe_tc_time[BYTE_4] = time[BYTE_4]; |
|
1544 | housekeeping_packet.hk_lfr_last_exe_tc_time[BYTE_4] = time[BYTE_4]; | |
1539 | housekeeping_packet.hk_lfr_last_exe_tc_time[BYTE_5] = time[BYTE_5]; |
|
1545 | housekeeping_packet.hk_lfr_last_exe_tc_time[BYTE_5] = time[BYTE_5]; | |
1540 |
|
1546 | |||
1541 | val = (housekeeping_packet.hk_lfr_exe_tc_cnt[0] * CONST_256) + housekeeping_packet.hk_lfr_exe_tc_cnt[1]; |
|
1547 | val = (housekeeping_packet.hk_lfr_exe_tc_cnt[0] * CONST_256) + housekeeping_packet.hk_lfr_exe_tc_cnt[1]; | |
1542 | val++; |
|
1548 | val++; | |
1543 | housekeeping_packet.hk_lfr_exe_tc_cnt[0] = (unsigned char) (val >> SHIFT_1_BYTE); |
|
1549 | housekeeping_packet.hk_lfr_exe_tc_cnt[0] = (unsigned char) (val >> SHIFT_1_BYTE); | |
1544 | housekeeping_packet.hk_lfr_exe_tc_cnt[1] = (unsigned char) (val); |
|
1550 | housekeeping_packet.hk_lfr_exe_tc_cnt[1] = (unsigned char) (val); | |
1545 | } |
|
1551 | } | |
1546 |
|
1552 | |||
1547 | void update_last_TC_rej(ccsdsTelecommandPacket_t *TC, unsigned char * time ) |
|
1553 | void update_last_TC_rej(ccsdsTelecommandPacket_t *TC, unsigned char * time ) | |
1548 | { |
|
1554 | { | |
1549 | /** This function is used to update the HK packets statistics after a TC rejection. |
|
1555 | /** This function is used to update the HK packets statistics after a TC rejection. | |
1550 | * |
|
1556 | * | |
1551 | * @param TC points to the TC being processed |
|
1557 | * @param TC points to the TC being processed | |
1552 | * @param time is the time used to date the TC rejection |
|
1558 | * @param time is the time used to date the TC rejection | |
1553 | * |
|
1559 | * | |
1554 | */ |
|
1560 | */ | |
1555 |
|
1561 | |||
1556 | unsigned int val; |
|
1562 | unsigned int val; | |
1557 |
|
1563 | |||
1558 | housekeeping_packet.hk_lfr_last_rej_tc_id[0] = TC->packetID[0]; |
|
1564 | housekeeping_packet.hk_lfr_last_rej_tc_id[0] = TC->packetID[0]; | |
1559 | housekeeping_packet.hk_lfr_last_rej_tc_id[1] = TC->packetID[1]; |
|
1565 | housekeeping_packet.hk_lfr_last_rej_tc_id[1] = TC->packetID[1]; | |
1560 | housekeeping_packet.hk_lfr_last_rej_tc_type[0] = INIT_CHAR; |
|
1566 | housekeeping_packet.hk_lfr_last_rej_tc_type[0] = INIT_CHAR; | |
1561 | housekeeping_packet.hk_lfr_last_rej_tc_type[1] = TC->serviceType; |
|
1567 | housekeeping_packet.hk_lfr_last_rej_tc_type[1] = TC->serviceType; | |
1562 | housekeeping_packet.hk_lfr_last_rej_tc_subtype[0] = INIT_CHAR; |
|
1568 | housekeeping_packet.hk_lfr_last_rej_tc_subtype[0] = INIT_CHAR; | |
1563 | housekeeping_packet.hk_lfr_last_rej_tc_subtype[1] = TC->serviceSubType; |
|
1569 | housekeeping_packet.hk_lfr_last_rej_tc_subtype[1] = TC->serviceSubType; | |
1564 | housekeeping_packet.hk_lfr_last_rej_tc_time[BYTE_0] = time[BYTE_0]; |
|
1570 | housekeeping_packet.hk_lfr_last_rej_tc_time[BYTE_0] = time[BYTE_0]; | |
1565 | housekeeping_packet.hk_lfr_last_rej_tc_time[BYTE_1] = time[BYTE_1]; |
|
1571 | housekeeping_packet.hk_lfr_last_rej_tc_time[BYTE_1] = time[BYTE_1]; | |
1566 | housekeeping_packet.hk_lfr_last_rej_tc_time[BYTE_2] = time[BYTE_2]; |
|
1572 | housekeeping_packet.hk_lfr_last_rej_tc_time[BYTE_2] = time[BYTE_2]; | |
1567 | housekeeping_packet.hk_lfr_last_rej_tc_time[BYTE_3] = time[BYTE_3]; |
|
1573 | housekeeping_packet.hk_lfr_last_rej_tc_time[BYTE_3] = time[BYTE_3]; | |
1568 | housekeeping_packet.hk_lfr_last_rej_tc_time[BYTE_4] = time[BYTE_4]; |
|
1574 | housekeeping_packet.hk_lfr_last_rej_tc_time[BYTE_4] = time[BYTE_4]; | |
1569 | housekeeping_packet.hk_lfr_last_rej_tc_time[BYTE_5] = time[BYTE_5]; |
|
1575 | housekeeping_packet.hk_lfr_last_rej_tc_time[BYTE_5] = time[BYTE_5]; | |
1570 |
|
1576 | |||
1571 | val = (housekeeping_packet.hk_lfr_rej_tc_cnt[0] * CONST_256) + housekeeping_packet.hk_lfr_rej_tc_cnt[1]; |
|
1577 | val = (housekeeping_packet.hk_lfr_rej_tc_cnt[0] * CONST_256) + housekeeping_packet.hk_lfr_rej_tc_cnt[1]; | |
1572 | val++; |
|
1578 | val++; | |
1573 | housekeeping_packet.hk_lfr_rej_tc_cnt[0] = (unsigned char) (val >> SHIFT_1_BYTE); |
|
1579 | housekeeping_packet.hk_lfr_rej_tc_cnt[0] = (unsigned char) (val >> SHIFT_1_BYTE); | |
1574 | housekeeping_packet.hk_lfr_rej_tc_cnt[1] = (unsigned char) (val); |
|
1580 | housekeeping_packet.hk_lfr_rej_tc_cnt[1] = (unsigned char) (val); | |
1575 | } |
|
1581 | } | |
1576 |
|
1582 | |||
1577 | void close_action(ccsdsTelecommandPacket_t *TC, int result, rtems_id queue_id ) |
|
1583 | void close_action(ccsdsTelecommandPacket_t *TC, int result, rtems_id queue_id ) | |
1578 | { |
|
1584 | { | |
1579 | /** This function is the last step of the TC execution workflow. |
|
1585 | /** This function is the last step of the TC execution workflow. | |
1580 | * |
|
1586 | * | |
1581 | * @param TC points to the TC being processed |
|
1587 | * @param TC points to the TC being processed | |
1582 | * @param result is the result of the TC execution (LFR_SUCCESSFUL / LFR_DEFAULT) |
|
1588 | * @param result is the result of the TC execution (LFR_SUCCESSFUL / LFR_DEFAULT) | |
1583 | * @param queue_id is the id of the RTEMS message queue used to send TM packets |
|
1589 | * @param queue_id is the id of the RTEMS message queue used to send TM packets | |
1584 | * @param time is the time used to date the TC execution |
|
1590 | * @param time is the time used to date the TC execution | |
1585 | * |
|
1591 | * | |
1586 | */ |
|
1592 | */ | |
1587 |
|
1593 | |||
1588 | unsigned char requestedMode; |
|
1594 | unsigned char requestedMode; | |
1589 |
|
1595 | |||
1590 | if (result == LFR_SUCCESSFUL) |
|
1596 | if (result == LFR_SUCCESSFUL) | |
1591 | { |
|
1597 | { | |
1592 | if ( !( (TC->serviceType==TC_TYPE_TIME) & (TC->serviceSubType==TC_SUBTYPE_UPDT_TIME) ) |
|
1598 | if ( !( (TC->serviceType==TC_TYPE_TIME) & (TC->serviceSubType==TC_SUBTYPE_UPDT_TIME) ) | |
1593 | & |
|
1599 | & | |
1594 | !( (TC->serviceType==TC_TYPE_GEN) & (TC->serviceSubType==TC_SUBTYPE_UPDT_INFO)) |
|
1600 | !( (TC->serviceType==TC_TYPE_GEN) & (TC->serviceSubType==TC_SUBTYPE_UPDT_INFO)) | |
1595 | ) |
|
1601 | ) | |
1596 | { |
|
1602 | { | |
1597 | send_tm_lfr_tc_exe_success( TC, queue_id ); |
|
1603 | send_tm_lfr_tc_exe_success( TC, queue_id ); | |
1598 | } |
|
1604 | } | |
1599 | if ( (TC->serviceType == TC_TYPE_GEN) & (TC->serviceSubType == TC_SUBTYPE_ENTER) ) |
|
1605 | if ( (TC->serviceType == TC_TYPE_GEN) & (TC->serviceSubType == TC_SUBTYPE_ENTER) ) | |
1600 | { |
|
1606 | { | |
1601 | //********************************** |
|
1607 | //********************************** | |
1602 | // UPDATE THE LFRMODE LOCAL VARIABLE |
|
1608 | // UPDATE THE LFRMODE LOCAL VARIABLE | |
1603 | requestedMode = TC->dataAndCRC[1]; |
|
1609 | requestedMode = TC->dataAndCRC[1]; | |
1604 | updateLFRCurrentMode( requestedMode ); |
|
1610 | updateLFRCurrentMode( requestedMode ); | |
1605 | } |
|
1611 | } | |
1606 | } |
|
1612 | } | |
1607 | else if (result == LFR_EXE_ERROR) |
|
1613 | else if (result == LFR_EXE_ERROR) | |
1608 | { |
|
1614 | { | |
1609 | send_tm_lfr_tc_exe_error( TC, queue_id ); |
|
1615 | send_tm_lfr_tc_exe_error( TC, queue_id ); | |
1610 | } |
|
1616 | } | |
1611 | } |
|
1617 | } | |
1612 |
|
1618 | |||
1613 | //*************************** |
|
1619 | //*************************** | |
1614 | // Interrupt Service Routines |
|
1620 | // Interrupt Service Routines | |
1615 | rtems_isr commutation_isr1( rtems_vector_number vector ) |
|
1621 | rtems_isr commutation_isr1( rtems_vector_number vector ) | |
1616 | { |
|
1622 | { | |
1617 | if (rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_0 ) != RTEMS_SUCCESSFUL) { |
|
1623 | if (rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_0 ) != RTEMS_SUCCESSFUL) { | |
1618 | PRINTF("In commutation_isr1 *** Error sending event to DUMB\n") |
|
1624 | PRINTF("In commutation_isr1 *** Error sending event to DUMB\n") | |
1619 | } |
|
1625 | } | |
1620 | } |
|
1626 | } | |
1621 |
|
1627 | |||
1622 | rtems_isr commutation_isr2( rtems_vector_number vector ) |
|
1628 | rtems_isr commutation_isr2( rtems_vector_number vector ) | |
1623 | { |
|
1629 | { | |
1624 | if (rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_0 ) != RTEMS_SUCCESSFUL) { |
|
1630 | if (rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_0 ) != RTEMS_SUCCESSFUL) { | |
1625 | PRINTF("In commutation_isr2 *** Error sending event to DUMB\n") |
|
1631 | PRINTF("In commutation_isr2 *** Error sending event to DUMB\n") | |
1626 | } |
|
1632 | } | |
1627 | } |
|
1633 | } | |
1628 |
|
1634 | |||
1629 | //**************** |
|
1635 | //**************** | |
1630 | // OTHER FUNCTIONS |
|
1636 | // OTHER FUNCTIONS | |
1631 | void updateLFRCurrentMode( unsigned char requestedMode ) |
|
1637 | void updateLFRCurrentMode( unsigned char requestedMode ) | |
1632 | { |
|
1638 | { | |
1633 | /** This function updates the value of the global variable lfrCurrentMode. |
|
1639 | /** This function updates the value of the global variable lfrCurrentMode. | |
1634 | * |
|
1640 | * | |
1635 | * lfrCurrentMode is a parameter used by several functions to know in which mode LFR is running. |
|
1641 | * lfrCurrentMode is a parameter used by several functions to know in which mode LFR is running. | |
1636 | * |
|
1642 | * | |
1637 | */ |
|
1643 | */ | |
1638 |
|
1644 | |||
1639 | // update the local value of lfrCurrentMode with the value contained in the housekeeping_packet structure |
|
1645 | // update the local value of lfrCurrentMode with the value contained in the housekeeping_packet structure | |
1640 | housekeeping_packet.lfr_status_word[0] = (housekeeping_packet.lfr_status_word[0] & STATUS_WORD_LFR_MODE_MASK) |
|
1646 | housekeeping_packet.lfr_status_word[0] = (housekeeping_packet.lfr_status_word[0] & STATUS_WORD_LFR_MODE_MASK) | |
1641 | + (unsigned char) ( requestedMode << STATUS_WORD_LFR_MODE_SHIFT ); |
|
1647 | + (unsigned char) ( requestedMode << STATUS_WORD_LFR_MODE_SHIFT ); | |
1642 | lfrCurrentMode = requestedMode; |
|
1648 | lfrCurrentMode = requestedMode; | |
1643 | } |
|
1649 | } | |
1644 |
|
1650 | |||
1645 | void set_lfr_soft_reset( unsigned char value ) |
|
1651 | void set_lfr_soft_reset( unsigned char value ) | |
1646 | { |
|
1652 | { | |
1647 | if (value == 1) |
|
1653 | if (value == 1) | |
1648 | { |
|
1654 | { | |
1649 | time_management_regs->ctrl = time_management_regs->ctrl | BIT_SOFT_RESET; // [0100] |
|
1655 | time_management_regs->ctrl = time_management_regs->ctrl | BIT_SOFT_RESET; // [0100] | |
1650 | } |
|
1656 | } | |
1651 | else |
|
1657 | else | |
1652 | { |
|
1658 | { | |
1653 | time_management_regs->ctrl = time_management_regs->ctrl & MASK_SOFT_RESET; // [1011] |
|
1659 | time_management_regs->ctrl = time_management_regs->ctrl & MASK_SOFT_RESET; // [1011] | |
1654 | } |
|
1660 | } | |
1655 | } |
|
1661 | } | |
1656 |
|
1662 | |||
1657 | void reset_lfr( void ) |
|
1663 | void reset_lfr( void ) | |
1658 | { |
|
1664 | { | |
1659 | set_lfr_soft_reset( 1 ); |
|
1665 | set_lfr_soft_reset( 1 ); | |
1660 |
|
1666 | |||
1661 | set_lfr_soft_reset( 0 ); |
|
1667 | set_lfr_soft_reset( 0 ); | |
1662 |
|
1668 | |||
1663 | set_hk_lfr_sc_potential_flag( true ); |
|
1669 | set_hk_lfr_sc_potential_flag( true ); | |
1664 | } |
|
1670 | } |
@@ -1,1780 +1,1788 | |||||
1 | /** Functions to load and dump parameters in the LFR registers. |
|
1 | /** Functions to load and dump parameters in the LFR registers. | |
2 | * |
|
2 | * | |
3 | * @file |
|
3 | * @file | |
4 | * @author P. LEROY |
|
4 | * @author P. LEROY | |
5 | * |
|
5 | * | |
6 | * A group of functions to handle TC related to parameter loading and dumping.\n |
|
6 | * A group of functions to handle TC related to parameter loading and dumping.\n | |
7 | * TC_LFR_LOAD_COMMON_PAR\n |
|
7 | * TC_LFR_LOAD_COMMON_PAR\n | |
8 | * TC_LFR_LOAD_NORMAL_PAR\n |
|
8 | * TC_LFR_LOAD_NORMAL_PAR\n | |
9 | * TC_LFR_LOAD_BURST_PAR\n |
|
9 | * TC_LFR_LOAD_BURST_PAR\n | |
10 | * TC_LFR_LOAD_SBM1_PAR\n |
|
10 | * TC_LFR_LOAD_SBM1_PAR\n | |
11 | * TC_LFR_LOAD_SBM2_PAR\n |
|
11 | * TC_LFR_LOAD_SBM2_PAR\n | |
12 | * |
|
12 | * | |
13 | */ |
|
13 | */ | |
14 |
|
14 | |||
15 | #include "tc_load_dump_parameters.h" |
|
15 | #include "tc_load_dump_parameters.h" | |
16 |
|
16 | |||
17 | Packet_TM_LFR_KCOEFFICIENTS_DUMP_t kcoefficients_dump_1 = {0}; |
|
17 | Packet_TM_LFR_KCOEFFICIENTS_DUMP_t kcoefficients_dump_1 = {0}; | |
18 | Packet_TM_LFR_KCOEFFICIENTS_DUMP_t kcoefficients_dump_2 = {0}; |
|
18 | Packet_TM_LFR_KCOEFFICIENTS_DUMP_t kcoefficients_dump_2 = {0}; | |
19 | ring_node kcoefficient_node_1 = {0}; |
|
19 | ring_node kcoefficient_node_1 = {0}; | |
20 | ring_node kcoefficient_node_2 = {0}; |
|
20 | ring_node kcoefficient_node_2 = {0}; | |
21 |
|
21 | |||
22 | int action_load_common_par(ccsdsTelecommandPacket_t *TC) |
|
22 | int action_load_common_par(ccsdsTelecommandPacket_t *TC) | |
23 | { |
|
23 | { | |
24 | /** This function updates the LFR registers with the incoming common parameters. |
|
24 | /** This function updates the LFR registers with the incoming common parameters. | |
25 | * |
|
25 | * | |
26 | * @param TC points to the TeleCommand packet that is being processed |
|
26 | * @param TC points to the TeleCommand packet that is being processed | |
27 | * |
|
27 | * | |
28 | * |
|
28 | * | |
29 | */ |
|
29 | */ | |
30 |
|
30 | |||
31 | parameter_dump_packet.sy_lfr_common_parameters_spare = TC->dataAndCRC[0]; |
|
31 | parameter_dump_packet.sy_lfr_common_parameters_spare = TC->dataAndCRC[0]; | |
32 | parameter_dump_packet.sy_lfr_common_parameters = TC->dataAndCRC[1]; |
|
32 | parameter_dump_packet.sy_lfr_common_parameters = TC->dataAndCRC[1]; | |
33 | set_wfp_data_shaping( ); |
|
33 | set_wfp_data_shaping( ); | |
34 | return LFR_SUCCESSFUL; |
|
34 | return LFR_SUCCESSFUL; | |
35 | } |
|
35 | } | |
36 |
|
36 | |||
37 | int action_load_normal_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) |
|
37 | int action_load_normal_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) | |
38 | { |
|
38 | { | |
39 | /** This function updates the LFR registers with the incoming normal parameters. |
|
39 | /** This function updates the LFR registers with the incoming normal parameters. | |
40 | * |
|
40 | * | |
41 | * @param TC points to the TeleCommand packet that is being processed |
|
41 | * @param TC points to the TeleCommand packet that is being processed | |
42 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
42 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
43 | * |
|
43 | * | |
44 | */ |
|
44 | */ | |
45 |
|
45 | |||
46 | int result; |
|
46 | int result; | |
47 | int flag; |
|
47 | int flag; | |
48 | rtems_status_code status; |
|
48 | rtems_status_code status; | |
49 |
|
49 | |||
50 | flag = LFR_SUCCESSFUL; |
|
50 | flag = LFR_SUCCESSFUL; | |
51 |
|
51 | |||
52 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) || |
|
52 | if ( (lfrCurrentMode == LFR_MODE_NORMAL) || | |
53 | (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) { |
|
53 | (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) { | |
54 | status = send_tm_lfr_tc_exe_not_executable( TC, queue_id ); |
|
54 | status = send_tm_lfr_tc_exe_not_executable( TC, queue_id ); | |
55 | flag = LFR_DEFAULT; |
|
55 | flag = LFR_DEFAULT; | |
56 | } |
|
56 | } | |
57 |
|
57 | |||
58 | // CHECK THE PARAMETERS SET CONSISTENCY |
|
58 | // CHECK THE PARAMETERS SET CONSISTENCY | |
59 | if (flag == LFR_SUCCESSFUL) |
|
59 | if (flag == LFR_SUCCESSFUL) | |
60 | { |
|
60 | { | |
61 | flag = check_normal_par_consistency( TC, queue_id ); |
|
61 | flag = check_normal_par_consistency( TC, queue_id ); | |
62 | } |
|
62 | } | |
63 |
|
63 | |||
64 | // SET THE PARAMETERS IF THEY ARE CONSISTENT |
|
64 | // SET THE PARAMETERS IF THEY ARE CONSISTENT | |
65 | if (flag == LFR_SUCCESSFUL) |
|
65 | if (flag == LFR_SUCCESSFUL) | |
66 | { |
|
66 | { | |
67 | result = set_sy_lfr_n_swf_l( TC ); |
|
67 | result = set_sy_lfr_n_swf_l( TC ); | |
68 | result = set_sy_lfr_n_swf_p( TC ); |
|
68 | result = set_sy_lfr_n_swf_p( TC ); | |
69 | result = set_sy_lfr_n_bp_p0( TC ); |
|
69 | result = set_sy_lfr_n_bp_p0( TC ); | |
70 | result = set_sy_lfr_n_bp_p1( TC ); |
|
70 | result = set_sy_lfr_n_bp_p1( TC ); | |
71 | result = set_sy_lfr_n_asm_p( TC ); |
|
71 | result = set_sy_lfr_n_asm_p( TC ); | |
72 | result = set_sy_lfr_n_cwf_long_f3( TC ); |
|
72 | result = set_sy_lfr_n_cwf_long_f3( TC ); | |
73 | } |
|
73 | } | |
74 |
|
74 | |||
75 | return flag; |
|
75 | return flag; | |
76 | } |
|
76 | } | |
77 |
|
77 | |||
78 | int action_load_burst_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) |
|
78 | int action_load_burst_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) | |
79 | { |
|
79 | { | |
80 | /** This function updates the LFR registers with the incoming burst parameters. |
|
80 | /** This function updates the LFR registers with the incoming burst parameters. | |
81 | * |
|
81 | * | |
82 | * @param TC points to the TeleCommand packet that is being processed |
|
82 | * @param TC points to the TeleCommand packet that is being processed | |
83 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
83 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
84 | * |
|
84 | * | |
85 | */ |
|
85 | */ | |
86 |
|
86 | |||
87 | int flag; |
|
87 | int flag; | |
88 | rtems_status_code status; |
|
88 | rtems_status_code status; | |
89 | unsigned char sy_lfr_b_bp_p0; |
|
89 | unsigned char sy_lfr_b_bp_p0; | |
90 | unsigned char sy_lfr_b_bp_p1; |
|
90 | unsigned char sy_lfr_b_bp_p1; | |
91 | float aux; |
|
91 | float aux; | |
92 |
|
92 | |||
93 | flag = LFR_SUCCESSFUL; |
|
93 | flag = LFR_SUCCESSFUL; | |
94 |
|
94 | |||
95 | if ( lfrCurrentMode == LFR_MODE_BURST ) { |
|
95 | if ( lfrCurrentMode == LFR_MODE_BURST ) { | |
96 | status = send_tm_lfr_tc_exe_not_executable( TC, queue_id ); |
|
96 | status = send_tm_lfr_tc_exe_not_executable( TC, queue_id ); | |
97 | flag = LFR_DEFAULT; |
|
97 | flag = LFR_DEFAULT; | |
98 | } |
|
98 | } | |
99 |
|
99 | |||
100 | sy_lfr_b_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_B_BP_P0 ]; |
|
100 | sy_lfr_b_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_B_BP_P0 ]; | |
101 | sy_lfr_b_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_B_BP_P1 ]; |
|
101 | sy_lfr_b_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_B_BP_P1 ]; | |
102 |
|
102 | |||
103 | // sy_lfr_b_bp_p0 shall not be lower than its default value |
|
103 | // sy_lfr_b_bp_p0 shall not be lower than its default value | |
104 | if (flag == LFR_SUCCESSFUL) |
|
104 | if (flag == LFR_SUCCESSFUL) | |
105 | { |
|
105 | { | |
106 | if (sy_lfr_b_bp_p0 < DEFAULT_SY_LFR_B_BP_P0 ) |
|
106 | if (sy_lfr_b_bp_p0 < DEFAULT_SY_LFR_B_BP_P0 ) | |
107 | { |
|
107 | { | |
108 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_B_BP_P0 + DATAFIELD_OFFSET, sy_lfr_b_bp_p0 ); |
|
108 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_B_BP_P0 + DATAFIELD_OFFSET, sy_lfr_b_bp_p0 ); | |
109 | flag = WRONG_APP_DATA; |
|
109 | flag = WRONG_APP_DATA; | |
110 | } |
|
110 | } | |
111 | } |
|
111 | } | |
112 | // sy_lfr_b_bp_p1 shall not be lower than its default value |
|
112 | // sy_lfr_b_bp_p1 shall not be lower than its default value | |
113 | if (flag == LFR_SUCCESSFUL) |
|
113 | if (flag == LFR_SUCCESSFUL) | |
114 | { |
|
114 | { | |
115 | if (sy_lfr_b_bp_p1 < DEFAULT_SY_LFR_B_BP_P1 ) |
|
115 | if (sy_lfr_b_bp_p1 < DEFAULT_SY_LFR_B_BP_P1 ) | |
116 | { |
|
116 | { | |
117 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_B_BP_P1 + DATAFIELD_OFFSET, sy_lfr_b_bp_p1 ); |
|
117 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_B_BP_P1 + DATAFIELD_OFFSET, sy_lfr_b_bp_p1 ); | |
118 | flag = WRONG_APP_DATA; |
|
118 | flag = WRONG_APP_DATA; | |
119 | } |
|
119 | } | |
120 | } |
|
120 | } | |
121 | //**************************************************************** |
|
121 | //**************************************************************** | |
122 | // check the consistency between sy_lfr_b_bp_p0 and sy_lfr_b_bp_p1 |
|
122 | // check the consistency between sy_lfr_b_bp_p0 and sy_lfr_b_bp_p1 | |
123 | if (flag == LFR_SUCCESSFUL) |
|
123 | if (flag == LFR_SUCCESSFUL) | |
124 | { |
|
124 | { | |
125 | sy_lfr_b_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_B_BP_P0 ]; |
|
125 | sy_lfr_b_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_B_BP_P0 ]; | |
126 | sy_lfr_b_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_B_BP_P1 ]; |
|
126 | sy_lfr_b_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_B_BP_P1 ]; | |
127 | aux = ( (float ) sy_lfr_b_bp_p1 / sy_lfr_b_bp_p0 ) - floor(sy_lfr_b_bp_p1 / sy_lfr_b_bp_p0); |
|
127 | aux = ( (float ) sy_lfr_b_bp_p1 / sy_lfr_b_bp_p0 ) - floor(sy_lfr_b_bp_p1 / sy_lfr_b_bp_p0); | |
128 | if (aux > FLOAT_EQUAL_ZERO) |
|
128 | if (aux > FLOAT_EQUAL_ZERO) | |
129 | { |
|
129 | { | |
130 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_B_BP_P0 + DATAFIELD_OFFSET, sy_lfr_b_bp_p0 ); |
|
130 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_B_BP_P0 + DATAFIELD_OFFSET, sy_lfr_b_bp_p0 ); | |
131 | flag = LFR_DEFAULT; |
|
131 | flag = LFR_DEFAULT; | |
132 | } |
|
132 | } | |
133 | } |
|
133 | } | |
134 |
|
134 | |||
135 | // SET THE PARAMETERS |
|
135 | // SET THE PARAMETERS | |
136 | if (flag == LFR_SUCCESSFUL) |
|
136 | if (flag == LFR_SUCCESSFUL) | |
137 | { |
|
137 | { | |
138 | flag = set_sy_lfr_b_bp_p0( TC ); |
|
138 | flag = set_sy_lfr_b_bp_p0( TC ); | |
139 | flag = set_sy_lfr_b_bp_p1( TC ); |
|
139 | flag = set_sy_lfr_b_bp_p1( TC ); | |
140 | } |
|
140 | } | |
141 |
|
141 | |||
142 | return flag; |
|
142 | return flag; | |
143 | } |
|
143 | } | |
144 |
|
144 | |||
145 | int action_load_sbm1_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) |
|
145 | int action_load_sbm1_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) | |
146 | { |
|
146 | { | |
147 | /** This function updates the LFR registers with the incoming sbm1 parameters. |
|
147 | /** This function updates the LFR registers with the incoming sbm1 parameters. | |
148 | * |
|
148 | * | |
149 | * @param TC points to the TeleCommand packet that is being processed |
|
149 | * @param TC points to the TeleCommand packet that is being processed | |
150 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
150 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
151 | * |
|
151 | * | |
152 | */ |
|
152 | */ | |
153 |
|
153 | |||
154 | int flag; |
|
154 | int flag; | |
155 | rtems_status_code status; |
|
155 | rtems_status_code status; | |
156 | unsigned char sy_lfr_s1_bp_p0; |
|
156 | unsigned char sy_lfr_s1_bp_p0; | |
157 | unsigned char sy_lfr_s1_bp_p1; |
|
157 | unsigned char sy_lfr_s1_bp_p1; | |
158 | float aux; |
|
158 | float aux; | |
159 |
|
159 | |||
160 | flag = LFR_SUCCESSFUL; |
|
160 | flag = LFR_SUCCESSFUL; | |
161 |
|
161 | |||
162 | if ( lfrCurrentMode == LFR_MODE_SBM1 ) { |
|
162 | if ( lfrCurrentMode == LFR_MODE_SBM1 ) { | |
163 | status = send_tm_lfr_tc_exe_not_executable( TC, queue_id ); |
|
163 | status = send_tm_lfr_tc_exe_not_executable( TC, queue_id ); | |
164 | flag = LFR_DEFAULT; |
|
164 | flag = LFR_DEFAULT; | |
165 | } |
|
165 | } | |
166 |
|
166 | |||
167 | sy_lfr_s1_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S1_BP_P0 ]; |
|
167 | sy_lfr_s1_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S1_BP_P0 ]; | |
168 | sy_lfr_s1_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S1_BP_P1 ]; |
|
168 | sy_lfr_s1_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S1_BP_P1 ]; | |
169 |
|
169 | |||
170 | // sy_lfr_s1_bp_p0 |
|
170 | // sy_lfr_s1_bp_p0 | |
171 | if (flag == LFR_SUCCESSFUL) |
|
171 | if (flag == LFR_SUCCESSFUL) | |
172 | { |
|
172 | { | |
173 | if (sy_lfr_s1_bp_p0 < DEFAULT_SY_LFR_S1_BP_P0 ) |
|
173 | if (sy_lfr_s1_bp_p0 < DEFAULT_SY_LFR_S1_BP_P0 ) | |
174 | { |
|
174 | { | |
175 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_S1_BP_P0 + DATAFIELD_OFFSET, sy_lfr_s1_bp_p0 ); |
|
175 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_S1_BP_P0 + DATAFIELD_OFFSET, sy_lfr_s1_bp_p0 ); | |
176 | flag = WRONG_APP_DATA; |
|
176 | flag = WRONG_APP_DATA; | |
177 | } |
|
177 | } | |
178 | } |
|
178 | } | |
179 | // sy_lfr_s1_bp_p1 |
|
179 | // sy_lfr_s1_bp_p1 | |
180 | if (flag == LFR_SUCCESSFUL) |
|
180 | if (flag == LFR_SUCCESSFUL) | |
181 | { |
|
181 | { | |
182 | if (sy_lfr_s1_bp_p1 < DEFAULT_SY_LFR_S1_BP_P1 ) |
|
182 | if (sy_lfr_s1_bp_p1 < DEFAULT_SY_LFR_S1_BP_P1 ) | |
183 | { |
|
183 | { | |
184 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_S1_BP_P1 + DATAFIELD_OFFSET, sy_lfr_s1_bp_p1 ); |
|
184 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_S1_BP_P1 + DATAFIELD_OFFSET, sy_lfr_s1_bp_p1 ); | |
185 | flag = WRONG_APP_DATA; |
|
185 | flag = WRONG_APP_DATA; | |
186 | } |
|
186 | } | |
187 | } |
|
187 | } | |
188 | //****************************************************************** |
|
188 | //****************************************************************** | |
189 | // check the consistency between sy_lfr_s1_bp_p0 and sy_lfr_s1_bp_p1 |
|
189 | // check the consistency between sy_lfr_s1_bp_p0 and sy_lfr_s1_bp_p1 | |
190 | if (flag == LFR_SUCCESSFUL) |
|
190 | if (flag == LFR_SUCCESSFUL) | |
191 | { |
|
191 | { | |
192 | aux = ( (float ) sy_lfr_s1_bp_p1 / (sy_lfr_s1_bp_p0 * S1_BP_P0_SCALE) ) |
|
192 | aux = ( (float ) sy_lfr_s1_bp_p1 / (sy_lfr_s1_bp_p0 * S1_BP_P0_SCALE) ) | |
193 | - floor(sy_lfr_s1_bp_p1 / (sy_lfr_s1_bp_p0 * S1_BP_P0_SCALE)); |
|
193 | - floor(sy_lfr_s1_bp_p1 / (sy_lfr_s1_bp_p0 * S1_BP_P0_SCALE)); | |
194 | if (aux > FLOAT_EQUAL_ZERO) |
|
194 | if (aux > FLOAT_EQUAL_ZERO) | |
195 | { |
|
195 | { | |
196 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_S1_BP_P0 + DATAFIELD_OFFSET, sy_lfr_s1_bp_p0 ); |
|
196 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_S1_BP_P0 + DATAFIELD_OFFSET, sy_lfr_s1_bp_p0 ); | |
197 | flag = LFR_DEFAULT; |
|
197 | flag = LFR_DEFAULT; | |
198 | } |
|
198 | } | |
199 | } |
|
199 | } | |
200 |
|
200 | |||
201 | // SET THE PARAMETERS |
|
201 | // SET THE PARAMETERS | |
202 | if (flag == LFR_SUCCESSFUL) |
|
202 | if (flag == LFR_SUCCESSFUL) | |
203 | { |
|
203 | { | |
204 | flag = set_sy_lfr_s1_bp_p0( TC ); |
|
204 | flag = set_sy_lfr_s1_bp_p0( TC ); | |
205 | flag = set_sy_lfr_s1_bp_p1( TC ); |
|
205 | flag = set_sy_lfr_s1_bp_p1( TC ); | |
206 | } |
|
206 | } | |
207 |
|
207 | |||
208 | return flag; |
|
208 | return flag; | |
209 | } |
|
209 | } | |
210 |
|
210 | |||
211 | int action_load_sbm2_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) |
|
211 | int action_load_sbm2_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) | |
212 | { |
|
212 | { | |
213 | /** This function updates the LFR registers with the incoming sbm2 parameters. |
|
213 | /** This function updates the LFR registers with the incoming sbm2 parameters. | |
214 | * |
|
214 | * | |
215 | * @param TC points to the TeleCommand packet that is being processed |
|
215 | * @param TC points to the TeleCommand packet that is being processed | |
216 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
216 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
217 | * |
|
217 | * | |
218 | */ |
|
218 | */ | |
219 |
|
219 | |||
220 | int flag; |
|
220 | int flag; | |
221 | rtems_status_code status; |
|
221 | rtems_status_code status; | |
222 | unsigned char sy_lfr_s2_bp_p0; |
|
222 | unsigned char sy_lfr_s2_bp_p0; | |
223 | unsigned char sy_lfr_s2_bp_p1; |
|
223 | unsigned char sy_lfr_s2_bp_p1; | |
224 | float aux; |
|
224 | float aux; | |
225 |
|
225 | |||
226 | flag = LFR_SUCCESSFUL; |
|
226 | flag = LFR_SUCCESSFUL; | |
227 |
|
227 | |||
228 | if ( lfrCurrentMode == LFR_MODE_SBM2 ) { |
|
228 | if ( lfrCurrentMode == LFR_MODE_SBM2 ) { | |
229 | status = send_tm_lfr_tc_exe_not_executable( TC, queue_id ); |
|
229 | status = send_tm_lfr_tc_exe_not_executable( TC, queue_id ); | |
230 | flag = LFR_DEFAULT; |
|
230 | flag = LFR_DEFAULT; | |
231 | } |
|
231 | } | |
232 |
|
232 | |||
233 | sy_lfr_s2_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S2_BP_P0 ]; |
|
233 | sy_lfr_s2_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S2_BP_P0 ]; | |
234 | sy_lfr_s2_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S2_BP_P1 ]; |
|
234 | sy_lfr_s2_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S2_BP_P1 ]; | |
235 |
|
235 | |||
236 | // sy_lfr_s2_bp_p0 |
|
236 | // sy_lfr_s2_bp_p0 | |
237 | if (flag == LFR_SUCCESSFUL) |
|
237 | if (flag == LFR_SUCCESSFUL) | |
238 | { |
|
238 | { | |
239 | if (sy_lfr_s2_bp_p0 < DEFAULT_SY_LFR_S2_BP_P0 ) |
|
239 | if (sy_lfr_s2_bp_p0 < DEFAULT_SY_LFR_S2_BP_P0 ) | |
240 | { |
|
240 | { | |
241 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_S2_BP_P0 + DATAFIELD_OFFSET, sy_lfr_s2_bp_p0 ); |
|
241 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_S2_BP_P0 + DATAFIELD_OFFSET, sy_lfr_s2_bp_p0 ); | |
242 | flag = WRONG_APP_DATA; |
|
242 | flag = WRONG_APP_DATA; | |
243 | } |
|
243 | } | |
244 | } |
|
244 | } | |
245 | // sy_lfr_s2_bp_p1 |
|
245 | // sy_lfr_s2_bp_p1 | |
246 | if (flag == LFR_SUCCESSFUL) |
|
246 | if (flag == LFR_SUCCESSFUL) | |
247 | { |
|
247 | { | |
248 | if (sy_lfr_s2_bp_p1 < DEFAULT_SY_LFR_S2_BP_P1 ) |
|
248 | if (sy_lfr_s2_bp_p1 < DEFAULT_SY_LFR_S2_BP_P1 ) | |
249 | { |
|
249 | { | |
250 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_S2_BP_P1 + DATAFIELD_OFFSET, sy_lfr_s2_bp_p1 ); |
|
250 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_S2_BP_P1 + DATAFIELD_OFFSET, sy_lfr_s2_bp_p1 ); | |
251 | flag = WRONG_APP_DATA; |
|
251 | flag = WRONG_APP_DATA; | |
252 | } |
|
252 | } | |
253 | } |
|
253 | } | |
254 | //****************************************************************** |
|
254 | //****************************************************************** | |
255 | // check the consistency between sy_lfr_s2_bp_p0 and sy_lfr_s2_bp_p1 |
|
255 | // check the consistency between sy_lfr_s2_bp_p0 and sy_lfr_s2_bp_p1 | |
256 | if (flag == LFR_SUCCESSFUL) |
|
256 | if (flag == LFR_SUCCESSFUL) | |
257 | { |
|
257 | { | |
258 | sy_lfr_s2_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S2_BP_P0 ]; |
|
258 | sy_lfr_s2_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S2_BP_P0 ]; | |
259 | sy_lfr_s2_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S2_BP_P1 ]; |
|
259 | sy_lfr_s2_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S2_BP_P1 ]; | |
260 | aux = ( (float ) sy_lfr_s2_bp_p1 / sy_lfr_s2_bp_p0 ) - floor(sy_lfr_s2_bp_p1 / sy_lfr_s2_bp_p0); |
|
260 | aux = ( (float ) sy_lfr_s2_bp_p1 / sy_lfr_s2_bp_p0 ) - floor(sy_lfr_s2_bp_p1 / sy_lfr_s2_bp_p0); | |
261 | if (aux > FLOAT_EQUAL_ZERO) |
|
261 | if (aux > FLOAT_EQUAL_ZERO) | |
262 | { |
|
262 | { | |
263 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_S2_BP_P0 + DATAFIELD_OFFSET, sy_lfr_s2_bp_p0 ); |
|
263 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_S2_BP_P0 + DATAFIELD_OFFSET, sy_lfr_s2_bp_p0 ); | |
264 | flag = LFR_DEFAULT; |
|
264 | flag = LFR_DEFAULT; | |
265 | } |
|
265 | } | |
266 | } |
|
266 | } | |
267 |
|
267 | |||
268 | // SET THE PARAMETERS |
|
268 | // SET THE PARAMETERS | |
269 | if (flag == LFR_SUCCESSFUL) |
|
269 | if (flag == LFR_SUCCESSFUL) | |
270 | { |
|
270 | { | |
271 | flag = set_sy_lfr_s2_bp_p0( TC ); |
|
271 | flag = set_sy_lfr_s2_bp_p0( TC ); | |
272 | flag = set_sy_lfr_s2_bp_p1( TC ); |
|
272 | flag = set_sy_lfr_s2_bp_p1( TC ); | |
273 | } |
|
273 | } | |
274 |
|
274 | |||
275 | return flag; |
|
275 | return flag; | |
276 | } |
|
276 | } | |
277 |
|
277 | |||
278 | int action_load_kcoefficients(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) |
|
278 | int action_load_kcoefficients(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) | |
279 | { |
|
279 | { | |
280 | /** This function updates the LFR registers with the incoming sbm2 parameters. |
|
280 | /** This function updates the LFR registers with the incoming sbm2 parameters. | |
281 | * |
|
281 | * | |
282 | * @param TC points to the TeleCommand packet that is being processed |
|
282 | * @param TC points to the TeleCommand packet that is being processed | |
283 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
283 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
284 | * |
|
284 | * | |
285 | */ |
|
285 | */ | |
286 |
|
286 | |||
287 | int flag; |
|
287 | int flag; | |
288 |
|
288 | |||
289 | flag = LFR_DEFAULT; |
|
289 | flag = LFR_DEFAULT; | |
290 |
|
290 | |||
291 | flag = set_sy_lfr_kcoeff( TC, queue_id ); |
|
291 | flag = set_sy_lfr_kcoeff( TC, queue_id ); | |
292 |
|
292 | |||
293 | return flag; |
|
293 | return flag; | |
294 | } |
|
294 | } | |
295 |
|
295 | |||
296 | int action_load_fbins_mask(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) |
|
296 | int action_load_fbins_mask(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) | |
297 | { |
|
297 | { | |
298 | /** This function updates the LFR registers with the incoming sbm2 parameters. |
|
298 | /** This function updates the LFR registers with the incoming sbm2 parameters. | |
299 | * |
|
299 | * | |
300 | * @param TC points to the TeleCommand packet that is being processed |
|
300 | * @param TC points to the TeleCommand packet that is being processed | |
301 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
301 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
302 | * |
|
302 | * | |
303 | */ |
|
303 | */ | |
304 |
|
304 | |||
305 | int flag; |
|
305 | int flag; | |
306 |
|
306 | |||
307 | flag = LFR_DEFAULT; |
|
307 | flag = LFR_DEFAULT; | |
308 |
|
308 | |||
309 | flag = set_sy_lfr_fbins( TC ); |
|
309 | flag = set_sy_lfr_fbins( TC ); | |
310 |
|
310 | |||
311 | // once the fbins masks have been stored, they have to be merged with the masks which handle the reaction wheels frequencies filtering |
|
311 | // once the fbins masks have been stored, they have to be merged with the masks which handle the reaction wheels frequencies filtering | |
312 | merge_fbins_masks(); |
|
312 | merge_fbins_masks(); | |
313 |
|
313 | |||
314 | return flag; |
|
314 | return flag; | |
315 | } |
|
315 | } | |
316 |
|
316 | |||
317 | int action_load_filter_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) |
|
317 | int action_load_filter_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) | |
318 | { |
|
318 | { | |
319 | /** This function updates the LFR registers with the incoming sbm2 parameters. |
|
319 | /** This function updates the LFR registers with the incoming sbm2 parameters. | |
320 | * |
|
320 | * | |
321 | * @param TC points to the TeleCommand packet that is being processed |
|
321 | * @param TC points to the TeleCommand packet that is being processed | |
322 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
322 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
323 | * |
|
323 | * | |
324 | */ |
|
324 | */ | |
325 |
|
325 | |||
326 | int flag; |
|
326 | int flag; | |
327 | unsigned char k; |
|
327 | unsigned char k; | |
328 |
|
328 | |||
329 | flag = LFR_DEFAULT; |
|
329 | flag = LFR_DEFAULT; | |
330 | k = INIT_CHAR; |
|
330 | k = INIT_CHAR; | |
331 |
|
331 | |||
332 | flag = check_sy_lfr_filter_parameters( TC, queue_id ); |
|
332 | flag = check_sy_lfr_filter_parameters( TC, queue_id ); | |
333 |
|
333 | |||
334 | if (flag == LFR_SUCCESSFUL) |
|
334 | if (flag == LFR_SUCCESSFUL) | |
335 | { |
|
335 | { | |
336 | parameter_dump_packet.spare_sy_lfr_pas_filter_enabled = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_ENABLED ]; |
|
336 | parameter_dump_packet.spare_sy_lfr_pas_filter_enabled = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_ENABLED ]; | |
337 | parameter_dump_packet.sy_lfr_pas_filter_modulus = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_MODULUS ]; |
|
337 | parameter_dump_packet.sy_lfr_pas_filter_modulus = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_MODULUS ]; | |
338 | parameter_dump_packet.sy_lfr_pas_filter_tbad[BYTE_0] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_TBAD + BYTE_0 ]; |
|
338 | parameter_dump_packet.sy_lfr_pas_filter_tbad[BYTE_0] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_TBAD + BYTE_0 ]; | |
339 | parameter_dump_packet.sy_lfr_pas_filter_tbad[BYTE_1] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_TBAD + BYTE_1 ]; |
|
339 | parameter_dump_packet.sy_lfr_pas_filter_tbad[BYTE_1] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_TBAD + BYTE_1 ]; | |
340 | parameter_dump_packet.sy_lfr_pas_filter_tbad[BYTE_2] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_TBAD + BYTE_2 ]; |
|
340 | parameter_dump_packet.sy_lfr_pas_filter_tbad[BYTE_2] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_TBAD + BYTE_2 ]; | |
341 | parameter_dump_packet.sy_lfr_pas_filter_tbad[BYTE_3] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_TBAD + BYTE_3 ]; |
|
341 | parameter_dump_packet.sy_lfr_pas_filter_tbad[BYTE_3] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_TBAD + BYTE_3 ]; | |
342 | parameter_dump_packet.sy_lfr_pas_filter_offset = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_OFFSET ]; |
|
342 | parameter_dump_packet.sy_lfr_pas_filter_offset = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_OFFSET ]; | |
343 | parameter_dump_packet.sy_lfr_pas_filter_shift[BYTE_0] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_SHIFT + BYTE_0 ]; |
|
343 | parameter_dump_packet.sy_lfr_pas_filter_shift[BYTE_0] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_SHIFT + BYTE_0 ]; | |
344 | parameter_dump_packet.sy_lfr_pas_filter_shift[BYTE_1] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_SHIFT + BYTE_1 ]; |
|
344 | parameter_dump_packet.sy_lfr_pas_filter_shift[BYTE_1] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_SHIFT + BYTE_1 ]; | |
345 | parameter_dump_packet.sy_lfr_pas_filter_shift[BYTE_2] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_SHIFT + BYTE_2 ]; |
|
345 | parameter_dump_packet.sy_lfr_pas_filter_shift[BYTE_2] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_SHIFT + BYTE_2 ]; | |
346 | parameter_dump_packet.sy_lfr_pas_filter_shift[BYTE_3] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_SHIFT + BYTE_3 ]; |
|
346 | parameter_dump_packet.sy_lfr_pas_filter_shift[BYTE_3] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_SHIFT + BYTE_3 ]; | |
347 | parameter_dump_packet.sy_lfr_sc_rw_delta_f[BYTE_0] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_SC_RW_DELTA_F + BYTE_0 ]; |
|
347 | parameter_dump_packet.sy_lfr_sc_rw_delta_f[BYTE_0] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_SC_RW_DELTA_F + BYTE_0 ]; | |
348 | parameter_dump_packet.sy_lfr_sc_rw_delta_f[BYTE_1] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_SC_RW_DELTA_F + BYTE_1 ]; |
|
348 | parameter_dump_packet.sy_lfr_sc_rw_delta_f[BYTE_1] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_SC_RW_DELTA_F + BYTE_1 ]; | |
349 | parameter_dump_packet.sy_lfr_sc_rw_delta_f[BYTE_2] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_SC_RW_DELTA_F + BYTE_2 ]; |
|
349 | parameter_dump_packet.sy_lfr_sc_rw_delta_f[BYTE_2] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_SC_RW_DELTA_F + BYTE_2 ]; | |
350 | parameter_dump_packet.sy_lfr_sc_rw_delta_f[BYTE_3] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_SC_RW_DELTA_F + BYTE_3 ]; |
|
350 | parameter_dump_packet.sy_lfr_sc_rw_delta_f[BYTE_3] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_SC_RW_DELTA_F + BYTE_3 ]; | |
351 |
|
351 | |||
352 | //**************************** |
|
352 | //**************************** | |
353 | // store PAS filter parameters |
|
353 | // store PAS filter parameters | |
354 | // sy_lfr_pas_filter_enabled |
|
354 | // sy_lfr_pas_filter_enabled | |
355 | filterPar.spare_sy_lfr_pas_filter_enabled = parameter_dump_packet.spare_sy_lfr_pas_filter_enabled; |
|
355 | filterPar.spare_sy_lfr_pas_filter_enabled = parameter_dump_packet.spare_sy_lfr_pas_filter_enabled; | |
356 | set_sy_lfr_pas_filter_enabled( parameter_dump_packet.spare_sy_lfr_pas_filter_enabled & BIT_PAS_FILTER_ENABLED ); |
|
356 | set_sy_lfr_pas_filter_enabled( parameter_dump_packet.spare_sy_lfr_pas_filter_enabled & BIT_PAS_FILTER_ENABLED ); | |
357 | // sy_lfr_pas_filter_modulus |
|
357 | // sy_lfr_pas_filter_modulus | |
358 | filterPar.sy_lfr_pas_filter_modulus = parameter_dump_packet.sy_lfr_pas_filter_modulus; |
|
358 | filterPar.sy_lfr_pas_filter_modulus = parameter_dump_packet.sy_lfr_pas_filter_modulus; | |
359 | // sy_lfr_pas_filter_tbad |
|
359 | // sy_lfr_pas_filter_tbad | |
360 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_pas_filter_tbad, |
|
360 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_pas_filter_tbad, | |
361 | parameter_dump_packet.sy_lfr_pas_filter_tbad ); |
|
361 | parameter_dump_packet.sy_lfr_pas_filter_tbad ); | |
362 | // sy_lfr_pas_filter_offset |
|
362 | // sy_lfr_pas_filter_offset | |
363 | filterPar.sy_lfr_pas_filter_offset = parameter_dump_packet.sy_lfr_pas_filter_offset; |
|
363 | filterPar.sy_lfr_pas_filter_offset = parameter_dump_packet.sy_lfr_pas_filter_offset; | |
364 | // sy_lfr_pas_filter_shift |
|
364 | // sy_lfr_pas_filter_shift | |
365 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_pas_filter_shift, |
|
365 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_pas_filter_shift, | |
366 | parameter_dump_packet.sy_lfr_pas_filter_shift ); |
|
366 | parameter_dump_packet.sy_lfr_pas_filter_shift ); | |
367 |
|
367 | |||
368 | //**************************************************** |
|
368 | //**************************************************** | |
369 | // store the parameter sy_lfr_sc_rw_delta_f as a float |
|
369 | // store the parameter sy_lfr_sc_rw_delta_f as a float | |
370 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_sc_rw_delta_f, |
|
370 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_sc_rw_delta_f, | |
371 | parameter_dump_packet.sy_lfr_sc_rw_delta_f ); |
|
371 | parameter_dump_packet.sy_lfr_sc_rw_delta_f ); | |
372 |
|
372 | |||
373 | // copy rw.._k.. from the incoming TC to the local parameter_dump_packet |
|
373 | // copy rw.._k.. from the incoming TC to the local parameter_dump_packet | |
374 | for (k = 0; k < NB_RW_K_COEFFS * NB_BYTES_PER_RW_K_COEFF; k++) |
|
374 | for (k = 0; k < NB_RW_K_COEFFS * NB_BYTES_PER_RW_K_COEFF; k++) | |
375 | { |
|
375 | { | |
376 | parameter_dump_packet.sy_lfr_rw1_k1[k] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_RW1_K1 + k ]; |
|
376 | parameter_dump_packet.sy_lfr_rw1_k1[k] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_RW1_K1 + k ]; | |
377 | } |
|
377 | } | |
378 |
|
378 | |||
379 | //*********************************************** |
|
379 | //*********************************************** | |
380 | // store the parameter sy_lfr_rw.._k.. as a float |
|
380 | // store the parameter sy_lfr_rw.._k.. as a float | |
381 | // rw1_k |
|
381 | // rw1_k | |
382 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw1_k1, parameter_dump_packet.sy_lfr_rw1_k1 ); |
|
382 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw1_k1, parameter_dump_packet.sy_lfr_rw1_k1 ); | |
383 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw1_k2, parameter_dump_packet.sy_lfr_rw1_k2 ); |
|
383 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw1_k2, parameter_dump_packet.sy_lfr_rw1_k2 ); | |
384 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw1_k3, parameter_dump_packet.sy_lfr_rw1_k3 ); |
|
384 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw1_k3, parameter_dump_packet.sy_lfr_rw1_k3 ); | |
385 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw1_k4, parameter_dump_packet.sy_lfr_rw1_k4 ); |
|
385 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw1_k4, parameter_dump_packet.sy_lfr_rw1_k4 ); | |
386 | // rw2_k |
|
386 | // rw2_k | |
387 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw2_k1, parameter_dump_packet.sy_lfr_rw2_k1 ); |
|
387 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw2_k1, parameter_dump_packet.sy_lfr_rw2_k1 ); | |
388 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw2_k2, parameter_dump_packet.sy_lfr_rw2_k2 ); |
|
388 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw2_k2, parameter_dump_packet.sy_lfr_rw2_k2 ); | |
389 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw2_k3, parameter_dump_packet.sy_lfr_rw2_k3 ); |
|
389 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw2_k3, parameter_dump_packet.sy_lfr_rw2_k3 ); | |
390 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw2_k4, parameter_dump_packet.sy_lfr_rw2_k4 ); |
|
390 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw2_k4, parameter_dump_packet.sy_lfr_rw2_k4 ); | |
391 | // rw3_k |
|
391 | // rw3_k | |
392 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw3_k1, parameter_dump_packet.sy_lfr_rw3_k1 ); |
|
392 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw3_k1, parameter_dump_packet.sy_lfr_rw3_k1 ); | |
393 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw3_k2, parameter_dump_packet.sy_lfr_rw3_k2 ); |
|
393 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw3_k2, parameter_dump_packet.sy_lfr_rw3_k2 ); | |
394 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw3_k3, parameter_dump_packet.sy_lfr_rw3_k3 ); |
|
394 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw3_k3, parameter_dump_packet.sy_lfr_rw3_k3 ); | |
395 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw3_k4, parameter_dump_packet.sy_lfr_rw3_k4 ); |
|
395 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw3_k4, parameter_dump_packet.sy_lfr_rw3_k4 ); | |
396 | // rw4_k |
|
396 | // rw4_k | |
397 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw4_k1, parameter_dump_packet.sy_lfr_rw4_k1 ); |
|
397 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw4_k1, parameter_dump_packet.sy_lfr_rw4_k1 ); | |
398 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw4_k2, parameter_dump_packet.sy_lfr_rw4_k2 ); |
|
398 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw4_k2, parameter_dump_packet.sy_lfr_rw4_k2 ); | |
399 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw4_k3, parameter_dump_packet.sy_lfr_rw4_k3 ); |
|
399 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw4_k3, parameter_dump_packet.sy_lfr_rw4_k3 ); | |
400 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw4_k4, parameter_dump_packet.sy_lfr_rw4_k4 ); |
|
400 | copyFloatByChar( (unsigned char*) &filterPar.sy_lfr_rw4_k4, parameter_dump_packet.sy_lfr_rw4_k4 ); | |
401 |
|
401 | |||
402 | } |
|
402 | } | |
403 |
|
403 | |||
404 | return flag; |
|
404 | return flag; | |
405 | } |
|
405 | } | |
406 |
|
406 | |||
407 | int action_dump_kcoefficients(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) |
|
407 | int action_dump_kcoefficients(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time) | |
408 | { |
|
408 | { | |
409 | /** This function updates the LFR registers with the incoming sbm2 parameters. |
|
409 | /** This function updates the LFR registers with the incoming sbm2 parameters. | |
410 | * |
|
410 | * | |
411 | * @param TC points to the TeleCommand packet that is being processed |
|
411 | * @param TC points to the TeleCommand packet that is being processed | |
412 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
412 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
413 | * |
|
413 | * | |
414 | */ |
|
414 | */ | |
415 |
|
415 | |||
416 | unsigned int address; |
|
416 | unsigned int address; | |
417 | rtems_status_code status; |
|
417 | rtems_status_code status; | |
418 | unsigned int freq; |
|
418 | unsigned int freq; | |
419 | unsigned int bin; |
|
419 | unsigned int bin; | |
420 | unsigned int coeff; |
|
420 | unsigned int coeff; | |
421 | unsigned char *kCoeffPtr; |
|
421 | unsigned char *kCoeffPtr; | |
422 | unsigned char *kCoeffDumpPtr; |
|
422 | unsigned char *kCoeffDumpPtr; | |
423 |
|
423 | |||
424 | // for each sy_lfr_kcoeff_frequency there is 32 kcoeff |
|
424 | // for each sy_lfr_kcoeff_frequency there is 32 kcoeff | |
425 | // F0 => 11 bins |
|
425 | // F0 => 11 bins | |
426 | // F1 => 13 bins |
|
426 | // F1 => 13 bins | |
427 | // F2 => 12 bins |
|
427 | // F2 => 12 bins | |
428 | // 36 bins to dump in two packets (30 bins max per packet) |
|
428 | // 36 bins to dump in two packets (30 bins max per packet) | |
429 |
|
429 | |||
430 | //********* |
|
430 | //********* | |
431 | // PACKET 1 |
|
431 | // PACKET 1 | |
432 | // 11 F0 bins, 13 F1 bins and 6 F2 bins |
|
432 | // 11 F0 bins, 13 F1 bins and 6 F2 bins | |
433 | kcoefficients_dump_1.destinationID = TC->sourceID; |
|
433 | kcoefficients_dump_1.destinationID = TC->sourceID; | |
434 | increment_seq_counter_destination_id_dump( kcoefficients_dump_1.packetSequenceControl, TC->sourceID ); |
|
434 | increment_seq_counter_destination_id_dump( kcoefficients_dump_1.packetSequenceControl, TC->sourceID ); | |
435 | for( freq = 0; |
|
435 | for( freq = 0; | |
436 | freq < NB_BINS_COMPRESSED_SM_F0; |
|
436 | freq < NB_BINS_COMPRESSED_SM_F0; | |
437 | freq++ ) |
|
437 | freq++ ) | |
438 | { |
|
438 | { | |
439 | kcoefficients_dump_1.kcoeff_blks[ (freq*KCOEFF_BLK_SIZE) + 1] = freq; |
|
439 | kcoefficients_dump_1.kcoeff_blks[ (freq*KCOEFF_BLK_SIZE) + 1] = freq; | |
440 | bin = freq; |
|
440 | bin = freq; | |
441 | // printKCoefficients( freq, bin, k_coeff_intercalib_f0_norm); |
|
441 | // printKCoefficients( freq, bin, k_coeff_intercalib_f0_norm); | |
442 | for ( coeff=0; coeff<NB_K_COEFF_PER_BIN; coeff++ ) |
|
442 | for ( coeff=0; coeff<NB_K_COEFF_PER_BIN; coeff++ ) | |
443 | { |
|
443 | { | |
444 | kCoeffDumpPtr = (unsigned char*) &kcoefficients_dump_1.kcoeff_blks[ |
|
444 | kCoeffDumpPtr = (unsigned char*) &kcoefficients_dump_1.kcoeff_blks[ | |
445 | (freq*KCOEFF_BLK_SIZE) + (coeff*NB_BYTES_PER_FLOAT) + KCOEFF_FREQ |
|
445 | (freq*KCOEFF_BLK_SIZE) + (coeff*NB_BYTES_PER_FLOAT) + KCOEFF_FREQ | |
446 | ]; // 2 for the kcoeff_frequency |
|
446 | ]; // 2 for the kcoeff_frequency | |
447 | kCoeffPtr = (unsigned char*) &k_coeff_intercalib_f0_norm[ (bin*NB_K_COEFF_PER_BIN) + coeff ]; |
|
447 | kCoeffPtr = (unsigned char*) &k_coeff_intercalib_f0_norm[ (bin*NB_K_COEFF_PER_BIN) + coeff ]; | |
448 | copyFloatByChar( kCoeffDumpPtr, kCoeffPtr ); |
|
448 | copyFloatByChar( kCoeffDumpPtr, kCoeffPtr ); | |
449 | } |
|
449 | } | |
450 | } |
|
450 | } | |
451 | for( freq = NB_BINS_COMPRESSED_SM_F0; |
|
451 | for( freq = NB_BINS_COMPRESSED_SM_F0; | |
452 | freq < ( NB_BINS_COMPRESSED_SM_F0 + NB_BINS_COMPRESSED_SM_F1 ); |
|
452 | freq < ( NB_BINS_COMPRESSED_SM_F0 + NB_BINS_COMPRESSED_SM_F1 ); | |
453 | freq++ ) |
|
453 | freq++ ) | |
454 | { |
|
454 | { | |
455 | kcoefficients_dump_1.kcoeff_blks[ (freq*KCOEFF_BLK_SIZE) + 1 ] = freq; |
|
455 | kcoefficients_dump_1.kcoeff_blks[ (freq*KCOEFF_BLK_SIZE) + 1 ] = freq; | |
456 | bin = freq - NB_BINS_COMPRESSED_SM_F0; |
|
456 | bin = freq - NB_BINS_COMPRESSED_SM_F0; | |
457 | // printKCoefficients( freq, bin, k_coeff_intercalib_f1_norm); |
|
457 | // printKCoefficients( freq, bin, k_coeff_intercalib_f1_norm); | |
458 | for ( coeff=0; coeff<NB_K_COEFF_PER_BIN; coeff++ ) |
|
458 | for ( coeff=0; coeff<NB_K_COEFF_PER_BIN; coeff++ ) | |
459 | { |
|
459 | { | |
460 | kCoeffDumpPtr = (unsigned char*) &kcoefficients_dump_1.kcoeff_blks[ |
|
460 | kCoeffDumpPtr = (unsigned char*) &kcoefficients_dump_1.kcoeff_blks[ | |
461 | (freq*KCOEFF_BLK_SIZE) + (coeff*NB_BYTES_PER_FLOAT) + KCOEFF_FREQ |
|
461 | (freq*KCOEFF_BLK_SIZE) + (coeff*NB_BYTES_PER_FLOAT) + KCOEFF_FREQ | |
462 | ]; // 2 for the kcoeff_frequency |
|
462 | ]; // 2 for the kcoeff_frequency | |
463 | kCoeffPtr = (unsigned char*) &k_coeff_intercalib_f1_norm[ (bin*NB_K_COEFF_PER_BIN) + coeff ]; |
|
463 | kCoeffPtr = (unsigned char*) &k_coeff_intercalib_f1_norm[ (bin*NB_K_COEFF_PER_BIN) + coeff ]; | |
464 | copyFloatByChar( kCoeffDumpPtr, kCoeffPtr ); |
|
464 | copyFloatByChar( kCoeffDumpPtr, kCoeffPtr ); | |
465 | } |
|
465 | } | |
466 | } |
|
466 | } | |
467 | for( freq = ( NB_BINS_COMPRESSED_SM_F0 + NB_BINS_COMPRESSED_SM_F1 ); |
|
467 | for( freq = ( NB_BINS_COMPRESSED_SM_F0 + NB_BINS_COMPRESSED_SM_F1 ); | |
468 | freq < KCOEFF_BLK_NR_PKT1 ; |
|
468 | freq < KCOEFF_BLK_NR_PKT1 ; | |
469 | freq++ ) |
|
469 | freq++ ) | |
470 | { |
|
470 | { | |
471 | kcoefficients_dump_1.kcoeff_blks[ (freq * KCOEFF_BLK_SIZE) + 1 ] = freq; |
|
471 | kcoefficients_dump_1.kcoeff_blks[ (freq * KCOEFF_BLK_SIZE) + 1 ] = freq; | |
472 | bin = freq - (NB_BINS_COMPRESSED_SM_F0 + NB_BINS_COMPRESSED_SM_F1); |
|
472 | bin = freq - (NB_BINS_COMPRESSED_SM_F0 + NB_BINS_COMPRESSED_SM_F1); | |
473 | // printKCoefficients( freq, bin, k_coeff_intercalib_f2); |
|
473 | // printKCoefficients( freq, bin, k_coeff_intercalib_f2); | |
474 | for ( coeff = 0; coeff <NB_K_COEFF_PER_BIN; coeff++ ) |
|
474 | for ( coeff = 0; coeff <NB_K_COEFF_PER_BIN; coeff++ ) | |
475 | { |
|
475 | { | |
476 | kCoeffDumpPtr = (unsigned char*) &kcoefficients_dump_1.kcoeff_blks[ |
|
476 | kCoeffDumpPtr = (unsigned char*) &kcoefficients_dump_1.kcoeff_blks[ | |
477 | (freq * KCOEFF_BLK_SIZE) + (coeff * NB_BYTES_PER_FLOAT) + KCOEFF_FREQ |
|
477 | (freq * KCOEFF_BLK_SIZE) + (coeff * NB_BYTES_PER_FLOAT) + KCOEFF_FREQ | |
478 | ]; // 2 for the kcoeff_frequency |
|
478 | ]; // 2 for the kcoeff_frequency | |
479 | kCoeffPtr = (unsigned char*) &k_coeff_intercalib_f2[ (bin*NB_K_COEFF_PER_BIN) + coeff ]; |
|
479 | kCoeffPtr = (unsigned char*) &k_coeff_intercalib_f2[ (bin*NB_K_COEFF_PER_BIN) + coeff ]; | |
480 | copyFloatByChar( kCoeffDumpPtr, kCoeffPtr ); |
|
480 | copyFloatByChar( kCoeffDumpPtr, kCoeffPtr ); | |
481 | } |
|
481 | } | |
482 | } |
|
482 | } | |
483 | kcoefficients_dump_1.time[BYTE_0] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_3_BYTES); |
|
483 | kcoefficients_dump_1.time[BYTE_0] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_3_BYTES); | |
484 | kcoefficients_dump_1.time[BYTE_1] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_2_BYTES); |
|
484 | kcoefficients_dump_1.time[BYTE_1] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_2_BYTES); | |
485 | kcoefficients_dump_1.time[BYTE_2] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_1_BYTE); |
|
485 | kcoefficients_dump_1.time[BYTE_2] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_1_BYTE); | |
486 | kcoefficients_dump_1.time[BYTE_3] = (unsigned char) (time_management_regs->coarse_time); |
|
486 | kcoefficients_dump_1.time[BYTE_3] = (unsigned char) (time_management_regs->coarse_time); | |
487 | kcoefficients_dump_1.time[BYTE_4] = (unsigned char) (time_management_regs->fine_time >> SHIFT_1_BYTE); |
|
487 | kcoefficients_dump_1.time[BYTE_4] = (unsigned char) (time_management_regs->fine_time >> SHIFT_1_BYTE); | |
488 | kcoefficients_dump_1.time[BYTE_5] = (unsigned char) (time_management_regs->fine_time); |
|
488 | kcoefficients_dump_1.time[BYTE_5] = (unsigned char) (time_management_regs->fine_time); | |
489 | // SEND DATA |
|
489 | // SEND DATA | |
490 | kcoefficient_node_1.status = 1; |
|
490 | kcoefficient_node_1.status = 1; | |
491 | address = (unsigned int) &kcoefficient_node_1; |
|
491 | address = (unsigned int) &kcoefficient_node_1; | |
492 | status = rtems_message_queue_send( queue_id, &address, sizeof( ring_node* ) ); |
|
492 | status = rtems_message_queue_send( queue_id, &address, sizeof( ring_node* ) ); | |
493 | if (status != RTEMS_SUCCESSFUL) { |
|
493 | if (status != RTEMS_SUCCESSFUL) { | |
494 | PRINTF1("in action_dump_kcoefficients *** ERR sending packet 1 , code %d", status) |
|
494 | PRINTF1("in action_dump_kcoefficients *** ERR sending packet 1 , code %d", status) | |
495 | } |
|
495 | } | |
496 |
|
496 | |||
497 | //******** |
|
497 | //******** | |
498 | // PACKET 2 |
|
498 | // PACKET 2 | |
499 | // 6 F2 bins |
|
499 | // 6 F2 bins | |
500 | kcoefficients_dump_2.destinationID = TC->sourceID; |
|
500 | kcoefficients_dump_2.destinationID = TC->sourceID; | |
501 | increment_seq_counter_destination_id_dump( kcoefficients_dump_2.packetSequenceControl, TC->sourceID ); |
|
501 | increment_seq_counter_destination_id_dump( kcoefficients_dump_2.packetSequenceControl, TC->sourceID ); | |
502 | for( freq = 0; |
|
502 | for( freq = 0; | |
503 | freq < KCOEFF_BLK_NR_PKT2; |
|
503 | freq < KCOEFF_BLK_NR_PKT2; | |
504 | freq++ ) |
|
504 | freq++ ) | |
505 | { |
|
505 | { | |
506 | kcoefficients_dump_2.kcoeff_blks[ (freq*KCOEFF_BLK_SIZE) + 1 ] = KCOEFF_BLK_NR_PKT1 + freq; |
|
506 | kcoefficients_dump_2.kcoeff_blks[ (freq*KCOEFF_BLK_SIZE) + 1 ] = KCOEFF_BLK_NR_PKT1 + freq; | |
507 | bin = freq + KCOEFF_BLK_NR_PKT2; |
|
507 | bin = freq + KCOEFF_BLK_NR_PKT2; | |
508 | // printKCoefficients( freq, bin, k_coeff_intercalib_f2); |
|
508 | // printKCoefficients( freq, bin, k_coeff_intercalib_f2); | |
509 | for ( coeff=0; coeff<NB_K_COEFF_PER_BIN; coeff++ ) |
|
509 | for ( coeff=0; coeff<NB_K_COEFF_PER_BIN; coeff++ ) | |
510 | { |
|
510 | { | |
511 | kCoeffDumpPtr = (unsigned char*) &kcoefficients_dump_2.kcoeff_blks[ |
|
511 | kCoeffDumpPtr = (unsigned char*) &kcoefficients_dump_2.kcoeff_blks[ | |
512 | (freq*KCOEFF_BLK_SIZE) + (coeff*NB_BYTES_PER_FLOAT) + KCOEFF_FREQ ]; // 2 for the kcoeff_frequency |
|
512 | (freq*KCOEFF_BLK_SIZE) + (coeff*NB_BYTES_PER_FLOAT) + KCOEFF_FREQ ]; // 2 for the kcoeff_frequency | |
513 | kCoeffPtr = (unsigned char*) &k_coeff_intercalib_f2[ (bin*NB_K_COEFF_PER_BIN) + coeff ]; |
|
513 | kCoeffPtr = (unsigned char*) &k_coeff_intercalib_f2[ (bin*NB_K_COEFF_PER_BIN) + coeff ]; | |
514 | copyFloatByChar( kCoeffDumpPtr, kCoeffPtr ); |
|
514 | copyFloatByChar( kCoeffDumpPtr, kCoeffPtr ); | |
515 | } |
|
515 | } | |
516 | } |
|
516 | } | |
517 | kcoefficients_dump_2.time[BYTE_0] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_3_BYTES); |
|
517 | kcoefficients_dump_2.time[BYTE_0] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_3_BYTES); | |
518 | kcoefficients_dump_2.time[BYTE_1] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_2_BYTES); |
|
518 | kcoefficients_dump_2.time[BYTE_1] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_2_BYTES); | |
519 | kcoefficients_dump_2.time[BYTE_2] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_1_BYTE); |
|
519 | kcoefficients_dump_2.time[BYTE_2] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_1_BYTE); | |
520 | kcoefficients_dump_2.time[BYTE_3] = (unsigned char) (time_management_regs->coarse_time); |
|
520 | kcoefficients_dump_2.time[BYTE_3] = (unsigned char) (time_management_regs->coarse_time); | |
521 | kcoefficients_dump_2.time[BYTE_4] = (unsigned char) (time_management_regs->fine_time >> SHIFT_1_BYTE); |
|
521 | kcoefficients_dump_2.time[BYTE_4] = (unsigned char) (time_management_regs->fine_time >> SHIFT_1_BYTE); | |
522 | kcoefficients_dump_2.time[BYTE_5] = (unsigned char) (time_management_regs->fine_time); |
|
522 | kcoefficients_dump_2.time[BYTE_5] = (unsigned char) (time_management_regs->fine_time); | |
523 | // SEND DATA |
|
523 | // SEND DATA | |
524 | kcoefficient_node_2.status = 1; |
|
524 | kcoefficient_node_2.status = 1; | |
525 | address = (unsigned int) &kcoefficient_node_2; |
|
525 | address = (unsigned int) &kcoefficient_node_2; | |
526 | status = rtems_message_queue_send( queue_id, &address, sizeof( ring_node* ) ); |
|
526 | status = rtems_message_queue_send( queue_id, &address, sizeof( ring_node* ) ); | |
527 | if (status != RTEMS_SUCCESSFUL) { |
|
527 | if (status != RTEMS_SUCCESSFUL) { | |
528 | PRINTF1("in action_dump_kcoefficients *** ERR sending packet 2, code %d", status) |
|
528 | PRINTF1("in action_dump_kcoefficients *** ERR sending packet 2, code %d", status) | |
529 | } |
|
529 | } | |
530 |
|
530 | |||
531 | return status; |
|
531 | return status; | |
532 | } |
|
532 | } | |
533 |
|
533 | |||
534 | int action_dump_par( ccsdsTelecommandPacket_t *TC, rtems_id queue_id ) |
|
534 | int action_dump_par( ccsdsTelecommandPacket_t *TC, rtems_id queue_id ) | |
535 | { |
|
535 | { | |
536 | /** This function dumps the LFR parameters by sending the appropriate TM packet to the dedicated RTEMS message queue. |
|
536 | /** This function dumps the LFR parameters by sending the appropriate TM packet to the dedicated RTEMS message queue. | |
537 | * |
|
537 | * | |
538 | * @param queue_id is the id of the queue which handles TM related to this execution step. |
|
538 | * @param queue_id is the id of the queue which handles TM related to this execution step. | |
539 | * |
|
539 | * | |
540 | * @return RTEMS directive status codes: |
|
540 | * @return RTEMS directive status codes: | |
541 | * - RTEMS_SUCCESSFUL - message sent successfully |
|
541 | * - RTEMS_SUCCESSFUL - message sent successfully | |
542 | * - RTEMS_INVALID_ID - invalid queue id |
|
542 | * - RTEMS_INVALID_ID - invalid queue id | |
543 | * - RTEMS_INVALID_SIZE - invalid message size |
|
543 | * - RTEMS_INVALID_SIZE - invalid message size | |
544 | * - RTEMS_INVALID_ADDRESS - buffer is NULL |
|
544 | * - RTEMS_INVALID_ADDRESS - buffer is NULL | |
545 | * - RTEMS_UNSATISFIED - out of message buffers |
|
545 | * - RTEMS_UNSATISFIED - out of message buffers | |
546 | * - RTEMS_TOO_MANY - queue s limit has been reached |
|
546 | * - RTEMS_TOO_MANY - queue s limit has been reached | |
547 | * |
|
547 | * | |
548 | */ |
|
548 | */ | |
549 |
|
549 | |||
550 | int status; |
|
550 | int status; | |
551 |
|
551 | |||
552 | increment_seq_counter_destination_id_dump( parameter_dump_packet.packetSequenceControl, TC->sourceID ); |
|
552 | increment_seq_counter_destination_id_dump( parameter_dump_packet.packetSequenceControl, TC->sourceID ); | |
553 | parameter_dump_packet.destinationID = TC->sourceID; |
|
553 | parameter_dump_packet.destinationID = TC->sourceID; | |
554 |
|
554 | |||
555 | // UPDATE TIME |
|
555 | // UPDATE TIME | |
556 | parameter_dump_packet.time[BYTE_0] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_3_BYTES); |
|
556 | parameter_dump_packet.time[BYTE_0] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_3_BYTES); | |
557 | parameter_dump_packet.time[BYTE_1] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_2_BYTES); |
|
557 | parameter_dump_packet.time[BYTE_1] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_2_BYTES); | |
558 | parameter_dump_packet.time[BYTE_2] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_1_BYTE); |
|
558 | parameter_dump_packet.time[BYTE_2] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_1_BYTE); | |
559 | parameter_dump_packet.time[BYTE_3] = (unsigned char) (time_management_regs->coarse_time); |
|
559 | parameter_dump_packet.time[BYTE_3] = (unsigned char) (time_management_regs->coarse_time); | |
560 | parameter_dump_packet.time[BYTE_4] = (unsigned char) (time_management_regs->fine_time >> SHIFT_1_BYTE); |
|
560 | parameter_dump_packet.time[BYTE_4] = (unsigned char) (time_management_regs->fine_time >> SHIFT_1_BYTE); | |
561 | parameter_dump_packet.time[BYTE_5] = (unsigned char) (time_management_regs->fine_time); |
|
561 | parameter_dump_packet.time[BYTE_5] = (unsigned char) (time_management_regs->fine_time); | |
562 | // SEND DATA |
|
562 | // SEND DATA | |
563 | status = rtems_message_queue_send( queue_id, ¶meter_dump_packet, |
|
563 | status = rtems_message_queue_send( queue_id, ¶meter_dump_packet, | |
564 | PACKET_LENGTH_PARAMETER_DUMP + CCSDS_TC_TM_PACKET_OFFSET + CCSDS_PROTOCOLE_EXTRA_BYTES); |
|
564 | PACKET_LENGTH_PARAMETER_DUMP + CCSDS_TC_TM_PACKET_OFFSET + CCSDS_PROTOCOLE_EXTRA_BYTES); | |
565 | if (status != RTEMS_SUCCESSFUL) { |
|
565 | if (status != RTEMS_SUCCESSFUL) { | |
566 | PRINTF1("in action_dump *** ERR sending packet, code %d", status) |
|
566 | PRINTF1("in action_dump *** ERR sending packet, code %d", status) | |
567 | } |
|
567 | } | |
568 |
|
568 | |||
569 | return status; |
|
569 | return status; | |
570 | } |
|
570 | } | |
571 |
|
571 | |||
572 | //*********************** |
|
572 | //*********************** | |
573 | // NORMAL MODE PARAMETERS |
|
573 | // NORMAL MODE PARAMETERS | |
574 |
|
574 | |||
575 | int check_normal_par_consistency( ccsdsTelecommandPacket_t *TC, rtems_id queue_id ) |
|
575 | int check_normal_par_consistency( ccsdsTelecommandPacket_t *TC, rtems_id queue_id ) | |
576 | { |
|
576 | { | |
577 | unsigned char msb; |
|
577 | unsigned char msb; | |
578 | unsigned char lsb; |
|
578 | unsigned char lsb; | |
579 | int flag; |
|
579 | int flag; | |
580 | float aux; |
|
580 | float aux; | |
581 | rtems_status_code status; |
|
581 | rtems_status_code status; | |
582 |
|
582 | |||
583 | unsigned int sy_lfr_n_swf_l; |
|
583 | unsigned int sy_lfr_n_swf_l; | |
584 | unsigned int sy_lfr_n_swf_p; |
|
584 | unsigned int sy_lfr_n_swf_p; | |
585 | unsigned int sy_lfr_n_asm_p; |
|
585 | unsigned int sy_lfr_n_asm_p; | |
586 | unsigned char sy_lfr_n_bp_p0; |
|
586 | unsigned char sy_lfr_n_bp_p0; | |
587 | unsigned char sy_lfr_n_bp_p1; |
|
587 | unsigned char sy_lfr_n_bp_p1; | |
588 | unsigned char sy_lfr_n_cwf_long_f3; |
|
588 | unsigned char sy_lfr_n_cwf_long_f3; | |
589 |
|
589 | |||
590 | flag = LFR_SUCCESSFUL; |
|
590 | flag = LFR_SUCCESSFUL; | |
591 |
|
591 | |||
592 | //*************** |
|
592 | //*************** | |
593 | // get parameters |
|
593 | // get parameters | |
594 | msb = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_L ]; |
|
594 | msb = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_L ]; | |
595 | lsb = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_L+1 ]; |
|
595 | lsb = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_L+1 ]; | |
596 | sy_lfr_n_swf_l = (msb * CONST_256) + lsb; |
|
596 | sy_lfr_n_swf_l = (msb * CONST_256) + lsb; | |
597 |
|
597 | |||
598 | msb = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_P ]; |
|
598 | msb = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_P ]; | |
599 | lsb = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_P+1 ]; |
|
599 | lsb = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_P+1 ]; | |
600 | sy_lfr_n_swf_p = (msb * CONST_256) + lsb; |
|
600 | sy_lfr_n_swf_p = (msb * CONST_256) + lsb; | |
601 |
|
601 | |||
602 | msb = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_ASM_P ]; |
|
602 | msb = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_ASM_P ]; | |
603 | lsb = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_ASM_P+1 ]; |
|
603 | lsb = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_ASM_P+1 ]; | |
604 | sy_lfr_n_asm_p = (msb * CONST_256) + lsb; |
|
604 | sy_lfr_n_asm_p = (msb * CONST_256) + lsb; | |
605 |
|
605 | |||
606 | sy_lfr_n_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_BP_P0 ]; |
|
606 | sy_lfr_n_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_BP_P0 ]; | |
607 |
|
607 | |||
608 | sy_lfr_n_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_BP_P1 ]; |
|
608 | sy_lfr_n_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_BP_P1 ]; | |
609 |
|
609 | |||
610 | sy_lfr_n_cwf_long_f3 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_CWF_LONG_F3 ]; |
|
610 | sy_lfr_n_cwf_long_f3 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_CWF_LONG_F3 ]; | |
611 |
|
611 | |||
612 | //****************** |
|
612 | //****************** | |
613 | // check consistency |
|
613 | // check consistency | |
614 | // sy_lfr_n_swf_l |
|
614 | // sy_lfr_n_swf_l | |
615 | if (sy_lfr_n_swf_l != DFLT_SY_LFR_N_SWF_L) |
|
615 | if (sy_lfr_n_swf_l != DFLT_SY_LFR_N_SWF_L) | |
616 | { |
|
616 | { | |
617 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_N_SWF_L + DATAFIELD_OFFSET, sy_lfr_n_swf_l ); |
|
617 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_N_SWF_L + DATAFIELD_OFFSET, sy_lfr_n_swf_l ); | |
618 | flag = WRONG_APP_DATA; |
|
618 | flag = WRONG_APP_DATA; | |
619 | } |
|
619 | } | |
620 | // sy_lfr_n_swf_p |
|
620 | // sy_lfr_n_swf_p | |
621 | if (flag == LFR_SUCCESSFUL) |
|
621 | if (flag == LFR_SUCCESSFUL) | |
622 | { |
|
622 | { | |
623 | if ( sy_lfr_n_swf_p < MIN_SY_LFR_N_SWF_P ) |
|
623 | if ( sy_lfr_n_swf_p < MIN_SY_LFR_N_SWF_P ) | |
624 | { |
|
624 | { | |
625 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_N_SWF_P + DATAFIELD_OFFSET, sy_lfr_n_swf_p ); |
|
625 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_N_SWF_P + DATAFIELD_OFFSET, sy_lfr_n_swf_p ); | |
626 | flag = WRONG_APP_DATA; |
|
626 | flag = WRONG_APP_DATA; | |
627 | } |
|
627 | } | |
628 | } |
|
628 | } | |
629 | // sy_lfr_n_bp_p0 |
|
629 | // sy_lfr_n_bp_p0 | |
630 | if (flag == LFR_SUCCESSFUL) |
|
630 | if (flag == LFR_SUCCESSFUL) | |
631 | { |
|
631 | { | |
632 | if (sy_lfr_n_bp_p0 < DFLT_SY_LFR_N_BP_P0) |
|
632 | if (sy_lfr_n_bp_p0 < DFLT_SY_LFR_N_BP_P0) | |
633 | { |
|
633 | { | |
634 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_N_BP_P0 + DATAFIELD_OFFSET, sy_lfr_n_bp_p0 ); |
|
634 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_N_BP_P0 + DATAFIELD_OFFSET, sy_lfr_n_bp_p0 ); | |
635 | flag = WRONG_APP_DATA; |
|
635 | flag = WRONG_APP_DATA; | |
636 | } |
|
636 | } | |
637 | } |
|
637 | } | |
638 | // sy_lfr_n_asm_p |
|
638 | // sy_lfr_n_asm_p | |
639 | if (flag == LFR_SUCCESSFUL) |
|
639 | if (flag == LFR_SUCCESSFUL) | |
640 | { |
|
640 | { | |
641 | if (sy_lfr_n_asm_p == 0) |
|
641 | if (sy_lfr_n_asm_p == 0) | |
642 | { |
|
642 | { | |
643 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_N_ASM_P + DATAFIELD_OFFSET, sy_lfr_n_asm_p ); |
|
643 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_N_ASM_P + DATAFIELD_OFFSET, sy_lfr_n_asm_p ); | |
644 | flag = WRONG_APP_DATA; |
|
644 | flag = WRONG_APP_DATA; | |
645 | } |
|
645 | } | |
646 | } |
|
646 | } | |
647 | // sy_lfr_n_asm_p shall be a whole multiple of sy_lfr_n_bp_p0 |
|
647 | // sy_lfr_n_asm_p shall be a whole multiple of sy_lfr_n_bp_p0 | |
648 | if (flag == LFR_SUCCESSFUL) |
|
648 | if (flag == LFR_SUCCESSFUL) | |
649 | { |
|
649 | { | |
650 | aux = ( (float ) sy_lfr_n_asm_p / sy_lfr_n_bp_p0 ) - floor(sy_lfr_n_asm_p / sy_lfr_n_bp_p0); |
|
650 | aux = ( (float ) sy_lfr_n_asm_p / sy_lfr_n_bp_p0 ) - floor(sy_lfr_n_asm_p / sy_lfr_n_bp_p0); | |
651 | if (aux > FLOAT_EQUAL_ZERO) |
|
651 | if (aux > FLOAT_EQUAL_ZERO) | |
652 | { |
|
652 | { | |
653 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_N_ASM_P + DATAFIELD_OFFSET, sy_lfr_n_asm_p ); |
|
653 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_N_ASM_P + DATAFIELD_OFFSET, sy_lfr_n_asm_p ); | |
654 | flag = WRONG_APP_DATA; |
|
654 | flag = WRONG_APP_DATA; | |
655 | } |
|
655 | } | |
656 | } |
|
656 | } | |
657 | // sy_lfr_n_bp_p1 |
|
657 | // sy_lfr_n_bp_p1 | |
658 | if (flag == LFR_SUCCESSFUL) |
|
658 | if (flag == LFR_SUCCESSFUL) | |
659 | { |
|
659 | { | |
660 | if (sy_lfr_n_bp_p1 < DFLT_SY_LFR_N_BP_P1) |
|
660 | if (sy_lfr_n_bp_p1 < DFLT_SY_LFR_N_BP_P1) | |
661 | { |
|
661 | { | |
662 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_N_BP_P1 + DATAFIELD_OFFSET, sy_lfr_n_bp_p1 ); |
|
662 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_N_BP_P1 + DATAFIELD_OFFSET, sy_lfr_n_bp_p1 ); | |
663 | flag = WRONG_APP_DATA; |
|
663 | flag = WRONG_APP_DATA; | |
664 | } |
|
664 | } | |
665 | } |
|
665 | } | |
666 | // sy_lfr_n_bp_p1 shall be a whole multiple of sy_lfr_n_bp_p0 |
|
666 | // sy_lfr_n_bp_p1 shall be a whole multiple of sy_lfr_n_bp_p0 | |
667 | if (flag == LFR_SUCCESSFUL) |
|
667 | if (flag == LFR_SUCCESSFUL) | |
668 | { |
|
668 | { | |
669 | aux = ( (float ) sy_lfr_n_bp_p1 / sy_lfr_n_bp_p0 ) - floor(sy_lfr_n_bp_p1 / sy_lfr_n_bp_p0); |
|
669 | aux = ( (float ) sy_lfr_n_bp_p1 / sy_lfr_n_bp_p0 ) - floor(sy_lfr_n_bp_p1 / sy_lfr_n_bp_p0); | |
670 | if (aux > FLOAT_EQUAL_ZERO) |
|
670 | if (aux > FLOAT_EQUAL_ZERO) | |
671 | { |
|
671 | { | |
672 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_N_BP_P1 + DATAFIELD_OFFSET, sy_lfr_n_bp_p1 ); |
|
672 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_N_BP_P1 + DATAFIELD_OFFSET, sy_lfr_n_bp_p1 ); | |
673 | flag = LFR_DEFAULT; |
|
673 | flag = LFR_DEFAULT; | |
674 | } |
|
674 | } | |
675 | } |
|
675 | } | |
676 | // sy_lfr_n_cwf_long_f3 |
|
676 | // sy_lfr_n_cwf_long_f3 | |
677 |
|
677 | |||
678 | return flag; |
|
678 | return flag; | |
679 | } |
|
679 | } | |
680 |
|
680 | |||
681 | int set_sy_lfr_n_swf_l( ccsdsTelecommandPacket_t *TC ) |
|
681 | int set_sy_lfr_n_swf_l( ccsdsTelecommandPacket_t *TC ) | |
682 | { |
|
682 | { | |
683 | /** This function sets the number of points of a snapshot (sy_lfr_n_swf_l). |
|
683 | /** This function sets the number of points of a snapshot (sy_lfr_n_swf_l). | |
684 | * |
|
684 | * | |
685 | * @param TC points to the TeleCommand packet that is being processed |
|
685 | * @param TC points to the TeleCommand packet that is being processed | |
686 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
686 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
687 | * |
|
687 | * | |
688 | */ |
|
688 | */ | |
689 |
|
689 | |||
690 | int result; |
|
690 | int result; | |
691 |
|
691 | |||
692 | result = LFR_SUCCESSFUL; |
|
692 | result = LFR_SUCCESSFUL; | |
693 |
|
693 | |||
694 | parameter_dump_packet.sy_lfr_n_swf_l[0] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_L ]; |
|
694 | parameter_dump_packet.sy_lfr_n_swf_l[0] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_L ]; | |
695 | parameter_dump_packet.sy_lfr_n_swf_l[1] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_L+1 ]; |
|
695 | parameter_dump_packet.sy_lfr_n_swf_l[1] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_L+1 ]; | |
696 |
|
696 | |||
697 | return result; |
|
697 | return result; | |
698 | } |
|
698 | } | |
699 |
|
699 | |||
700 | int set_sy_lfr_n_swf_p(ccsdsTelecommandPacket_t *TC ) |
|
700 | int set_sy_lfr_n_swf_p(ccsdsTelecommandPacket_t *TC ) | |
701 | { |
|
701 | { | |
702 | /** This function sets the time between two snapshots, in s (sy_lfr_n_swf_p). |
|
702 | /** This function sets the time between two snapshots, in s (sy_lfr_n_swf_p). | |
703 | * |
|
703 | * | |
704 | * @param TC points to the TeleCommand packet that is being processed |
|
704 | * @param TC points to the TeleCommand packet that is being processed | |
705 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
705 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
706 | * |
|
706 | * | |
707 | */ |
|
707 | */ | |
708 |
|
708 | |||
709 | int result; |
|
709 | int result; | |
710 |
|
710 | |||
711 | result = LFR_SUCCESSFUL; |
|
711 | result = LFR_SUCCESSFUL; | |
712 |
|
712 | |||
713 | parameter_dump_packet.sy_lfr_n_swf_p[0] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_P ]; |
|
713 | parameter_dump_packet.sy_lfr_n_swf_p[0] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_P ]; | |
714 | parameter_dump_packet.sy_lfr_n_swf_p[1] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_P+1 ]; |
|
714 | parameter_dump_packet.sy_lfr_n_swf_p[1] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_SWF_P+1 ]; | |
715 |
|
715 | |||
716 | return result; |
|
716 | return result; | |
717 | } |
|
717 | } | |
718 |
|
718 | |||
719 | int set_sy_lfr_n_asm_p( ccsdsTelecommandPacket_t *TC ) |
|
719 | int set_sy_lfr_n_asm_p( ccsdsTelecommandPacket_t *TC ) | |
720 | { |
|
720 | { | |
721 | /** This function sets the time between two full spectral matrices transmission, in s (SY_LFR_N_ASM_P). |
|
721 | /** This function sets the time between two full spectral matrices transmission, in s (SY_LFR_N_ASM_P). | |
722 | * |
|
722 | * | |
723 | * @param TC points to the TeleCommand packet that is being processed |
|
723 | * @param TC points to the TeleCommand packet that is being processed | |
724 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
724 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
725 | * |
|
725 | * | |
726 | */ |
|
726 | */ | |
727 |
|
727 | |||
728 | int result; |
|
728 | int result; | |
729 |
|
729 | |||
730 | result = LFR_SUCCESSFUL; |
|
730 | result = LFR_SUCCESSFUL; | |
731 |
|
731 | |||
732 | parameter_dump_packet.sy_lfr_n_asm_p[0] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_ASM_P ]; |
|
732 | parameter_dump_packet.sy_lfr_n_asm_p[0] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_ASM_P ]; | |
733 | parameter_dump_packet.sy_lfr_n_asm_p[1] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_ASM_P+1 ]; |
|
733 | parameter_dump_packet.sy_lfr_n_asm_p[1] = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_ASM_P+1 ]; | |
734 |
|
734 | |||
735 | return result; |
|
735 | return result; | |
736 | } |
|
736 | } | |
737 |
|
737 | |||
738 | int set_sy_lfr_n_bp_p0( ccsdsTelecommandPacket_t *TC ) |
|
738 | int set_sy_lfr_n_bp_p0( ccsdsTelecommandPacket_t *TC ) | |
739 | { |
|
739 | { | |
740 | /** This function sets the time between two basic parameter sets, in s (DFLT_SY_LFR_N_BP_P0). |
|
740 | /** This function sets the time between two basic parameter sets, in s (DFLT_SY_LFR_N_BP_P0). | |
741 | * |
|
741 | * | |
742 | * @param TC points to the TeleCommand packet that is being processed |
|
742 | * @param TC points to the TeleCommand packet that is being processed | |
743 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
743 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
744 | * |
|
744 | * | |
745 | */ |
|
745 | */ | |
746 |
|
746 | |||
747 | int status; |
|
747 | int status; | |
748 |
|
748 | |||
749 | status = LFR_SUCCESSFUL; |
|
749 | status = LFR_SUCCESSFUL; | |
750 |
|
750 | |||
751 | parameter_dump_packet.sy_lfr_n_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_BP_P0 ]; |
|
751 | parameter_dump_packet.sy_lfr_n_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_BP_P0 ]; | |
752 |
|
752 | |||
753 | return status; |
|
753 | return status; | |
754 | } |
|
754 | } | |
755 |
|
755 | |||
756 | int set_sy_lfr_n_bp_p1(ccsdsTelecommandPacket_t *TC ) |
|
756 | int set_sy_lfr_n_bp_p1(ccsdsTelecommandPacket_t *TC ) | |
757 | { |
|
757 | { | |
758 | /** This function sets the time between two basic parameter sets (autocorrelation + crosscorrelation), in s (sy_lfr_n_bp_p1). |
|
758 | /** This function sets the time between two basic parameter sets (autocorrelation + crosscorrelation), in s (sy_lfr_n_bp_p1). | |
759 | * |
|
759 | * | |
760 | * @param TC points to the TeleCommand packet that is being processed |
|
760 | * @param TC points to the TeleCommand packet that is being processed | |
761 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
761 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
762 | * |
|
762 | * | |
763 | */ |
|
763 | */ | |
764 |
|
764 | |||
765 | int status; |
|
765 | int status; | |
766 |
|
766 | |||
767 | status = LFR_SUCCESSFUL; |
|
767 | status = LFR_SUCCESSFUL; | |
768 |
|
768 | |||
769 | parameter_dump_packet.sy_lfr_n_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_BP_P1 ]; |
|
769 | parameter_dump_packet.sy_lfr_n_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_BP_P1 ]; | |
770 |
|
770 | |||
771 | return status; |
|
771 | return status; | |
772 | } |
|
772 | } | |
773 |
|
773 | |||
774 | int set_sy_lfr_n_cwf_long_f3(ccsdsTelecommandPacket_t *TC ) |
|
774 | int set_sy_lfr_n_cwf_long_f3(ccsdsTelecommandPacket_t *TC ) | |
775 | { |
|
775 | { | |
776 | /** This function allows to switch from CWF_F3 packets to CWF_LONG_F3 packets. |
|
776 | /** This function allows to switch from CWF_F3 packets to CWF_LONG_F3 packets. | |
777 | * |
|
777 | * | |
778 | * @param TC points to the TeleCommand packet that is being processed |
|
778 | * @param TC points to the TeleCommand packet that is being processed | |
779 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
779 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
780 | * |
|
780 | * | |
781 | */ |
|
781 | */ | |
782 |
|
782 | |||
783 | int status; |
|
783 | int status; | |
784 |
|
784 | |||
785 | status = LFR_SUCCESSFUL; |
|
785 | status = LFR_SUCCESSFUL; | |
786 |
|
786 | |||
787 | parameter_dump_packet.sy_lfr_n_cwf_long_f3 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_CWF_LONG_F3 ]; |
|
787 | parameter_dump_packet.sy_lfr_n_cwf_long_f3 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_N_CWF_LONG_F3 ]; | |
788 |
|
788 | |||
789 | return status; |
|
789 | return status; | |
790 | } |
|
790 | } | |
791 |
|
791 | |||
792 | //********************** |
|
792 | //********************** | |
793 | // BURST MODE PARAMETERS |
|
793 | // BURST MODE PARAMETERS | |
794 | int set_sy_lfr_b_bp_p0(ccsdsTelecommandPacket_t *TC) |
|
794 | int set_sy_lfr_b_bp_p0(ccsdsTelecommandPacket_t *TC) | |
795 | { |
|
795 | { | |
796 | /** This function sets the time between two basic parameter sets, in s (SY_LFR_B_BP_P0). |
|
796 | /** This function sets the time between two basic parameter sets, in s (SY_LFR_B_BP_P0). | |
797 | * |
|
797 | * | |
798 | * @param TC points to the TeleCommand packet that is being processed |
|
798 | * @param TC points to the TeleCommand packet that is being processed | |
799 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
799 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
800 | * |
|
800 | * | |
801 | */ |
|
801 | */ | |
802 |
|
802 | |||
803 | int status; |
|
803 | int status; | |
804 |
|
804 | |||
805 | status = LFR_SUCCESSFUL; |
|
805 | status = LFR_SUCCESSFUL; | |
806 |
|
806 | |||
807 | parameter_dump_packet.sy_lfr_b_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_B_BP_P0 ]; |
|
807 | parameter_dump_packet.sy_lfr_b_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_B_BP_P0 ]; | |
808 |
|
808 | |||
809 | return status; |
|
809 | return status; | |
810 | } |
|
810 | } | |
811 |
|
811 | |||
812 | int set_sy_lfr_b_bp_p1( ccsdsTelecommandPacket_t *TC ) |
|
812 | int set_sy_lfr_b_bp_p1( ccsdsTelecommandPacket_t *TC ) | |
813 | { |
|
813 | { | |
814 | /** This function sets the time between two basic parameter sets, in s (SY_LFR_B_BP_P1). |
|
814 | /** This function sets the time between two basic parameter sets, in s (SY_LFR_B_BP_P1). | |
815 | * |
|
815 | * | |
816 | * @param TC points to the TeleCommand packet that is being processed |
|
816 | * @param TC points to the TeleCommand packet that is being processed | |
817 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
817 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
818 | * |
|
818 | * | |
819 | */ |
|
819 | */ | |
820 |
|
820 | |||
821 | int status; |
|
821 | int status; | |
822 |
|
822 | |||
823 | status = LFR_SUCCESSFUL; |
|
823 | status = LFR_SUCCESSFUL; | |
824 |
|
824 | |||
825 | parameter_dump_packet.sy_lfr_b_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_B_BP_P1 ]; |
|
825 | parameter_dump_packet.sy_lfr_b_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_B_BP_P1 ]; | |
826 |
|
826 | |||
827 | return status; |
|
827 | return status; | |
828 | } |
|
828 | } | |
829 |
|
829 | |||
830 | //********************* |
|
830 | //********************* | |
831 | // SBM1 MODE PARAMETERS |
|
831 | // SBM1 MODE PARAMETERS | |
832 | int set_sy_lfr_s1_bp_p0( ccsdsTelecommandPacket_t *TC ) |
|
832 | int set_sy_lfr_s1_bp_p0( ccsdsTelecommandPacket_t *TC ) | |
833 | { |
|
833 | { | |
834 | /** This function sets the time between two basic parameter sets, in s (SY_LFR_S1_BP_P0). |
|
834 | /** This function sets the time between two basic parameter sets, in s (SY_LFR_S1_BP_P0). | |
835 | * |
|
835 | * | |
836 | * @param TC points to the TeleCommand packet that is being processed |
|
836 | * @param TC points to the TeleCommand packet that is being processed | |
837 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
837 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
838 | * |
|
838 | * | |
839 | */ |
|
839 | */ | |
840 |
|
840 | |||
841 | int status; |
|
841 | int status; | |
842 |
|
842 | |||
843 | status = LFR_SUCCESSFUL; |
|
843 | status = LFR_SUCCESSFUL; | |
844 |
|
844 | |||
845 | parameter_dump_packet.sy_lfr_s1_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S1_BP_P0 ]; |
|
845 | parameter_dump_packet.sy_lfr_s1_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S1_BP_P0 ]; | |
846 |
|
846 | |||
847 | return status; |
|
847 | return status; | |
848 | } |
|
848 | } | |
849 |
|
849 | |||
850 | int set_sy_lfr_s1_bp_p1( ccsdsTelecommandPacket_t *TC ) |
|
850 | int set_sy_lfr_s1_bp_p1( ccsdsTelecommandPacket_t *TC ) | |
851 | { |
|
851 | { | |
852 | /** This function sets the time between two basic parameter sets, in s (SY_LFR_S1_BP_P1). |
|
852 | /** This function sets the time between two basic parameter sets, in s (SY_LFR_S1_BP_P1). | |
853 | * |
|
853 | * | |
854 | * @param TC points to the TeleCommand packet that is being processed |
|
854 | * @param TC points to the TeleCommand packet that is being processed | |
855 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
855 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
856 | * |
|
856 | * | |
857 | */ |
|
857 | */ | |
858 |
|
858 | |||
859 | int status; |
|
859 | int status; | |
860 |
|
860 | |||
861 | status = LFR_SUCCESSFUL; |
|
861 | status = LFR_SUCCESSFUL; | |
862 |
|
862 | |||
863 | parameter_dump_packet.sy_lfr_s1_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S1_BP_P1 ]; |
|
863 | parameter_dump_packet.sy_lfr_s1_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S1_BP_P1 ]; | |
864 |
|
864 | |||
865 | return status; |
|
865 | return status; | |
866 | } |
|
866 | } | |
867 |
|
867 | |||
868 | //********************* |
|
868 | //********************* | |
869 | // SBM2 MODE PARAMETERS |
|
869 | // SBM2 MODE PARAMETERS | |
870 | int set_sy_lfr_s2_bp_p0( ccsdsTelecommandPacket_t *TC ) |
|
870 | int set_sy_lfr_s2_bp_p0( ccsdsTelecommandPacket_t *TC ) | |
871 | { |
|
871 | { | |
872 | /** This function sets the time between two basic parameter sets, in s (SY_LFR_S2_BP_P0). |
|
872 | /** This function sets the time between two basic parameter sets, in s (SY_LFR_S2_BP_P0). | |
873 | * |
|
873 | * | |
874 | * @param TC points to the TeleCommand packet that is being processed |
|
874 | * @param TC points to the TeleCommand packet that is being processed | |
875 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
875 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
876 | * |
|
876 | * | |
877 | */ |
|
877 | */ | |
878 |
|
878 | |||
879 | int status; |
|
879 | int status; | |
880 |
|
880 | |||
881 | status = LFR_SUCCESSFUL; |
|
881 | status = LFR_SUCCESSFUL; | |
882 |
|
882 | |||
883 | parameter_dump_packet.sy_lfr_s2_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S2_BP_P0 ]; |
|
883 | parameter_dump_packet.sy_lfr_s2_bp_p0 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S2_BP_P0 ]; | |
884 |
|
884 | |||
885 | return status; |
|
885 | return status; | |
886 | } |
|
886 | } | |
887 |
|
887 | |||
888 | int set_sy_lfr_s2_bp_p1( ccsdsTelecommandPacket_t *TC ) |
|
888 | int set_sy_lfr_s2_bp_p1( ccsdsTelecommandPacket_t *TC ) | |
889 | { |
|
889 | { | |
890 | /** This function sets the time between two basic parameter sets, in s (SY_LFR_S2_BP_P1). |
|
890 | /** This function sets the time between two basic parameter sets, in s (SY_LFR_S2_BP_P1). | |
891 | * |
|
891 | * | |
892 | * @param TC points to the TeleCommand packet that is being processed |
|
892 | * @param TC points to the TeleCommand packet that is being processed | |
893 | * @param queue_id is the id of the queue which handles TM related to this execution step |
|
893 | * @param queue_id is the id of the queue which handles TM related to this execution step | |
894 | * |
|
894 | * | |
895 | */ |
|
895 | */ | |
896 |
|
896 | |||
897 | int status; |
|
897 | int status; | |
898 |
|
898 | |||
899 | status = LFR_SUCCESSFUL; |
|
899 | status = LFR_SUCCESSFUL; | |
900 |
|
900 | |||
901 | parameter_dump_packet.sy_lfr_s2_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S2_BP_P1 ]; |
|
901 | parameter_dump_packet.sy_lfr_s2_bp_p1 = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_S2_BP_P1 ]; | |
902 |
|
902 | |||
903 | return status; |
|
903 | return status; | |
904 | } |
|
904 | } | |
905 |
|
905 | |||
906 | //******************* |
|
906 | //******************* | |
907 | // TC_LFR_UPDATE_INFO |
|
907 | // TC_LFR_UPDATE_INFO | |
908 | unsigned int check_update_info_hk_lfr_mode( unsigned char mode ) |
|
908 | unsigned int check_update_info_hk_lfr_mode( unsigned char mode ) | |
909 | { |
|
909 | { | |
910 | unsigned int status; |
|
910 | unsigned int status; | |
911 |
|
911 | |||
912 | status = LFR_DEFAULT; |
|
912 | status = LFR_DEFAULT; | |
913 |
|
913 | |||
914 | if ( (mode == LFR_MODE_STANDBY) || (mode == LFR_MODE_NORMAL) |
|
914 | if ( (mode == LFR_MODE_STANDBY) || (mode == LFR_MODE_NORMAL) | |
915 | || (mode == LFR_MODE_BURST) |
|
915 | || (mode == LFR_MODE_BURST) | |
916 | || (mode == LFR_MODE_SBM1) || (mode == LFR_MODE_SBM2)) |
|
916 | || (mode == LFR_MODE_SBM1) || (mode == LFR_MODE_SBM2)) | |
917 | { |
|
917 | { | |
918 | status = LFR_SUCCESSFUL; |
|
918 | status = LFR_SUCCESSFUL; | |
919 | } |
|
919 | } | |
920 | else |
|
920 | else | |
921 | { |
|
921 | { | |
922 | status = LFR_DEFAULT; |
|
922 | status = LFR_DEFAULT; | |
923 | } |
|
923 | } | |
924 |
|
924 | |||
925 | return status; |
|
925 | return status; | |
926 | } |
|
926 | } | |
927 |
|
927 | |||
928 | unsigned int check_update_info_hk_tds_mode( unsigned char mode ) |
|
928 | unsigned int check_update_info_hk_tds_mode( unsigned char mode ) | |
929 | { |
|
929 | { | |
930 | unsigned int status; |
|
930 | unsigned int status; | |
931 |
|
931 | |||
932 | status = LFR_DEFAULT; |
|
932 | status = LFR_DEFAULT; | |
933 |
|
933 | |||
934 | if ( (mode == TDS_MODE_STANDBY) || (mode == TDS_MODE_NORMAL) |
|
934 | if ( (mode == TDS_MODE_STANDBY) || (mode == TDS_MODE_NORMAL) | |
935 | || (mode == TDS_MODE_BURST) |
|
935 | || (mode == TDS_MODE_BURST) | |
936 | || (mode == TDS_MODE_SBM1) || (mode == TDS_MODE_SBM2) |
|
936 | || (mode == TDS_MODE_SBM1) || (mode == TDS_MODE_SBM2) | |
937 | || (mode == TDS_MODE_LFM)) |
|
937 | || (mode == TDS_MODE_LFM)) | |
938 | { |
|
938 | { | |
939 | status = LFR_SUCCESSFUL; |
|
939 | status = LFR_SUCCESSFUL; | |
940 | } |
|
940 | } | |
941 | else |
|
941 | else | |
942 | { |
|
942 | { | |
943 | status = LFR_DEFAULT; |
|
943 | status = LFR_DEFAULT; | |
944 | } |
|
944 | } | |
945 |
|
945 | |||
946 | return status; |
|
946 | return status; | |
947 | } |
|
947 | } | |
948 |
|
948 | |||
949 | unsigned int check_update_info_hk_thr_mode( unsigned char mode ) |
|
949 | unsigned int check_update_info_hk_thr_mode( unsigned char mode ) | |
950 | { |
|
950 | { | |
951 | unsigned int status; |
|
951 | unsigned int status; | |
952 |
|
952 | |||
953 | status = LFR_DEFAULT; |
|
953 | status = LFR_DEFAULT; | |
954 |
|
954 | |||
955 | if ( (mode == THR_MODE_STANDBY) || (mode == THR_MODE_NORMAL) |
|
955 | if ( (mode == THR_MODE_STANDBY) || (mode == THR_MODE_NORMAL) | |
956 | || (mode == THR_MODE_BURST)) |
|
956 | || (mode == THR_MODE_BURST)) | |
957 | { |
|
957 | { | |
958 | status = LFR_SUCCESSFUL; |
|
958 | status = LFR_SUCCESSFUL; | |
959 | } |
|
959 | } | |
960 | else |
|
960 | else | |
961 | { |
|
961 | { | |
962 | status = LFR_DEFAULT; |
|
962 | status = LFR_DEFAULT; | |
963 | } |
|
963 | } | |
964 |
|
964 | |||
965 | return status; |
|
965 | return status; | |
966 | } |
|
966 | } | |
967 |
|
967 | |||
968 | void set_hk_lfr_sc_rw_f_flag( unsigned char wheel, unsigned char freq, float value ) |
|
968 | void set_hk_lfr_sc_rw_f_flag( unsigned char wheel, unsigned char freq, float value ) | |
969 | { |
|
969 | { | |
970 | unsigned char flag; |
|
970 | unsigned char flag; | |
971 | unsigned char flagPosInByte; |
|
971 | unsigned char flagPosInByte; | |
972 | unsigned char newFlag; |
|
972 | unsigned char newFlag; | |
973 | unsigned char flagMask; |
|
973 | unsigned char flagMask; | |
974 |
|
974 | |||
975 | // if the frequency value is not a number, the flag is set to 0 and the frequency RWx_Fy is not filtered |
|
975 | // if the frequency value is not a number, the flag is set to 0 and the frequency RWx_Fy is not filtered | |
976 | if (isnan(value)) |
|
976 | if (isnan(value)) | |
977 | { |
|
977 | { | |
978 | flag = FLAG_NAN; |
|
978 | flag = FLAG_NAN; | |
979 | } |
|
979 | } | |
980 | else |
|
980 | else | |
981 | { |
|
981 | { | |
982 | flag = FLAG_IAN; |
|
982 | flag = FLAG_IAN; | |
983 | } |
|
983 | } | |
984 |
|
984 | |||
985 | switch(wheel) |
|
985 | switch(wheel) | |
986 | { |
|
986 | { | |
987 | case WHEEL_1: |
|
987 | case WHEEL_1: | |
988 | flagPosInByte = FLAG_OFFSET_WHEELS_1_3 - freq; |
|
988 | flagPosInByte = FLAG_OFFSET_WHEELS_1_3 - freq; | |
989 | flagMask = ~(1 << flagPosInByte); |
|
989 | flagMask = ~(1 << flagPosInByte); | |
990 | newFlag = flag << flagPosInByte; |
|
990 | newFlag = flag << flagPosInByte; | |
991 | housekeeping_packet.hk_lfr_sc_rw1_rw2_f_flags = (housekeeping_packet.hk_lfr_sc_rw1_rw2_f_flags & flagMask) | newFlag; |
|
991 | housekeeping_packet.hk_lfr_sc_rw1_rw2_f_flags = (housekeeping_packet.hk_lfr_sc_rw1_rw2_f_flags & flagMask) | newFlag; | |
992 | break; |
|
992 | break; | |
993 | case WHEEL_2: |
|
993 | case WHEEL_2: | |
994 | flagPosInByte = FLAG_OFFSET_WHEELS_2_4 - freq; |
|
994 | flagPosInByte = FLAG_OFFSET_WHEELS_2_4 - freq; | |
995 | flagMask = ~(1 << flagPosInByte); |
|
995 | flagMask = ~(1 << flagPosInByte); | |
996 | newFlag = flag << flagPosInByte; |
|
996 | newFlag = flag << flagPosInByte; | |
997 | housekeeping_packet.hk_lfr_sc_rw1_rw2_f_flags = (housekeeping_packet.hk_lfr_sc_rw1_rw2_f_flags & flagMask) | newFlag; |
|
997 | housekeeping_packet.hk_lfr_sc_rw1_rw2_f_flags = (housekeeping_packet.hk_lfr_sc_rw1_rw2_f_flags & flagMask) | newFlag; | |
998 | break; |
|
998 | break; | |
999 | case WHEEL_3: |
|
999 | case WHEEL_3: | |
1000 | flagPosInByte = FLAG_OFFSET_WHEELS_1_3 - freq; |
|
1000 | flagPosInByte = FLAG_OFFSET_WHEELS_1_3 - freq; | |
1001 | flagMask = ~(1 << flagPosInByte); |
|
1001 | flagMask = ~(1 << flagPosInByte); | |
1002 | newFlag = flag << flagPosInByte; |
|
1002 | newFlag = flag << flagPosInByte; | |
1003 | housekeeping_packet.hk_lfr_sc_rw3_rw4_f_flags = (housekeeping_packet.hk_lfr_sc_rw3_rw4_f_flags & flagMask) | newFlag; |
|
1003 | housekeeping_packet.hk_lfr_sc_rw3_rw4_f_flags = (housekeeping_packet.hk_lfr_sc_rw3_rw4_f_flags & flagMask) | newFlag; | |
1004 | break; |
|
1004 | break; | |
1005 | case WHEEL_4: |
|
1005 | case WHEEL_4: | |
1006 | flagPosInByte = FLAG_OFFSET_WHEELS_2_4 - freq; |
|
1006 | flagPosInByte = FLAG_OFFSET_WHEELS_2_4 - freq; | |
1007 | flagMask = ~(1 << flagPosInByte); |
|
1007 | flagMask = ~(1 << flagPosInByte); | |
1008 | newFlag = flag << flagPosInByte; |
|
1008 | newFlag = flag << flagPosInByte; | |
1009 | housekeeping_packet.hk_lfr_sc_rw3_rw4_f_flags = (housekeeping_packet.hk_lfr_sc_rw3_rw4_f_flags & flagMask) | newFlag; |
|
1009 | housekeeping_packet.hk_lfr_sc_rw3_rw4_f_flags = (housekeeping_packet.hk_lfr_sc_rw3_rw4_f_flags & flagMask) | newFlag; | |
1010 | break; |
|
1010 | break; | |
1011 | default: |
|
1011 | default: | |
1012 | break; |
|
1012 | break; | |
1013 | } |
|
1013 | } | |
1014 | } |
|
1014 | } | |
1015 |
|
1015 | |||
1016 | void set_hk_lfr_sc_rw_f_flags( void ) |
|
1016 | void set_hk_lfr_sc_rw_f_flags( void ) | |
1017 | { |
|
1017 | { | |
1018 | // RW1 |
|
1018 | // RW1 | |
1019 | set_hk_lfr_sc_rw_f_flag( WHEEL_1, FREQ_1, rw_f.cp_rpw_sc_rw1_f1 ); |
|
1019 | set_hk_lfr_sc_rw_f_flag( WHEEL_1, FREQ_1, rw_f.cp_rpw_sc_rw1_f1 ); | |
1020 | set_hk_lfr_sc_rw_f_flag( WHEEL_1, FREQ_2, rw_f.cp_rpw_sc_rw1_f2 ); |
|
1020 | set_hk_lfr_sc_rw_f_flag( WHEEL_1, FREQ_2, rw_f.cp_rpw_sc_rw1_f2 ); | |
1021 | set_hk_lfr_sc_rw_f_flag( WHEEL_1, FREQ_3, rw_f.cp_rpw_sc_rw1_f3 ); |
|
1021 | set_hk_lfr_sc_rw_f_flag( WHEEL_1, FREQ_3, rw_f.cp_rpw_sc_rw1_f3 ); | |
1022 | set_hk_lfr_sc_rw_f_flag( WHEEL_1, FREQ_4, rw_f.cp_rpw_sc_rw1_f4 ); |
|
1022 | set_hk_lfr_sc_rw_f_flag( WHEEL_1, FREQ_4, rw_f.cp_rpw_sc_rw1_f4 ); | |
1023 |
|
1023 | |||
1024 | // RW2 |
|
1024 | // RW2 | |
1025 | set_hk_lfr_sc_rw_f_flag( WHEEL_2, FREQ_1, rw_f.cp_rpw_sc_rw2_f1 ); |
|
1025 | set_hk_lfr_sc_rw_f_flag( WHEEL_2, FREQ_1, rw_f.cp_rpw_sc_rw2_f1 ); | |
1026 | set_hk_lfr_sc_rw_f_flag( WHEEL_2, FREQ_2, rw_f.cp_rpw_sc_rw2_f2 ); |
|
1026 | set_hk_lfr_sc_rw_f_flag( WHEEL_2, FREQ_2, rw_f.cp_rpw_sc_rw2_f2 ); | |
1027 | set_hk_lfr_sc_rw_f_flag( WHEEL_2, FREQ_3, rw_f.cp_rpw_sc_rw2_f3 ); |
|
1027 | set_hk_lfr_sc_rw_f_flag( WHEEL_2, FREQ_3, rw_f.cp_rpw_sc_rw2_f3 ); | |
1028 | set_hk_lfr_sc_rw_f_flag( WHEEL_2, FREQ_4, rw_f.cp_rpw_sc_rw2_f4 ); |
|
1028 | set_hk_lfr_sc_rw_f_flag( WHEEL_2, FREQ_4, rw_f.cp_rpw_sc_rw2_f4 ); | |
1029 |
|
1029 | |||
1030 | // RW3 |
|
1030 | // RW3 | |
1031 | set_hk_lfr_sc_rw_f_flag( WHEEL_3, FREQ_1, rw_f.cp_rpw_sc_rw3_f1 ); |
|
1031 | set_hk_lfr_sc_rw_f_flag( WHEEL_3, FREQ_1, rw_f.cp_rpw_sc_rw3_f1 ); | |
1032 | set_hk_lfr_sc_rw_f_flag( WHEEL_3, FREQ_2, rw_f.cp_rpw_sc_rw3_f2 ); |
|
1032 | set_hk_lfr_sc_rw_f_flag( WHEEL_3, FREQ_2, rw_f.cp_rpw_sc_rw3_f2 ); | |
1033 | set_hk_lfr_sc_rw_f_flag( WHEEL_3, FREQ_3, rw_f.cp_rpw_sc_rw3_f3 ); |
|
1033 | set_hk_lfr_sc_rw_f_flag( WHEEL_3, FREQ_3, rw_f.cp_rpw_sc_rw3_f3 ); | |
1034 | set_hk_lfr_sc_rw_f_flag( WHEEL_3, FREQ_4, rw_f.cp_rpw_sc_rw3_f4 ); |
|
1034 | set_hk_lfr_sc_rw_f_flag( WHEEL_3, FREQ_4, rw_f.cp_rpw_sc_rw3_f4 ); | |
1035 |
|
1035 | |||
1036 | // RW4 |
|
1036 | // RW4 | |
1037 | set_hk_lfr_sc_rw_f_flag( WHEEL_4, FREQ_1, rw_f.cp_rpw_sc_rw4_f1 ); |
|
1037 | set_hk_lfr_sc_rw_f_flag( WHEEL_4, FREQ_1, rw_f.cp_rpw_sc_rw4_f1 ); | |
1038 | set_hk_lfr_sc_rw_f_flag( WHEEL_4, FREQ_2, rw_f.cp_rpw_sc_rw4_f2 ); |
|
1038 | set_hk_lfr_sc_rw_f_flag( WHEEL_4, FREQ_2, rw_f.cp_rpw_sc_rw4_f2 ); | |
1039 | set_hk_lfr_sc_rw_f_flag( WHEEL_4, FREQ_3, rw_f.cp_rpw_sc_rw4_f3 ); |
|
1039 | set_hk_lfr_sc_rw_f_flag( WHEEL_4, FREQ_3, rw_f.cp_rpw_sc_rw4_f3 ); | |
1040 | set_hk_lfr_sc_rw_f_flag( WHEEL_4, FREQ_4, rw_f.cp_rpw_sc_rw4_f4 ); |
|
1040 | set_hk_lfr_sc_rw_f_flag( WHEEL_4, FREQ_4, rw_f.cp_rpw_sc_rw4_f4 ); | |
1041 | } |
|
1041 | } | |
1042 |
|
1042 | |||
1043 | void getReactionWheelsFrequencies( ccsdsTelecommandPacket_t *TC ) |
|
1043 | void getReactionWheelsFrequencies( ccsdsTelecommandPacket_t *TC ) | |
1044 | { |
|
1044 | { | |
1045 | /** This function get the reaction wheels frequencies in the incoming TC_LFR_UPDATE_INFO and copy the values locally. |
|
1045 | /** This function get the reaction wheels frequencies in the incoming TC_LFR_UPDATE_INFO and copy the values locally. | |
1046 | * |
|
1046 | * | |
1047 | * @param TC points to the TeleCommand packet that is being processed |
|
1047 | * @param TC points to the TeleCommand packet that is being processed | |
1048 | * |
|
1048 | * | |
1049 | */ |
|
1049 | */ | |
1050 |
|
1050 | |||
1051 | unsigned char * bytePosPtr; // pointer to the beginning of the incoming TC packet |
|
1051 | unsigned char * bytePosPtr; // pointer to the beginning of the incoming TC packet | |
1052 |
|
1052 | |||
1053 | bytePosPtr = (unsigned char *) &TC->packetID; |
|
1053 | bytePosPtr = (unsigned char *) &TC->packetID; | |
1054 |
|
1054 | |||
1055 | // rw1_f |
|
1055 | // rw1_f | |
1056 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw1_f1, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW1_F1 ] ); |
|
1056 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw1_f1, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW1_F1 ] ); | |
1057 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw1_f2, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW1_F2 ] ); |
|
1057 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw1_f2, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW1_F2 ] ); | |
1058 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw1_f3, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW1_F3 ] ); |
|
1058 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw1_f3, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW1_F3 ] ); | |
1059 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw1_f4, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW1_F4 ] ); |
|
1059 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw1_f4, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW1_F4 ] ); | |
1060 |
|
1060 | |||
1061 | // rw2_f |
|
1061 | // rw2_f | |
1062 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw2_f1, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW2_F1 ] ); |
|
1062 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw2_f1, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW2_F1 ] ); | |
1063 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw2_f2, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW2_F2 ] ); |
|
1063 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw2_f2, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW2_F2 ] ); | |
1064 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw2_f3, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW2_F3 ] ); |
|
1064 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw2_f3, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW2_F3 ] ); | |
1065 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw2_f4, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW2_F4 ] ); |
|
1065 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw2_f4, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW2_F4 ] ); | |
1066 |
|
1066 | |||
1067 | // rw3_f |
|
1067 | // rw3_f | |
1068 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw3_f1, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW3_F1 ] ); |
|
1068 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw3_f1, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW3_F1 ] ); | |
1069 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw3_f2, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW3_F2 ] ); |
|
1069 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw3_f2, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW3_F2 ] ); | |
1070 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw3_f3, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW3_F3 ] ); |
|
1070 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw3_f3, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW3_F3 ] ); | |
1071 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw3_f4, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW3_F4 ] ); |
|
1071 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw3_f4, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW3_F4 ] ); | |
1072 |
|
1072 | |||
1073 | // rw4_f |
|
1073 | // rw4_f | |
1074 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw4_f1, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW4_F1 ] ); |
|
1074 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw4_f1, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW4_F1 ] ); | |
1075 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw4_f2, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW4_F2 ] ); |
|
1075 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw4_f2, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW4_F2 ] ); | |
1076 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw4_f3, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW4_F3 ] ); |
|
1076 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw4_f3, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW4_F3 ] ); | |
1077 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw4_f4, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW4_F4 ] ); |
|
1077 | copyFloatByChar( (unsigned char*) &rw_f.cp_rpw_sc_rw4_f4, (unsigned char*) &bytePosPtr[ BYTE_POS_UPDATE_INFO_CP_RPW_SC_RW4_F4 ] ); | |
1078 |
|
1078 | |||
1079 | // test each reaction wheel frequency value. NaN means that the frequency is not filtered |
|
1079 | // test each reaction wheel frequency value. NaN means that the frequency is not filtered | |
1080 |
|
1080 | |||
1081 | } |
|
1081 | } | |
1082 |
|
1082 | |||
1083 | void setFBinMask(unsigned char *fbins_mask, float rw_f, unsigned char deltaFreq, float kcoeff ) |
|
1083 | void setFBinMask(unsigned char *fbins_mask, float rw_f, unsigned char deltaFreq, float kcoeff ) | |
1084 | { |
|
1084 | { | |
1085 | /** This function executes specific actions when a TC_LFR_UPDATE_INFO TeleCommand has been received. |
|
1085 | /** This function executes specific actions when a TC_LFR_UPDATE_INFO TeleCommand has been received. | |
1086 | * |
|
1086 | * | |
1087 | * @param fbins_mask |
|
1087 | * @param fbins_mask | |
1088 | * @param rw_f is the reaction wheel frequency to filter |
|
1088 | * @param rw_f is the reaction wheel frequency to filter | |
1089 | * @param delta_f is the frequency step between the frequency bins, it depends on the frequency channel |
|
1089 | * @param delta_f is the frequency step between the frequency bins, it depends on the frequency channel | |
1090 | * @param flag [true] filtering enabled [false] filtering disabled |
|
1090 | * @param flag [true] filtering enabled [false] filtering disabled | |
1091 | * |
|
1091 | * | |
1092 | * @return void |
|
1092 | * @return void | |
1093 | * |
|
1093 | * | |
1094 | */ |
|
1094 | */ | |
1095 |
|
1095 | |||
1096 | float f_RW_min; |
|
1096 | float f_RW_min; | |
1097 | float f_RW_MAX; |
|
1097 | float f_RW_MAX; | |
1098 | float fi_min; |
|
1098 | float fi_min; | |
1099 | float fi_MAX; |
|
1099 | float fi_MAX; | |
1100 | float fi; |
|
1100 | float fi; | |
1101 | float deltaBelow; |
|
1101 | float deltaBelow; | |
1102 | float deltaAbove; |
|
1102 | float deltaAbove; | |
1103 | int binBelow; |
|
1103 | int binBelow; | |
1104 | int binAbove; |
|
1104 | int binAbove; | |
1105 | int closestBin; |
|
1105 | int closestBin; | |
1106 | unsigned int whichByte; |
|
1106 | unsigned int whichByte; | |
1107 | int selectedByte; |
|
1107 | int selectedByte; | |
1108 | int bin; |
|
1108 | int bin; | |
1109 | int binToRemove[NB_BINS_TO_REMOVE]; |
|
1109 | int binToRemove[NB_BINS_TO_REMOVE]; | |
1110 | int i; |
|
1110 | int i; | |
1111 |
|
1111 | |||
1112 | closestBin = 0; |
|
1112 | closestBin = 0; | |
1113 | whichByte = 0; |
|
1113 | whichByte = 0; | |
1114 | bin = 0; |
|
1114 | bin = 0; | |
1115 |
|
1115 | |||
1116 | for (i = 0; i < NB_BINS_TO_REMOVE; i++) |
|
1116 | for (i = 0; i < NB_BINS_TO_REMOVE; i++) | |
1117 | { |
|
1117 | { | |
1118 | binToRemove[i] = -1; |
|
1118 | binToRemove[i] = -1; | |
1119 | } |
|
1119 | } | |
1120 |
|
1120 | |||
1121 | if (!isnan(rw_f)) |
|
1121 | if (!isnan(rw_f)) | |
1122 | { |
|
1122 | { | |
1123 |
|
1123 | |||
1124 | // compute the frequency range to filter [ rw_f - delta_f/2; rw_f + delta_f/2 ] |
|
1124 | // compute the frequency range to filter [ rw_f - delta_f/2; rw_f + delta_f/2 ] | |
1125 | f_RW_min = rw_f - ( (filterPar.sy_lfr_sc_rw_delta_f * kcoeff) / DELTAF_DIV); |
|
1125 | f_RW_min = rw_f - ( (filterPar.sy_lfr_sc_rw_delta_f * kcoeff) / DELTAF_DIV); | |
1126 | f_RW_MAX = rw_f + ( (filterPar.sy_lfr_sc_rw_delta_f * kcoeff) / DELTAF_DIV); |
|
1126 | f_RW_MAX = rw_f + ( (filterPar.sy_lfr_sc_rw_delta_f * kcoeff) / DELTAF_DIV); | |
1127 |
|
1127 | |||
1128 | // compute the index of the frequency bin immediately below rw_f |
|
1128 | // compute the index of the frequency bin immediately below rw_f | |
1129 | binBelow = (int) ( floor( ((double) rw_f) / ((double) deltaFreq)) ); |
|
1129 | binBelow = (int) ( floor( ((double) rw_f) / ((double) deltaFreq)) ); | |
1130 | deltaBelow = rw_f - binBelow * deltaFreq; |
|
1130 | deltaBelow = rw_f - binBelow * deltaFreq; | |
1131 |
|
1131 | |||
1132 | // compute the index of the frequency bin immediately above rw_f |
|
1132 | // compute the index of the frequency bin immediately above rw_f | |
1133 | binAbove = (int) ( ceil( ((double) rw_f) / ((double) deltaFreq)) ); |
|
1133 | binAbove = (int) ( ceil( ((double) rw_f) / ((double) deltaFreq)) ); | |
1134 | deltaAbove = binAbove * deltaFreq - rw_f; |
|
1134 | deltaAbove = binAbove * deltaFreq - rw_f; | |
1135 |
|
1135 | |||
1136 | // search the closest bin |
|
1136 | // search the closest bin | |
1137 | if (deltaAbove > deltaBelow) |
|
1137 | if (deltaAbove > deltaBelow) | |
1138 | { |
|
1138 | { | |
1139 | closestBin = binBelow; |
|
1139 | closestBin = binBelow; | |
1140 | } |
|
1140 | } | |
1141 | else |
|
1141 | else | |
1142 | { |
|
1142 | { | |
1143 | closestBin = binAbove; |
|
1143 | closestBin = binAbove; | |
1144 | } |
|
1144 | } | |
1145 |
|
1145 | |||
1146 | // compute the fi interval [fi - deltaFreq * 0.285, fi + deltaFreq * 0.285] |
|
1146 | // compute the fi interval [fi - deltaFreq * 0.285, fi + deltaFreq * 0.285] | |
1147 | fi = closestBin * deltaFreq; |
|
1147 | fi = closestBin * deltaFreq; | |
1148 | fi_min = fi - (deltaFreq * FI_INTERVAL_COEFF); |
|
1148 | fi_min = fi - (deltaFreq * FI_INTERVAL_COEFF); | |
1149 | fi_MAX = fi + (deltaFreq * FI_INTERVAL_COEFF); |
|
1149 | fi_MAX = fi + (deltaFreq * FI_INTERVAL_COEFF); | |
1150 |
|
1150 | |||
1151 | //************************************************************************************** |
|
1151 | //************************************************************************************** | |
1152 | // be careful here, one shall take into account that the bin 0 IS DROPPED in the spectra |
|
1152 | // be careful here, one shall take into account that the bin 0 IS DROPPED in the spectra | |
1153 | // thus, the index 0 in a mask corresponds to the bin 1 of the spectrum |
|
1153 | // thus, the index 0 in a mask corresponds to the bin 1 of the spectrum | |
1154 | //************************************************************************************** |
|
1154 | //************************************************************************************** | |
1155 |
|
1155 | |||
1156 | // 1. IF [ f_RW_min, f_RW_MAX] is included in [ fi_min; fi_MAX ] |
|
1156 | // 1. IF [ f_RW_min, f_RW_MAX] is included in [ fi_min; fi_MAX ] | |
1157 | // => remove f_(i), f_(i-1) and f_(i+1) |
|
1157 | // => remove f_(i), f_(i-1) and f_(i+1) | |
1158 | if ( ( f_RW_min > fi_min ) && ( f_RW_MAX < fi_MAX ) ) |
|
1158 | if ( ( f_RW_min > fi_min ) && ( f_RW_MAX < fi_MAX ) ) | |
1159 | { |
|
1159 | { | |
1160 | binToRemove[0] = (closestBin - 1) - 1; |
|
1160 | binToRemove[0] = (closestBin - 1) - 1; | |
1161 | binToRemove[1] = (closestBin) - 1; |
|
1161 | binToRemove[1] = (closestBin) - 1; | |
1162 | binToRemove[2] = (closestBin + 1) - 1; |
|
1162 | binToRemove[2] = (closestBin + 1) - 1; | |
1163 | } |
|
1163 | } | |
1164 | // 2. ELSE |
|
1164 | // 2. ELSE | |
1165 | // => remove the two f_(i) which are around f_RW |
|
1165 | // => remove the two f_(i) which are around f_RW | |
1166 | else |
|
1166 | else | |
1167 | { |
|
1167 | { | |
1168 | binToRemove[0] = (binBelow) - 1; |
|
1168 | binToRemove[0] = (binBelow) - 1; | |
1169 | binToRemove[1] = (binAbove) - 1; |
|
1169 | binToRemove[1] = (binAbove) - 1; | |
1170 | binToRemove[2] = (-1); |
|
1170 | binToRemove[2] = (-1); | |
1171 | } |
|
1171 | } | |
1172 |
|
1172 | |||
1173 | for (i = 0; i < NB_BINS_TO_REMOVE; i++) |
|
1173 | for (i = 0; i < NB_BINS_TO_REMOVE; i++) | |
1174 | { |
|
1174 | { | |
1175 | bin = binToRemove[i]; |
|
1175 | bin = binToRemove[i]; | |
1176 | if ( (bin >= BIN_MIN) && (bin <= BIN_MAX) ) |
|
1176 | if ( (bin >= BIN_MIN) && (bin <= BIN_MAX) ) | |
1177 | { |
|
1177 | { | |
1178 |
|
1178 | |||
1179 | whichByte = (bin >> SHIFT_3_BITS); // division by 8 |
|
1179 | whichByte = (bin >> SHIFT_3_BITS); // division by 8 | |
1180 | selectedByte = ( 1 << (bin - (whichByte * BITS_PER_BYTE)) ); |
|
1180 | selectedByte = ( 1 << (bin - (whichByte * BITS_PER_BYTE)) ); | |
1181 | fbins_mask[BYTES_PER_MASK - 1 - whichByte] = |
|
1181 | fbins_mask[BYTES_PER_MASK - 1 - whichByte] = | |
1182 | fbins_mask[BYTES_PER_MASK - 1 - whichByte] & ((unsigned char) (~selectedByte)); // bytes are ordered MSB first in the packets |
|
1182 | fbins_mask[BYTES_PER_MASK - 1 - whichByte] & ((unsigned char) (~selectedByte)); // bytes are ordered MSB first in the packets | |
1183 | } |
|
1183 | } | |
1184 | } |
|
1184 | } | |
1185 | } |
|
1185 | } | |
1186 | } |
|
1186 | } | |
1187 |
|
1187 | |||
1188 | void build_sy_lfr_rw_mask( unsigned int channel ) |
|
1188 | void build_sy_lfr_rw_mask( unsigned int channel ) | |
1189 | { |
|
1189 | { | |
1190 | unsigned char local_rw_fbins_mask[BYTES_PER_MASK]; |
|
1190 | unsigned char local_rw_fbins_mask[BYTES_PER_MASK]; | |
1191 | unsigned char *maskPtr; |
|
1191 | unsigned char *maskPtr; | |
1192 | double deltaF; |
|
1192 | double deltaF; | |
1193 | unsigned k; |
|
1193 | unsigned k; | |
1194 |
|
1194 | |||
1195 | maskPtr = NULL; |
|
1195 | maskPtr = NULL; | |
1196 | deltaF = DELTAF_F2; |
|
1196 | deltaF = DELTAF_F2; | |
1197 |
|
1197 | |||
1198 | switch (channel) |
|
1198 | switch (channel) | |
1199 | { |
|
1199 | { | |
1200 | case CHANNELF0: |
|
1200 | case CHANNELF0: | |
1201 | maskPtr = parameter_dump_packet.sy_lfr_rw_mask_f0_word1; |
|
1201 | maskPtr = parameter_dump_packet.sy_lfr_rw_mask_f0_word1; | |
1202 | deltaF = DELTAF_F0; |
|
1202 | deltaF = DELTAF_F0; | |
1203 | break; |
|
1203 | break; | |
1204 | case CHANNELF1: |
|
1204 | case CHANNELF1: | |
1205 | maskPtr = parameter_dump_packet.sy_lfr_rw_mask_f1_word1; |
|
1205 | maskPtr = parameter_dump_packet.sy_lfr_rw_mask_f1_word1; | |
1206 | deltaF = DELTAF_F1; |
|
1206 | deltaF = DELTAF_F1; | |
1207 | break; |
|
1207 | break; | |
1208 | case CHANNELF2: |
|
1208 | case CHANNELF2: | |
1209 | maskPtr = parameter_dump_packet.sy_lfr_rw_mask_f2_word1; |
|
1209 | maskPtr = parameter_dump_packet.sy_lfr_rw_mask_f2_word1; | |
1210 | deltaF = DELTAF_F2; |
|
1210 | deltaF = DELTAF_F2; | |
1211 | break; |
|
1211 | break; | |
1212 | default: |
|
1212 | default: | |
1213 | break; |
|
1213 | break; | |
1214 | } |
|
1214 | } | |
1215 |
|
1215 | |||
1216 | for (k = 0; k < BYTES_PER_MASK; k++) |
|
1216 | for (k = 0; k < BYTES_PER_MASK; k++) | |
1217 | { |
|
1217 | { | |
1218 | local_rw_fbins_mask[k] = INT8_ALL_F; |
|
1218 | local_rw_fbins_mask[k] = INT8_ALL_F; | |
1219 | } |
|
1219 | } | |
1220 |
|
1220 | |||
1221 | // RW1 |
|
1221 | // RW1 | |
1222 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw1_f1, deltaF, filterPar.sy_lfr_rw1_k1 ); |
|
1222 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw1_f1, deltaF, filterPar.sy_lfr_rw1_k1 ); | |
1223 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw1_f2, deltaF, filterPar.sy_lfr_rw1_k2 ); |
|
1223 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw1_f2, deltaF, filterPar.sy_lfr_rw1_k2 ); | |
1224 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw1_f3, deltaF, filterPar.sy_lfr_rw1_k3 ); |
|
1224 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw1_f3, deltaF, filterPar.sy_lfr_rw1_k3 ); | |
1225 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw1_f4, deltaF, filterPar.sy_lfr_rw1_k4 ); |
|
1225 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw1_f4, deltaF, filterPar.sy_lfr_rw1_k4 ); | |
1226 |
|
1226 | |||
1227 | // RW2 |
|
1227 | // RW2 | |
1228 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw2_f1, deltaF, filterPar.sy_lfr_rw2_k1 ); |
|
1228 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw2_f1, deltaF, filterPar.sy_lfr_rw2_k1 ); | |
1229 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw2_f2, deltaF, filterPar.sy_lfr_rw2_k2 ); |
|
1229 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw2_f2, deltaF, filterPar.sy_lfr_rw2_k2 ); | |
1230 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw2_f3, deltaF, filterPar.sy_lfr_rw2_k3 ); |
|
1230 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw2_f3, deltaF, filterPar.sy_lfr_rw2_k3 ); | |
1231 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw2_f4, deltaF, filterPar.sy_lfr_rw2_k4 ); |
|
1231 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw2_f4, deltaF, filterPar.sy_lfr_rw2_k4 ); | |
1232 |
|
1232 | |||
1233 | // RW3 |
|
1233 | // RW3 | |
1234 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw3_f1, deltaF, filterPar.sy_lfr_rw3_k1 ); |
|
1234 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw3_f1, deltaF, filterPar.sy_lfr_rw3_k1 ); | |
1235 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw3_f2, deltaF, filterPar.sy_lfr_rw3_k2 ); |
|
1235 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw3_f2, deltaF, filterPar.sy_lfr_rw3_k2 ); | |
1236 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw3_f3, deltaF, filterPar.sy_lfr_rw3_k3 ); |
|
1236 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw3_f3, deltaF, filterPar.sy_lfr_rw3_k3 ); | |
1237 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw3_f4, deltaF, filterPar.sy_lfr_rw3_k4 ); |
|
1237 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw3_f4, deltaF, filterPar.sy_lfr_rw3_k4 ); | |
1238 |
|
1238 | |||
1239 | // RW4 |
|
1239 | // RW4 | |
1240 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw4_f1, deltaF, filterPar.sy_lfr_rw4_k1 ); |
|
1240 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw4_f1, deltaF, filterPar.sy_lfr_rw4_k1 ); | |
1241 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw4_f2, deltaF, filterPar.sy_lfr_rw4_k2 ); |
|
1241 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw4_f2, deltaF, filterPar.sy_lfr_rw4_k2 ); | |
1242 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw4_f3, deltaF, filterPar.sy_lfr_rw4_k3 ); |
|
1242 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw4_f3, deltaF, filterPar.sy_lfr_rw4_k3 ); | |
1243 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw4_f4, deltaF, filterPar.sy_lfr_rw4_k4 ); |
|
1243 | setFBinMask( local_rw_fbins_mask, rw_f.cp_rpw_sc_rw4_f4, deltaF, filterPar.sy_lfr_rw4_k4 ); | |
1244 |
|
1244 | |||
1245 | // update the value of the fbins related to reaction wheels frequency filtering |
|
1245 | // update the value of the fbins related to reaction wheels frequency filtering | |
1246 | if (maskPtr != NULL) |
|
1246 | if (maskPtr != NULL) | |
1247 | { |
|
1247 | { | |
1248 | for (k = 0; k < BYTES_PER_MASK; k++) |
|
1248 | for (k = 0; k < BYTES_PER_MASK; k++) | |
1249 | { |
|
1249 | { | |
1250 | maskPtr[k] = local_rw_fbins_mask[k]; |
|
1250 | maskPtr[k] = local_rw_fbins_mask[k]; | |
1251 | } |
|
1251 | } | |
1252 | } |
|
1252 | } | |
1253 | } |
|
1253 | } | |
1254 |
|
1254 | |||
1255 | void build_sy_lfr_rw_masks( void ) |
|
1255 | void build_sy_lfr_rw_masks( void ) | |
1256 | { |
|
1256 | { | |
1257 | build_sy_lfr_rw_mask( CHANNELF0 ); |
|
1257 | build_sy_lfr_rw_mask( CHANNELF0 ); | |
1258 | build_sy_lfr_rw_mask( CHANNELF1 ); |
|
1258 | build_sy_lfr_rw_mask( CHANNELF1 ); | |
1259 | build_sy_lfr_rw_mask( CHANNELF2 ); |
|
1259 | build_sy_lfr_rw_mask( CHANNELF2 ); | |
1260 | } |
|
1260 | } | |
1261 |
|
1261 | |||
1262 | void merge_fbins_masks( void ) |
|
1262 | void merge_fbins_masks( void ) | |
1263 | { |
|
1263 | { | |
1264 | unsigned char k; |
|
1264 | unsigned char k; | |
1265 |
|
1265 | |||
1266 | unsigned char *fbins_f0; |
|
1266 | unsigned char *fbins_f0; | |
1267 | unsigned char *fbins_f1; |
|
1267 | unsigned char *fbins_f1; | |
1268 | unsigned char *fbins_f2; |
|
1268 | unsigned char *fbins_f2; | |
1269 | unsigned char *rw_mask_f0; |
|
1269 | unsigned char *rw_mask_f0; | |
1270 | unsigned char *rw_mask_f1; |
|
1270 | unsigned char *rw_mask_f1; | |
1271 | unsigned char *rw_mask_f2; |
|
1271 | unsigned char *rw_mask_f2; | |
1272 |
|
1272 | |||
1273 | fbins_f0 = parameter_dump_packet.sy_lfr_fbins_f0_word1; |
|
1273 | fbins_f0 = parameter_dump_packet.sy_lfr_fbins_f0_word1; | |
1274 | fbins_f1 = parameter_dump_packet.sy_lfr_fbins_f1_word1; |
|
1274 | fbins_f1 = parameter_dump_packet.sy_lfr_fbins_f1_word1; | |
1275 | fbins_f2 = parameter_dump_packet.sy_lfr_fbins_f2_word1; |
|
1275 | fbins_f2 = parameter_dump_packet.sy_lfr_fbins_f2_word1; | |
1276 | rw_mask_f0 = parameter_dump_packet.sy_lfr_rw_mask_f0_word1; |
|
1276 | rw_mask_f0 = parameter_dump_packet.sy_lfr_rw_mask_f0_word1; | |
1277 | rw_mask_f1 = parameter_dump_packet.sy_lfr_rw_mask_f1_word1; |
|
1277 | rw_mask_f1 = parameter_dump_packet.sy_lfr_rw_mask_f1_word1; | |
1278 | rw_mask_f2 = parameter_dump_packet.sy_lfr_rw_mask_f2_word1; |
|
1278 | rw_mask_f2 = parameter_dump_packet.sy_lfr_rw_mask_f2_word1; | |
1279 |
|
1279 | |||
1280 | for( k=0; k < BYTES_PER_MASK; k++ ) |
|
1280 | for( k=0; k < BYTES_PER_MASK; k++ ) | |
1281 | { |
|
1281 | { | |
1282 | fbins_masks.merged_fbins_mask_f0[k] = fbins_f0[k] & rw_mask_f0[k]; |
|
1282 | fbins_masks.merged_fbins_mask_f0[k] = fbins_f0[k] & rw_mask_f0[k]; | |
1283 | fbins_masks.merged_fbins_mask_f1[k] = fbins_f1[k] & rw_mask_f1[k]; |
|
1283 | fbins_masks.merged_fbins_mask_f1[k] = fbins_f1[k] & rw_mask_f1[k]; | |
1284 | fbins_masks.merged_fbins_mask_f2[k] = fbins_f2[k] & rw_mask_f2[k]; |
|
1284 | fbins_masks.merged_fbins_mask_f2[k] = fbins_f2[k] & rw_mask_f2[k]; | |
1285 | } |
|
1285 | } | |
1286 | } |
|
1286 | } | |
1287 |
|
1287 | |||
1288 | //*********** |
|
1288 | //*********** | |
1289 | // FBINS MASK |
|
1289 | // FBINS MASK | |
1290 |
|
1290 | |||
1291 | int set_sy_lfr_fbins( ccsdsTelecommandPacket_t *TC ) |
|
1291 | int set_sy_lfr_fbins( ccsdsTelecommandPacket_t *TC ) | |
1292 | { |
|
1292 | { | |
1293 | int status; |
|
1293 | int status; | |
1294 | unsigned int k; |
|
1294 | unsigned int k; | |
1295 | unsigned char *fbins_mask_dump; |
|
1295 | unsigned char *fbins_mask_dump; | |
1296 | unsigned char *fbins_mask_TC; |
|
1296 | unsigned char *fbins_mask_TC; | |
1297 |
|
1297 | |||
1298 | status = LFR_SUCCESSFUL; |
|
1298 | status = LFR_SUCCESSFUL; | |
1299 |
|
1299 | |||
1300 | fbins_mask_dump = parameter_dump_packet.sy_lfr_fbins_f0_word1; |
|
1300 | fbins_mask_dump = parameter_dump_packet.sy_lfr_fbins_f0_word1; | |
1301 | fbins_mask_TC = TC->dataAndCRC; |
|
1301 | fbins_mask_TC = TC->dataAndCRC; | |
1302 |
|
1302 | |||
1303 | for (k=0; k < BYTES_PER_MASKS_SET; k++) |
|
1303 | for (k=0; k < BYTES_PER_MASKS_SET; k++) | |
1304 | { |
|
1304 | { | |
1305 | fbins_mask_dump[k] = fbins_mask_TC[k]; |
|
1305 | fbins_mask_dump[k] = fbins_mask_TC[k]; | |
1306 | } |
|
1306 | } | |
1307 |
|
1307 | |||
1308 | return status; |
|
1308 | return status; | |
1309 | } |
|
1309 | } | |
1310 |
|
1310 | |||
1311 | //*************************** |
|
1311 | //*************************** | |
1312 | // TC_LFR_LOAD_PAS_FILTER_PAR |
|
1312 | // TC_LFR_LOAD_PAS_FILTER_PAR | |
1313 |
|
1313 | |||
1314 | int check_sy_lfr_filter_parameters( ccsdsTelecommandPacket_t *TC, rtems_id queue_id ) |
|
1314 | int check_sy_lfr_filter_parameters( ccsdsTelecommandPacket_t *TC, rtems_id queue_id ) | |
1315 | { |
|
1315 | { | |
1316 | int flag; |
|
1316 | int flag; | |
1317 | rtems_status_code status; |
|
1317 | rtems_status_code status; | |
1318 |
|
1318 | |||
1319 | unsigned char sy_lfr_pas_filter_enabled; |
|
1319 | unsigned char sy_lfr_pas_filter_enabled; | |
1320 | unsigned char sy_lfr_pas_filter_modulus; |
|
1320 | unsigned char sy_lfr_pas_filter_modulus; | |
1321 | float sy_lfr_pas_filter_tbad; |
|
1321 | float sy_lfr_pas_filter_tbad; | |
1322 | unsigned char sy_lfr_pas_filter_offset; |
|
1322 | unsigned char sy_lfr_pas_filter_offset; | |
1323 | float sy_lfr_pas_filter_shift; |
|
1323 | float sy_lfr_pas_filter_shift; | |
1324 | float sy_lfr_sc_rw_delta_f; |
|
1324 | float sy_lfr_sc_rw_delta_f; | |
1325 | char *parPtr; |
|
1325 | char *parPtr; | |
1326 |
|
1326 | |||
1327 | flag = LFR_SUCCESSFUL; |
|
1327 | flag = LFR_SUCCESSFUL; | |
1328 | sy_lfr_pas_filter_tbad = INIT_FLOAT; |
|
1328 | sy_lfr_pas_filter_tbad = INIT_FLOAT; | |
1329 | sy_lfr_pas_filter_shift = INIT_FLOAT; |
|
1329 | sy_lfr_pas_filter_shift = INIT_FLOAT; | |
1330 | sy_lfr_sc_rw_delta_f = INIT_FLOAT; |
|
1330 | sy_lfr_sc_rw_delta_f = INIT_FLOAT; | |
1331 | parPtr = NULL; |
|
1331 | parPtr = NULL; | |
1332 |
|
1332 | |||
1333 | //*************** |
|
1333 | //*************** | |
1334 | // get parameters |
|
1334 | // get parameters | |
1335 | sy_lfr_pas_filter_enabled = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_ENABLED ] & BIT_PAS_FILTER_ENABLED; // [0000 0001] |
|
1335 | sy_lfr_pas_filter_enabled = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_ENABLED ] & BIT_PAS_FILTER_ENABLED; // [0000 0001] | |
1336 | sy_lfr_pas_filter_modulus = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_MODULUS ]; |
|
1336 | sy_lfr_pas_filter_modulus = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_MODULUS ]; | |
1337 | copyFloatByChar( |
|
1337 | copyFloatByChar( | |
1338 | (unsigned char*) &sy_lfr_pas_filter_tbad, |
|
1338 | (unsigned char*) &sy_lfr_pas_filter_tbad, | |
1339 | (unsigned char*) &TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_TBAD ] |
|
1339 | (unsigned char*) &TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_TBAD ] | |
1340 | ); |
|
1340 | ); | |
1341 | sy_lfr_pas_filter_offset = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_OFFSET ]; |
|
1341 | sy_lfr_pas_filter_offset = TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_OFFSET ]; | |
1342 | copyFloatByChar( |
|
1342 | copyFloatByChar( | |
1343 | (unsigned char*) &sy_lfr_pas_filter_shift, |
|
1343 | (unsigned char*) &sy_lfr_pas_filter_shift, | |
1344 | (unsigned char*) &TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_SHIFT ] |
|
1344 | (unsigned char*) &TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_PAS_FILTER_SHIFT ] | |
1345 | ); |
|
1345 | ); | |
1346 | copyFloatByChar( |
|
1346 | copyFloatByChar( | |
1347 | (unsigned char*) &sy_lfr_sc_rw_delta_f, |
|
1347 | (unsigned char*) &sy_lfr_sc_rw_delta_f, | |
1348 | (unsigned char*) &TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_SC_RW_DELTA_F ] |
|
1348 | (unsigned char*) &TC->dataAndCRC[ DATAFIELD_POS_SY_LFR_SC_RW_DELTA_F ] | |
1349 | ); |
|
1349 | ); | |
1350 |
|
1350 | |||
1351 | //****************** |
|
1351 | //****************** | |
1352 | // CHECK CONSISTENCY |
|
1352 | // CHECK CONSISTENCY | |
1353 |
|
1353 | |||
1354 | //************************** |
|
1354 | //************************** | |
1355 | // sy_lfr_pas_filter_enabled |
|
1355 | // sy_lfr_pas_filter_enabled | |
1356 | // nothing to check, value is 0 or 1 |
|
1356 | // nothing to check, value is 0 or 1 | |
1357 |
|
1357 | |||
1358 | //************************** |
|
1358 | //************************** | |
1359 | // sy_lfr_pas_filter_modulus |
|
1359 | // sy_lfr_pas_filter_modulus | |
1360 | if ( (sy_lfr_pas_filter_modulus < MIN_PAS_FILTER_MODULUS) || (sy_lfr_pas_filter_modulus > MAX_PAS_FILTER_MODULUS) ) |
|
1360 | if ( (sy_lfr_pas_filter_modulus < MIN_PAS_FILTER_MODULUS) || (sy_lfr_pas_filter_modulus > MAX_PAS_FILTER_MODULUS) ) | |
1361 | { |
|
1361 | { | |
1362 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_PAS_FILTER_MODULUS + DATAFIELD_OFFSET, sy_lfr_pas_filter_modulus ); |
|
1362 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_PAS_FILTER_MODULUS + DATAFIELD_OFFSET, sy_lfr_pas_filter_modulus ); | |
1363 | flag = WRONG_APP_DATA; |
|
1363 | flag = WRONG_APP_DATA; | |
1364 | } |
|
1364 | } | |
1365 |
|
1365 | |||
1366 | //*********************** |
|
1366 | //*********************** | |
1367 | // sy_lfr_pas_filter_tbad |
|
1367 | // sy_lfr_pas_filter_tbad | |
1368 | if ( (sy_lfr_pas_filter_tbad < MIN_PAS_FILTER_TBAD) || (sy_lfr_pas_filter_tbad > MAX_PAS_FILTER_TBAD) ) |
|
1368 | if ( (sy_lfr_pas_filter_tbad < MIN_PAS_FILTER_TBAD) || (sy_lfr_pas_filter_tbad > MAX_PAS_FILTER_TBAD) ) | |
1369 | { |
|
1369 | { | |
1370 | parPtr = (char*) &sy_lfr_pas_filter_tbad; |
|
1370 | parPtr = (char*) &sy_lfr_pas_filter_tbad; | |
1371 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_PAS_FILTER_TBAD + DATAFIELD_OFFSET, parPtr[FLOAT_LSBYTE] ); |
|
1371 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_PAS_FILTER_TBAD + DATAFIELD_OFFSET, parPtr[FLOAT_LSBYTE] ); | |
1372 | flag = WRONG_APP_DATA; |
|
1372 | flag = WRONG_APP_DATA; | |
1373 | } |
|
1373 | } | |
1374 |
|
1374 | |||
1375 | //************************* |
|
1375 | //************************* | |
1376 | // sy_lfr_pas_filter_offset |
|
1376 | // sy_lfr_pas_filter_offset | |
1377 | if (flag == LFR_SUCCESSFUL) |
|
1377 | if (flag == LFR_SUCCESSFUL) | |
1378 | { |
|
1378 | { | |
1379 | if ( (sy_lfr_pas_filter_offset < MIN_PAS_FILTER_OFFSET) || (sy_lfr_pas_filter_offset > MAX_PAS_FILTER_OFFSET) ) |
|
1379 | if ( (sy_lfr_pas_filter_offset < MIN_PAS_FILTER_OFFSET) || (sy_lfr_pas_filter_offset > MAX_PAS_FILTER_OFFSET) ) | |
1380 | { |
|
1380 | { | |
1381 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_PAS_FILTER_OFFSET + DATAFIELD_OFFSET, sy_lfr_pas_filter_offset ); |
|
1381 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_PAS_FILTER_OFFSET + DATAFIELD_OFFSET, sy_lfr_pas_filter_offset ); | |
1382 | flag = WRONG_APP_DATA; |
|
1382 | flag = WRONG_APP_DATA; | |
1383 | } |
|
1383 | } | |
1384 | } |
|
1384 | } | |
1385 |
|
1385 | |||
1386 | //************************ |
|
1386 | //************************ | |
1387 | // sy_lfr_pas_filter_shift |
|
1387 | // sy_lfr_pas_filter_shift | |
1388 | if (flag == LFR_SUCCESSFUL) |
|
1388 | if (flag == LFR_SUCCESSFUL) | |
1389 | { |
|
1389 | { | |
1390 | if ( (sy_lfr_pas_filter_shift < MIN_PAS_FILTER_SHIFT) || (sy_lfr_pas_filter_shift > MAX_PAS_FILTER_SHIFT) ) |
|
1390 | if ( (sy_lfr_pas_filter_shift < MIN_PAS_FILTER_SHIFT) || (sy_lfr_pas_filter_shift > MAX_PAS_FILTER_SHIFT) ) | |
1391 | { |
|
1391 | { | |
1392 | parPtr = (char*) &sy_lfr_pas_filter_shift; |
|
1392 | parPtr = (char*) &sy_lfr_pas_filter_shift; | |
1393 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_PAS_FILTER_SHIFT + DATAFIELD_OFFSET, parPtr[FLOAT_LSBYTE] ); |
|
1393 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_PAS_FILTER_SHIFT + DATAFIELD_OFFSET, parPtr[FLOAT_LSBYTE] ); | |
1394 | flag = WRONG_APP_DATA; |
|
1394 | flag = WRONG_APP_DATA; | |
1395 | } |
|
1395 | } | |
1396 | } |
|
1396 | } | |
1397 |
|
1397 | |||
1398 | //************************************* |
|
1398 | //************************************* | |
1399 | // check global coherency of the values |
|
1399 | // check global coherency of the values | |
1400 | if (flag == LFR_SUCCESSFUL) |
|
1400 | if (flag == LFR_SUCCESSFUL) | |
1401 | { |
|
1401 | { | |
1402 | if ( (sy_lfr_pas_filter_tbad + sy_lfr_pas_filter_offset + sy_lfr_pas_filter_shift) > sy_lfr_pas_filter_modulus ) |
|
1402 | if ( (sy_lfr_pas_filter_tbad + sy_lfr_pas_filter_offset + sy_lfr_pas_filter_shift) > sy_lfr_pas_filter_modulus ) | |
1403 | { |
|
1403 | { | |
1404 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_PAS_FILTER_MODULUS + DATAFIELD_OFFSET, sy_lfr_pas_filter_modulus ); |
|
1404 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_PAS_FILTER_MODULUS + DATAFIELD_OFFSET, sy_lfr_pas_filter_modulus ); | |
1405 | flag = WRONG_APP_DATA; |
|
1405 | flag = WRONG_APP_DATA; | |
1406 | } |
|
1406 | } | |
1407 | } |
|
1407 | } | |
1408 |
|
1408 | |||
1409 | //********************* |
|
1409 | //********************* | |
1410 | // sy_lfr_sc_rw_delta_f |
|
1410 | // sy_lfr_sc_rw_delta_f | |
1411 | // nothing to check, no default value in the ICD |
|
1411 | // nothing to check, no default value in the ICD | |
1412 |
|
1412 | |||
1413 | return flag; |
|
1413 | return flag; | |
1414 | } |
|
1414 | } | |
1415 |
|
1415 | |||
1416 | //************** |
|
1416 | //************** | |
1417 | // KCOEFFICIENTS |
|
1417 | // KCOEFFICIENTS | |
1418 | int set_sy_lfr_kcoeff( ccsdsTelecommandPacket_t *TC,rtems_id queue_id ) |
|
1418 | int set_sy_lfr_kcoeff( ccsdsTelecommandPacket_t *TC,rtems_id queue_id ) | |
1419 | { |
|
1419 | { | |
1420 | unsigned int kcoeff; |
|
1420 | unsigned int kcoeff; | |
1421 | unsigned short sy_lfr_kcoeff_frequency; |
|
1421 | unsigned short sy_lfr_kcoeff_frequency; | |
1422 | unsigned short bin; |
|
1422 | unsigned short bin; | |
1423 | unsigned short *freqPtr; |
|
1423 | unsigned short *freqPtr; | |
1424 | float *kcoeffPtr_norm; |
|
1424 | float *kcoeffPtr_norm; | |
1425 | float *kcoeffPtr_sbm; |
|
1425 | float *kcoeffPtr_sbm; | |
1426 | int status; |
|
1426 | int status; | |
1427 | unsigned char *kcoeffLoadPtr; |
|
1427 | unsigned char *kcoeffLoadPtr; | |
1428 | unsigned char *kcoeffNormPtr; |
|
1428 | unsigned char *kcoeffNormPtr; | |
1429 | unsigned char *kcoeffSbmPtr_a; |
|
1429 | unsigned char *kcoeffSbmPtr_a; | |
1430 | unsigned char *kcoeffSbmPtr_b; |
|
1430 | unsigned char *kcoeffSbmPtr_b; | |
1431 |
|
1431 | |||
1432 | status = LFR_SUCCESSFUL; |
|
1432 | status = LFR_SUCCESSFUL; | |
1433 |
|
1433 | |||
1434 | kcoeffPtr_norm = NULL; |
|
1434 | kcoeffPtr_norm = NULL; | |
1435 | kcoeffPtr_sbm = NULL; |
|
1435 | kcoeffPtr_sbm = NULL; | |
1436 | bin = 0; |
|
1436 | bin = 0; | |
1437 |
|
1437 | |||
1438 | freqPtr = (unsigned short *) &TC->dataAndCRC[DATAFIELD_POS_SY_LFR_KCOEFF_FREQUENCY]; |
|
1438 | freqPtr = (unsigned short *) &TC->dataAndCRC[DATAFIELD_POS_SY_LFR_KCOEFF_FREQUENCY]; | |
1439 | sy_lfr_kcoeff_frequency = *freqPtr; |
|
1439 | sy_lfr_kcoeff_frequency = *freqPtr; | |
1440 |
|
1440 | |||
1441 | if ( sy_lfr_kcoeff_frequency >= NB_BINS_COMPRESSED_SM ) |
|
1441 | if ( sy_lfr_kcoeff_frequency >= NB_BINS_COMPRESSED_SM ) | |
1442 | { |
|
1442 | { | |
1443 | PRINTF1("ERR *** in set_sy_lfr_kcoeff_frequency *** sy_lfr_kcoeff_frequency = %d\n", sy_lfr_kcoeff_frequency) |
|
1443 | PRINTF1("ERR *** in set_sy_lfr_kcoeff_frequency *** sy_lfr_kcoeff_frequency = %d\n", sy_lfr_kcoeff_frequency) | |
1444 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_KCOEFF_FREQUENCY + DATAFIELD_OFFSET + 1, |
|
1444 | status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, DATAFIELD_POS_SY_LFR_KCOEFF_FREQUENCY + DATAFIELD_OFFSET + 1, | |
1445 | TC->dataAndCRC[DATAFIELD_POS_SY_LFR_KCOEFF_FREQUENCY + 1] ); // +1 to get the LSB instead of the MSB |
|
1445 | TC->dataAndCRC[DATAFIELD_POS_SY_LFR_KCOEFF_FREQUENCY + 1] ); // +1 to get the LSB instead of the MSB | |
1446 | status = LFR_DEFAULT; |
|
1446 | status = LFR_DEFAULT; | |
1447 | } |
|
1447 | } | |
1448 | else |
|
1448 | else | |
1449 | { |
|
1449 | { | |
1450 | if ( ( sy_lfr_kcoeff_frequency >= 0 ) |
|
1450 | if ( ( sy_lfr_kcoeff_frequency >= 0 ) | |
1451 | && ( sy_lfr_kcoeff_frequency < NB_BINS_COMPRESSED_SM_F0 ) ) |
|
1451 | && ( sy_lfr_kcoeff_frequency < NB_BINS_COMPRESSED_SM_F0 ) ) | |
1452 | { |
|
1452 | { | |
1453 | kcoeffPtr_norm = k_coeff_intercalib_f0_norm; |
|
1453 | kcoeffPtr_norm = k_coeff_intercalib_f0_norm; | |
1454 | kcoeffPtr_sbm = k_coeff_intercalib_f0_sbm; |
|
1454 | kcoeffPtr_sbm = k_coeff_intercalib_f0_sbm; | |
1455 | bin = sy_lfr_kcoeff_frequency; |
|
1455 | bin = sy_lfr_kcoeff_frequency; | |
1456 | } |
|
1456 | } | |
1457 | else if ( ( sy_lfr_kcoeff_frequency >= NB_BINS_COMPRESSED_SM_F0 ) |
|
1457 | else if ( ( sy_lfr_kcoeff_frequency >= NB_BINS_COMPRESSED_SM_F0 ) | |
1458 | && ( sy_lfr_kcoeff_frequency < (NB_BINS_COMPRESSED_SM_F0 + NB_BINS_COMPRESSED_SM_F1) ) ) |
|
1458 | && ( sy_lfr_kcoeff_frequency < (NB_BINS_COMPRESSED_SM_F0 + NB_BINS_COMPRESSED_SM_F1) ) ) | |
1459 | { |
|
1459 | { | |
1460 | kcoeffPtr_norm = k_coeff_intercalib_f1_norm; |
|
1460 | kcoeffPtr_norm = k_coeff_intercalib_f1_norm; | |
1461 | kcoeffPtr_sbm = k_coeff_intercalib_f1_sbm; |
|
1461 | kcoeffPtr_sbm = k_coeff_intercalib_f1_sbm; | |
1462 | bin = sy_lfr_kcoeff_frequency - NB_BINS_COMPRESSED_SM_F0; |
|
1462 | bin = sy_lfr_kcoeff_frequency - NB_BINS_COMPRESSED_SM_F0; | |
1463 | } |
|
1463 | } | |
1464 | else if ( ( sy_lfr_kcoeff_frequency >= (NB_BINS_COMPRESSED_SM_F0 + NB_BINS_COMPRESSED_SM_F1) ) |
|
1464 | else if ( ( sy_lfr_kcoeff_frequency >= (NB_BINS_COMPRESSED_SM_F0 + NB_BINS_COMPRESSED_SM_F1) ) | |
1465 | && ( sy_lfr_kcoeff_frequency < (NB_BINS_COMPRESSED_SM_F0 + NB_BINS_COMPRESSED_SM_F1 + NB_BINS_COMPRESSED_SM_F2) ) ) |
|
1465 | && ( sy_lfr_kcoeff_frequency < (NB_BINS_COMPRESSED_SM_F0 + NB_BINS_COMPRESSED_SM_F1 + NB_BINS_COMPRESSED_SM_F2) ) ) | |
1466 | { |
|
1466 | { | |
1467 | kcoeffPtr_norm = k_coeff_intercalib_f2; |
|
1467 | kcoeffPtr_norm = k_coeff_intercalib_f2; | |
1468 | kcoeffPtr_sbm = NULL; |
|
1468 | kcoeffPtr_sbm = NULL; | |
1469 | bin = sy_lfr_kcoeff_frequency - (NB_BINS_COMPRESSED_SM_F0 + NB_BINS_COMPRESSED_SM_F1); |
|
1469 | bin = sy_lfr_kcoeff_frequency - (NB_BINS_COMPRESSED_SM_F0 + NB_BINS_COMPRESSED_SM_F1); | |
1470 | } |
|
1470 | } | |
1471 | } |
|
1471 | } | |
1472 |
|
1472 | |||
1473 | if (kcoeffPtr_norm != NULL ) // update K coefficient for NORMAL data products |
|
1473 | if (kcoeffPtr_norm != NULL ) // update K coefficient for NORMAL data products | |
1474 | { |
|
1474 | { | |
1475 | for (kcoeff=0; kcoeff<NB_K_COEFF_PER_BIN; kcoeff++) |
|
1475 | for (kcoeff=0; kcoeff<NB_K_COEFF_PER_BIN; kcoeff++) | |
1476 | { |
|
1476 | { | |
1477 | // destination |
|
1477 | // destination | |
1478 | kcoeffNormPtr = (unsigned char*) &kcoeffPtr_norm[ (bin * NB_K_COEFF_PER_BIN) + kcoeff ]; |
|
1478 | kcoeffNormPtr = (unsigned char*) &kcoeffPtr_norm[ (bin * NB_K_COEFF_PER_BIN) + kcoeff ]; | |
1479 | // source |
|
1479 | // source | |
1480 | kcoeffLoadPtr = (unsigned char*) &TC->dataAndCRC[DATAFIELD_POS_SY_LFR_KCOEFF_1 + (NB_BYTES_PER_FLOAT * kcoeff)]; |
|
1480 | kcoeffLoadPtr = (unsigned char*) &TC->dataAndCRC[DATAFIELD_POS_SY_LFR_KCOEFF_1 + (NB_BYTES_PER_FLOAT * kcoeff)]; | |
1481 | // copy source to destination |
|
1481 | // copy source to destination | |
1482 | copyFloatByChar( kcoeffNormPtr, kcoeffLoadPtr ); |
|
1482 | copyFloatByChar( kcoeffNormPtr, kcoeffLoadPtr ); | |
1483 | } |
|
1483 | } | |
1484 | } |
|
1484 | } | |
1485 |
|
1485 | |||
1486 | if (kcoeffPtr_sbm != NULL ) // update K coefficient for SBM data products |
|
1486 | if (kcoeffPtr_sbm != NULL ) // update K coefficient for SBM data products | |
1487 | { |
|
1487 | { | |
1488 | for (kcoeff=0; kcoeff<NB_K_COEFF_PER_BIN; kcoeff++) |
|
1488 | for (kcoeff=0; kcoeff<NB_K_COEFF_PER_BIN; kcoeff++) | |
1489 | { |
|
1489 | { | |
1490 | // destination |
|
1490 | // destination | |
1491 | kcoeffSbmPtr_a= (unsigned char*) &kcoeffPtr_sbm[ ( (bin * NB_K_COEFF_PER_BIN) + kcoeff) * SBM_COEFF_PER_NORM_COEFF ]; |
|
1491 | kcoeffSbmPtr_a= (unsigned char*) &kcoeffPtr_sbm[ ( (bin * NB_K_COEFF_PER_BIN) + kcoeff) * SBM_COEFF_PER_NORM_COEFF ]; | |
1492 | kcoeffSbmPtr_b= (unsigned char*) &kcoeffPtr_sbm[ (((bin * NB_K_COEFF_PER_BIN) + kcoeff) * SBM_KCOEFF_PER_NORM_KCOEFF) + 1 ]; |
|
1492 | kcoeffSbmPtr_b= (unsigned char*) &kcoeffPtr_sbm[ (((bin * NB_K_COEFF_PER_BIN) + kcoeff) * SBM_KCOEFF_PER_NORM_KCOEFF) + 1 ]; | |
1493 | // source |
|
1493 | // source | |
1494 | kcoeffLoadPtr = (unsigned char*) &TC->dataAndCRC[DATAFIELD_POS_SY_LFR_KCOEFF_1 + (NB_BYTES_PER_FLOAT * kcoeff)]; |
|
1494 | kcoeffLoadPtr = (unsigned char*) &TC->dataAndCRC[DATAFIELD_POS_SY_LFR_KCOEFF_1 + (NB_BYTES_PER_FLOAT * kcoeff)]; | |
1495 | // copy source to destination |
|
1495 | // copy source to destination | |
1496 | copyFloatByChar( kcoeffSbmPtr_a, kcoeffLoadPtr ); |
|
1496 | copyFloatByChar( kcoeffSbmPtr_a, kcoeffLoadPtr ); | |
1497 | copyFloatByChar( kcoeffSbmPtr_b, kcoeffLoadPtr ); |
|
1497 | copyFloatByChar( kcoeffSbmPtr_b, kcoeffLoadPtr ); | |
1498 | } |
|
1498 | } | |
1499 | } |
|
1499 | } | |
1500 |
|
1500 | |||
1501 | // print_k_coeff(); |
|
1501 | // print_k_coeff(); | |
1502 |
|
1502 | |||
1503 | return status; |
|
1503 | return status; | |
1504 | } |
|
1504 | } | |
1505 |
|
1505 | |||
1506 | void copyFloatByChar( unsigned char *destination, unsigned char *source ) |
|
1506 | void copyFloatByChar( unsigned char *destination, unsigned char *source ) | |
1507 | { |
|
1507 | { | |
1508 | destination[BYTE_0] = source[BYTE_0]; |
|
1508 | destination[BYTE_0] = source[BYTE_0]; | |
1509 | destination[BYTE_1] = source[BYTE_1]; |
|
1509 | destination[BYTE_1] = source[BYTE_1]; | |
1510 | destination[BYTE_2] = source[BYTE_2]; |
|
1510 | destination[BYTE_2] = source[BYTE_2]; | |
1511 | destination[BYTE_3] = source[BYTE_3]; |
|
1511 | destination[BYTE_3] = source[BYTE_3]; | |
1512 | } |
|
1512 | } | |
1513 |
|
1513 | |||
|
1514 | void copyInt32ByChar( unsigned char *destination, unsigned char *source ) | |||
|
1515 | { | |||
|
1516 | destination[BYTE_0] = source[BYTE_0]; | |||
|
1517 | destination[BYTE_1] = source[BYTE_1]; | |||
|
1518 | destination[BYTE_2] = source[BYTE_2]; | |||
|
1519 | destination[BYTE_3] = source[BYTE_3]; | |||
|
1520 | } | |||
|
1521 | ||||
1514 | void floatToChar( float value, unsigned char* ptr) |
|
1522 | void floatToChar( float value, unsigned char* ptr) | |
1515 | { |
|
1523 | { | |
1516 | unsigned char* valuePtr; |
|
1524 | unsigned char* valuePtr; | |
1517 |
|
1525 | |||
1518 | valuePtr = (unsigned char*) &value; |
|
1526 | valuePtr = (unsigned char*) &value; | |
1519 | ptr[BYTE_0] = valuePtr[BYTE_0]; |
|
1527 | ptr[BYTE_0] = valuePtr[BYTE_0]; | |
1520 | ptr[BYTE_1] = valuePtr[BYTE_1]; |
|
1528 | ptr[BYTE_1] = valuePtr[BYTE_1]; | |
1521 | ptr[BYTE_2] = valuePtr[BYTE_2]; |
|
1529 | ptr[BYTE_2] = valuePtr[BYTE_2]; | |
1522 | ptr[BYTE_3] = valuePtr[BYTE_3]; |
|
1530 | ptr[BYTE_3] = valuePtr[BYTE_3]; | |
1523 | } |
|
1531 | } | |
1524 |
|
1532 | |||
1525 | //********** |
|
1533 | //********** | |
1526 | // init dump |
|
1534 | // init dump | |
1527 |
|
1535 | |||
1528 | void init_parameter_dump( void ) |
|
1536 | void init_parameter_dump( void ) | |
1529 | { |
|
1537 | { | |
1530 | /** This function initialize the parameter_dump_packet global variable with default values. |
|
1538 | /** This function initialize the parameter_dump_packet global variable with default values. | |
1531 | * |
|
1539 | * | |
1532 | */ |
|
1540 | */ | |
1533 |
|
1541 | |||
1534 | unsigned int k; |
|
1542 | unsigned int k; | |
1535 |
|
1543 | |||
1536 | parameter_dump_packet.targetLogicalAddress = CCSDS_DESTINATION_ID; |
|
1544 | parameter_dump_packet.targetLogicalAddress = CCSDS_DESTINATION_ID; | |
1537 | parameter_dump_packet.protocolIdentifier = CCSDS_PROTOCOLE_ID; |
|
1545 | parameter_dump_packet.protocolIdentifier = CCSDS_PROTOCOLE_ID; | |
1538 | parameter_dump_packet.reserved = CCSDS_RESERVED; |
|
1546 | parameter_dump_packet.reserved = CCSDS_RESERVED; | |
1539 | parameter_dump_packet.userApplication = CCSDS_USER_APP; |
|
1547 | parameter_dump_packet.userApplication = CCSDS_USER_APP; | |
1540 | parameter_dump_packet.packetID[0] = (unsigned char) (APID_TM_PARAMETER_DUMP >> SHIFT_1_BYTE); |
|
1548 | parameter_dump_packet.packetID[0] = (unsigned char) (APID_TM_PARAMETER_DUMP >> SHIFT_1_BYTE); | |
1541 | parameter_dump_packet.packetID[1] = (unsigned char) APID_TM_PARAMETER_DUMP; |
|
1549 | parameter_dump_packet.packetID[1] = (unsigned char) APID_TM_PARAMETER_DUMP; | |
1542 | parameter_dump_packet.packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE; |
|
1550 | parameter_dump_packet.packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE; | |
1543 | parameter_dump_packet.packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT; |
|
1551 | parameter_dump_packet.packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT; | |
1544 | parameter_dump_packet.packetLength[0] = (unsigned char) (PACKET_LENGTH_PARAMETER_DUMP >> SHIFT_1_BYTE); |
|
1552 | parameter_dump_packet.packetLength[0] = (unsigned char) (PACKET_LENGTH_PARAMETER_DUMP >> SHIFT_1_BYTE); | |
1545 | parameter_dump_packet.packetLength[1] = (unsigned char) PACKET_LENGTH_PARAMETER_DUMP; |
|
1553 | parameter_dump_packet.packetLength[1] = (unsigned char) PACKET_LENGTH_PARAMETER_DUMP; | |
1546 | // DATA FIELD HEADER |
|
1554 | // DATA FIELD HEADER | |
1547 | parameter_dump_packet.spare1_pusVersion_spare2 = SPARE1_PUSVERSION_SPARE2; |
|
1555 | parameter_dump_packet.spare1_pusVersion_spare2 = SPARE1_PUSVERSION_SPARE2; | |
1548 | parameter_dump_packet.serviceType = TM_TYPE_PARAMETER_DUMP; |
|
1556 | parameter_dump_packet.serviceType = TM_TYPE_PARAMETER_DUMP; | |
1549 | parameter_dump_packet.serviceSubType = TM_SUBTYPE_PARAMETER_DUMP; |
|
1557 | parameter_dump_packet.serviceSubType = TM_SUBTYPE_PARAMETER_DUMP; | |
1550 | parameter_dump_packet.destinationID = TM_DESTINATION_ID_GROUND; |
|
1558 | parameter_dump_packet.destinationID = TM_DESTINATION_ID_GROUND; | |
1551 | parameter_dump_packet.time[BYTE_0] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_3_BYTES); |
|
1559 | parameter_dump_packet.time[BYTE_0] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_3_BYTES); | |
1552 | parameter_dump_packet.time[BYTE_1] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_2_BYTES); |
|
1560 | parameter_dump_packet.time[BYTE_1] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_2_BYTES); | |
1553 | parameter_dump_packet.time[BYTE_2] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_1_BYTE); |
|
1561 | parameter_dump_packet.time[BYTE_2] = (unsigned char) (time_management_regs->coarse_time >> SHIFT_1_BYTE); | |
1554 | parameter_dump_packet.time[BYTE_3] = (unsigned char) (time_management_regs->coarse_time); |
|
1562 | parameter_dump_packet.time[BYTE_3] = (unsigned char) (time_management_regs->coarse_time); | |
1555 | parameter_dump_packet.time[BYTE_4] = (unsigned char) (time_management_regs->fine_time >> SHIFT_1_BYTE); |
|
1563 | parameter_dump_packet.time[BYTE_4] = (unsigned char) (time_management_regs->fine_time >> SHIFT_1_BYTE); | |
1556 | parameter_dump_packet.time[BYTE_5] = (unsigned char) (time_management_regs->fine_time); |
|
1564 | parameter_dump_packet.time[BYTE_5] = (unsigned char) (time_management_regs->fine_time); | |
1557 | parameter_dump_packet.sid = SID_PARAMETER_DUMP; |
|
1565 | parameter_dump_packet.sid = SID_PARAMETER_DUMP; | |
1558 |
|
1566 | |||
1559 | //****************** |
|
1567 | //****************** | |
1560 | // COMMON PARAMETERS |
|
1568 | // COMMON PARAMETERS | |
1561 | parameter_dump_packet.sy_lfr_common_parameters_spare = DEFAULT_SY_LFR_COMMON0; |
|
1569 | parameter_dump_packet.sy_lfr_common_parameters_spare = DEFAULT_SY_LFR_COMMON0; | |
1562 | parameter_dump_packet.sy_lfr_common_parameters = DEFAULT_SY_LFR_COMMON1; |
|
1570 | parameter_dump_packet.sy_lfr_common_parameters = DEFAULT_SY_LFR_COMMON1; | |
1563 |
|
1571 | |||
1564 | //****************** |
|
1572 | //****************** | |
1565 | // NORMAL PARAMETERS |
|
1573 | // NORMAL PARAMETERS | |
1566 | parameter_dump_packet.sy_lfr_n_swf_l[0] = (unsigned char) (DFLT_SY_LFR_N_SWF_L >> SHIFT_1_BYTE); |
|
1574 | parameter_dump_packet.sy_lfr_n_swf_l[0] = (unsigned char) (DFLT_SY_LFR_N_SWF_L >> SHIFT_1_BYTE); | |
1567 | parameter_dump_packet.sy_lfr_n_swf_l[1] = (unsigned char) (DFLT_SY_LFR_N_SWF_L ); |
|
1575 | parameter_dump_packet.sy_lfr_n_swf_l[1] = (unsigned char) (DFLT_SY_LFR_N_SWF_L ); | |
1568 | parameter_dump_packet.sy_lfr_n_swf_p[0] = (unsigned char) (DFLT_SY_LFR_N_SWF_P >> SHIFT_1_BYTE); |
|
1576 | parameter_dump_packet.sy_lfr_n_swf_p[0] = (unsigned char) (DFLT_SY_LFR_N_SWF_P >> SHIFT_1_BYTE); | |
1569 | parameter_dump_packet.sy_lfr_n_swf_p[1] = (unsigned char) (DFLT_SY_LFR_N_SWF_P ); |
|
1577 | parameter_dump_packet.sy_lfr_n_swf_p[1] = (unsigned char) (DFLT_SY_LFR_N_SWF_P ); | |
1570 | parameter_dump_packet.sy_lfr_n_asm_p[0] = (unsigned char) (DFLT_SY_LFR_N_ASM_P >> SHIFT_1_BYTE); |
|
1578 | parameter_dump_packet.sy_lfr_n_asm_p[0] = (unsigned char) (DFLT_SY_LFR_N_ASM_P >> SHIFT_1_BYTE); | |
1571 | parameter_dump_packet.sy_lfr_n_asm_p[1] = (unsigned char) (DFLT_SY_LFR_N_ASM_P ); |
|
1579 | parameter_dump_packet.sy_lfr_n_asm_p[1] = (unsigned char) (DFLT_SY_LFR_N_ASM_P ); | |
1572 | parameter_dump_packet.sy_lfr_n_bp_p0 = (unsigned char) DFLT_SY_LFR_N_BP_P0; |
|
1580 | parameter_dump_packet.sy_lfr_n_bp_p0 = (unsigned char) DFLT_SY_LFR_N_BP_P0; | |
1573 | parameter_dump_packet.sy_lfr_n_bp_p1 = (unsigned char) DFLT_SY_LFR_N_BP_P1; |
|
1581 | parameter_dump_packet.sy_lfr_n_bp_p1 = (unsigned char) DFLT_SY_LFR_N_BP_P1; | |
1574 | parameter_dump_packet.sy_lfr_n_cwf_long_f3 = (unsigned char) DFLT_SY_LFR_N_CWF_LONG_F3; |
|
1582 | parameter_dump_packet.sy_lfr_n_cwf_long_f3 = (unsigned char) DFLT_SY_LFR_N_CWF_LONG_F3; | |
1575 |
|
1583 | |||
1576 | //***************** |
|
1584 | //***************** | |
1577 | // BURST PARAMETERS |
|
1585 | // BURST PARAMETERS | |
1578 | parameter_dump_packet.sy_lfr_b_bp_p0 = (unsigned char) DEFAULT_SY_LFR_B_BP_P0; |
|
1586 | parameter_dump_packet.sy_lfr_b_bp_p0 = (unsigned char) DEFAULT_SY_LFR_B_BP_P0; | |
1579 | parameter_dump_packet.sy_lfr_b_bp_p1 = (unsigned char) DEFAULT_SY_LFR_B_BP_P1; |
|
1587 | parameter_dump_packet.sy_lfr_b_bp_p1 = (unsigned char) DEFAULT_SY_LFR_B_BP_P1; | |
1580 |
|
1588 | |||
1581 | //**************** |
|
1589 | //**************** | |
1582 | // SBM1 PARAMETERS |
|
1590 | // SBM1 PARAMETERS | |
1583 | parameter_dump_packet.sy_lfr_s1_bp_p0 = (unsigned char) DEFAULT_SY_LFR_S1_BP_P0; // min value is 0.25 s for the period |
|
1591 | parameter_dump_packet.sy_lfr_s1_bp_p0 = (unsigned char) DEFAULT_SY_LFR_S1_BP_P0; // min value is 0.25 s for the period | |
1584 | parameter_dump_packet.sy_lfr_s1_bp_p1 = (unsigned char) DEFAULT_SY_LFR_S1_BP_P1; |
|
1592 | parameter_dump_packet.sy_lfr_s1_bp_p1 = (unsigned char) DEFAULT_SY_LFR_S1_BP_P1; | |
1585 |
|
1593 | |||
1586 | //**************** |
|
1594 | //**************** | |
1587 | // SBM2 PARAMETERS |
|
1595 | // SBM2 PARAMETERS | |
1588 | parameter_dump_packet.sy_lfr_s2_bp_p0 = (unsigned char) DEFAULT_SY_LFR_S2_BP_P0; |
|
1596 | parameter_dump_packet.sy_lfr_s2_bp_p0 = (unsigned char) DEFAULT_SY_LFR_S2_BP_P0; | |
1589 | parameter_dump_packet.sy_lfr_s2_bp_p1 = (unsigned char) DEFAULT_SY_LFR_S2_BP_P1; |
|
1597 | parameter_dump_packet.sy_lfr_s2_bp_p1 = (unsigned char) DEFAULT_SY_LFR_S2_BP_P1; | |
1590 |
|
1598 | |||
1591 | //************ |
|
1599 | //************ | |
1592 | // FBINS MASKS |
|
1600 | // FBINS MASKS | |
1593 | for (k=0; k < BYTES_PER_MASKS_SET; k++) |
|
1601 | for (k=0; k < BYTES_PER_MASKS_SET; k++) | |
1594 | { |
|
1602 | { | |
1595 | parameter_dump_packet.sy_lfr_fbins_f0_word1[k] = INT8_ALL_F; |
|
1603 | parameter_dump_packet.sy_lfr_fbins_f0_word1[k] = INT8_ALL_F; | |
1596 | } |
|
1604 | } | |
1597 |
|
1605 | |||
1598 | // PAS FILTER PARAMETERS |
|
1606 | // PAS FILTER PARAMETERS | |
1599 | parameter_dump_packet.pa_rpw_spare8_2 = INIT_CHAR; |
|
1607 | parameter_dump_packet.pa_rpw_spare8_2 = INIT_CHAR; | |
1600 | parameter_dump_packet.spare_sy_lfr_pas_filter_enabled = INIT_CHAR; |
|
1608 | parameter_dump_packet.spare_sy_lfr_pas_filter_enabled = INIT_CHAR; | |
1601 | parameter_dump_packet.sy_lfr_pas_filter_modulus = DEFAULT_SY_LFR_PAS_FILTER_MODULUS; |
|
1609 | parameter_dump_packet.sy_lfr_pas_filter_modulus = DEFAULT_SY_LFR_PAS_FILTER_MODULUS; | |
1602 | floatToChar( DEFAULT_SY_LFR_PAS_FILTER_TBAD, parameter_dump_packet.sy_lfr_pas_filter_tbad ); |
|
1610 | floatToChar( DEFAULT_SY_LFR_PAS_FILTER_TBAD, parameter_dump_packet.sy_lfr_pas_filter_tbad ); | |
1603 | parameter_dump_packet.sy_lfr_pas_filter_offset = DEFAULT_SY_LFR_PAS_FILTER_OFFSET; |
|
1611 | parameter_dump_packet.sy_lfr_pas_filter_offset = DEFAULT_SY_LFR_PAS_FILTER_OFFSET; | |
1604 | floatToChar( DEFAULT_SY_LFR_PAS_FILTER_SHIFT, parameter_dump_packet.sy_lfr_pas_filter_shift ); |
|
1612 | floatToChar( DEFAULT_SY_LFR_PAS_FILTER_SHIFT, parameter_dump_packet.sy_lfr_pas_filter_shift ); | |
1605 | floatToChar( DEFAULT_SY_LFR_SC_RW_DELTA_F, parameter_dump_packet.sy_lfr_sc_rw_delta_f ); |
|
1613 | floatToChar( DEFAULT_SY_LFR_SC_RW_DELTA_F, parameter_dump_packet.sy_lfr_sc_rw_delta_f ); | |
1606 |
|
1614 | |||
1607 | // RW1_K |
|
1615 | // RW1_K | |
1608 | floatToChar( DEFAULT_SY_LFR_RW_K1, parameter_dump_packet.sy_lfr_rw1_k1); |
|
1616 | floatToChar( DEFAULT_SY_LFR_RW_K1, parameter_dump_packet.sy_lfr_rw1_k1); | |
1609 | floatToChar( DEFAULT_SY_LFR_RW_K2, parameter_dump_packet.sy_lfr_rw1_k2); |
|
1617 | floatToChar( DEFAULT_SY_LFR_RW_K2, parameter_dump_packet.sy_lfr_rw1_k2); | |
1610 | floatToChar( DEFAULT_SY_LFR_RW_K3, parameter_dump_packet.sy_lfr_rw1_k3); |
|
1618 | floatToChar( DEFAULT_SY_LFR_RW_K3, parameter_dump_packet.sy_lfr_rw1_k3); | |
1611 | floatToChar( DEFAULT_SY_LFR_RW_K4, parameter_dump_packet.sy_lfr_rw1_k4); |
|
1619 | floatToChar( DEFAULT_SY_LFR_RW_K4, parameter_dump_packet.sy_lfr_rw1_k4); | |
1612 | // RW2_K |
|
1620 | // RW2_K | |
1613 | floatToChar( DEFAULT_SY_LFR_RW_K1, parameter_dump_packet.sy_lfr_rw2_k1); |
|
1621 | floatToChar( DEFAULT_SY_LFR_RW_K1, parameter_dump_packet.sy_lfr_rw2_k1); | |
1614 | floatToChar( DEFAULT_SY_LFR_RW_K2, parameter_dump_packet.sy_lfr_rw2_k2); |
|
1622 | floatToChar( DEFAULT_SY_LFR_RW_K2, parameter_dump_packet.sy_lfr_rw2_k2); | |
1615 | floatToChar( DEFAULT_SY_LFR_RW_K3, parameter_dump_packet.sy_lfr_rw2_k3); |
|
1623 | floatToChar( DEFAULT_SY_LFR_RW_K3, parameter_dump_packet.sy_lfr_rw2_k3); | |
1616 | floatToChar( DEFAULT_SY_LFR_RW_K4, parameter_dump_packet.sy_lfr_rw2_k4); |
|
1624 | floatToChar( DEFAULT_SY_LFR_RW_K4, parameter_dump_packet.sy_lfr_rw2_k4); | |
1617 | // RW3_K |
|
1625 | // RW3_K | |
1618 | floatToChar( DEFAULT_SY_LFR_RW_K1, parameter_dump_packet.sy_lfr_rw3_k1); |
|
1626 | floatToChar( DEFAULT_SY_LFR_RW_K1, parameter_dump_packet.sy_lfr_rw3_k1); | |
1619 | floatToChar( DEFAULT_SY_LFR_RW_K2, parameter_dump_packet.sy_lfr_rw3_k2); |
|
1627 | floatToChar( DEFAULT_SY_LFR_RW_K2, parameter_dump_packet.sy_lfr_rw3_k2); | |
1620 | floatToChar( DEFAULT_SY_LFR_RW_K3, parameter_dump_packet.sy_lfr_rw3_k3); |
|
1628 | floatToChar( DEFAULT_SY_LFR_RW_K3, parameter_dump_packet.sy_lfr_rw3_k3); | |
1621 | floatToChar( DEFAULT_SY_LFR_RW_K4, parameter_dump_packet.sy_lfr_rw3_k4); |
|
1629 | floatToChar( DEFAULT_SY_LFR_RW_K4, parameter_dump_packet.sy_lfr_rw3_k4); | |
1622 | // RW4_K |
|
1630 | // RW4_K | |
1623 | floatToChar( DEFAULT_SY_LFR_RW_K1, parameter_dump_packet.sy_lfr_rw4_k1); |
|
1631 | floatToChar( DEFAULT_SY_LFR_RW_K1, parameter_dump_packet.sy_lfr_rw4_k1); | |
1624 | floatToChar( DEFAULT_SY_LFR_RW_K2, parameter_dump_packet.sy_lfr_rw4_k2); |
|
1632 | floatToChar( DEFAULT_SY_LFR_RW_K2, parameter_dump_packet.sy_lfr_rw4_k2); | |
1625 | floatToChar( DEFAULT_SY_LFR_RW_K3, parameter_dump_packet.sy_lfr_rw4_k3); |
|
1633 | floatToChar( DEFAULT_SY_LFR_RW_K3, parameter_dump_packet.sy_lfr_rw4_k3); | |
1626 | floatToChar( DEFAULT_SY_LFR_RW_K4, parameter_dump_packet.sy_lfr_rw4_k4); |
|
1634 | floatToChar( DEFAULT_SY_LFR_RW_K4, parameter_dump_packet.sy_lfr_rw4_k4); | |
1627 |
|
1635 | |||
1628 | // LFR_RW_MASK |
|
1636 | // LFR_RW_MASK | |
1629 | for (k=0; k < BYTES_PER_MASKS_SET; k++) |
|
1637 | for (k=0; k < BYTES_PER_MASKS_SET; k++) | |
1630 | { |
|
1638 | { | |
1631 | parameter_dump_packet.sy_lfr_rw_mask_f0_word1[k] = INT8_ALL_F; |
|
1639 | parameter_dump_packet.sy_lfr_rw_mask_f0_word1[k] = INT8_ALL_F; | |
1632 | } |
|
1640 | } | |
1633 |
|
1641 | |||
1634 | // once the reaction wheels masks have been initialized, they have to be merged with the fbins masks |
|
1642 | // once the reaction wheels masks have been initialized, they have to be merged with the fbins masks | |
1635 | merge_fbins_masks(); |
|
1643 | merge_fbins_masks(); | |
1636 | } |
|
1644 | } | |
1637 |
|
1645 | |||
1638 | void init_kcoefficients_dump( void ) |
|
1646 | void init_kcoefficients_dump( void ) | |
1639 | { |
|
1647 | { | |
1640 | init_kcoefficients_dump_packet( &kcoefficients_dump_1, PKTNR_1, KCOEFF_BLK_NR_PKT1 ); |
|
1648 | init_kcoefficients_dump_packet( &kcoefficients_dump_1, PKTNR_1, KCOEFF_BLK_NR_PKT1 ); | |
1641 | init_kcoefficients_dump_packet( &kcoefficients_dump_2, PKTNR_2, KCOEFF_BLK_NR_PKT2 ); |
|
1649 | init_kcoefficients_dump_packet( &kcoefficients_dump_2, PKTNR_2, KCOEFF_BLK_NR_PKT2 ); | |
1642 |
|
1650 | |||
1643 | kcoefficient_node_1.previous = NULL; |
|
1651 | kcoefficient_node_1.previous = NULL; | |
1644 | kcoefficient_node_1.next = NULL; |
|
1652 | kcoefficient_node_1.next = NULL; | |
1645 | kcoefficient_node_1.sid = TM_CODE_K_DUMP; |
|
1653 | kcoefficient_node_1.sid = TM_CODE_K_DUMP; | |
1646 | kcoefficient_node_1.coarseTime = INIT_CHAR; |
|
1654 | kcoefficient_node_1.coarseTime = INIT_CHAR; | |
1647 | kcoefficient_node_1.fineTime = INIT_CHAR; |
|
1655 | kcoefficient_node_1.fineTime = INIT_CHAR; | |
1648 | kcoefficient_node_1.buffer_address = (int) &kcoefficients_dump_1; |
|
1656 | kcoefficient_node_1.buffer_address = (int) &kcoefficients_dump_1; | |
1649 | kcoefficient_node_1.status = INIT_CHAR; |
|
1657 | kcoefficient_node_1.status = INIT_CHAR; | |
1650 |
|
1658 | |||
1651 | kcoefficient_node_2.previous = NULL; |
|
1659 | kcoefficient_node_2.previous = NULL; | |
1652 | kcoefficient_node_2.next = NULL; |
|
1660 | kcoefficient_node_2.next = NULL; | |
1653 | kcoefficient_node_2.sid = TM_CODE_K_DUMP; |
|
1661 | kcoefficient_node_2.sid = TM_CODE_K_DUMP; | |
1654 | kcoefficient_node_2.coarseTime = INIT_CHAR; |
|
1662 | kcoefficient_node_2.coarseTime = INIT_CHAR; | |
1655 | kcoefficient_node_2.fineTime = INIT_CHAR; |
|
1663 | kcoefficient_node_2.fineTime = INIT_CHAR; | |
1656 | kcoefficient_node_2.buffer_address = (int) &kcoefficients_dump_2; |
|
1664 | kcoefficient_node_2.buffer_address = (int) &kcoefficients_dump_2; | |
1657 | kcoefficient_node_2.status = INIT_CHAR; |
|
1665 | kcoefficient_node_2.status = INIT_CHAR; | |
1658 | } |
|
1666 | } | |
1659 |
|
1667 | |||
1660 | void init_kcoefficients_dump_packet( Packet_TM_LFR_KCOEFFICIENTS_DUMP_t *kcoefficients_dump, unsigned char pkt_nr, unsigned char blk_nr ) |
|
1668 | void init_kcoefficients_dump_packet( Packet_TM_LFR_KCOEFFICIENTS_DUMP_t *kcoefficients_dump, unsigned char pkt_nr, unsigned char blk_nr ) | |
1661 | { |
|
1669 | { | |
1662 | unsigned int k; |
|
1670 | unsigned int k; | |
1663 | unsigned int packetLength; |
|
1671 | unsigned int packetLength; | |
1664 |
|
1672 | |||
1665 | packetLength = |
|
1673 | packetLength = | |
1666 | ((blk_nr * KCOEFF_BLK_SIZE) + BYTE_POS_KCOEFFICIENTS_PARAMETES) - CCSDS_TC_TM_PACKET_OFFSET; // 4 bytes for the CCSDS header |
|
1674 | ((blk_nr * KCOEFF_BLK_SIZE) + BYTE_POS_KCOEFFICIENTS_PARAMETES) - CCSDS_TC_TM_PACKET_OFFSET; // 4 bytes for the CCSDS header | |
1667 |
|
1675 | |||
1668 | kcoefficients_dump->targetLogicalAddress = CCSDS_DESTINATION_ID; |
|
1676 | kcoefficients_dump->targetLogicalAddress = CCSDS_DESTINATION_ID; | |
1669 | kcoefficients_dump->protocolIdentifier = CCSDS_PROTOCOLE_ID; |
|
1677 | kcoefficients_dump->protocolIdentifier = CCSDS_PROTOCOLE_ID; | |
1670 | kcoefficients_dump->reserved = CCSDS_RESERVED; |
|
1678 | kcoefficients_dump->reserved = CCSDS_RESERVED; | |
1671 | kcoefficients_dump->userApplication = CCSDS_USER_APP; |
|
1679 | kcoefficients_dump->userApplication = CCSDS_USER_APP; | |
1672 | kcoefficients_dump->packetID[0] = (unsigned char) (APID_TM_PARAMETER_DUMP >> SHIFT_1_BYTE); |
|
1680 | kcoefficients_dump->packetID[0] = (unsigned char) (APID_TM_PARAMETER_DUMP >> SHIFT_1_BYTE); | |
1673 | kcoefficients_dump->packetID[1] = (unsigned char) APID_TM_PARAMETER_DUMP; |
|
1681 | kcoefficients_dump->packetID[1] = (unsigned char) APID_TM_PARAMETER_DUMP; | |
1674 | kcoefficients_dump->packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE; |
|
1682 | kcoefficients_dump->packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE; | |
1675 | kcoefficients_dump->packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT; |
|
1683 | kcoefficients_dump->packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT; | |
1676 | kcoefficients_dump->packetLength[0] = (unsigned char) (packetLength >> SHIFT_1_BYTE); |
|
1684 | kcoefficients_dump->packetLength[0] = (unsigned char) (packetLength >> SHIFT_1_BYTE); | |
1677 | kcoefficients_dump->packetLength[1] = (unsigned char) packetLength; |
|
1685 | kcoefficients_dump->packetLength[1] = (unsigned char) packetLength; | |
1678 | // DATA FIELD HEADER |
|
1686 | // DATA FIELD HEADER | |
1679 | kcoefficients_dump->spare1_pusVersion_spare2 = SPARE1_PUSVERSION_SPARE2; |
|
1687 | kcoefficients_dump->spare1_pusVersion_spare2 = SPARE1_PUSVERSION_SPARE2; | |
1680 | kcoefficients_dump->serviceType = TM_TYPE_K_DUMP; |
|
1688 | kcoefficients_dump->serviceType = TM_TYPE_K_DUMP; | |
1681 | kcoefficients_dump->serviceSubType = TM_SUBTYPE_K_DUMP; |
|
1689 | kcoefficients_dump->serviceSubType = TM_SUBTYPE_K_DUMP; | |
1682 | kcoefficients_dump->destinationID= TM_DESTINATION_ID_GROUND; |
|
1690 | kcoefficients_dump->destinationID= TM_DESTINATION_ID_GROUND; | |
1683 | kcoefficients_dump->time[BYTE_0] = INIT_CHAR; |
|
1691 | kcoefficients_dump->time[BYTE_0] = INIT_CHAR; | |
1684 | kcoefficients_dump->time[BYTE_1] = INIT_CHAR; |
|
1692 | kcoefficients_dump->time[BYTE_1] = INIT_CHAR; | |
1685 | kcoefficients_dump->time[BYTE_2] = INIT_CHAR; |
|
1693 | kcoefficients_dump->time[BYTE_2] = INIT_CHAR; | |
1686 | kcoefficients_dump->time[BYTE_3] = INIT_CHAR; |
|
1694 | kcoefficients_dump->time[BYTE_3] = INIT_CHAR; | |
1687 | kcoefficients_dump->time[BYTE_4] = INIT_CHAR; |
|
1695 | kcoefficients_dump->time[BYTE_4] = INIT_CHAR; | |
1688 | kcoefficients_dump->time[BYTE_5] = INIT_CHAR; |
|
1696 | kcoefficients_dump->time[BYTE_5] = INIT_CHAR; | |
1689 | kcoefficients_dump->sid = SID_K_DUMP; |
|
1697 | kcoefficients_dump->sid = SID_K_DUMP; | |
1690 |
|
1698 | |||
1691 | kcoefficients_dump->pkt_cnt = KCOEFF_PKTCNT; |
|
1699 | kcoefficients_dump->pkt_cnt = KCOEFF_PKTCNT; | |
1692 | kcoefficients_dump->pkt_nr = PKTNR_1; |
|
1700 | kcoefficients_dump->pkt_nr = PKTNR_1; | |
1693 | kcoefficients_dump->blk_nr = blk_nr; |
|
1701 | kcoefficients_dump->blk_nr = blk_nr; | |
1694 |
|
1702 | |||
1695 | //****************** |
|
1703 | //****************** | |
1696 | // SOURCE DATA repeated N times with N in [0 .. PA_LFR_KCOEFF_BLK_NR] |
|
1704 | // SOURCE DATA repeated N times with N in [0 .. PA_LFR_KCOEFF_BLK_NR] | |
1697 | // one blk is 2 + 4 * 32 = 130 bytes, 30 blks max in one packet (30 * 130 = 3900) |
|
1705 | // one blk is 2 + 4 * 32 = 130 bytes, 30 blks max in one packet (30 * 130 = 3900) | |
1698 | for (k=0; k<(KCOEFF_BLK_NR_PKT1 * KCOEFF_BLK_SIZE); k++) |
|
1706 | for (k=0; k<(KCOEFF_BLK_NR_PKT1 * KCOEFF_BLK_SIZE); k++) | |
1699 | { |
|
1707 | { | |
1700 | kcoefficients_dump->kcoeff_blks[k] = INIT_CHAR; |
|
1708 | kcoefficients_dump->kcoeff_blks[k] = INIT_CHAR; | |
1701 | } |
|
1709 | } | |
1702 | } |
|
1710 | } | |
1703 |
|
1711 | |||
1704 | void increment_seq_counter_destination_id_dump( unsigned char *packet_sequence_control, unsigned char destination_id ) |
|
1712 | void increment_seq_counter_destination_id_dump( unsigned char *packet_sequence_control, unsigned char destination_id ) | |
1705 | { |
|
1713 | { | |
1706 | /** This function increment the packet sequence control parameter of a TC, depending on its destination ID. |
|
1714 | /** This function increment the packet sequence control parameter of a TC, depending on its destination ID. | |
1707 | * |
|
1715 | * | |
1708 | * @param packet_sequence_control points to the packet sequence control which will be incremented |
|
1716 | * @param packet_sequence_control points to the packet sequence control which will be incremented | |
1709 | * @param destination_id is the destination ID of the TM, there is one counter by destination ID |
|
1717 | * @param destination_id is the destination ID of the TM, there is one counter by destination ID | |
1710 | * |
|
1718 | * | |
1711 | * If the destination ID is not known, a dedicated counter is incremented. |
|
1719 | * If the destination ID is not known, a dedicated counter is incremented. | |
1712 | * |
|
1720 | * | |
1713 | */ |
|
1721 | */ | |
1714 |
|
1722 | |||
1715 | unsigned short sequence_cnt; |
|
1723 | unsigned short sequence_cnt; | |
1716 | unsigned short segmentation_grouping_flag; |
|
1724 | unsigned short segmentation_grouping_flag; | |
1717 | unsigned short new_packet_sequence_control; |
|
1725 | unsigned short new_packet_sequence_control; | |
1718 | unsigned char i; |
|
1726 | unsigned char i; | |
1719 |
|
1727 | |||
1720 | switch (destination_id) |
|
1728 | switch (destination_id) | |
1721 | { |
|
1729 | { | |
1722 | case SID_TC_GROUND: |
|
1730 | case SID_TC_GROUND: | |
1723 | i = GROUND; |
|
1731 | i = GROUND; | |
1724 | break; |
|
1732 | break; | |
1725 | case SID_TC_MISSION_TIMELINE: |
|
1733 | case SID_TC_MISSION_TIMELINE: | |
1726 | i = MISSION_TIMELINE; |
|
1734 | i = MISSION_TIMELINE; | |
1727 | break; |
|
1735 | break; | |
1728 | case SID_TC_TC_SEQUENCES: |
|
1736 | case SID_TC_TC_SEQUENCES: | |
1729 | i = TC_SEQUENCES; |
|
1737 | i = TC_SEQUENCES; | |
1730 | break; |
|
1738 | break; | |
1731 | case SID_TC_RECOVERY_ACTION_CMD: |
|
1739 | case SID_TC_RECOVERY_ACTION_CMD: | |
1732 | i = RECOVERY_ACTION_CMD; |
|
1740 | i = RECOVERY_ACTION_CMD; | |
1733 | break; |
|
1741 | break; | |
1734 | case SID_TC_BACKUP_MISSION_TIMELINE: |
|
1742 | case SID_TC_BACKUP_MISSION_TIMELINE: | |
1735 | i = BACKUP_MISSION_TIMELINE; |
|
1743 | i = BACKUP_MISSION_TIMELINE; | |
1736 | break; |
|
1744 | break; | |
1737 | case SID_TC_DIRECT_CMD: |
|
1745 | case SID_TC_DIRECT_CMD: | |
1738 | i = DIRECT_CMD; |
|
1746 | i = DIRECT_CMD; | |
1739 | break; |
|
1747 | break; | |
1740 | case SID_TC_SPARE_GRD_SRC1: |
|
1748 | case SID_TC_SPARE_GRD_SRC1: | |
1741 | i = SPARE_GRD_SRC1; |
|
1749 | i = SPARE_GRD_SRC1; | |
1742 | break; |
|
1750 | break; | |
1743 | case SID_TC_SPARE_GRD_SRC2: |
|
1751 | case SID_TC_SPARE_GRD_SRC2: | |
1744 | i = SPARE_GRD_SRC2; |
|
1752 | i = SPARE_GRD_SRC2; | |
1745 | break; |
|
1753 | break; | |
1746 | case SID_TC_OBCP: |
|
1754 | case SID_TC_OBCP: | |
1747 | i = OBCP; |
|
1755 | i = OBCP; | |
1748 | break; |
|
1756 | break; | |
1749 | case SID_TC_SYSTEM_CONTROL: |
|
1757 | case SID_TC_SYSTEM_CONTROL: | |
1750 | i = SYSTEM_CONTROL; |
|
1758 | i = SYSTEM_CONTROL; | |
1751 | break; |
|
1759 | break; | |
1752 | case SID_TC_AOCS: |
|
1760 | case SID_TC_AOCS: | |
1753 | i = AOCS; |
|
1761 | i = AOCS; | |
1754 | break; |
|
1762 | break; | |
1755 | case SID_TC_RPW_INTERNAL: |
|
1763 | case SID_TC_RPW_INTERNAL: | |
1756 | i = RPW_INTERNAL; |
|
1764 | i = RPW_INTERNAL; | |
1757 | break; |
|
1765 | break; | |
1758 | default: |
|
1766 | default: | |
1759 | i = GROUND; |
|
1767 | i = GROUND; | |
1760 | break; |
|
1768 | break; | |
1761 | } |
|
1769 | } | |
1762 |
|
1770 | |||
1763 | segmentation_grouping_flag = TM_PACKET_SEQ_CTRL_STANDALONE << SHIFT_1_BYTE; |
|
1771 | segmentation_grouping_flag = TM_PACKET_SEQ_CTRL_STANDALONE << SHIFT_1_BYTE; | |
1764 | sequence_cnt = sequenceCounters_TM_DUMP[ i ] & SEQ_CNT_MASK; |
|
1772 | sequence_cnt = sequenceCounters_TM_DUMP[ i ] & SEQ_CNT_MASK; | |
1765 |
|
1773 | |||
1766 | new_packet_sequence_control = segmentation_grouping_flag | sequence_cnt ; |
|
1774 | new_packet_sequence_control = segmentation_grouping_flag | sequence_cnt ; | |
1767 |
|
1775 | |||
1768 | packet_sequence_control[0] = (unsigned char) (new_packet_sequence_control >> SHIFT_1_BYTE); |
|
1776 | packet_sequence_control[0] = (unsigned char) (new_packet_sequence_control >> SHIFT_1_BYTE); | |
1769 | packet_sequence_control[1] = (unsigned char) (new_packet_sequence_control ); |
|
1777 | packet_sequence_control[1] = (unsigned char) (new_packet_sequence_control ); | |
1770 |
|
1778 | |||
1771 | // increment the sequence counter |
|
1779 | // increment the sequence counter | |
1772 | if ( sequenceCounters_TM_DUMP[ i ] < SEQ_CNT_MAX ) |
|
1780 | if ( sequenceCounters_TM_DUMP[ i ] < SEQ_CNT_MAX ) | |
1773 | { |
|
1781 | { | |
1774 | sequenceCounters_TM_DUMP[ i ] = sequenceCounters_TM_DUMP[ i ] + 1; |
|
1782 | sequenceCounters_TM_DUMP[ i ] = sequenceCounters_TM_DUMP[ i ] + 1; | |
1775 | } |
|
1783 | } | |
1776 | else |
|
1784 | else | |
1777 | { |
|
1785 | { | |
1778 | sequenceCounters_TM_DUMP[ i ] = 0; |
|
1786 | sequenceCounters_TM_DUMP[ i ] = 0; | |
1779 | } |
|
1787 | } | |
1780 | } |
|
1788 | } |
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