##// END OF EJS Templates
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r97:6e0139d937f6 VHDLib206
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@@ -1,339 +1,339
1 <?xml version="1.0" encoding="UTF-8"?>
1 <?xml version="1.0" encoding="UTF-8"?>
2 <!DOCTYPE QtCreatorProject>
2 <!DOCTYPE QtCreatorProject>
3 <!-- Written by QtCreator 3.0.0, 2014-02-13T07:01:15. -->
3 <!-- Written by QtCreator 3.0.0, 2014-02-14T07:07:03. -->
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@@ -1,230 +1,230
1 #ifndef FSW_PARAMS_H_INCLUDED
1 #ifndef FSW_PARAMS_H_INCLUDED
2 #define FSW_PARAMS_H_INCLUDED
2 #define FSW_PARAMS_H_INCLUDED
3
3
4 #include "grlib_regs.h"
4 #include "grlib_regs.h"
5 #include "fsw_params_processing.h"
5 #include "fsw_params_processing.h"
6 #include "tm_byte_positions.h"
6 #include "tm_byte_positions.h"
7 #include "ccsds_types.h"
7 #include "ccsds_types.h"
8
8
9 #define GRSPW_DEVICE_NAME "/dev/grspw0"
9 #define GRSPW_DEVICE_NAME "/dev/grspw0"
10 #define UART_DEVICE_NAME "/dev/console"
10 #define UART_DEVICE_NAME "/dev/console"
11
11
12 typedef struct ring_node
12 typedef struct ring_node
13 {
13 {
14 struct ring_node *previous;
14 struct ring_node *previous;
15 int buffer_address;
15 int buffer_address;
16 struct ring_node *next;
16 struct ring_node *next;
17 unsigned int status;
17 unsigned int status;
18 } ring_node;
18 } ring_node;
19
19
20 typedef struct ring_node_sm
20 typedef struct ring_node_sm
21 {
21 {
22 struct ring_node *previous;
22 struct ring_node *previous;
23 volatile int *buffer_address;
23 volatile int *buffer_address;
24 struct ring_node *next;
24 struct ring_node *next;
25 unsigned int status;
25 unsigned int status;
26 } ring_node_sm;
26 } ring_node_sm;
27
27
28 //************************
28 //************************
29 // flight software version
29 // flight software version
30 // this parameters is handled by the Qt project options
30 // this parameters is handled by the Qt project options
31
31
32 //#define NB_SAMPLES_PER_SNAPSHOT 2048
32 //#define NB_SAMPLES_PER_SNAPSHOT 2048
33 #define NB_SAMPLES_PER_SNAPSHOT 2352 // 336 * 7 = 2352
33 #define NB_SAMPLES_PER_SNAPSHOT 2352 // 336 * 7 = 2352
34 #define TIME_OFFSET 2
34 #define TIME_OFFSET 2
35 #define TIME_OFFSET_IN_BYTES 8
35 #define TIME_OFFSET_IN_BYTES 8
36 #define WAVEFORM_EXTENDED_HEADER_OFFSET 22
36 #define WAVEFORM_EXTENDED_HEADER_OFFSET 22
37 #define NB_BYTES_SWF_BLK (2 * 6)
37 #define NB_BYTES_SWF_BLK (2 * 6)
38 #define NB_WORDS_SWF_BLK 3
38 #define NB_WORDS_SWF_BLK 3
39 #define NB_BYTES_CWF3_LIGHT_BLK 6
39 #define NB_BYTES_CWF3_LIGHT_BLK 6
40 #define WFRM_INDEX_OF_LAST_PACKET 6 // waveforms are transmitted in groups of 2048 blocks, 6 packets of 340 and 1 of 8
40 #define WFRM_INDEX_OF_LAST_PACKET 6 // waveforms are transmitted in groups of 2048 blocks, 6 packets of 340 and 1 of 8
41 #define NB_RING_NODES_F0 3 // AT LEAST 3
41 #define NB_RING_NODES_F0 3 // AT LEAST 3
42 #define NB_RING_NODES_F1 5 // AT LEAST 3
42 #define NB_RING_NODES_F1 5 // AT LEAST 3
43 #define NB_RING_NODES_F2 5 // AT LEAST 3
43 #define NB_RING_NODES_F2 5 // AT LEAST 3
44 #define NB_RING_NODES_ASM_F0 12 // AT LEAST 3
44 #define NB_RING_NODES_ASM_F0 12 // AT LEAST 3
45 #define NB_RING_NODES_ASM_F1 2 // AT LEAST 3
45 #define NB_RING_NODES_ASM_F1 2 // AT LEAST 3
46 #define NB_RING_NODES_ASM_F2 2 // AT LEAST 3
46 #define NB_RING_NODES_ASM_F2 2 // AT LEAST 3
47
47
48 //**********
48 //**********
49 // LFR MODES
49 // LFR MODES
50 #define LFR_MODE_STANDBY 0
50 #define LFR_MODE_STANDBY 0
51 #define LFR_MODE_NORMAL 1
51 #define LFR_MODE_NORMAL 1
52 #define LFR_MODE_BURST 2
52 #define LFR_MODE_BURST 2
53 #define LFR_MODE_SBM1 3
53 #define LFR_MODE_SBM1 3
54 #define LFR_MODE_SBM2 4
54 #define LFR_MODE_SBM2 4
55 #define LFR_MODE_NORMAL_CWF_F3 5
55 #define LFR_MODE_NORMAL_CWF_F3 5
56
56
57 #define RTEMS_EVENT_MODE_STANDBY RTEMS_EVENT_0
57 #define RTEMS_EVENT_MODE_STANDBY RTEMS_EVENT_0
58 #define RTEMS_EVENT_MODE_NORMAL RTEMS_EVENT_1
58 #define RTEMS_EVENT_MODE_NORMAL RTEMS_EVENT_1
59 #define RTEMS_EVENT_MODE_BURST RTEMS_EVENT_2
59 #define RTEMS_EVENT_MODE_BURST RTEMS_EVENT_2
60 #define RTEMS_EVENT_MODE_SBM1 RTEMS_EVENT_3
60 #define RTEMS_EVENT_MODE_SBM1 RTEMS_EVENT_3
61 #define RTEMS_EVENT_MODE_SBM2 RTEMS_EVENT_4
61 #define RTEMS_EVENT_MODE_SBM2 RTEMS_EVENT_4
62 #define RTEMS_EVENT_MODE_SBM2_WFRM RTEMS_EVENT_5
62 #define RTEMS_EVENT_MODE_SBM2_WFRM RTEMS_EVENT_5
63 #define RTEMS_EVENT_MODE_NORMAL_SWF_F0 RTEMS_EVENT_6
63 #define RTEMS_EVENT_MODE_NORMAL_SWF_F0 RTEMS_EVENT_6
64 #define RTEMS_EVENT_MODE_NORMAL_SWF_F1 RTEMS_EVENT_7
64 #define RTEMS_EVENT_MODE_NORMAL_SWF_F1 RTEMS_EVENT_7
65 #define RTEMS_EVENT_MODE_NORMAL_SWF_F2 RTEMS_EVENT_8
65 #define RTEMS_EVENT_MODE_NORMAL_SWF_F2 RTEMS_EVENT_8
66
66
67 //****************************
67 //****************************
68 // LFR DEFAULT MODE PARAMETERS
68 // LFR DEFAULT MODE PARAMETERS
69 // COMMON
69 // COMMON
70 #define DEFAULT_SY_LFR_COMMON0 0x00
70 #define DEFAULT_SY_LFR_COMMON0 0x00
71 #define DEFAULT_SY_LFR_COMMON1 0x10 // default value 0 0 0 1 0 0 0 0
71 #define DEFAULT_SY_LFR_COMMON1 0x10 // default value 0 0 0 1 0 0 0 0
72 // NORM
72 // NORM
73 #define SY_LFR_N_SWF_L 2048 // nb sample
73 #define SY_LFR_N_SWF_L 2048 // nb sample
74 #define SY_LFR_N_SWF_P 20 // sec
74 #define SY_LFR_N_SWF_P 300 // sec
75 #define SY_LFR_N_ASM_P 3600 // sec
75 #define SY_LFR_N_ASM_P 3600 // sec
76 #define SY_LFR_N_BP_P0 4 // sec
76 #define SY_LFR_N_BP_P0 4 // sec
77 #define SY_LFR_N_BP_P1 20 // sec
77 #define SY_LFR_N_BP_P1 20 // sec
78 #define MIN_DELTA_SNAPSHOT 16 // sec
78 #define MIN_DELTA_SNAPSHOT 16 // sec
79 // BURST
79 // BURST
80 #define DEFAULT_SY_LFR_B_BP_P0 1 // sec
80 #define DEFAULT_SY_LFR_B_BP_P0 1 // sec
81 #define DEFAULT_SY_LFR_B_BP_P1 5 // sec
81 #define DEFAULT_SY_LFR_B_BP_P1 5 // sec
82 // SBM1
82 // SBM1
83 #define DEFAULT_SY_LFR_S1_BP_P0 1 // sec
83 #define DEFAULT_SY_LFR_S1_BP_P0 1 // sec
84 #define DEFAULT_SY_LFR_S1_BP_P1 1 // sec
84 #define DEFAULT_SY_LFR_S1_BP_P1 1 // sec
85 // SBM2
85 // SBM2
86 #define DEFAULT_SY_LFR_S2_BP_P0 1 // sec
86 #define DEFAULT_SY_LFR_S2_BP_P0 1 // sec
87 #define DEFAULT_SY_LFR_S2_BP_P1 5 // sec
87 #define DEFAULT_SY_LFR_S2_BP_P1 5 // sec
88 // ADDITIONAL PARAMETERS
88 // ADDITIONAL PARAMETERS
89 #define TIME_BETWEEN_TWO_SWF_PACKETS 30 // nb x 10 ms => 300 ms
89 #define TIME_BETWEEN_TWO_SWF_PACKETS 30 // nb x 10 ms => 300 ms
90 #define TIME_BETWEEN_TWO_CWF3_PACKETS 1000 // nb x 10 ms => 10 s
90 #define TIME_BETWEEN_TWO_CWF3_PACKETS 1000 // nb x 10 ms => 10 s
91 // STATUS WORD
91 // STATUS WORD
92 #define DEFAULT_STATUS_WORD_BYTE0 0x0d // [0000] [1] [101] mode 4 bits / SPW enabled 1 bit / state is run 3 bits
92 #define DEFAULT_STATUS_WORD_BYTE0 0x0d // [0000] [1] [101] mode 4 bits / SPW enabled 1 bit / state is run 3 bits
93 #define DEFAULT_STATUS_WORD_BYTE1 0x00
93 #define DEFAULT_STATUS_WORD_BYTE1 0x00
94 //
94 //
95 #define SY_LFR_DPU_CONNECT_TIMEOUT 100 // 100 * 10 ms = 1 s
95 #define SY_LFR_DPU_CONNECT_TIMEOUT 100 // 100 * 10 ms = 1 s
96 #define SY_LFR_DPU_CONNECT_ATTEMPT 3
96 #define SY_LFR_DPU_CONNECT_ATTEMPT 3
97 //****************************
97 //****************************
98
98
99 //*****************************
99 //*****************************
100 // APB REGISTERS BASE ADDRESSES
100 // APB REGISTERS BASE ADDRESSES
101 #define REGS_ADDR_APBUART 0x80000100
101 #define REGS_ADDR_APBUART 0x80000100
102 #define REGS_ADDR_GPTIMER 0x80000300
102 #define REGS_ADDR_GPTIMER 0x80000300
103 #define REGS_ADDR_GRSPW 0x80000500
103 #define REGS_ADDR_GRSPW 0x80000500
104 #define REGS_ADDR_TIME_MANAGEMENT 0x80000600
104 #define REGS_ADDR_TIME_MANAGEMENT 0x80000600
105 #define REGS_ADDR_SPECTRAL_MATRIX 0x80000f00
105 #define REGS_ADDR_SPECTRAL_MATRIX 0x80000f00
106
106
107 #ifdef GSA
107 #ifdef GSA
108 #else
108 #else
109 #define REGS_ADDR_WAVEFORM_PICKER 0x80000f20
109 #define REGS_ADDR_WAVEFORM_PICKER 0x80000f20
110 #endif
110 #endif
111
111
112 #define APBUART_CTRL_REG_MASK_DB 0xfffff7ff
112 #define APBUART_CTRL_REG_MASK_DB 0xfffff7ff
113 #define APBUART_CTRL_REG_MASK_TE 0x00000002
113 #define APBUART_CTRL_REG_MASK_TE 0x00000002
114 #define APBUART_SCALER_RELOAD_VALUE 0x00000050 // 25 MHz => about 38400 (0x50)
114 #define APBUART_SCALER_RELOAD_VALUE 0x00000050 // 25 MHz => about 38400 (0x50)
115
115
116 //**********
116 //**********
117 // IRQ LINES
117 // IRQ LINES
118 #define IRQ_SM 9
118 #define IRQ_SM 9
119 #define IRQ_SPARC_SM 0x19 // see sparcv8.pdf p.76 for interrupt levels
119 #define IRQ_SPARC_SM 0x19 // see sparcv8.pdf p.76 for interrupt levels
120 #define IRQ_WF 10
120 #define IRQ_WF 10
121 #define IRQ_SPARC_WF 0x1a // see sparcv8.pdf p.76 for interrupt levels
121 #define IRQ_SPARC_WF 0x1a // see sparcv8.pdf p.76 for interrupt levels
122 #define IRQ_TIME1 12
122 #define IRQ_TIME1 12
123 #define IRQ_SPARC_TIME1 0x1c // see sparcv8.pdf p.76 for interrupt levels
123 #define IRQ_SPARC_TIME1 0x1c // see sparcv8.pdf p.76 for interrupt levels
124 #define IRQ_TIME2 13
124 #define IRQ_TIME2 13
125 #define IRQ_SPARC_TIME2 0x1d // see sparcv8.pdf p.76 for interrupt levels
125 #define IRQ_SPARC_TIME2 0x1d // see sparcv8.pdf p.76 for interrupt levels
126 #define IRQ_WAVEFORM_PICKER 14
126 #define IRQ_WAVEFORM_PICKER 14
127 #define IRQ_SPARC_WAVEFORM_PICKER 0x1e // see sparcv8.pdf p.76 for interrupt levels
127 #define IRQ_SPARC_WAVEFORM_PICKER 0x1e // see sparcv8.pdf p.76 for interrupt levels
128 #define IRQ_SPECTRAL_MATRIX 6
128 #define IRQ_SPECTRAL_MATRIX 6
129 #define IRQ_SPARC_SPECTRAL_MATRIX 0x16 // see sparcv8.pdf p.76 for interrupt levels
129 #define IRQ_SPARC_SPECTRAL_MATRIX 0x16 // see sparcv8.pdf p.76 for interrupt levels
130
130
131 //*****
131 //*****
132 // TIME
132 // TIME
133 #define CLKDIV_SM_SIMULATOR (10000 - 1) // 10 ms
133 #define CLKDIV_SM_SIMULATOR (10000 - 1) // 10 ms
134 #define CLKDIV_WF_SIMULATOR (10000000 - 1) // 10 000 000 * 1 us = 10 s
134 #define CLKDIV_WF_SIMULATOR (10000000 - 1) // 10 000 000 * 1 us = 10 s
135 #define TIMER_SM_SIMULATOR 1
135 #define TIMER_SM_SIMULATOR 1
136 #define TIMER_WF_SIMULATOR 2
136 #define TIMER_WF_SIMULATOR 2
137 #define HK_PERIOD 100 // 100 * 10ms => 1sec
137 #define HK_PERIOD 100 // 100 * 10ms => 1sec
138
138
139 //**********
139 //**********
140 // LPP CODES
140 // LPP CODES
141 #define LFR_SUCCESSFUL 0
141 #define LFR_SUCCESSFUL 0
142 #define LFR_DEFAULT 1
142 #define LFR_DEFAULT 1
143
143
144 //******
144 //******
145 // RTEMS
145 // RTEMS
146 #define TASKID_RECV 1
146 #define TASKID_RECV 1
147 #define TASKID_ACTN 2
147 #define TASKID_ACTN 2
148 #define TASKID_SPIQ 3
148 #define TASKID_SPIQ 3
149 #define TASKID_SMIQ 4
149 #define TASKID_SMIQ 4
150 #define TASKID_STAT 5
150 #define TASKID_STAT 5
151 #define TASKID_AVF0 6
151 #define TASKID_AVF0 6
152 #define TASKID_BPF0 7
152 #define TASKID_BPF0 7
153 #define TASKID_WFRM 8
153 #define TASKID_WFRM 8
154 #define TASKID_DUMB 9
154 #define TASKID_DUMB 9
155 #define TASKID_HOUS 10
155 #define TASKID_HOUS 10
156 #define TASKID_MATR 11
156 #define TASKID_MATR 11
157 #define TASKID_CWF3 12
157 #define TASKID_CWF3 12
158 #define TASKID_CWF2 13
158 #define TASKID_CWF2 13
159 #define TASKID_CWF1 14
159 #define TASKID_CWF1 14
160 #define TASKID_SEND 15
160 #define TASKID_SEND 15
161 #define TASKID_WTDG 16
161 #define TASKID_WTDG 16
162
162
163 #define TASK_PRIORITY_SPIQ 5
163 #define TASK_PRIORITY_SPIQ 5
164 #define TASK_PRIORITY_SMIQ 10
164 #define TASK_PRIORITY_SMIQ 10
165 #define TASK_PRIORITY_WTDG 20
165 #define TASK_PRIORITY_WTDG 20
166 #define TASK_PRIORITY_HOUS 30
166 #define TASK_PRIORITY_HOUS 30
167 #define TASK_PRIORITY_CWF1 35 // CWF1 and CWF2 are never running together
167 #define TASK_PRIORITY_CWF1 35 // CWF1 and CWF2 are never running together
168 #define TASK_PRIORITY_CWF2 35 //
168 #define TASK_PRIORITY_CWF2 35 //
169 #define TASK_PRIORITY_WFRM 40
169 #define TASK_PRIORITY_WFRM 40
170 #define TASK_PRIORITY_CWF3 40 // there is a printf in this function, be careful with its priority wrt CWF1
170 #define TASK_PRIORITY_CWF3 40 // there is a printf in this function, be careful with its priority wrt CWF1
171 #define TASK_PRIORITY_SEND 45
171 #define TASK_PRIORITY_SEND 45
172 #define TASK_PRIORITY_RECV 50
172 #define TASK_PRIORITY_RECV 50
173 #define TASK_PRIORITY_ACTN 50
173 #define TASK_PRIORITY_ACTN 50
174 #define TASK_PRIORITY_AVF0 60
174 #define TASK_PRIORITY_AVF0 60
175 #define TASK_PRIORITY_BPF0 60
175 #define TASK_PRIORITY_BPF0 60
176 #define TASK_PRIORITY_MATR 100
176 #define TASK_PRIORITY_MATR 100
177 #define TASK_PRIORITY_STAT 200
177 #define TASK_PRIORITY_STAT 200
178 #define TASK_PRIORITY_DUMB 200
178 #define TASK_PRIORITY_DUMB 200
179
179
180 #define ACTION_MSG_QUEUE_COUNT 10
180 #define ACTION_MSG_QUEUE_COUNT 10
181 #define ACTION_MSG_PKTS_COUNT 50
181 #define ACTION_MSG_PKTS_COUNT 50
182 #define ACTION_MSG_PKTS_MAX_SIZE (PACKET_LENGTH_HK + CCSDS_TC_TM_PACKET_OFFSET + CCSDS_PROTOCOLE_EXTRA_BYTES)
182 #define ACTION_MSG_PKTS_MAX_SIZE (PACKET_LENGTH_HK + CCSDS_TC_TM_PACKET_OFFSET + CCSDS_PROTOCOLE_EXTRA_BYTES)
183 #define ACTION_MSG_SPW_IOCTL_SEND_SIZE 24 // hlen *hdr dlen *data sent options
183 #define ACTION_MSG_SPW_IOCTL_SEND_SIZE 24 // hlen *hdr dlen *data sent options
184
184
185 #define QUEUE_RECV 0
185 #define QUEUE_RECV 0
186 #define QUEUE_SEND 1
186 #define QUEUE_SEND 1
187
187
188 //*******
188 //*******
189 // MACROS
189 // MACROS
190 #ifdef PRINT_MESSAGES_ON_CONSOLE
190 #ifdef PRINT_MESSAGES_ON_CONSOLE
191 #define PRINTF(x) printf(x);
191 #define PRINTF(x) printf(x);
192 #define PRINTF1(x,y) printf(x,y);
192 #define PRINTF1(x,y) printf(x,y);
193 #define PRINTF2(x,y,z) printf(x,y,z);
193 #define PRINTF2(x,y,z) printf(x,y,z);
194 #else
194 #else
195 #define PRINTF(x) ;
195 #define PRINTF(x) ;
196 #define PRINTF1(x,y) ;
196 #define PRINTF1(x,y) ;
197 #define PRINTF2(x,y,z) ;
197 #define PRINTF2(x,y,z) ;
198 #endif
198 #endif
199
199
200 #ifdef BOOT_MESSAGES
200 #ifdef BOOT_MESSAGES
201 #define BOOT_PRINTF(x) printf(x);
201 #define BOOT_PRINTF(x) printf(x);
202 #define BOOT_PRINTF1(x,y) printf(x,y);
202 #define BOOT_PRINTF1(x,y) printf(x,y);
203 #define BOOT_PRINTF2(x,y,z) printf(x,y,z);
203 #define BOOT_PRINTF2(x,y,z) printf(x,y,z);
204 #else
204 #else
205 #define BOOT_PRINTF(x) ;
205 #define BOOT_PRINTF(x) ;
206 #define BOOT_PRINTF1(x,y) ;
206 #define BOOT_PRINTF1(x,y) ;
207 #define BOOT_PRINTF2(x,y,z) ;
207 #define BOOT_PRINTF2(x,y,z) ;
208 #endif
208 #endif
209
209
210 #ifdef DEBUG_MESSAGES
210 #ifdef DEBUG_MESSAGES
211 #define DEBUG_PRINTF(x) printf(x);
211 #define DEBUG_PRINTF(x) printf(x);
212 #define DEBUG_PRINTF1(x,y) printf(x,y);
212 #define DEBUG_PRINTF1(x,y) printf(x,y);
213 #define DEBUG_PRINTF2(x,y,z) printf(x,y,z);
213 #define DEBUG_PRINTF2(x,y,z) printf(x,y,z);
214 #else
214 #else
215 #define DEBUG_PRINTF(x) ;
215 #define DEBUG_PRINTF(x) ;
216 #define DEBUG_PRINTF1(x,y) ;
216 #define DEBUG_PRINTF1(x,y) ;
217 #define DEBUG_PRINTF2(x,y,z) ;
217 #define DEBUG_PRINTF2(x,y,z) ;
218 #endif
218 #endif
219
219
220 #define CPU_USAGE_REPORT_PERIOD 6 // * 10 s = period
220 #define CPU_USAGE_REPORT_PERIOD 6 // * 10 s = period
221
221
222 struct param_local_str{
222 struct param_local_str{
223 unsigned int local_sbm1_nb_cwf_sent;
223 unsigned int local_sbm1_nb_cwf_sent;
224 unsigned int local_sbm1_nb_cwf_max;
224 unsigned int local_sbm1_nb_cwf_max;
225 unsigned int local_sbm2_nb_cwf_sent;
225 unsigned int local_sbm2_nb_cwf_sent;
226 unsigned int local_sbm2_nb_cwf_max;
226 unsigned int local_sbm2_nb_cwf_max;
227 unsigned int local_nb_interrupt_f0_MAX;
227 unsigned int local_nb_interrupt_f0_MAX;
228 };
228 };
229
229
230 #endif // FSW_PARAMS_H_INCLUDED
230 #endif // FSW_PARAMS_H_INCLUDED
@@ -1,92 +1,93
1 #ifndef WF_HANDLER_H_INCLUDED
1 #ifndef WF_HANDLER_H_INCLUDED
2 #define WF_HANDLER_H_INCLUDED
2 #define WF_HANDLER_H_INCLUDED
3
3
4 #include <rtems.h>
4 #include <rtems.h>
5 #include <grspw.h>
5 #include <grspw.h>
6 #include <stdio.h>
6 #include <stdio.h>
7 #include <math.h>
7 #include <math.h>
8
8
9 #include "fsw_params.h"
9 #include "fsw_params.h"
10 #include "fsw_spacewire.h"
10 #include "fsw_spacewire.h"
11 #include "fsw_misc.h"
11 #include "fsw_misc.h"
12
12
13 #define pi 3.1415
13 #define pi 3.1415
14
14
15 extern int fdSPW;
15 extern int fdSPW;
16
16
17 //*****************
17 //*****************
18 // waveform buffers
18 // waveform buffers
19 // F0
19 // F0
20 //extern volatile int wf_snap_f0[ ];
20 //extern volatile int wf_snap_f0[ ];
21 // F1 F2
21 // F1 F2
22 extern volatile int wf_snap_f0[ ][ (NB_SAMPLES_PER_SNAPSHOT * NB_WORDS_SWF_BLK) + TIME_OFFSET + 46 ];
22 extern volatile int wf_snap_f0[ ][ (NB_SAMPLES_PER_SNAPSHOT * NB_WORDS_SWF_BLK) + TIME_OFFSET + 46 ];
23 extern volatile int wf_snap_f1[ ][ (NB_SAMPLES_PER_SNAPSHOT * NB_WORDS_SWF_BLK) + TIME_OFFSET + 46 ];
23 extern volatile int wf_snap_f1[ ][ (NB_SAMPLES_PER_SNAPSHOT * NB_WORDS_SWF_BLK) + TIME_OFFSET + 46 ];
24 extern volatile int wf_snap_f2[ ][ (NB_SAMPLES_PER_SNAPSHOT * NB_WORDS_SWF_BLK) + TIME_OFFSET + 46 ];
24 extern volatile int wf_snap_f2[ ][ (NB_SAMPLES_PER_SNAPSHOT * NB_WORDS_SWF_BLK) + TIME_OFFSET + 46 ];
25 // F3
25 // F3
26 extern volatile int wf_cont_f3_a[ ];
26 extern volatile int wf_cont_f3_a[ ];
27 extern volatile int wf_cont_f3_b[ ];
27 extern volatile int wf_cont_f3_b[ ];
28 extern char wf_cont_f3_light[ ];
28 extern char wf_cont_f3_light[ ];
29
29
30 #ifdef VHDL_DEV
30 #ifdef VHDL_DEV
31 extern waveform_picker_regs_new_t *waveform_picker_regs;
31 extern waveform_picker_regs_new_t *waveform_picker_regs;
32 #else
32 #else
33 extern waveform_picker_regs_t *waveform_picker_regs;
33 extern waveform_picker_regs_t *waveform_picker_regs;
34 #endif
34 #endif
35 extern time_management_regs_t *time_management_regs;
35 extern time_management_regs_t *time_management_regs;
36 extern Packet_TM_LFR_HK_t housekeeping_packet;
36 extern Packet_TM_LFR_HK_t housekeeping_packet;
37 extern Packet_TM_LFR_PARAMETER_DUMP_t parameter_dump_packet;
37 extern Packet_TM_LFR_PARAMETER_DUMP_t parameter_dump_packet;
38 extern struct param_local_str param_local;
38 extern struct param_local_str param_local;
39
39
40 extern unsigned short sequenceCounters_SCIENCE_NORMAL_BURST;
40 extern unsigned short sequenceCounters_SCIENCE_NORMAL_BURST;
41 extern unsigned short sequenceCounters_SCIENCE_SBM1_SBM2;
41 extern unsigned short sequenceCounters_SCIENCE_SBM1_SBM2;
42
42
43 extern rtems_id Task_id[20]; /* array of task ids */
43 extern rtems_id Task_id[20]; /* array of task ids */
44
44
45 extern unsigned char lfrCurrentMode;
45 extern unsigned char lfrCurrentMode;
46
46
47 rtems_isr waveforms_isr( rtems_vector_number vector );
47 rtems_isr waveforms_isr( rtems_vector_number vector );
48 rtems_isr waveforms_isr_alt( rtems_vector_number vector );
48 rtems_isr waveforms_isr_alt( rtems_vector_number vector );
49 rtems_task wfrm_task( rtems_task_argument argument );
49 rtems_task wfrm_task( rtems_task_argument argument );
50 rtems_task cwf3_task( rtems_task_argument argument );
50 rtems_task cwf3_task( rtems_task_argument argument );
51 rtems_task cwf2_task( rtems_task_argument argument );
51 rtems_task cwf2_task( rtems_task_argument argument );
52 rtems_task cwf1_task( rtems_task_argument argument );
52 rtems_task cwf1_task( rtems_task_argument argument );
53
53
54 //******************
54 //******************
55 // general functions
55 // general functions
56 void init_waveforms( void );
56 void init_waveforms( void );
57 void init_waveform_rings( void );
57 void init_waveform_rings( void );
58 void reset_current_ring_nodes( void );
58 void reset_current_ring_nodes( void );
59 //
59 //
60 int init_header_snapshot_wf_table( unsigned int sid, Header_TM_LFR_SCIENCE_SWF_t *headerSWF );
60 int init_header_snapshot_wf_table( unsigned int sid, Header_TM_LFR_SCIENCE_SWF_t *headerSWF );
61 int init_header_continuous_wf_table( unsigned int sid, Header_TM_LFR_SCIENCE_CWF_t *headerCWF );
61 int init_header_continuous_wf_table( unsigned int sid, Header_TM_LFR_SCIENCE_CWF_t *headerCWF );
62 int init_header_continuous_cwf3_light_table( Header_TM_LFR_SCIENCE_CWF_t *headerCWF );
62 int init_header_continuous_cwf3_light_table( Header_TM_LFR_SCIENCE_CWF_t *headerCWF );
63 //
63 //
64 int send_waveform_SWF( volatile int *waveform, unsigned int sid, Header_TM_LFR_SCIENCE_SWF_t *headerSWF, rtems_id queue_id );
64 int send_waveform_SWF( volatile int *waveform, unsigned int sid, Header_TM_LFR_SCIENCE_SWF_t *headerSWF, rtems_id queue_id );
65 int send_waveform_CWF( volatile int *waveform, unsigned int sid, Header_TM_LFR_SCIENCE_CWF_t *headerCWF, rtems_id queue_id );
65 int send_waveform_CWF( volatile int *waveform, unsigned int sid, Header_TM_LFR_SCIENCE_CWF_t *headerCWF, rtems_id queue_id );
66 int send_waveform_CWF3( volatile int *waveform, unsigned int sid, Header_TM_LFR_SCIENCE_CWF_t *headerCWF, rtems_id queue_id );
66 int send_waveform_CWF3( volatile int *waveform, unsigned int sid, Header_TM_LFR_SCIENCE_CWF_t *headerCWF, rtems_id queue_id );
67 int send_waveform_CWF3_light( volatile int *waveform, Header_TM_LFR_SCIENCE_CWF_t *headerCWF, rtems_id queue_id );
67 int send_waveform_CWF3_light( volatile int *waveform, Header_TM_LFR_SCIENCE_CWF_t *headerCWF, rtems_id queue_id );
68 //
68 //
69 void compute_acquisition_time(unsigned int *coarseTime, unsigned int *fineTime, unsigned int sid, unsigned char pa_lfr_pkt_nr );
69 void compute_acquisition_time(unsigned int *coarseTime, unsigned int *fineTime, unsigned int sid, unsigned char pa_lfr_pkt_nr );
70 //
70 //
71 rtems_id get_pkts_queue_id( void );
71 rtems_id get_pkts_queue_id( void );
72
72
73 //**************
73 //**************
74 // wfp registers
74 // wfp registers
75 void set_wfp_data_shaping();
75 // RESET
76 char set_wfp_delta_snapshot();
76 void reset_wfp_burst_enable( void );
77 void reset_wfp_status(void);
78 void reset_waveform_picker_regs( void );
79 // SET
80 void set_wfp_data_shaping(void);
77 void set_wfp_burst_enable_register( unsigned char mode );
81 void set_wfp_burst_enable_register( unsigned char mode );
78 void reset_wfp_burst_enable();
82 void set_wfp_delta_snapshot( void );
79 void reset_wfp_status();
83 void set_wfp_delta_f0_f0_2( void );
80 void reset_waveform_picker_regs_vhdl_dev();
84 void set_wfp_delta_f1( void );
81 void reset_waveform_picker_regs_vhdl_dev_debug();
85 void set_wfp_delta_f2( void );
82 void reset_waveform_picker_regs_vhdl_dev_debug_64();
83 void reset_waveform_picker_regs();
84 void reset_new_waveform_picker_regs();
85
86
86 //*****************
87 //*****************
87 // local parameters
88 // local parameters
88 void set_local_nb_interrupt_f0_MAX( void );
89 void set_local_nb_interrupt_f0_MAX( void );
89
90
90 void increment_seq_counter_source_id( unsigned char *packet_sequence_control, unsigned int sid );
91 void increment_seq_counter_source_id( unsigned char *packet_sequence_control, unsigned int sid );
91
92
92 #endif // WF_HANDLER_H_INCLUDED
93 #endif // WF_HANDLER_H_INCLUDED
@@ -1,837 +1,837
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
14
15 //***********
15 //***********
16 // RTEMS TASK
16 // RTEMS TASK
17
17
18 rtems_task actn_task( rtems_task_argument unused )
18 rtems_task actn_task( rtems_task_argument unused )
19 {
19 {
20 /** This RTEMS task is responsible for launching actions upton the reception of valid TeleCommands.
20 /** This RTEMS task is responsible for launching actions upton the reception of valid TeleCommands.
21 *
21 *
22 * @param unused is the starting argument of the RTEMS task
22 * @param unused is the starting argument of the RTEMS task
23 *
23 *
24 * The ACTN task waits for data coming from an RTEMS msesage queue. When data arrives, it launches specific actions depending
24 * The ACTN task waits for data coming from an RTEMS msesage queue. When data arrives, it launches specific actions depending
25 * on the incoming TeleCommand.
25 * on the incoming TeleCommand.
26 *
26 *
27 */
27 */
28
28
29 int result;
29 int result;
30 rtems_status_code status; // RTEMS status code
30 rtems_status_code status; // RTEMS status code
31 ccsdsTelecommandPacket_t TC; // TC sent to the ACTN task
31 ccsdsTelecommandPacket_t TC; // TC sent to the ACTN task
32 size_t size; // size of the incoming TC packet
32 size_t size; // size of the incoming TC packet
33 unsigned char subtype; // subtype of the current TC packet
33 unsigned char subtype; // subtype of the current TC packet
34 unsigned char time[6];
34 unsigned char time[6];
35 rtems_id queue_rcv_id;
35 rtems_id queue_rcv_id;
36 rtems_id queue_snd_id;
36 rtems_id queue_snd_id;
37
37
38 status = get_message_queue_id_recv( &queue_rcv_id );
38 status = get_message_queue_id_recv( &queue_rcv_id );
39 if (status != RTEMS_SUCCESSFUL)
39 if (status != RTEMS_SUCCESSFUL)
40 {
40 {
41 PRINTF1("in ACTN *** ERR get_message_queue_id_recv %d\n", status)
41 PRINTF1("in ACTN *** ERR get_message_queue_id_recv %d\n", status)
42 }
42 }
43
43
44 status = get_message_queue_id_send( &queue_snd_id );
44 status = get_message_queue_id_send( &queue_snd_id );
45 if (status != RTEMS_SUCCESSFUL)
45 if (status != RTEMS_SUCCESSFUL)
46 {
46 {
47 PRINTF1("in ACTN *** ERR get_message_queue_id_send %d\n", status)
47 PRINTF1("in ACTN *** ERR get_message_queue_id_send %d\n", status)
48 }
48 }
49
49
50 result = LFR_SUCCESSFUL;
50 result = LFR_SUCCESSFUL;
51 subtype = 0; // subtype of the current TC packet
51 subtype = 0; // subtype of the current TC packet
52
52
53 BOOT_PRINTF("in ACTN *** \n")
53 BOOT_PRINTF("in ACTN *** \n")
54
54
55 while(1)
55 while(1)
56 {
56 {
57 status = rtems_message_queue_receive( queue_rcv_id, (char*) &TC, &size,
57 status = rtems_message_queue_receive( queue_rcv_id, (char*) &TC, &size,
58 RTEMS_WAIT, RTEMS_NO_TIMEOUT);
58 RTEMS_WAIT, RTEMS_NO_TIMEOUT);
59 getTime( time ); // set time to the current time
59 getTime( time ); // set time to the current time
60 if (status!=RTEMS_SUCCESSFUL)
60 if (status!=RTEMS_SUCCESSFUL)
61 {
61 {
62 PRINTF1("ERR *** in task ACTN *** error receiving a message, code %d \n", status)
62 PRINTF1("ERR *** in task ACTN *** error receiving a message, code %d \n", status)
63 }
63 }
64 else
64 else
65 {
65 {
66 subtype = TC.serviceSubType;
66 subtype = TC.serviceSubType;
67 switch(subtype)
67 switch(subtype)
68 {
68 {
69 case TC_SUBTYPE_RESET:
69 case TC_SUBTYPE_RESET:
70 result = action_reset( &TC, queue_snd_id, time );
70 result = action_reset( &TC, queue_snd_id, time );
71 close_action( &TC, result, queue_snd_id, time );
71 close_action( &TC, result, queue_snd_id, time );
72 break;
72 break;
73 //
73 //
74 case TC_SUBTYPE_LOAD_COMM:
74 case TC_SUBTYPE_LOAD_COMM:
75 result = action_load_common_par( &TC );
75 result = action_load_common_par( &TC );
76 close_action( &TC, result, queue_snd_id, time );
76 close_action( &TC, result, queue_snd_id, time );
77 break;
77 break;
78 //
78 //
79 case TC_SUBTYPE_LOAD_NORM:
79 case TC_SUBTYPE_LOAD_NORM:
80 result = action_load_normal_par( &TC, queue_snd_id, time );
80 result = action_load_normal_par( &TC, queue_snd_id, time );
81 close_action( &TC, result, queue_snd_id, time );
81 close_action( &TC, result, queue_snd_id, time );
82 break;
82 break;
83 //
83 //
84 case TC_SUBTYPE_LOAD_BURST:
84 case TC_SUBTYPE_LOAD_BURST:
85 result = action_load_burst_par( &TC, queue_snd_id, time );
85 result = action_load_burst_par( &TC, queue_snd_id, time );
86 close_action( &TC, result, queue_snd_id, time );
86 close_action( &TC, result, queue_snd_id, time );
87 break;
87 break;
88 //
88 //
89 case TC_SUBTYPE_LOAD_SBM1:
89 case TC_SUBTYPE_LOAD_SBM1:
90 result = action_load_sbm1_par( &TC, queue_snd_id, time );
90 result = action_load_sbm1_par( &TC, queue_snd_id, time );
91 close_action( &TC, result, queue_snd_id, time );
91 close_action( &TC, result, queue_snd_id, time );
92 break;
92 break;
93 //
93 //
94 case TC_SUBTYPE_LOAD_SBM2:
94 case TC_SUBTYPE_LOAD_SBM2:
95 result = action_load_sbm2_par( &TC, queue_snd_id, time );
95 result = action_load_sbm2_par( &TC, queue_snd_id, time );
96 close_action( &TC, result, queue_snd_id, time );
96 close_action( &TC, result, queue_snd_id, time );
97 break;
97 break;
98 //
98 //
99 case TC_SUBTYPE_DUMP:
99 case TC_SUBTYPE_DUMP:
100 result = action_dump_par( queue_snd_id );
100 result = action_dump_par( queue_snd_id );
101 close_action( &TC, result, queue_snd_id, time );
101 close_action( &TC, result, queue_snd_id, time );
102 break;
102 break;
103 //
103 //
104 case TC_SUBTYPE_ENTER:
104 case TC_SUBTYPE_ENTER:
105 result = action_enter_mode( &TC, queue_snd_id, time );
105 result = action_enter_mode( &TC, queue_snd_id, time );
106 close_action( &TC, result, queue_snd_id, time );
106 close_action( &TC, result, queue_snd_id, time );
107 break;
107 break;
108 //
108 //
109 case TC_SUBTYPE_UPDT_INFO:
109 case TC_SUBTYPE_UPDT_INFO:
110 result = action_update_info( &TC, queue_snd_id );
110 result = action_update_info( &TC, queue_snd_id );
111 close_action( &TC, result, queue_snd_id, time );
111 close_action( &TC, result, queue_snd_id, time );
112 break;
112 break;
113 //
113 //
114 case TC_SUBTYPE_EN_CAL:
114 case TC_SUBTYPE_EN_CAL:
115 result = action_enable_calibration( &TC, queue_snd_id, time );
115 result = action_enable_calibration( &TC, queue_snd_id, time );
116 close_action( &TC, result, queue_snd_id, time );
116 close_action( &TC, result, queue_snd_id, time );
117 break;
117 break;
118 //
118 //
119 case TC_SUBTYPE_DIS_CAL:
119 case TC_SUBTYPE_DIS_CAL:
120 result = action_disable_calibration( &TC, queue_snd_id, time );
120 result = action_disable_calibration( &TC, queue_snd_id, time );
121 close_action( &TC, result, queue_snd_id, time );
121 close_action( &TC, result, queue_snd_id, time );
122 break;
122 break;
123 //
123 //
124 case TC_SUBTYPE_UPDT_TIME:
124 case TC_SUBTYPE_UPDT_TIME:
125 result = action_update_time( &TC );
125 result = action_update_time( &TC );
126 close_action( &TC, result, queue_snd_id, time );
126 close_action( &TC, result, queue_snd_id, time );
127 break;
127 break;
128 //
128 //
129 default:
129 default:
130 break;
130 break;
131 }
131 }
132 }
132 }
133 }
133 }
134 }
134 }
135
135
136 //***********
136 //***********
137 // TC ACTIONS
137 // TC ACTIONS
138
138
139 int action_reset(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
139 int action_reset(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
140 {
140 {
141 /** This function executes specific actions when a TC_LFR_RESET TeleCommand has been received.
141 /** This function executes specific actions when a TC_LFR_RESET TeleCommand has been received.
142 *
142 *
143 * @param TC points to the TeleCommand packet that is being processed
143 * @param TC points to the TeleCommand packet that is being processed
144 * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver
144 * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver
145 *
145 *
146 */
146 */
147
147
148 send_tm_lfr_tc_exe_not_implemented( TC, queue_id, time );
148 send_tm_lfr_tc_exe_not_implemented( TC, queue_id, time );
149 return LFR_DEFAULT;
149 return LFR_DEFAULT;
150 }
150 }
151
151
152 int action_enter_mode(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
152 int action_enter_mode(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
153 {
153 {
154 /** This function executes specific actions when a TC_LFR_ENTER_MODE TeleCommand has been received.
154 /** This function executes specific actions when a TC_LFR_ENTER_MODE TeleCommand has been received.
155 *
155 *
156 * @param TC points to the TeleCommand packet that is being processed
156 * @param TC points to the TeleCommand packet that is being processed
157 * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver
157 * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver
158 *
158 *
159 */
159 */
160
160
161 rtems_status_code status;
161 rtems_status_code status;
162 unsigned char requestedMode;
162 unsigned char requestedMode;
163
163
164 requestedMode = TC->dataAndCRC[1];
164 requestedMode = TC->dataAndCRC[1];
165
165
166 if ( (requestedMode != LFR_MODE_STANDBY)
166 if ( (requestedMode != LFR_MODE_STANDBY)
167 && (requestedMode != LFR_MODE_NORMAL) && (requestedMode != LFR_MODE_BURST)
167 && (requestedMode != LFR_MODE_NORMAL) && (requestedMode != LFR_MODE_BURST)
168 && (requestedMode != LFR_MODE_SBM1) && (requestedMode != LFR_MODE_SBM2) )
168 && (requestedMode != LFR_MODE_SBM1) && (requestedMode != LFR_MODE_SBM2) )
169 {
169 {
170 status = RTEMS_UNSATISFIED;
170 status = RTEMS_UNSATISFIED;
171 send_tm_lfr_tc_exe_inconsistent( TC, queue_id, BYTE_POS_CP_LFR_MODE, requestedMode, time );
171 send_tm_lfr_tc_exe_inconsistent( TC, queue_id, BYTE_POS_CP_LFR_MODE, requestedMode, time );
172 }
172 }
173 else
173 else
174 {
174 {
175 printf("in action_enter_mode *** enter mode %d\n", requestedMode);
175 printf("in action_enter_mode *** enter mode %d\n", requestedMode);
176
176
177 #ifdef PRINT_TASK_STATISTICS
177 #ifdef PRINT_TASK_STATISTICS
178 if (requestedMode != LFR_MODE_STANDBY)
178 if (requestedMode != LFR_MODE_STANDBY)
179 {
179 {
180 rtems_cpu_usage_reset();
180 rtems_cpu_usage_reset();
181 maxCount = 0;
181 maxCount = 0;
182 }
182 }
183 #endif
183 #endif
184
184
185 status = transition_validation(requestedMode);
185 status = transition_validation(requestedMode);
186
186
187 if ( status == LFR_SUCCESSFUL ) {
187 if ( status == LFR_SUCCESSFUL ) {
188 if ( lfrCurrentMode != LFR_MODE_STANDBY)
188 if ( lfrCurrentMode != LFR_MODE_STANDBY)
189 {
189 {
190 status = stop_current_mode();
190 status = stop_current_mode();
191 }
191 }
192 if (status != RTEMS_SUCCESSFUL)
192 if (status != RTEMS_SUCCESSFUL)
193 {
193 {
194 PRINTF("ERR *** in action_enter *** stop_current_mode\n")
194 PRINTF("ERR *** in action_enter *** stop_current_mode\n")
195 }
195 }
196 status = enter_mode( requestedMode );
196 status = enter_mode( requestedMode );
197 }
197 }
198 else
198 else
199 {
199 {
200 PRINTF("ERR *** in action_enter *** transition rejected\n")
200 PRINTF("ERR *** in action_enter *** transition rejected\n")
201 send_tm_lfr_tc_exe_not_executable( TC, queue_id, time );
201 send_tm_lfr_tc_exe_not_executable( TC, queue_id, time );
202 }
202 }
203 }
203 }
204
204
205 return status;
205 return status;
206 }
206 }
207
207
208 int action_update_info(ccsdsTelecommandPacket_t *TC, rtems_id queue_id)
208 int action_update_info(ccsdsTelecommandPacket_t *TC, rtems_id queue_id)
209 {
209 {
210 /** This function executes specific actions when a TC_LFR_UPDATE_INFO TeleCommand has been received.
210 /** This function executes specific actions when a TC_LFR_UPDATE_INFO TeleCommand has been received.
211 *
211 *
212 * @param TC points to the TeleCommand packet that is being processed
212 * @param TC points to the TeleCommand packet that is being processed
213 * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver
213 * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver
214 *
214 *
215 * @return LFR directive status code:
215 * @return LFR directive status code:
216 * - LFR_DEFAULT
216 * - LFR_DEFAULT
217 * - LFR_SUCCESSFUL
217 * - LFR_SUCCESSFUL
218 *
218 *
219 */
219 */
220
220
221 unsigned int val;
221 unsigned int val;
222 int result;
222 int result;
223
223
224 result = LFR_SUCCESSFUL;
224 result = LFR_SUCCESSFUL;
225
225
226 val = housekeeping_packet.hk_lfr_update_info_tc_cnt[0] * 256
226 val = housekeeping_packet.hk_lfr_update_info_tc_cnt[0] * 256
227 + housekeeping_packet.hk_lfr_update_info_tc_cnt[1];
227 + housekeeping_packet.hk_lfr_update_info_tc_cnt[1];
228 val++;
228 val++;
229 housekeeping_packet.hk_lfr_update_info_tc_cnt[0] = (unsigned char) (val >> 8);
229 housekeeping_packet.hk_lfr_update_info_tc_cnt[0] = (unsigned char) (val >> 8);
230 housekeeping_packet.hk_lfr_update_info_tc_cnt[1] = (unsigned char) (val);
230 housekeeping_packet.hk_lfr_update_info_tc_cnt[1] = (unsigned char) (val);
231
231
232 return result;
232 return result;
233 }
233 }
234
234
235 int action_enable_calibration(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
235 int action_enable_calibration(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
236 {
236 {
237 /** This function executes specific actions when a TC_LFR_ENABLE_CALIBRATION TeleCommand has been received.
237 /** This function executes specific actions when a TC_LFR_ENABLE_CALIBRATION TeleCommand has been received.
238 *
238 *
239 * @param TC points to the TeleCommand packet that is being processed
239 * @param TC points to the TeleCommand packet that is being processed
240 * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver
240 * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver
241 *
241 *
242 */
242 */
243
243
244 int result;
244 int result;
245 unsigned char lfrMode;
245 unsigned char lfrMode;
246
246
247 result = LFR_DEFAULT;
247 result = LFR_DEFAULT;
248 lfrMode = (housekeeping_packet.lfr_status_word[0] & 0xf0) >> 4;
248 lfrMode = (housekeeping_packet.lfr_status_word[0] & 0xf0) >> 4;
249
249
250 if ( (lfrMode == LFR_MODE_STANDBY) || (lfrMode == LFR_MODE_BURST) || (lfrMode == LFR_MODE_SBM2) ) {
250 if ( (lfrMode == LFR_MODE_STANDBY) || (lfrMode == LFR_MODE_BURST) || (lfrMode == LFR_MODE_SBM2) ) {
251 send_tm_lfr_tc_exe_not_executable( TC, queue_id, time );
251 send_tm_lfr_tc_exe_not_executable( TC, queue_id, time );
252 result = LFR_DEFAULT;
252 result = LFR_DEFAULT;
253 }
253 }
254 else {
254 else {
255 send_tm_lfr_tc_exe_not_implemented( TC, queue_id, time );
255 send_tm_lfr_tc_exe_not_implemented( TC, queue_id, time );
256 result = LFR_DEFAULT;
256 result = LFR_DEFAULT;
257 }
257 }
258 return result;
258 return result;
259 }
259 }
260
260
261 int action_disable_calibration(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
261 int action_disable_calibration(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
262 {
262 {
263 /** This function executes specific actions when a TC_LFR_DISABLE_CALIBRATION TeleCommand has been received.
263 /** This function executes specific actions when a TC_LFR_DISABLE_CALIBRATION TeleCommand has been received.
264 *
264 *
265 * @param TC points to the TeleCommand packet that is being processed
265 * @param TC points to the TeleCommand packet that is being processed
266 * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver
266 * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver
267 *
267 *
268 */
268 */
269
269
270 int result;
270 int result;
271 unsigned char lfrMode;
271 unsigned char lfrMode;
272
272
273 result = LFR_DEFAULT;
273 result = LFR_DEFAULT;
274 lfrMode = (housekeeping_packet.lfr_status_word[0] & 0xf0) >> 4;
274 lfrMode = (housekeeping_packet.lfr_status_word[0] & 0xf0) >> 4;
275
275
276 if ( (lfrMode == LFR_MODE_STANDBY) || (lfrMode == LFR_MODE_BURST) || (lfrMode == LFR_MODE_SBM2) ) {
276 if ( (lfrMode == LFR_MODE_STANDBY) || (lfrMode == LFR_MODE_BURST) || (lfrMode == LFR_MODE_SBM2) ) {
277 send_tm_lfr_tc_exe_not_executable( TC, queue_id, time );
277 send_tm_lfr_tc_exe_not_executable( TC, queue_id, time );
278 result = LFR_DEFAULT;
278 result = LFR_DEFAULT;
279 }
279 }
280 else {
280 else {
281 send_tm_lfr_tc_exe_not_implemented( TC, queue_id, time );
281 send_tm_lfr_tc_exe_not_implemented( TC, queue_id, time );
282 result = LFR_DEFAULT;
282 result = LFR_DEFAULT;
283 }
283 }
284 return result;
284 return result;
285 }
285 }
286
286
287 int action_update_time(ccsdsTelecommandPacket_t *TC)
287 int action_update_time(ccsdsTelecommandPacket_t *TC)
288 {
288 {
289 /** This function executes specific actions when a TC_LFR_UPDATE_TIME TeleCommand has been received.
289 /** This function executes specific actions when a TC_LFR_UPDATE_TIME TeleCommand has been received.
290 *
290 *
291 * @param TC points to the TeleCommand packet that is being processed
291 * @param TC points to the TeleCommand packet that is being processed
292 * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver
292 * @param queue_id is the id of the queue which handles TM transmission by the SpaceWire driver
293 *
293 *
294 * @return LFR_SUCCESSFUL
294 * @return LFR_SUCCESSFUL
295 *
295 *
296 */
296 */
297
297
298 unsigned int val;
298 unsigned int val;
299
299
300 time_management_regs->coarse_time_load = (TC->dataAndCRC[0] << 24)
300 time_management_regs->coarse_time_load = (TC->dataAndCRC[0] << 24)
301 + (TC->dataAndCRC[1] << 16)
301 + (TC->dataAndCRC[1] << 16)
302 + (TC->dataAndCRC[2] << 8)
302 + (TC->dataAndCRC[2] << 8)
303 + TC->dataAndCRC[3];
303 + TC->dataAndCRC[3];
304 val = housekeeping_packet.hk_lfr_update_time_tc_cnt[0] * 256
304 val = housekeeping_packet.hk_lfr_update_time_tc_cnt[0] * 256
305 + housekeeping_packet.hk_lfr_update_time_tc_cnt[1];
305 + housekeeping_packet.hk_lfr_update_time_tc_cnt[1];
306 val++;
306 val++;
307 housekeeping_packet.hk_lfr_update_time_tc_cnt[0] = (unsigned char) (val >> 8);
307 housekeeping_packet.hk_lfr_update_time_tc_cnt[0] = (unsigned char) (val >> 8);
308 housekeeping_packet.hk_lfr_update_time_tc_cnt[1] = (unsigned char) (val);
308 housekeeping_packet.hk_lfr_update_time_tc_cnt[1] = (unsigned char) (val);
309 time_management_regs->ctrl = time_management_regs->ctrl | 1;
309 time_management_regs->ctrl = time_management_regs->ctrl | 1;
310
310
311 return LFR_SUCCESSFUL;
311 return LFR_SUCCESSFUL;
312 }
312 }
313
313
314 //*******************
314 //*******************
315 // ENTERING THE MODES
315 // ENTERING THE MODES
316
316
317 int transition_validation(unsigned char requestedMode)
317 int transition_validation(unsigned char requestedMode)
318 {
318 {
319 /** This function checks the validity of the transition requested by the TC_LFR_ENTER_MODE.
319 /** This function checks the validity of the transition requested by the TC_LFR_ENTER_MODE.
320 *
320 *
321 * @param requestedMode is the mode requested by the TC_LFR_ENTER_MODE
321 * @param requestedMode is the mode requested by the TC_LFR_ENTER_MODE
322 *
322 *
323 * @return LFR directive status codes:
323 * @return LFR directive status codes:
324 * - LFR_SUCCESSFUL - the transition is authorized
324 * - LFR_SUCCESSFUL - the transition is authorized
325 * - LFR_DEFAULT - the transition is not authorized
325 * - LFR_DEFAULT - the transition is not authorized
326 *
326 *
327 */
327 */
328
328
329 int status;
329 int status;
330
330
331 switch (requestedMode)
331 switch (requestedMode)
332 {
332 {
333 case LFR_MODE_STANDBY:
333 case LFR_MODE_STANDBY:
334 if ( lfrCurrentMode == LFR_MODE_STANDBY ) {
334 if ( lfrCurrentMode == LFR_MODE_STANDBY ) {
335 status = LFR_DEFAULT;
335 status = LFR_DEFAULT;
336 }
336 }
337 else
337 else
338 {
338 {
339 status = LFR_SUCCESSFUL;
339 status = LFR_SUCCESSFUL;
340 }
340 }
341 break;
341 break;
342 case LFR_MODE_NORMAL:
342 case LFR_MODE_NORMAL:
343 if ( lfrCurrentMode == LFR_MODE_NORMAL ) {
343 if ( lfrCurrentMode == LFR_MODE_NORMAL ) {
344 status = LFR_DEFAULT;
344 status = LFR_DEFAULT;
345 }
345 }
346 else {
346 else {
347 status = LFR_SUCCESSFUL;
347 status = LFR_SUCCESSFUL;
348 }
348 }
349 break;
349 break;
350 case LFR_MODE_BURST:
350 case LFR_MODE_BURST:
351 if ( lfrCurrentMode == LFR_MODE_BURST ) {
351 if ( lfrCurrentMode == LFR_MODE_BURST ) {
352 status = LFR_DEFAULT;
352 status = LFR_DEFAULT;
353 }
353 }
354 else {
354 else {
355 status = LFR_SUCCESSFUL;
355 status = LFR_SUCCESSFUL;
356 }
356 }
357 break;
357 break;
358 case LFR_MODE_SBM1:
358 case LFR_MODE_SBM1:
359 if ( lfrCurrentMode == LFR_MODE_SBM1 ) {
359 if ( lfrCurrentMode == LFR_MODE_SBM1 ) {
360 status = LFR_DEFAULT;
360 status = LFR_DEFAULT;
361 }
361 }
362 else {
362 else {
363 status = LFR_SUCCESSFUL;
363 status = LFR_SUCCESSFUL;
364 }
364 }
365 break;
365 break;
366 case LFR_MODE_SBM2:
366 case LFR_MODE_SBM2:
367 if ( lfrCurrentMode == LFR_MODE_SBM2 ) {
367 if ( lfrCurrentMode == LFR_MODE_SBM2 ) {
368 status = LFR_DEFAULT;
368 status = LFR_DEFAULT;
369 }
369 }
370 else {
370 else {
371 status = LFR_SUCCESSFUL;
371 status = LFR_SUCCESSFUL;
372 }
372 }
373 break;
373 break;
374 default:
374 default:
375 status = LFR_DEFAULT;
375 status = LFR_DEFAULT;
376 break;
376 break;
377 }
377 }
378
378
379 return status;
379 return status;
380 }
380 }
381
381
382 int stop_current_mode()
382 int stop_current_mode()
383 {
383 {
384 /** This function stops the current mode by masking interrupt lines and suspending science tasks.
384 /** This function stops the current mode by masking interrupt lines and suspending science tasks.
385 *
385 *
386 * @return RTEMS directive status codes:
386 * @return RTEMS directive status codes:
387 * - RTEMS_SUCCESSFUL - task restarted successfully
387 * - RTEMS_SUCCESSFUL - task restarted successfully
388 * - RTEMS_INVALID_ID - task id invalid
388 * - RTEMS_INVALID_ID - task id invalid
389 * - RTEMS_ALREADY_SUSPENDED - task already suspended
389 * - RTEMS_ALREADY_SUSPENDED - task already suspended
390 *
390 *
391 */
391 */
392
392
393 rtems_status_code status;
393 rtems_status_code status;
394
394
395 status = RTEMS_SUCCESSFUL;
395 status = RTEMS_SUCCESSFUL;
396
396
397 // mask interruptions
397 // mask interruptions
398 LEON_Mask_interrupt( IRQ_WAVEFORM_PICKER ); // mask waveform picker interrupt
398 LEON_Mask_interrupt( IRQ_WAVEFORM_PICKER ); // mask waveform picker interrupt
399 //LEON_Mask_interrupt( IRQ_SPECTRAL_MATRIX ); // clear spectral matrix interrupt
399 //LEON_Mask_interrupt( IRQ_SPECTRAL_MATRIX ); // clear spectral matrix interrupt
400 LEON_Mask_interrupt( IRQ_SM ); // mask spectral matrix interrupt simulator
400 LEON_Mask_interrupt( IRQ_SM ); // mask spectral matrix interrupt simulator
401 // reset registers
401 // reset registers
402 reset_wfp_burst_enable(); // reset burst and enable bits
402 reset_wfp_burst_enable(); // reset burst and enable bits
403 reset_wfp_status(); // reset all the status bits
403 reset_wfp_status(); // reset all the status bits
404 // clear interruptions
404 // clear interruptions
405 LEON_Clear_interrupt( IRQ_WAVEFORM_PICKER ); // clear waveform picker interrupt
405 LEON_Clear_interrupt( IRQ_WAVEFORM_PICKER ); // clear waveform picker interrupt
406 //LEON_Clear_interrupt( IRQ_SPECTRAL_MATRIX ); // clear spectral matrix interrupt
406 //LEON_Clear_interrupt( IRQ_SPECTRAL_MATRIX ); // clear spectral matrix interrupt
407 LEON_Clear_interrupt( IRQ_SM ); // clear spectral matrix interrupt simulator
407 LEON_Clear_interrupt( IRQ_SM ); // clear spectral matrix interrupt simulator
408 //**********************
408 //**********************
409 // suspend several tasks
409 // suspend several tasks
410 if (lfrCurrentMode != LFR_MODE_STANDBY) {
410 if (lfrCurrentMode != LFR_MODE_STANDBY) {
411 status = suspend_science_tasks();
411 status = suspend_science_tasks();
412 }
412 }
413
413
414 if (status != RTEMS_SUCCESSFUL)
414 if (status != RTEMS_SUCCESSFUL)
415 {
415 {
416 PRINTF1("in stop_current_mode *** in suspend_science_tasks *** ERR code: %d\n", status)
416 PRINTF1("in stop_current_mode *** in suspend_science_tasks *** ERR code: %d\n", status)
417 }
417 }
418
418
419 return status;
419 return status;
420 }
420 }
421
421
422 int enter_mode(unsigned char mode )
422 int enter_mode(unsigned char mode )
423 {
423 {
424 /** This function is launched after a mode transition validation.
424 /** This function is launched after a mode transition validation.
425 *
425 *
426 * @param mode is the mode in which LFR will be put.
426 * @param mode is the mode in which LFR will be put.
427 *
427 *
428 * @return RTEMS directive status codes:
428 * @return RTEMS directive status codes:
429 * - RTEMS_SUCCESSFUL - the mode has been entered successfully
429 * - RTEMS_SUCCESSFUL - the mode has been entered successfully
430 * - RTEMS_NOT_SATISFIED - the mode has not been entered successfully
430 * - RTEMS_NOT_SATISFIED - the mode has not been entered successfully
431 *
431 *
432 */
432 */
433
433
434 rtems_status_code status;
434 rtems_status_code status;
435
435
436 status = RTEMS_UNSATISFIED;
436 status = RTEMS_UNSATISFIED;
437
437
438 housekeeping_packet.lfr_status_word[0] = (unsigned char) ((mode << 4) + 0x0d);
438 housekeeping_packet.lfr_status_word[0] = (unsigned char) ((mode << 4) + 0x0d);
439 updateLFRCurrentMode();
439 updateLFRCurrentMode();
440
440
441 switch(mode){
441 switch(mode){
442 case LFR_MODE_STANDBY:
442 case LFR_MODE_STANDBY:
443 status = enter_standby_mode( );
443 status = enter_standby_mode( );
444 break;
444 break;
445 case LFR_MODE_NORMAL:
445 case LFR_MODE_NORMAL:
446 status = enter_normal_mode( );
446 status = enter_normal_mode( );
447 break;
447 break;
448 case LFR_MODE_BURST:
448 case LFR_MODE_BURST:
449 status = enter_burst_mode( );
449 status = enter_burst_mode( );
450 break;
450 break;
451 case LFR_MODE_SBM1:
451 case LFR_MODE_SBM1:
452 status = enter_sbm1_mode( );
452 status = enter_sbm1_mode( );
453 break;
453 break;
454 case LFR_MODE_SBM2:
454 case LFR_MODE_SBM2:
455 status = enter_sbm2_mode( );
455 status = enter_sbm2_mode( );
456 break;
456 break;
457 default:
457 default:
458 status = RTEMS_UNSATISFIED;
458 status = RTEMS_UNSATISFIED;
459 }
459 }
460
460
461 if (status != RTEMS_SUCCESSFUL)
461 if (status != RTEMS_SUCCESSFUL)
462 {
462 {
463 PRINTF("in enter_mode *** ERR\n")
463 PRINTF("in enter_mode *** ERR\n")
464 status = RTEMS_UNSATISFIED;
464 status = RTEMS_UNSATISFIED;
465 }
465 }
466
466
467 return status;
467 return status;
468 }
468 }
469
469
470 int enter_standby_mode()
470 int enter_standby_mode()
471 {
471 {
472 /** This function is used to enter the STANDBY mode.
472 /** This function is used to enter the STANDBY mode.
473 *
473 *
474 * @return RTEMS directive status codes:
474 * @return RTEMS directive status codes:
475 * - RTEMS_SUCCESSFUL - the mode has been entered successfully
475 * - RTEMS_SUCCESSFUL - the mode has been entered successfully
476 *
476 *
477 */
477 */
478
478
479 PRINTF1("maxCount = %d\n", maxCount)
479 PRINTF1("maxCount = %d\n", maxCount)
480
480
481 #ifdef PRINT_TASK_STATISTICS
481 #ifdef PRINT_TASK_STATISTICS
482 rtems_cpu_usage_report();
482 rtems_cpu_usage_report();
483 #endif
483 #endif
484
484
485 #ifdef PRINT_STACK_REPORT
485 #ifdef PRINT_STACK_REPORT
486 rtems_stack_checker_report_usage();
486 rtems_stack_checker_report_usage();
487 #endif
487 #endif
488
488
489 return LFR_SUCCESSFUL;
489 return LFR_SUCCESSFUL;
490 }
490 }
491
491
492 int enter_normal_mode()
492 int enter_normal_mode()
493 {
493 {
494 rtems_status_code status;
494 rtems_status_code status;
495
495
496 status = restart_science_tasks();
496 status = restart_science_tasks();
497
497
498 launch_waveform_picker( LFR_MODE_NORMAL );
498 launch_waveform_picker( LFR_MODE_NORMAL );
499 // launch_spectral_matrix( LFR_MODE_NORMAL );
499 // launch_spectral_matrix( LFR_MODE_NORMAL );
500
500
501 return status;
501 return status;
502 }
502 }
503
503
504 int enter_burst_mode()
504 int enter_burst_mode()
505 {
505 {
506 /** This function is used to enter the STANDBY mode.
506 /** This function is used to enter the STANDBY mode.
507 *
507 *
508 * @return RTEMS directive status codes:
508 * @return RTEMS directive status codes:
509 * - RTEMS_SUCCESSFUL - the mode has been entered successfully
509 * - RTEMS_SUCCESSFUL - the mode has been entered successfully
510 * - RTEMS_INVALID_ID - task id invalid
510 * - RTEMS_INVALID_ID - task id invalid
511 * - RTEMS_INCORRECT_STATE - task never started
511 * - RTEMS_INCORRECT_STATE - task never started
512 * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task
512 * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task
513 *
513 *
514 */
514 */
515
515
516 rtems_status_code status;
516 rtems_status_code status;
517
517
518 status = restart_science_tasks();
518 status = restart_science_tasks();
519
519
520 launch_waveform_picker( LFR_MODE_BURST );
520 launch_waveform_picker( LFR_MODE_BURST );
521
521
522 return status;
522 return status;
523 }
523 }
524
524
525 int enter_sbm1_mode()
525 int enter_sbm1_mode()
526 {
526 {
527 /** This function is used to enter the SBM1 mode.
527 /** This function is used to enter the SBM1 mode.
528 *
528 *
529 * @return RTEMS directive status codes:
529 * @return RTEMS directive status codes:
530 * - RTEMS_SUCCESSFUL - the mode has been entered successfully
530 * - RTEMS_SUCCESSFUL - the mode has been entered successfully
531 * - RTEMS_INVALID_ID - task id invalid
531 * - RTEMS_INVALID_ID - task id invalid
532 * - RTEMS_INCORRECT_STATE - task never started
532 * - RTEMS_INCORRECT_STATE - task never started
533 * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task
533 * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task
534 *
534 *
535 */
535 */
536
536
537 rtems_status_code status;
537 rtems_status_code status;
538
538
539 status = restart_science_tasks();
539 status = restart_science_tasks();
540
540
541 launch_waveform_picker( LFR_MODE_SBM1 );
541 launch_waveform_picker( LFR_MODE_SBM1 );
542
542
543 return status;
543 return status;
544 }
544 }
545
545
546 int enter_sbm2_mode()
546 int enter_sbm2_mode()
547 {
547 {
548 /** This function is used to enter the SBM2 mode.
548 /** This function is used to enter the SBM2 mode.
549 *
549 *
550 * @return RTEMS directive status codes:
550 * @return RTEMS directive status codes:
551 * - RTEMS_SUCCESSFUL - the mode has been entered successfully
551 * - RTEMS_SUCCESSFUL - the mode has been entered successfully
552 * - RTEMS_INVALID_ID - task id invalid
552 * - RTEMS_INVALID_ID - task id invalid
553 * - RTEMS_INCORRECT_STATE - task never started
553 * - RTEMS_INCORRECT_STATE - task never started
554 * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task
554 * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task
555 *
555 *
556 */
556 */
557
557
558 rtems_status_code status;
558 rtems_status_code status;
559
559
560 status = restart_science_tasks();
560 status = restart_science_tasks();
561
561
562 launch_waveform_picker( LFR_MODE_SBM2 );
562 launch_waveform_picker( LFR_MODE_SBM2 );
563
563
564 return status;
564 return status;
565 }
565 }
566
566
567 int restart_science_tasks()
567 int restart_science_tasks()
568 {
568 {
569 /** This function is used to restart all science tasks.
569 /** This function is used to restart all science tasks.
570 *
570 *
571 * @return RTEMS directive status codes:
571 * @return RTEMS directive status codes:
572 * - RTEMS_SUCCESSFUL - task restarted successfully
572 * - RTEMS_SUCCESSFUL - task restarted successfully
573 * - RTEMS_INVALID_ID - task id invalid
573 * - RTEMS_INVALID_ID - task id invalid
574 * - RTEMS_INCORRECT_STATE - task never started
574 * - RTEMS_INCORRECT_STATE - task never started
575 * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task
575 * - RTEMS_ILLEGAL_ON_REMOTE_OBJECT - cannot restart remote task
576 *
576 *
577 * Science tasks are AVF0, BPF0, WFRM, CWF3, CW2, CWF1
577 * Science tasks are AVF0, BPF0, WFRM, CWF3, CW2, CWF1
578 *
578 *
579 */
579 */
580
580
581 rtems_status_code status[6];
581 rtems_status_code status[6];
582 rtems_status_code ret;
582 rtems_status_code ret;
583
583
584 ret = RTEMS_SUCCESSFUL;
584 ret = RTEMS_SUCCESSFUL;
585
585
586 status[0] = rtems_task_restart( Task_id[TASKID_AVF0], 1 );
586 status[0] = rtems_task_restart( Task_id[TASKID_AVF0], 1 );
587 if (status[0] != RTEMS_SUCCESSFUL)
587 if (status[0] != RTEMS_SUCCESSFUL)
588 {
588 {
589 PRINTF1("in restart_science_task *** 0 ERR %d\n", status[0])
589 PRINTF1("in restart_science_task *** 0 ERR %d\n", status[0])
590 }
590 }
591
591
592 status[1] = rtems_task_restart( Task_id[TASKID_BPF0],1 );
592 status[1] = rtems_task_restart( Task_id[TASKID_BPF0],1 );
593 if (status[1] != RTEMS_SUCCESSFUL)
593 if (status[1] != RTEMS_SUCCESSFUL)
594 {
594 {
595 PRINTF1("in restart_science_task *** 1 ERR %d\n", status[1])
595 PRINTF1("in restart_science_task *** 1 ERR %d\n", status[1])
596 }
596 }
597
597
598 status[2] = rtems_task_restart( Task_id[TASKID_WFRM],1 );
598 status[2] = rtems_task_restart( Task_id[TASKID_WFRM],1 );
599 if (status[2] != RTEMS_SUCCESSFUL)
599 if (status[2] != RTEMS_SUCCESSFUL)
600 {
600 {
601 PRINTF1("in restart_science_task *** 2 ERR %d\n", status[2])
601 PRINTF1("in restart_science_task *** 2 ERR %d\n", status[2])
602 }
602 }
603
603
604 status[3] = rtems_task_restart( Task_id[TASKID_CWF3],1 );
604 status[3] = rtems_task_restart( Task_id[TASKID_CWF3],1 );
605 if (status[3] != RTEMS_SUCCESSFUL)
605 if (status[3] != RTEMS_SUCCESSFUL)
606 {
606 {
607 PRINTF1("in restart_science_task *** 3 ERR %d\n", status[3])
607 PRINTF1("in restart_science_task *** 3 ERR %d\n", status[3])
608 }
608 }
609
609
610 status[4] = rtems_task_restart( Task_id[TASKID_CWF2],1 );
610 status[4] = rtems_task_restart( Task_id[TASKID_CWF2],1 );
611 if (status[4] != RTEMS_SUCCESSFUL)
611 if (status[4] != RTEMS_SUCCESSFUL)
612 {
612 {
613 PRINTF1("in restart_science_task *** 4 ERR %d\n", status[4])
613 PRINTF1("in restart_science_task *** 4 ERR %d\n", status[4])
614 }
614 }
615
615
616 status[5] = rtems_task_restart( Task_id[TASKID_CWF1],1 );
616 status[5] = rtems_task_restart( Task_id[TASKID_CWF1],1 );
617 if (status[5] != RTEMS_SUCCESSFUL)
617 if (status[5] != RTEMS_SUCCESSFUL)
618 {
618 {
619 PRINTF1("in restart_science_task *** 5 ERR %d\n", status[5])
619 PRINTF1("in restart_science_task *** 5 ERR %d\n", status[5])
620 }
620 }
621
621
622 if ( (status[0] != RTEMS_SUCCESSFUL) || (status[1] != RTEMS_SUCCESSFUL) || (status[2] != RTEMS_SUCCESSFUL) ||
622 if ( (status[0] != RTEMS_SUCCESSFUL) || (status[1] != RTEMS_SUCCESSFUL) || (status[2] != RTEMS_SUCCESSFUL) ||
623 (status[3] != RTEMS_SUCCESSFUL) || (status[4] != RTEMS_SUCCESSFUL) || (status[5] != RTEMS_SUCCESSFUL) )
623 (status[3] != RTEMS_SUCCESSFUL) || (status[4] != RTEMS_SUCCESSFUL) || (status[5] != RTEMS_SUCCESSFUL) )
624 {
624 {
625 ret = RTEMS_UNSATISFIED;
625 ret = RTEMS_UNSATISFIED;
626 }
626 }
627
627
628 return ret;
628 return ret;
629 }
629 }
630
630
631 int suspend_science_tasks()
631 int suspend_science_tasks()
632 {
632 {
633 /** This function suspends the science tasks.
633 /** This function suspends the science tasks.
634 *
634 *
635 * @return RTEMS directive status codes:
635 * @return RTEMS directive status codes:
636 * - RTEMS_SUCCESSFUL - task restarted successfully
636 * - RTEMS_SUCCESSFUL - task restarted successfully
637 * - RTEMS_INVALID_ID - task id invalid
637 * - RTEMS_INVALID_ID - task id invalid
638 * - RTEMS_ALREADY_SUSPENDED - task already suspended
638 * - RTEMS_ALREADY_SUSPENDED - task already suspended
639 *
639 *
640 */
640 */
641
641
642 rtems_status_code status;
642 rtems_status_code status;
643
643
644 status = rtems_task_suspend( Task_id[TASKID_AVF0] );
644 status = rtems_task_suspend( Task_id[TASKID_AVF0] );
645 if (status != RTEMS_SUCCESSFUL)
645 if (status != RTEMS_SUCCESSFUL)
646 {
646 {
647 PRINTF1("in suspend_science_task *** AVF0 ERR %d\n", status)
647 PRINTF1("in suspend_science_task *** AVF0 ERR %d\n", status)
648 }
648 }
649
649
650 if (status == RTEMS_SUCCESSFUL) // suspend BPF0
650 if (status == RTEMS_SUCCESSFUL) // suspend BPF0
651 {
651 {
652 status = rtems_task_suspend( Task_id[TASKID_BPF0] );
652 status = rtems_task_suspend( Task_id[TASKID_BPF0] );
653 if (status != RTEMS_SUCCESSFUL)
653 if (status != RTEMS_SUCCESSFUL)
654 {
654 {
655 PRINTF1("in suspend_science_task *** BPF0 ERR %d\n", status)
655 PRINTF1("in suspend_science_task *** BPF0 ERR %d\n", status)
656 }
656 }
657 }
657 }
658
658
659 if (status == RTEMS_SUCCESSFUL) // suspend WFRM
659 if (status == RTEMS_SUCCESSFUL) // suspend WFRM
660 {
660 {
661 status = rtems_task_suspend( Task_id[TASKID_WFRM] );
661 status = rtems_task_suspend( Task_id[TASKID_WFRM] );
662 if (status != RTEMS_SUCCESSFUL)
662 if (status != RTEMS_SUCCESSFUL)
663 {
663 {
664 PRINTF1("in suspend_science_task *** WFRM ERR %d\n", status)
664 PRINTF1("in suspend_science_task *** WFRM ERR %d\n", status)
665 }
665 }
666 }
666 }
667
667
668 if (status == RTEMS_SUCCESSFUL) // suspend CWF3
668 if (status == RTEMS_SUCCESSFUL) // suspend CWF3
669 {
669 {
670 status = rtems_task_suspend( Task_id[TASKID_CWF3] );
670 status = rtems_task_suspend( Task_id[TASKID_CWF3] );
671 if (status != RTEMS_SUCCESSFUL)
671 if (status != RTEMS_SUCCESSFUL)
672 {
672 {
673 PRINTF1("in suspend_science_task *** CWF3 ERR %d\n", status)
673 PRINTF1("in suspend_science_task *** CWF3 ERR %d\n", status)
674 }
674 }
675 }
675 }
676
676
677 if (status == RTEMS_SUCCESSFUL) // suspend CWF2
677 if (status == RTEMS_SUCCESSFUL) // suspend CWF2
678 {
678 {
679 status = rtems_task_suspend( Task_id[TASKID_CWF2] );
679 status = rtems_task_suspend( Task_id[TASKID_CWF2] );
680 if (status != RTEMS_SUCCESSFUL)
680 if (status != RTEMS_SUCCESSFUL)
681 {
681 {
682 PRINTF1("in suspend_science_task *** CWF2 ERR %d\n", status)
682 PRINTF1("in suspend_science_task *** CWF2 ERR %d\n", status)
683 }
683 }
684 }
684 }
685
685
686 if (status == RTEMS_SUCCESSFUL) // suspend CWF1
686 if (status == RTEMS_SUCCESSFUL) // suspend CWF1
687 {
687 {
688 status = rtems_task_suspend( Task_id[TASKID_CWF1] );
688 status = rtems_task_suspend( Task_id[TASKID_CWF1] );
689 if (status != RTEMS_SUCCESSFUL)
689 if (status != RTEMS_SUCCESSFUL)
690 {
690 {
691 PRINTF1("in suspend_science_task *** CWF1 ERR %d\n", status)
691 PRINTF1("in suspend_science_task *** CWF1 ERR %d\n", status)
692 }
692 }
693 }
693 }
694
694
695 return status;
695 return status;
696 }
696 }
697
697
698 void launch_waveform_picker( unsigned char mode )
698 void launch_waveform_picker( unsigned char mode )
699 {
699 {
700 int startDate;
700 int startDate;
701
701
702 reset_current_ring_nodes();
702 reset_current_ring_nodes();
703 reset_waveform_picker_regs_vhdl_dev_debug_64();
703 reset_waveform_picker_regs();
704 set_wfp_burst_enable_register( mode );
704 set_wfp_burst_enable_register( mode );
705 LEON_Clear_interrupt( IRQ_WAVEFORM_PICKER );
705 LEON_Clear_interrupt( IRQ_WAVEFORM_PICKER );
706 LEON_Unmask_interrupt( IRQ_WAVEFORM_PICKER );
706 LEON_Unmask_interrupt( IRQ_WAVEFORM_PICKER );
707 startDate = time_management_regs->coarse_time + 2;
707 startDate = time_management_regs->coarse_time + 2;
708 waveform_picker_regs->run_burst_enable = waveform_picker_regs->run_burst_enable | 0x80; // [1000 0000]
708 waveform_picker_regs->run_burst_enable = waveform_picker_regs->run_burst_enable | 0x80; // [1000 0000]
709 waveform_picker_regs->start_date = startDate;
709 waveform_picker_regs->start_date = startDate;
710 }
710 }
711
711
712 void launch_spectral_matrix( unsigned char mode )
712 void launch_spectral_matrix( unsigned char mode )
713 {
713 {
714 reset_current_sm_ring_nodes();
714 reset_current_sm_ring_nodes();
715 reset_spectral_matrix_regs();
715 reset_spectral_matrix_regs();
716 // Spectral Matrices simulator
716 // Spectral Matrices simulator
717 timer_start( (gptimer_regs_t*) REGS_ADDR_GPTIMER, TIMER_SM_SIMULATOR );
717 timer_start( (gptimer_regs_t*) REGS_ADDR_GPTIMER, TIMER_SM_SIMULATOR );
718 set_local_nb_interrupt_f0_MAX();
718 set_local_nb_interrupt_f0_MAX();
719 LEON_Clear_interrupt( IRQ_SM );
719 LEON_Clear_interrupt( IRQ_SM );
720 LEON_Unmask_interrupt( IRQ_SM );
720 LEON_Unmask_interrupt( IRQ_SM );
721 }
721 }
722
722
723 //****************
723 //****************
724 // CLOSING ACTIONS
724 // CLOSING ACTIONS
725 void update_last_TC_exe(ccsdsTelecommandPacket_t *TC, unsigned char *time)
725 void update_last_TC_exe(ccsdsTelecommandPacket_t *TC, unsigned char *time)
726 {
726 {
727 /** This function is used to update the HK packets statistics after a successful TC execution.
727 /** This function is used to update the HK packets statistics after a successful TC execution.
728 *
728 *
729 * @param TC points to the TC being processed
729 * @param TC points to the TC being processed
730 * @param time is the time used to date the TC execution
730 * @param time is the time used to date the TC execution
731 *
731 *
732 */
732 */
733
733
734 housekeeping_packet.hk_lfr_last_exe_tc_id[0] = TC->packetID[0];
734 housekeeping_packet.hk_lfr_last_exe_tc_id[0] = TC->packetID[0];
735 housekeeping_packet.hk_lfr_last_exe_tc_id[1] = TC->packetID[1];
735 housekeeping_packet.hk_lfr_last_exe_tc_id[1] = TC->packetID[1];
736 housekeeping_packet.hk_lfr_last_exe_tc_type[0] = 0x00;
736 housekeeping_packet.hk_lfr_last_exe_tc_type[0] = 0x00;
737 housekeeping_packet.hk_lfr_last_exe_tc_type[1] = TC->serviceType;
737 housekeeping_packet.hk_lfr_last_exe_tc_type[1] = TC->serviceType;
738 housekeeping_packet.hk_lfr_last_exe_tc_subtype[0] = 0x00;
738 housekeeping_packet.hk_lfr_last_exe_tc_subtype[0] = 0x00;
739 housekeeping_packet.hk_lfr_last_exe_tc_subtype[1] = TC->serviceSubType;
739 housekeeping_packet.hk_lfr_last_exe_tc_subtype[1] = TC->serviceSubType;
740 housekeeping_packet.hk_lfr_last_exe_tc_time[0] = time[0];
740 housekeeping_packet.hk_lfr_last_exe_tc_time[0] = time[0];
741 housekeeping_packet.hk_lfr_last_exe_tc_time[1] = time[1];
741 housekeeping_packet.hk_lfr_last_exe_tc_time[1] = time[1];
742 housekeeping_packet.hk_lfr_last_exe_tc_time[2] = time[2];
742 housekeeping_packet.hk_lfr_last_exe_tc_time[2] = time[2];
743 housekeeping_packet.hk_lfr_last_exe_tc_time[3] = time[3];
743 housekeeping_packet.hk_lfr_last_exe_tc_time[3] = time[3];
744 housekeeping_packet.hk_lfr_last_exe_tc_time[4] = time[4];
744 housekeeping_packet.hk_lfr_last_exe_tc_time[4] = time[4];
745 housekeeping_packet.hk_lfr_last_exe_tc_time[5] = time[5];
745 housekeeping_packet.hk_lfr_last_exe_tc_time[5] = time[5];
746 }
746 }
747
747
748 void update_last_TC_rej(ccsdsTelecommandPacket_t *TC, unsigned char *time)
748 void update_last_TC_rej(ccsdsTelecommandPacket_t *TC, unsigned char *time)
749 {
749 {
750 /** This function is used to update the HK packets statistics after a TC rejection.
750 /** This function is used to update the HK packets statistics after a TC rejection.
751 *
751 *
752 * @param TC points to the TC being processed
752 * @param TC points to the TC being processed
753 * @param time is the time used to date the TC rejection
753 * @param time is the time used to date the TC rejection
754 *
754 *
755 */
755 */
756
756
757 housekeeping_packet.hk_lfr_last_rej_tc_id[0] = TC->packetID[0];
757 housekeeping_packet.hk_lfr_last_rej_tc_id[0] = TC->packetID[0];
758 housekeeping_packet.hk_lfr_last_rej_tc_id[1] = TC->packetID[1];
758 housekeeping_packet.hk_lfr_last_rej_tc_id[1] = TC->packetID[1];
759 housekeeping_packet.hk_lfr_last_rej_tc_type[0] = 0x00;
759 housekeeping_packet.hk_lfr_last_rej_tc_type[0] = 0x00;
760 housekeeping_packet.hk_lfr_last_rej_tc_type[1] = TC->serviceType;
760 housekeeping_packet.hk_lfr_last_rej_tc_type[1] = TC->serviceType;
761 housekeeping_packet.hk_lfr_last_rej_tc_subtype[0] = 0x00;
761 housekeeping_packet.hk_lfr_last_rej_tc_subtype[0] = 0x00;
762 housekeeping_packet.hk_lfr_last_rej_tc_subtype[1] = TC->serviceSubType;
762 housekeeping_packet.hk_lfr_last_rej_tc_subtype[1] = TC->serviceSubType;
763 housekeeping_packet.hk_lfr_last_rej_tc_time[0] = time[0];
763 housekeeping_packet.hk_lfr_last_rej_tc_time[0] = time[0];
764 housekeeping_packet.hk_lfr_last_rej_tc_time[1] = time[1];
764 housekeeping_packet.hk_lfr_last_rej_tc_time[1] = time[1];
765 housekeeping_packet.hk_lfr_last_rej_tc_time[2] = time[2];
765 housekeeping_packet.hk_lfr_last_rej_tc_time[2] = time[2];
766 housekeeping_packet.hk_lfr_last_rej_tc_time[3] = time[3];
766 housekeeping_packet.hk_lfr_last_rej_tc_time[3] = time[3];
767 housekeeping_packet.hk_lfr_last_rej_tc_time[4] = time[4];
767 housekeeping_packet.hk_lfr_last_rej_tc_time[4] = time[4];
768 housekeeping_packet.hk_lfr_last_rej_tc_time[5] = time[5];
768 housekeeping_packet.hk_lfr_last_rej_tc_time[5] = time[5];
769 }
769 }
770
770
771 void close_action(ccsdsTelecommandPacket_t *TC, int result, rtems_id queue_id, unsigned char *time)
771 void close_action(ccsdsTelecommandPacket_t *TC, int result, rtems_id queue_id, unsigned char *time)
772 {
772 {
773 /** This function is the last step of the TC execution workflow.
773 /** This function is the last step of the TC execution workflow.
774 *
774 *
775 * @param TC points to the TC being processed
775 * @param TC points to the TC being processed
776 * @param result is the result of the TC execution (LFR_SUCCESSFUL / LFR_DEFAULT)
776 * @param result is the result of the TC execution (LFR_SUCCESSFUL / LFR_DEFAULT)
777 * @param queue_id is the id of the RTEMS message queue used to send TM packets
777 * @param queue_id is the id of the RTEMS message queue used to send TM packets
778 * @param time is the time used to date the TC execution
778 * @param time is the time used to date the TC execution
779 *
779 *
780 */
780 */
781
781
782 unsigned int val = 0;
782 unsigned int val = 0;
783
783
784 if (result == LFR_SUCCESSFUL)
784 if (result == LFR_SUCCESSFUL)
785 {
785 {
786 if ( !( (TC->serviceType==TC_TYPE_TIME) && (TC->serviceSubType==TC_SUBTYPE_UPDT_TIME) )
786 if ( !( (TC->serviceType==TC_TYPE_TIME) && (TC->serviceSubType==TC_SUBTYPE_UPDT_TIME) )
787 &&
787 &&
788 !( (TC->serviceType==TC_TYPE_GEN) && (TC->serviceSubType==TC_SUBTYPE_UPDT_INFO))
788 !( (TC->serviceType==TC_TYPE_GEN) && (TC->serviceSubType==TC_SUBTYPE_UPDT_INFO))
789 )
789 )
790 {
790 {
791 send_tm_lfr_tc_exe_success( TC, queue_id, time );
791 send_tm_lfr_tc_exe_success( TC, queue_id, time );
792 }
792 }
793 update_last_TC_exe( TC, time );
793 update_last_TC_exe( TC, time );
794 val = housekeeping_packet.hk_lfr_exe_tc_cnt[0] * 256 + housekeeping_packet.hk_lfr_exe_tc_cnt[1];
794 val = housekeeping_packet.hk_lfr_exe_tc_cnt[0] * 256 + housekeeping_packet.hk_lfr_exe_tc_cnt[1];
795 val++;
795 val++;
796 housekeeping_packet.hk_lfr_exe_tc_cnt[0] = (unsigned char) (val >> 8);
796 housekeeping_packet.hk_lfr_exe_tc_cnt[0] = (unsigned char) (val >> 8);
797 housekeeping_packet.hk_lfr_exe_tc_cnt[1] = (unsigned char) (val);
797 housekeeping_packet.hk_lfr_exe_tc_cnt[1] = (unsigned char) (val);
798 }
798 }
799 else
799 else
800 {
800 {
801 update_last_TC_rej( TC, time );
801 update_last_TC_rej( TC, time );
802 val = housekeeping_packet.hk_lfr_rej_tc_cnt[0] * 256 + housekeeping_packet.hk_lfr_rej_tc_cnt[1];
802 val = housekeeping_packet.hk_lfr_rej_tc_cnt[0] * 256 + housekeeping_packet.hk_lfr_rej_tc_cnt[1];
803 val++;
803 val++;
804 housekeeping_packet.hk_lfr_rej_tc_cnt[0] = (unsigned char) (val >> 8);
804 housekeeping_packet.hk_lfr_rej_tc_cnt[0] = (unsigned char) (val >> 8);
805 housekeeping_packet.hk_lfr_rej_tc_cnt[1] = (unsigned char) (val);
805 housekeeping_packet.hk_lfr_rej_tc_cnt[1] = (unsigned char) (val);
806 }
806 }
807 }
807 }
808
808
809 //***************************
809 //***************************
810 // Interrupt Service Routines
810 // Interrupt Service Routines
811 rtems_isr commutation_isr1( rtems_vector_number vector )
811 rtems_isr commutation_isr1( rtems_vector_number vector )
812 {
812 {
813 if (rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_0 ) != RTEMS_SUCCESSFUL) {
813 if (rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_0 ) != RTEMS_SUCCESSFUL) {
814 printf("In commutation_isr1 *** Error sending event to DUMB\n");
814 printf("In commutation_isr1 *** Error sending event to DUMB\n");
815 }
815 }
816 }
816 }
817
817
818 rtems_isr commutation_isr2( rtems_vector_number vector )
818 rtems_isr commutation_isr2( rtems_vector_number vector )
819 {
819 {
820 if (rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_0 ) != RTEMS_SUCCESSFUL) {
820 if (rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_0 ) != RTEMS_SUCCESSFUL) {
821 printf("In commutation_isr2 *** Error sending event to DUMB\n");
821 printf("In commutation_isr2 *** Error sending event to DUMB\n");
822 }
822 }
823 }
823 }
824
824
825 //****************
825 //****************
826 // OTHER FUNCTIONS
826 // OTHER FUNCTIONS
827 void updateLFRCurrentMode()
827 void updateLFRCurrentMode()
828 {
828 {
829 /** This function updates the value of the global variable lfrCurrentMode.
829 /** This function updates the value of the global variable lfrCurrentMode.
830 *
830 *
831 * lfrCurrentMode is a parameter used by several functions to know in which mode LFR is running.
831 * lfrCurrentMode is a parameter used by several functions to know in which mode LFR is running.
832 *
832 *
833 */
833 */
834 // update the local value of lfrCurrentMode with the value contained in the housekeeping_packet structure
834 // update the local value of lfrCurrentMode with the value contained in the housekeeping_packet structure
835 lfrCurrentMode = (housekeeping_packet.lfr_status_word[0] & 0xf0) >> 4;
835 lfrCurrentMode = (housekeeping_packet.lfr_status_word[0] & 0xf0) >> 4;
836 }
836 }
837
837
@@ -1,484 +1,482
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 int action_load_common_par(ccsdsTelecommandPacket_t *TC)
17 int action_load_common_par(ccsdsTelecommandPacket_t *TC)
18 {
18 {
19 /** This function updates the LFR registers with the incoming common parameters.
19 /** This function updates the LFR registers with the incoming common parameters.
20 *
20 *
21 * @param TC points to the TeleCommand packet that is being processed
21 * @param TC points to the TeleCommand packet that is being processed
22 *
22 *
23 *
23 *
24 */
24 */
25
25
26 parameter_dump_packet.unused0 = TC->dataAndCRC[0];
26 parameter_dump_packet.unused0 = TC->dataAndCRC[0];
27 parameter_dump_packet.bw_sp0_sp1_r0_r1 = TC->dataAndCRC[1];
27 parameter_dump_packet.bw_sp0_sp1_r0_r1 = TC->dataAndCRC[1];
28 set_wfp_data_shaping(parameter_dump_packet.bw_sp0_sp1_r0_r1);
28 set_wfp_data_shaping( );
29 return LFR_SUCCESSFUL;
29 return LFR_SUCCESSFUL;
30 }
30 }
31
31
32 int action_load_normal_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
32 int action_load_normal_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
33 {
33 {
34 /** This function updates the LFR registers with the incoming normal parameters.
34 /** This function updates the LFR registers with the incoming normal parameters.
35 *
35 *
36 * @param TC points to the TeleCommand packet that is being processed
36 * @param TC points to the TeleCommand packet that is being processed
37 * @param queue_id is the id of the queue which handles TM related to this execution step
37 * @param queue_id is the id of the queue which handles TM related to this execution step
38 *
38 *
39 */
39 */
40
40
41 int result;
41 int result;
42 int flag;
42 int flag;
43 rtems_status_code status;
43 rtems_status_code status;
44
44
45 flag = LFR_SUCCESSFUL;
45 flag = LFR_SUCCESSFUL;
46
46
47 if ( (lfrCurrentMode == LFR_MODE_NORMAL) ||
47 if ( (lfrCurrentMode == LFR_MODE_NORMAL) ||
48 (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) {
48 (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) ) {
49 status = send_tm_lfr_tc_exe_not_executable( TC, queue_id, time );
49 status = send_tm_lfr_tc_exe_not_executable( TC, queue_id, time );
50 flag = LFR_DEFAULT;
50 flag = LFR_DEFAULT;
51 }
51 }
52
52
53 //***************
53 //***************
54 // sy_lfr_n_swf_l
54 // sy_lfr_n_swf_l
55 if (flag == LFR_SUCCESSFUL)
55 if (flag == LFR_SUCCESSFUL)
56 {
56 {
57 result = set_sy_lfr_n_swf_l( TC, queue_id, time );
57 result = set_sy_lfr_n_swf_l( TC, queue_id, time );
58 if (result != LFR_SUCCESSFUL)
58 if (result != LFR_SUCCESSFUL)
59 {
59 {
60 flag = LFR_DEFAULT;
60 flag = LFR_DEFAULT;
61 }
61 }
62 }
62 }
63
63
64 //***************
64 //***************
65 // sy_lfr_n_swf_p
65 // sy_lfr_n_swf_p
66 if (flag == LFR_SUCCESSFUL)
66 if (flag == LFR_SUCCESSFUL)
67 {
67 {
68 result = set_sy_lfr_n_swf_p( TC, queue_id, time );
68 result = set_sy_lfr_n_swf_p( TC, queue_id, time );
69 if (result != LFR_SUCCESSFUL)
69 if (result != LFR_SUCCESSFUL)
70 {
70 {
71 flag = LFR_DEFAULT;
71 flag = LFR_DEFAULT;
72 }
72 }
73 }
73 }
74
74
75 //***************
75 //***************
76 // SY_LFR_N_ASM_P
76 // SY_LFR_N_ASM_P
77 if (flag == LFR_SUCCESSFUL)
77 if (flag == LFR_SUCCESSFUL)
78 {
78 {
79 result = set_sy_lfr_n_asm_p( TC, queue_id );
79 result = set_sy_lfr_n_asm_p( TC, queue_id );
80 if (result != LFR_SUCCESSFUL)
80 if (result != LFR_SUCCESSFUL)
81 {
81 {
82 flag = LFR_DEFAULT;
82 flag = LFR_DEFAULT;
83 }
83 }
84 }
84 }
85
85
86 //***************
86 //***************
87 // SY_LFR_N_BP_P0
87 // SY_LFR_N_BP_P0
88 if (flag == LFR_SUCCESSFUL)
88 if (flag == LFR_SUCCESSFUL)
89 {
89 {
90 result = set_sy_lfr_n_bp_p0( TC, queue_id );
90 result = set_sy_lfr_n_bp_p0( TC, queue_id );
91 if (result != LFR_SUCCESSFUL)
91 if (result != LFR_SUCCESSFUL)
92 {
92 {
93 flag = LFR_DEFAULT;
93 flag = LFR_DEFAULT;
94 }
94 }
95 }
95 }
96
96
97 //***************
97 //***************
98 // sy_lfr_n_bp_p1
98 // sy_lfr_n_bp_p1
99 if (flag == LFR_SUCCESSFUL)
99 if (flag == LFR_SUCCESSFUL)
100 {
100 {
101 result = set_sy_lfr_n_bp_p1( TC, queue_id );
101 result = set_sy_lfr_n_bp_p1( TC, queue_id );
102 if (result != LFR_SUCCESSFUL)
102 if (result != LFR_SUCCESSFUL)
103 {
103 {
104 flag = LFR_DEFAULT;
104 flag = LFR_DEFAULT;
105 }
105 }
106 }
106 }
107
107
108 //*********************
108 //*********************
109 // sy_lfr_n_cwf_long_f3
109 // sy_lfr_n_cwf_long_f3
110 if (flag == LFR_SUCCESSFUL)
110 if (flag == LFR_SUCCESSFUL)
111 {
111 {
112 result = set_sy_lfr_n_cwf_long_f3( TC, queue_id );
112 result = set_sy_lfr_n_cwf_long_f3( TC, queue_id );
113 if (result != LFR_SUCCESSFUL)
113 if (result != LFR_SUCCESSFUL)
114 {
114 {
115 flag = LFR_DEFAULT;
115 flag = LFR_DEFAULT;
116 }
116 }
117 }
117 }
118
118
119 return flag;
119 return flag;
120 }
120 }
121
121
122 int action_load_burst_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
122 int action_load_burst_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
123 {
123 {
124 /** This function updates the LFR registers with the incoming burst parameters.
124 /** This function updates the LFR registers with the incoming burst parameters.
125 *
125 *
126 * @param TC points to the TeleCommand packet that is being processed
126 * @param TC points to the TeleCommand packet that is being processed
127 * @param queue_id is the id of the queue which handles TM related to this execution step
127 * @param queue_id is the id of the queue which handles TM related to this execution step
128 *
128 *
129 */
129 */
130
130
131 int result;
131 int result;
132 unsigned char lfrMode;
132 unsigned char lfrMode;
133 rtems_status_code status;
133 rtems_status_code status;
134
134
135 result = LFR_DEFAULT;
135 result = LFR_DEFAULT;
136 lfrMode = (housekeeping_packet.lfr_status_word[0] & 0xf0) >> 4;
136 lfrMode = (housekeeping_packet.lfr_status_word[0] & 0xf0) >> 4;
137
137
138 if ( lfrMode == LFR_MODE_BURST ) {
138 if ( lfrMode == LFR_MODE_BURST ) {
139 status = send_tm_lfr_tc_exe_not_executable( TC, queue_id, time );
139 status = send_tm_lfr_tc_exe_not_executable( TC, queue_id, time );
140 result = LFR_DEFAULT;
140 result = LFR_DEFAULT;
141 }
141 }
142 else {
142 else {
143 parameter_dump_packet.sy_lfr_b_bp_p0 = TC->dataAndCRC[0];
143 parameter_dump_packet.sy_lfr_b_bp_p0 = TC->dataAndCRC[0];
144 parameter_dump_packet.sy_lfr_b_bp_p1 = TC->dataAndCRC[1];
144 parameter_dump_packet.sy_lfr_b_bp_p1 = TC->dataAndCRC[1];
145
145
146 result = LFR_SUCCESSFUL;
146 result = LFR_SUCCESSFUL;
147 }
147 }
148
148
149 return result;
149 return result;
150 }
150 }
151
151
152 int action_load_sbm1_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
152 int action_load_sbm1_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
153 {
153 {
154 /** This function updates the LFR registers with the incoming sbm1 parameters.
154 /** This function updates the LFR registers with the incoming sbm1 parameters.
155 *
155 *
156 * @param TC points to the TeleCommand packet that is being processed
156 * @param TC points to the TeleCommand packet that is being processed
157 * @param queue_id is the id of the queue which handles TM related to this execution step
157 * @param queue_id is the id of the queue which handles TM related to this execution step
158 *
158 *
159 */
159 */
160 int result;
160 int result;
161 unsigned char lfrMode;
161 unsigned char lfrMode;
162 rtems_status_code status;
162 rtems_status_code status;
163
163
164 result = LFR_DEFAULT;
164 result = LFR_DEFAULT;
165 lfrMode = (housekeeping_packet.lfr_status_word[0] & 0xf0) >> 4;
165 lfrMode = (housekeeping_packet.lfr_status_word[0] & 0xf0) >> 4;
166
166
167 if ( (lfrMode == LFR_MODE_SBM1) || (lfrMode == LFR_MODE_SBM2) ) {
167 if ( (lfrMode == LFR_MODE_SBM1) || (lfrMode == LFR_MODE_SBM2) ) {
168 status = send_tm_lfr_tc_exe_not_executable( TC, queue_id, time );
168 status = send_tm_lfr_tc_exe_not_executable( TC, queue_id, time );
169 result = LFR_DEFAULT;
169 result = LFR_DEFAULT;
170 }
170 }
171 else {
171 else {
172 parameter_dump_packet.sy_lfr_s1_bp_p0 = TC->dataAndCRC[0];
172 parameter_dump_packet.sy_lfr_s1_bp_p0 = TC->dataAndCRC[0];
173 parameter_dump_packet.sy_lfr_s1_bp_p1 = TC->dataAndCRC[1];
173 parameter_dump_packet.sy_lfr_s1_bp_p1 = TC->dataAndCRC[1];
174
174
175 result = LFR_SUCCESSFUL;
175 result = LFR_SUCCESSFUL;
176 }
176 }
177
177
178 return result;
178 return result;
179 }
179 }
180
180
181 int action_load_sbm2_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
181 int action_load_sbm2_par(ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time)
182 {
182 {
183 /** This function updates the LFR registers with the incoming sbm2 parameters.
183 /** This function updates the LFR registers with the incoming sbm2 parameters.
184 *
184 *
185 * @param TC points to the TeleCommand packet that is being processed
185 * @param TC points to the TeleCommand packet that is being processed
186 * @param queue_id is the id of the queue which handles TM related to this execution step
186 * @param queue_id is the id of the queue which handles TM related to this execution step
187 *
187 *
188 */
188 */
189
189
190 int result;
190 int result;
191 unsigned char lfrMode;
191 unsigned char lfrMode;
192 rtems_status_code status;
192 rtems_status_code status;
193
193
194 result = LFR_DEFAULT;
194 result = LFR_DEFAULT;
195 lfrMode = (housekeeping_packet.lfr_status_word[0] & 0xf0) >> 4;
195 lfrMode = (housekeeping_packet.lfr_status_word[0] & 0xf0) >> 4;
196
196
197 if ( (lfrMode == LFR_MODE_SBM2) || (lfrMode == LFR_MODE_SBM2) ) {
197 if ( (lfrMode == LFR_MODE_SBM2) || (lfrMode == LFR_MODE_SBM2) ) {
198 status = send_tm_lfr_tc_exe_not_executable( TC, queue_id, time );
198 status = send_tm_lfr_tc_exe_not_executable( TC, queue_id, time );
199 result = LFR_DEFAULT;
199 result = LFR_DEFAULT;
200 }
200 }
201 else {
201 else {
202 parameter_dump_packet.sy_lfr_s2_bp_p0 = TC->dataAndCRC[0];
202 parameter_dump_packet.sy_lfr_s2_bp_p0 = TC->dataAndCRC[0];
203 parameter_dump_packet.sy_lfr_s2_bp_p1 = TC->dataAndCRC[1];
203 parameter_dump_packet.sy_lfr_s2_bp_p1 = TC->dataAndCRC[1];
204
204
205 result = LFR_SUCCESSFUL;
205 result = LFR_SUCCESSFUL;
206 }
206 }
207
207
208 return result;
208 return result;
209 }
209 }
210
210
211 int action_dump_par( rtems_id queue_id )
211 int action_dump_par( rtems_id queue_id )
212 {
212 {
213 /** This function dumps the LFR parameters by sending the appropriate TM packet to the dedicated RTEMS message queue.
213 /** This function dumps the LFR parameters by sending the appropriate TM packet to the dedicated RTEMS message queue.
214 *
214 *
215 * @param queue_id is the id of the queue which handles TM related to this execution step.
215 * @param queue_id is the id of the queue which handles TM related to this execution step.
216 *
216 *
217 * @return RTEMS directive status codes:
217 * @return RTEMS directive status codes:
218 * - RTEMS_SUCCESSFUL - message sent successfully
218 * - RTEMS_SUCCESSFUL - message sent successfully
219 * - RTEMS_INVALID_ID - invalid queue id
219 * - RTEMS_INVALID_ID - invalid queue id
220 * - RTEMS_INVALID_SIZE - invalid message size
220 * - RTEMS_INVALID_SIZE - invalid message size
221 * - RTEMS_INVALID_ADDRESS - buffer is NULL
221 * - RTEMS_INVALID_ADDRESS - buffer is NULL
222 * - RTEMS_UNSATISFIED - out of message buffers
222 * - RTEMS_UNSATISFIED - out of message buffers
223 * - RTEMS_TOO_MANY - queue s limit has been reached
223 * - RTEMS_TOO_MANY - queue s limit has been reached
224 *
224 *
225 */
225 */
226
226
227 int status;
227 int status;
228
228
229 // UPDATE TIME
229 // UPDATE TIME
230 increment_seq_counter( parameter_dump_packet.packetSequenceControl );
230 increment_seq_counter( parameter_dump_packet.packetSequenceControl );
231 parameter_dump_packet.time[0] = (unsigned char) (time_management_regs->coarse_time>>24);
231 parameter_dump_packet.time[0] = (unsigned char) (time_management_regs->coarse_time>>24);
232 parameter_dump_packet.time[1] = (unsigned char) (time_management_regs->coarse_time>>16);
232 parameter_dump_packet.time[1] = (unsigned char) (time_management_regs->coarse_time>>16);
233 parameter_dump_packet.time[2] = (unsigned char) (time_management_regs->coarse_time>>8);
233 parameter_dump_packet.time[2] = (unsigned char) (time_management_regs->coarse_time>>8);
234 parameter_dump_packet.time[3] = (unsigned char) (time_management_regs->coarse_time);
234 parameter_dump_packet.time[3] = (unsigned char) (time_management_regs->coarse_time);
235 parameter_dump_packet.time[4] = (unsigned char) (time_management_regs->fine_time>>8);
235 parameter_dump_packet.time[4] = (unsigned char) (time_management_regs->fine_time>>8);
236 parameter_dump_packet.time[5] = (unsigned char) (time_management_regs->fine_time);
236 parameter_dump_packet.time[5] = (unsigned char) (time_management_regs->fine_time);
237 // SEND DATA
237 // SEND DATA
238 status = rtems_message_queue_send( queue_id, &parameter_dump_packet,
238 status = rtems_message_queue_send( queue_id, &parameter_dump_packet,
239 PACKET_LENGTH_PARAMETER_DUMP + CCSDS_TC_TM_PACKET_OFFSET + CCSDS_PROTOCOLE_EXTRA_BYTES);
239 PACKET_LENGTH_PARAMETER_DUMP + CCSDS_TC_TM_PACKET_OFFSET + CCSDS_PROTOCOLE_EXTRA_BYTES);
240 if (status != RTEMS_SUCCESSFUL) {
240 if (status != RTEMS_SUCCESSFUL) {
241 PRINTF1("in action_dump *** ERR sending packet, code %d", status)
241 PRINTF1("in action_dump *** ERR sending packet, code %d", status)
242 }
242 }
243
243
244 return status;
244 return status;
245 }
245 }
246
246
247 //***********************
247 //***********************
248 // NORMAL MODE PARAMETERS
248 // NORMAL MODE PARAMETERS
249
249
250 int set_sy_lfr_n_swf_l( ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time )
250 int set_sy_lfr_n_swf_l( ccsdsTelecommandPacket_t *TC, rtems_id queue_id, unsigned char *time )
251 {
251 {
252 /** This function sets the number of points of a snapshot (sy_lfr_n_swf_l).
252 /** This function sets the number of points of a snapshot (sy_lfr_n_swf_l).
253 *
253 *
254 * @param TC points to the TeleCommand packet that is being processed
254 * @param TC points to the TeleCommand packet that is being processed
255 * @param queue_id is the id of the queue which handles TM related to this execution step
255 * @param queue_id is the id of the queue which handles TM related to this execution step
256 *
256 *
257 */
257 */
258
258
259 unsigned int tmp;
259 unsigned int tmp;
260 int result;
260 int result;
261 unsigned char msb;
261 unsigned char msb;
262 unsigned char lsb;
262 unsigned char lsb;
263 rtems_status_code status;
263 rtems_status_code status;
264
264
265 msb = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_SWF_L ];
265 msb = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_SWF_L ];
266 lsb = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_SWF_L+1 ];
266 lsb = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_SWF_L+1 ];
267
267
268 tmp = ( unsigned int ) floor(
268 tmp = ( unsigned int ) floor(
269 ( ( msb*256 ) + lsb ) / 16
269 ( ( msb*256 ) + lsb ) / 16
270 ) * 16;
270 ) * 16;
271
271
272 if ( (tmp < 16) || (tmp > 2048) ) // the snapshot period is a multiple of 16
272 if ( (tmp < 16) || (tmp > 2048) ) // the snapshot period is a multiple of 16
273 { // 2048 is the maximum limit due to the size of the buffers
273 { // 2048 is the maximum limit due to the size of the buffers
274 status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, BYTE_POS_SY_LFR_N_SWF_L+10, lsb, time );
274 status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, BYTE_POS_SY_LFR_N_SWF_L+10, lsb, time );
275 result = WRONG_APP_DATA;
275 result = WRONG_APP_DATA;
276 }
276 }
277 else if (tmp != 2048)
277 else if (tmp != 2048)
278 {
278 {
279 status = send_tm_lfr_tc_exe_not_implemented( TC, queue_id, time );
279 status = send_tm_lfr_tc_exe_not_implemented( TC, queue_id, time );
280 result = FUNCT_NOT_IMPL;
280 result = FUNCT_NOT_IMPL;
281 }
281 }
282 else
282 else
283 {
283 {
284 parameter_dump_packet.sy_lfr_n_swf_l[0] = (unsigned char) (tmp >> 8);
284 parameter_dump_packet.sy_lfr_n_swf_l[0] = (unsigned char) (tmp >> 8);
285 parameter_dump_packet.sy_lfr_n_swf_l[1] = (unsigned char) (tmp );
285 parameter_dump_packet.sy_lfr_n_swf_l[1] = (unsigned char) (tmp );
286 result = LFR_SUCCESSFUL;
286 result = LFR_SUCCESSFUL;
287 }
287 }
288
288
289 return result;
289 return result;
290 }
290 }
291
291
292 int set_sy_lfr_n_swf_p(ccsdsTelecommandPacket_t *TC, rtems_id queue_id , unsigned char *time)
292 int set_sy_lfr_n_swf_p(ccsdsTelecommandPacket_t *TC, rtems_id queue_id , unsigned char *time)
293 {
293 {
294 /** This function sets the time between two snapshots, in s (sy_lfr_n_swf_p).
294 /** This function sets the time between two snapshots, in s (sy_lfr_n_swf_p).
295 *
295 *
296 * @param TC points to the TeleCommand packet that is being processed
296 * @param TC points to the TeleCommand packet that is being processed
297 * @param queue_id is the id of the queue which handles TM related to this execution step
297 * @param queue_id is the id of the queue which handles TM related to this execution step
298 *
298 *
299 */
299 */
300
300
301 unsigned int tmp;
301 unsigned int tmp;
302 int result;
302 int result;
303 unsigned char msb;
303 unsigned char msb;
304 unsigned char lsb;
304 unsigned char lsb;
305 rtems_status_code status;
305 rtems_status_code status;
306
306
307 msb = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_SWF_P ];
307 msb = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_SWF_P ];
308 lsb = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_SWF_P+1 ];
308 lsb = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_SWF_P+1 ];
309
309
310 tmp = ( unsigned int ) floor(
310 tmp = msb * 256 + lsb;
311 ( ( msb*256 ) + lsb ) / 8
312 ) * 8;
313
311
314 if ( (tmp < 16) || (tmp > 65528) )
312 if ( tmp < 16 )
315 {
313 {
316 status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, BYTE_POS_SY_LFR_N_SWF_P+10, lsb, time );
314 status = send_tm_lfr_tc_exe_inconsistent( TC, queue_id, BYTE_POS_SY_LFR_N_SWF_P+10, lsb, time );
317 result = WRONG_APP_DATA;
315 result = WRONG_APP_DATA;
318 }
316 }
319 else
317 else
320 {
318 {
321 parameter_dump_packet.sy_lfr_n_swf_p[0] = (unsigned char) (tmp >> 8);
319 parameter_dump_packet.sy_lfr_n_swf_p[0] = (unsigned char) (tmp >> 8);
322 parameter_dump_packet.sy_lfr_n_swf_p[1] = (unsigned char) (tmp );
320 parameter_dump_packet.sy_lfr_n_swf_p[1] = (unsigned char) (tmp );
323 result = LFR_SUCCESSFUL;
321 result = LFR_SUCCESSFUL;
324 }
322 }
325
323
326 return result;
324 return result;
327 }
325 }
328
326
329 int set_sy_lfr_n_asm_p( ccsdsTelecommandPacket_t *TC, rtems_id queue_id )
327 int set_sy_lfr_n_asm_p( ccsdsTelecommandPacket_t *TC, rtems_id queue_id )
330 {
328 {
331 /** This function sets the time between two full spectral matrices transmission, in s (SY_LFR_N_ASM_P).
329 /** This function sets the time between two full spectral matrices transmission, in s (SY_LFR_N_ASM_P).
332 *
330 *
333 * @param TC points to the TeleCommand packet that is being processed
331 * @param TC points to the TeleCommand packet that is being processed
334 * @param queue_id is the id of the queue which handles TM related to this execution step
332 * @param queue_id is the id of the queue which handles TM related to this execution step
335 *
333 *
336 */
334 */
337
335
338 int result;
336 int result;
339 unsigned char msb;
337 unsigned char msb;
340 unsigned char lsb;
338 unsigned char lsb;
341
339
342 msb = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_ASM_P ];
340 msb = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_ASM_P ];
343 lsb = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_ASM_P+1 ];
341 lsb = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_ASM_P+1 ];
344
342
345 parameter_dump_packet.sy_lfr_n_asm_p[0] = msb;
343 parameter_dump_packet.sy_lfr_n_asm_p[0] = msb;
346 parameter_dump_packet.sy_lfr_n_asm_p[1] = lsb;
344 parameter_dump_packet.sy_lfr_n_asm_p[1] = lsb;
347 result = LFR_SUCCESSFUL;
345 result = LFR_SUCCESSFUL;
348
346
349 return result;
347 return result;
350 }
348 }
351
349
352 int set_sy_lfr_n_bp_p0( ccsdsTelecommandPacket_t *TC, rtems_id queue_id )
350 int set_sy_lfr_n_bp_p0( ccsdsTelecommandPacket_t *TC, rtems_id queue_id )
353 {
351 {
354 /** This function sets the time between two basic parameter sets, in s (SY_LFR_N_BP_P0).
352 /** This function sets the time between two basic parameter sets, in s (SY_LFR_N_BP_P0).
355 *
353 *
356 * @param TC points to the TeleCommand packet that is being processed
354 * @param TC points to the TeleCommand packet that is being processed
357 * @param queue_id is the id of the queue which handles TM related to this execution step
355 * @param queue_id is the id of the queue which handles TM related to this execution step
358 *
356 *
359 */
357 */
360
358
361 int status;
359 int status;
362
360
363 status = LFR_SUCCESSFUL;
361 status = LFR_SUCCESSFUL;
364
362
365 parameter_dump_packet.sy_lfr_n_bp_p0 = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_BP_P0 ];
363 parameter_dump_packet.sy_lfr_n_bp_p0 = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_BP_P0 ];
366
364
367 return status;
365 return status;
368 }
366 }
369
367
370 int set_sy_lfr_n_bp_p1(ccsdsTelecommandPacket_t *TC, rtems_id queue_id)
368 int set_sy_lfr_n_bp_p1(ccsdsTelecommandPacket_t *TC, rtems_id queue_id)
371 {
369 {
372 /** This function sets the time between two basic parameter sets (autocorrelation + crosscorrelation), in s (sy_lfr_n_bp_p1).
370 /** This function sets the time between two basic parameter sets (autocorrelation + crosscorrelation), in s (sy_lfr_n_bp_p1).
373 *
371 *
374 * @param TC points to the TeleCommand packet that is being processed
372 * @param TC points to the TeleCommand packet that is being processed
375 * @param queue_id is the id of the queue which handles TM related to this execution step
373 * @param queue_id is the id of the queue which handles TM related to this execution step
376 *
374 *
377 */
375 */
378
376
379 int status;
377 int status;
380
378
381 status = LFR_SUCCESSFUL;
379 status = LFR_SUCCESSFUL;
382
380
383 parameter_dump_packet.sy_lfr_n_bp_p1 = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_BP_P1 ];
381 parameter_dump_packet.sy_lfr_n_bp_p1 = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_BP_P1 ];
384
382
385 return status;
383 return status;
386 }
384 }
387
385
388 int set_sy_lfr_n_cwf_long_f3(ccsdsTelecommandPacket_t *TC, rtems_id queue_id)
386 int set_sy_lfr_n_cwf_long_f3(ccsdsTelecommandPacket_t *TC, rtems_id queue_id)
389 {
387 {
390 /** This function allows to switch from CWF_F3 packets to CWF_LONG_F3 packets.
388 /** This function allows to switch from CWF_F3 packets to CWF_LONG_F3 packets.
391 *
389 *
392 * @param TC points to the TeleCommand packet that is being processed
390 * @param TC points to the TeleCommand packet that is being processed
393 * @param queue_id is the id of the queue which handles TM related to this execution step
391 * @param queue_id is the id of the queue which handles TM related to this execution step
394 *
392 *
395 */
393 */
396
394
397 int status;
395 int status;
398
396
399 status = LFR_SUCCESSFUL;
397 status = LFR_SUCCESSFUL;
400
398
401 parameter_dump_packet.sy_lfr_n_cwf_long_f3 = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_CWF_LONG_F3 ];
399 parameter_dump_packet.sy_lfr_n_cwf_long_f3 = TC->dataAndCRC[ BYTE_POS_SY_LFR_N_CWF_LONG_F3 ];
402
400
403 return status;
401 return status;
404 }
402 }
405
403
406 //**********************
404 //**********************
407 // BURST MODE PARAMETERS
405 // BURST MODE PARAMETERS
408
406
409 //*********************
407 //*********************
410 // SBM1 MODE PARAMETERS
408 // SBM1 MODE PARAMETERS
411
409
412 //*********************
410 //*********************
413 // SBM2 MODE PARAMETERS
411 // SBM2 MODE PARAMETERS
414
412
415 //**********
413 //**********
416 // init dump
414 // init dump
417
415
418 void init_parameter_dump( void )
416 void init_parameter_dump( void )
419 {
417 {
420 /** This function initialize the parameter_dump_packet global variable with default values.
418 /** This function initialize the parameter_dump_packet global variable with default values.
421 *
419 *
422 */
420 */
423
421
424 parameter_dump_packet.targetLogicalAddress = CCSDS_DESTINATION_ID;
422 parameter_dump_packet.targetLogicalAddress = CCSDS_DESTINATION_ID;
425 parameter_dump_packet.protocolIdentifier = CCSDS_PROTOCOLE_ID;
423 parameter_dump_packet.protocolIdentifier = CCSDS_PROTOCOLE_ID;
426 parameter_dump_packet.reserved = CCSDS_RESERVED;
424 parameter_dump_packet.reserved = CCSDS_RESERVED;
427 parameter_dump_packet.userApplication = CCSDS_USER_APP;
425 parameter_dump_packet.userApplication = CCSDS_USER_APP;
428 parameter_dump_packet.packetID[0] = (unsigned char) (TM_PACKET_ID_PARAMETER_DUMP >> 8);
426 parameter_dump_packet.packetID[0] = (unsigned char) (TM_PACKET_ID_PARAMETER_DUMP >> 8);
429 parameter_dump_packet.packetID[1] = (unsigned char) TM_PACKET_ID_PARAMETER_DUMP;
427 parameter_dump_packet.packetID[1] = (unsigned char) TM_PACKET_ID_PARAMETER_DUMP;
430 parameter_dump_packet.packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE;
428 parameter_dump_packet.packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE;
431 parameter_dump_packet.packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT;
429 parameter_dump_packet.packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT;
432 parameter_dump_packet.packetLength[0] = (unsigned char) (PACKET_LENGTH_PARAMETER_DUMP >> 8);
430 parameter_dump_packet.packetLength[0] = (unsigned char) (PACKET_LENGTH_PARAMETER_DUMP >> 8);
433 parameter_dump_packet.packetLength[1] = (unsigned char) PACKET_LENGTH_PARAMETER_DUMP;
431 parameter_dump_packet.packetLength[1] = (unsigned char) PACKET_LENGTH_PARAMETER_DUMP;
434 // DATA FIELD HEADER
432 // DATA FIELD HEADER
435 parameter_dump_packet.spare1_pusVersion_spare2 = SPARE1_PUSVERSION_SPARE2;
433 parameter_dump_packet.spare1_pusVersion_spare2 = SPARE1_PUSVERSION_SPARE2;
436 parameter_dump_packet.serviceType = TM_TYPE_PARAMETER_DUMP;
434 parameter_dump_packet.serviceType = TM_TYPE_PARAMETER_DUMP;
437 parameter_dump_packet.serviceSubType = TM_SUBTYPE_PARAMETER_DUMP;
435 parameter_dump_packet.serviceSubType = TM_SUBTYPE_PARAMETER_DUMP;
438 parameter_dump_packet.destinationID = TM_DESTINATION_ID_GROUND;
436 parameter_dump_packet.destinationID = TM_DESTINATION_ID_GROUND;
439 parameter_dump_packet.time[0] = (unsigned char) (time_management_regs->coarse_time>>24);
437 parameter_dump_packet.time[0] = (unsigned char) (time_management_regs->coarse_time>>24);
440 parameter_dump_packet.time[1] = (unsigned char) (time_management_regs->coarse_time>>16);
438 parameter_dump_packet.time[1] = (unsigned char) (time_management_regs->coarse_time>>16);
441 parameter_dump_packet.time[2] = (unsigned char) (time_management_regs->coarse_time>>8);
439 parameter_dump_packet.time[2] = (unsigned char) (time_management_regs->coarse_time>>8);
442 parameter_dump_packet.time[3] = (unsigned char) (time_management_regs->coarse_time);
440 parameter_dump_packet.time[3] = (unsigned char) (time_management_regs->coarse_time);
443 parameter_dump_packet.time[4] = (unsigned char) (time_management_regs->fine_time>>8);
441 parameter_dump_packet.time[4] = (unsigned char) (time_management_regs->fine_time>>8);
444 parameter_dump_packet.time[5] = (unsigned char) (time_management_regs->fine_time);
442 parameter_dump_packet.time[5] = (unsigned char) (time_management_regs->fine_time);
445 parameter_dump_packet.sid = SID_PARAMETER_DUMP;
443 parameter_dump_packet.sid = SID_PARAMETER_DUMP;
446
444
447 //******************
445 //******************
448 // COMMON PARAMETERS
446 // COMMON PARAMETERS
449 parameter_dump_packet.unused0 = DEFAULT_SY_LFR_COMMON0;
447 parameter_dump_packet.unused0 = DEFAULT_SY_LFR_COMMON0;
450 parameter_dump_packet.bw_sp0_sp1_r0_r1 = DEFAULT_SY_LFR_COMMON1;
448 parameter_dump_packet.bw_sp0_sp1_r0_r1 = DEFAULT_SY_LFR_COMMON1;
451
449
452 //******************
450 //******************
453 // NORMAL PARAMETERS
451 // NORMAL PARAMETERS
454 parameter_dump_packet.sy_lfr_n_swf_l[0] = (unsigned char) (SY_LFR_N_SWF_L >> 8);
452 parameter_dump_packet.sy_lfr_n_swf_l[0] = (unsigned char) (SY_LFR_N_SWF_L >> 8);
455 parameter_dump_packet.sy_lfr_n_swf_l[1] = (unsigned char) (SY_LFR_N_SWF_L );
453 parameter_dump_packet.sy_lfr_n_swf_l[1] = (unsigned char) (SY_LFR_N_SWF_L );
456 parameter_dump_packet.sy_lfr_n_swf_p[0] = (unsigned char) (SY_LFR_N_SWF_P >> 8);
454 parameter_dump_packet.sy_lfr_n_swf_p[0] = (unsigned char) (SY_LFR_N_SWF_P >> 8);
457 parameter_dump_packet.sy_lfr_n_swf_p[1] = (unsigned char) (SY_LFR_N_SWF_P );
455 parameter_dump_packet.sy_lfr_n_swf_p[1] = (unsigned char) (SY_LFR_N_SWF_P );
458 parameter_dump_packet.sy_lfr_n_asm_p[0] = (unsigned char) (SY_LFR_N_ASM_P >> 8);
456 parameter_dump_packet.sy_lfr_n_asm_p[0] = (unsigned char) (SY_LFR_N_ASM_P >> 8);
459 parameter_dump_packet.sy_lfr_n_asm_p[1] = (unsigned char) (SY_LFR_N_ASM_P );
457 parameter_dump_packet.sy_lfr_n_asm_p[1] = (unsigned char) (SY_LFR_N_ASM_P );
460 parameter_dump_packet.sy_lfr_n_bp_p0 = (unsigned char) SY_LFR_N_BP_P0;
458 parameter_dump_packet.sy_lfr_n_bp_p0 = (unsigned char) SY_LFR_N_BP_P0;
461 parameter_dump_packet.sy_lfr_n_bp_p1 = (unsigned char) SY_LFR_N_BP_P1;
459 parameter_dump_packet.sy_lfr_n_bp_p1 = (unsigned char) SY_LFR_N_BP_P1;
462
460
463 //*****************
461 //*****************
464 // BURST PARAMETERS
462 // BURST PARAMETERS
465 parameter_dump_packet.sy_lfr_b_bp_p0 = (unsigned char) DEFAULT_SY_LFR_B_BP_P0;
463 parameter_dump_packet.sy_lfr_b_bp_p0 = (unsigned char) DEFAULT_SY_LFR_B_BP_P0;
466 parameter_dump_packet.sy_lfr_b_bp_p1 = (unsigned char) DEFAULT_SY_LFR_B_BP_P1;
464 parameter_dump_packet.sy_lfr_b_bp_p1 = (unsigned char) DEFAULT_SY_LFR_B_BP_P1;
467
465
468 //****************
466 //****************
469 // SBM1 PARAMETERS
467 // SBM1 PARAMETERS
470 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
468 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
471 parameter_dump_packet.sy_lfr_s1_bp_p1 = (unsigned char) DEFAULT_SY_LFR_S1_BP_P1;
469 parameter_dump_packet.sy_lfr_s1_bp_p1 = (unsigned char) DEFAULT_SY_LFR_S1_BP_P1;
472
470
473 //****************
471 //****************
474 // SBM2 PARAMETERS
472 // SBM2 PARAMETERS
475 parameter_dump_packet.sy_lfr_s2_bp_p0 = (unsigned char) DEFAULT_SY_LFR_S2_BP_P0;
473 parameter_dump_packet.sy_lfr_s2_bp_p0 = (unsigned char) DEFAULT_SY_LFR_S2_BP_P0;
476 parameter_dump_packet.sy_lfr_s2_bp_p1 = (unsigned char) DEFAULT_SY_LFR_S2_BP_P1;
474 parameter_dump_packet.sy_lfr_s2_bp_p1 = (unsigned char) DEFAULT_SY_LFR_S2_BP_P1;
477 }
475 }
478
476
479
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@@ -1,1519 +1,1350
1 /** Functions and tasks related to waveform packet generation.
1 /** Functions and tasks related to waveform packet generation.
2 *
2 *
3 * @file
3 * @file
4 * @author P. LEROY
4 * @author P. LEROY
5 *
5 *
6 * A group of functions to handle waveforms, in snapshot or continuous format.\n
6 * A group of functions to handle waveforms, in snapshot or continuous format.\n
7 *
7 *
8 */
8 */
9
9
10 #include "wf_handler.h"
10 #include "wf_handler.h"
11
11
12 //*****************
12 //*****************
13 // waveform headers
13 // waveform headers
14 // SWF
14 // SWF
15 Header_TM_LFR_SCIENCE_SWF_t headerSWF_F0[7];
15 Header_TM_LFR_SCIENCE_SWF_t headerSWF_F0[7];
16 Header_TM_LFR_SCIENCE_SWF_t headerSWF_F1[7];
16 Header_TM_LFR_SCIENCE_SWF_t headerSWF_F1[7];
17 Header_TM_LFR_SCIENCE_SWF_t headerSWF_F2[7];
17 Header_TM_LFR_SCIENCE_SWF_t headerSWF_F2[7];
18 // CWF
18 // CWF
19 Header_TM_LFR_SCIENCE_CWF_t headerCWF_F1[7];
19 Header_TM_LFR_SCIENCE_CWF_t headerCWF_F1[7];
20 Header_TM_LFR_SCIENCE_CWF_t headerCWF_F2_BURST[7];
20 Header_TM_LFR_SCIENCE_CWF_t headerCWF_F2_BURST[7];
21 Header_TM_LFR_SCIENCE_CWF_t headerCWF_F2_SBM2[7];
21 Header_TM_LFR_SCIENCE_CWF_t headerCWF_F2_SBM2[7];
22 Header_TM_LFR_SCIENCE_CWF_t headerCWF_F3[7];
22 Header_TM_LFR_SCIENCE_CWF_t headerCWF_F3[7];
23 Header_TM_LFR_SCIENCE_CWF_t headerCWF_F3_light[7];
23 Header_TM_LFR_SCIENCE_CWF_t headerCWF_F3_light[7];
24
24
25 //**************
25 //**************
26 // waveform ring
26 // waveform ring
27 ring_node waveform_ring_f0[NB_RING_NODES_F0];
27 ring_node waveform_ring_f0[NB_RING_NODES_F0];
28 ring_node waveform_ring_f1[NB_RING_NODES_F1];
28 ring_node waveform_ring_f1[NB_RING_NODES_F1];
29 ring_node waveform_ring_f2[NB_RING_NODES_F2];
29 ring_node waveform_ring_f2[NB_RING_NODES_F2];
30 ring_node *current_ring_node_f0;
30 ring_node *current_ring_node_f0;
31 ring_node *ring_node_to_send_swf_f0;
31 ring_node *ring_node_to_send_swf_f0;
32 ring_node *current_ring_node_f1;
32 ring_node *current_ring_node_f1;
33 ring_node *ring_node_to_send_swf_f1;
33 ring_node *ring_node_to_send_swf_f1;
34 ring_node *ring_node_to_send_cwf_f1;
34 ring_node *ring_node_to_send_cwf_f1;
35 ring_node *current_ring_node_f2;
35 ring_node *current_ring_node_f2;
36 ring_node *ring_node_to_send_swf_f2;
36 ring_node *ring_node_to_send_swf_f2;
37 ring_node *ring_node_to_send_cwf_f2;
37 ring_node *ring_node_to_send_cwf_f2;
38
38
39 rtems_isr waveforms_isr( rtems_vector_number vector )
39 rtems_isr waveforms_isr( rtems_vector_number vector )
40 {
40 {
41 /** This is the interrupt sub routine called by the waveform picker core.
41 /** This is the interrupt sub routine called by the waveform picker core.
42 *
42 *
43 * This ISR launch different actions depending mainly on two pieces of information:
43 * This ISR launch different actions depending mainly on two pieces of information:
44 * 1. the values read in the registers of the waveform picker.
44 * 1. the values read in the registers of the waveform picker.
45 * 2. the current LFR mode.
45 * 2. the current LFR mode.
46 *
46 *
47 */
47 */
48
48
49 static unsigned char nb_swf = 0;
49 static unsigned char nb_swf = 0;
50
50
51 if ( (lfrCurrentMode == LFR_MODE_NORMAL)
51 if ( (lfrCurrentMode == LFR_MODE_NORMAL)
52 || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) )
52 || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) )
53 { // in modes other than STANDBY and BURST, send the CWF_F3 data
53 { // in modes other than STANDBY and BURST, send the CWF_F3 data
54 if ((waveform_picker_regs->status & 0x08) == 0x08){ // [1000] f3 is full
54 if ((waveform_picker_regs->status & 0x08) == 0x08){ // [1000] f3 is full
55 // (1) change the receiving buffer for the waveform picker
55 // (1) change the receiving buffer for the waveform picker
56 if (waveform_picker_regs->addr_data_f3 == (int) wf_cont_f3_a) {
56 if (waveform_picker_regs->addr_data_f3 == (int) wf_cont_f3_a) {
57 waveform_picker_regs->addr_data_f3 = (int) (wf_cont_f3_b);
57 waveform_picker_regs->addr_data_f3 = (int) (wf_cont_f3_b);
58 }
58 }
59 else {
59 else {
60 waveform_picker_regs->addr_data_f3 = (int) (wf_cont_f3_a);
60 waveform_picker_regs->addr_data_f3 = (int) (wf_cont_f3_a);
61 }
61 }
62 // (2) send an event for the waveforms transmission
62 // (2) send an event for the waveforms transmission
63 if (rtems_event_send( Task_id[TASKID_CWF3], RTEMS_EVENT_0 ) != RTEMS_SUCCESSFUL) {
63 if (rtems_event_send( Task_id[TASKID_CWF3], RTEMS_EVENT_0 ) != RTEMS_SUCCESSFUL) {
64 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
64 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
65 }
65 }
66 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffff777; // reset f3 bits to 0, [1111 0111 0111 0111]
66 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffff777; // reset f3 bits to 0, [1111 0111 0111 0111]
67 }
67 }
68 }
68 }
69
69
70 switch(lfrCurrentMode)
70 switch(lfrCurrentMode)
71 {
71 {
72 //********
72 //********
73 // STANDBY
73 // STANDBY
74 case(LFR_MODE_STANDBY):
74 case(LFR_MODE_STANDBY):
75 break;
75 break;
76
76
77 //******
77 //******
78 // NORMAL
78 // NORMAL
79 case(LFR_MODE_NORMAL):
79 case(LFR_MODE_NORMAL):
80 if ( (waveform_picker_regs->status & 0xff8) != 0x00) // [1000] check the error bits
80 if ( (waveform_picker_regs->status & 0xff8) != 0x00) // [1000] check the error bits
81 {
81 {
82 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
82 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
83 }
83 }
84 if ( (waveform_picker_regs->status & 0x07) == 0x07) // [0111] check the f2, f1, f0 full bits
84 if ( (waveform_picker_regs->status & 0x07) == 0x07) // [0111] check the f2, f1, f0 full bits
85 {
85 {
86 // change F0 ring node
86 // change F0 ring node
87 ring_node_to_send_swf_f0 = current_ring_node_f0;
87 ring_node_to_send_swf_f0 = current_ring_node_f0;
88 current_ring_node_f0 = current_ring_node_f0->next;
88 current_ring_node_f0 = current_ring_node_f0->next;
89 waveform_picker_regs->addr_data_f0 = current_ring_node_f0->buffer_address;
89 waveform_picker_regs->addr_data_f0 = current_ring_node_f0->buffer_address;
90 // change F1 ring node
90 // change F1 ring node
91 ring_node_to_send_swf_f1 = current_ring_node_f1;
91 ring_node_to_send_swf_f1 = current_ring_node_f1;
92 current_ring_node_f1 = current_ring_node_f1->next;
92 current_ring_node_f1 = current_ring_node_f1->next;
93 waveform_picker_regs->addr_data_f1 = current_ring_node_f1->buffer_address;
93 waveform_picker_regs->addr_data_f1 = current_ring_node_f1->buffer_address;
94 // change F2 ring node
94 // change F2 ring node
95 ring_node_to_send_swf_f2 = current_ring_node_f2;
95 ring_node_to_send_swf_f2 = current_ring_node_f2;
96 current_ring_node_f2 = current_ring_node_f2->next;
96 current_ring_node_f2 = current_ring_node_f2->next;
97 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address;
97 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address;
98 //
98 //
99 if (nb_swf < 2)
99 // if (nb_swf < 2)
100 // if (true)
100 if (true)
101 {
101 {
102 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL ) != RTEMS_SUCCESSFUL) {
102 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL ) != RTEMS_SUCCESSFUL) {
103 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
103 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
104 }
104 }
105 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffff888; // [1000 1000 1000]
105 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffff888; // [1000 1000 1000]
106 nb_swf = nb_swf + 1;
106 nb_swf = nb_swf + 1;
107 }
107 }
108 else
108 else
109 {
109 {
110 reset_wfp_burst_enable();
110 reset_wfp_burst_enable();
111 nb_swf = 0;
111 nb_swf = 0;
112 }
112 }
113
113
114 }
114 }
115
115
116 break;
116 break;
117
117
118 //******
118 //******
119 // BURST
119 // BURST
120 case(LFR_MODE_BURST):
120 case(LFR_MODE_BURST):
121 if ( (waveform_picker_regs->status & 0x04) == 0x04 ){ // [0100] check the f2 full bit
121 if ( (waveform_picker_regs->status & 0x04) == 0x04 ){ // [0100] check the f2 full bit
122 // (1) change the receiving buffer for the waveform picker
122 // (1) change the receiving buffer for the waveform picker
123 ring_node_to_send_cwf_f2 = current_ring_node_f2;
123 ring_node_to_send_cwf_f2 = current_ring_node_f2;
124 current_ring_node_f2 = current_ring_node_f2->next;
124 current_ring_node_f2 = current_ring_node_f2->next;
125 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address;
125 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address;
126 // (2) send an event for the waveforms transmission
126 // (2) send an event for the waveforms transmission
127 if (rtems_event_send( Task_id[TASKID_CWF2], RTEMS_EVENT_MODE_BURST ) != RTEMS_SUCCESSFUL) {
127 if (rtems_event_send( Task_id[TASKID_CWF2], RTEMS_EVENT_MODE_BURST ) != RTEMS_SUCCESSFUL) {
128 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
128 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
129 }
129 }
130 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffbbb; // [1111 1011 1011 1011] f2 bit = 0
130 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffbbb; // [1111 1011 1011 1011] f2 bit = 0
131 }
131 }
132 break;
132 break;
133
133
134 //*****
134 //*****
135 // SBM1
135 // SBM1
136 case(LFR_MODE_SBM1):
136 case(LFR_MODE_SBM1):
137 if ( (waveform_picker_regs->status & 0x02) == 0x02 ) { // [0010] check the f1 full bit
137 if ( (waveform_picker_regs->status & 0x02) == 0x02 ) { // [0010] check the f1 full bit
138 // (1) change the receiving buffer for the waveform picker
138 // (1) change the receiving buffer for the waveform picker
139 ring_node_to_send_cwf_f1 = current_ring_node_f1;
139 ring_node_to_send_cwf_f1 = current_ring_node_f1;
140 current_ring_node_f1 = current_ring_node_f1->next;
140 current_ring_node_f1 = current_ring_node_f1->next;
141 waveform_picker_regs->addr_data_f1 = current_ring_node_f1->buffer_address;
141 waveform_picker_regs->addr_data_f1 = current_ring_node_f1->buffer_address;
142 // (2) send an event for the waveforms transmission
142 // (2) send an event for the waveforms transmission
143 if (rtems_event_send( Task_id[TASKID_CWF1], RTEMS_EVENT_MODE_SBM1 ) != RTEMS_SUCCESSFUL) {
143 if (rtems_event_send( Task_id[TASKID_CWF1], RTEMS_EVENT_MODE_SBM1 ) != RTEMS_SUCCESSFUL) {
144 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
144 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
145 }
145 }
146 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffddd; // [1111 1101 1101 1101] f1 bit = 0
146 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffddd; // [1111 1101 1101 1101] f1 bit = 0
147 }
147 }
148 if ( (waveform_picker_regs->status & 0x01) == 0x01 ) { // [0001] check the f0 full bit
148 if ( (waveform_picker_regs->status & 0x01) == 0x01 ) { // [0001] check the f0 full bit
149 ring_node_to_send_swf_f1 = current_ring_node_f1->previous;
149 ring_node_to_send_swf_f1 = current_ring_node_f1->previous;
150 }
150 }
151 if ( (waveform_picker_regs->status & 0x04) == 0x04 ) { // [0100] check the f2 full bit
151 if ( (waveform_picker_regs->status & 0x04) == 0x04 ) { // [0100] check the f2 full bit
152 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL ) != RTEMS_SUCCESSFUL) {
152 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL ) != RTEMS_SUCCESSFUL) {
153 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
153 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
154 }
154 }
155 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffaaa; // [1111 1010 1010 1010] f2 and f0 bits = 0
155 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffaaa; // [1111 1010 1010 1010] f2 and f0 bits = 0
156 }
156 }
157 break;
157 break;
158
158
159 //*****
159 //*****
160 // SBM2
160 // SBM2
161 case(LFR_MODE_SBM2):
161 case(LFR_MODE_SBM2):
162 if ( (waveform_picker_regs->status & 0x04) == 0x04 ){ // [0100] check the f2 full bit
162 if ( (waveform_picker_regs->status & 0x04) == 0x04 ){ // [0100] check the f2 full bit
163 // (1) change the receiving buffer for the waveform picker
163 // (1) change the receiving buffer for the waveform picker
164 ring_node_to_send_cwf_f2 = current_ring_node_f2;
164 ring_node_to_send_cwf_f2 = current_ring_node_f2;
165 current_ring_node_f2 = current_ring_node_f2->next;
165 current_ring_node_f2 = current_ring_node_f2->next;
166 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address;
166 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address;
167 // (2) send an event for the waveforms transmission
167 // (2) send an event for the waveforms transmission
168 if (rtems_event_send( Task_id[TASKID_CWF2], RTEMS_EVENT_MODE_SBM2 ) != RTEMS_SUCCESSFUL) {
168 if (rtems_event_send( Task_id[TASKID_CWF2], RTEMS_EVENT_MODE_SBM2 ) != RTEMS_SUCCESSFUL) {
169 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
169 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
170 }
170 }
171 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffbbb; // [1111 1011 1011 1011] f2 bit = 0
171 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffbbb; // [1111 1011 1011 1011] f2 bit = 0
172 }
172 }
173 if ( (waveform_picker_regs->status & 0x01) == 0x01 ) { // [0001] check the f0 full bit
173 if ( (waveform_picker_regs->status & 0x01) == 0x01 ) { // [0001] check the f0 full bit
174 ring_node_to_send_swf_f2 = current_ring_node_f2->previous;
174 ring_node_to_send_swf_f2 = current_ring_node_f2->previous;
175 }
175 }
176 if ( (waveform_picker_regs->status & 0x02) == 0x02 ) { // [0010] check the f1 full bit
176 if ( (waveform_picker_regs->status & 0x02) == 0x02 ) { // [0010] check the f1 full bit
177 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL ) != RTEMS_SUCCESSFUL) {
177 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL ) != RTEMS_SUCCESSFUL) {
178 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
178 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
179 }
179 }
180 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffccc; // [1111 1100 1100 1100] f1, f0 bits = 0
180 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffccc; // [1111 1100 1100 1100] f1, f0 bits = 0
181 }
181 }
182 break;
182 break;
183
183
184 //********
184 //********
185 // DEFAULT
185 // DEFAULT
186 default:
186 default:
187 break;
187 break;
188 }
188 }
189 }
189 }
190
190
191 rtems_isr waveforms_isr_alt( rtems_vector_number vector )
191 rtems_isr waveforms_isr_alt( rtems_vector_number vector )
192 {
192 {
193 /** This is the interrupt sub routine called by the waveform picker core.
193 /** This is the interrupt sub routine called by the waveform picker core.
194 *
194 *
195 * This ISR launch different actions depending mainly on two pieces of information:
195 * This ISR launch different actions depending mainly on two pieces of information:
196 * 1. the values read in the registers of the waveform picker.
196 * 1. the values read in the registers of the waveform picker.
197 * 2. the current LFR mode.
197 * 2. the current LFR mode.
198 *
198 *
199 */
199 */
200
200
201 if ( (lfrCurrentMode == LFR_MODE_NORMAL)
201 if ( (lfrCurrentMode == LFR_MODE_NORMAL)
202 || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) )
202 || (lfrCurrentMode == LFR_MODE_SBM1) || (lfrCurrentMode == LFR_MODE_SBM2) )
203 { // in modes other than STANDBY and BURST, send the CWF_F3 data
203 { // in modes other than STANDBY and BURST, send the CWF_F3 data
204 if ((waveform_picker_regs->status & 0x08) == 0x08){ // [1000] f3 is full
204 if ((waveform_picker_regs->status & 0x08) == 0x08){ // [1000] f3 is full
205 // (1) change the receiving buffer for the waveform picker
205 // (1) change the receiving buffer for the waveform picker
206 if (waveform_picker_regs->addr_data_f3 == (int) wf_cont_f3_a) {
206 if (waveform_picker_regs->addr_data_f3 == (int) wf_cont_f3_a) {
207 waveform_picker_regs->addr_data_f3 = (int) (wf_cont_f3_b);
207 waveform_picker_regs->addr_data_f3 = (int) (wf_cont_f3_b);
208 }
208 }
209 else {
209 else {
210 waveform_picker_regs->addr_data_f3 = (int) (wf_cont_f3_a);
210 waveform_picker_regs->addr_data_f3 = (int) (wf_cont_f3_a);
211 }
211 }
212 // (2) send an event for the waveforms transmission
212 // (2) send an event for the waveforms transmission
213 if (rtems_event_send( Task_id[TASKID_CWF3], RTEMS_EVENT_0 ) != RTEMS_SUCCESSFUL) {
213 if (rtems_event_send( Task_id[TASKID_CWF3], RTEMS_EVENT_0 ) != RTEMS_SUCCESSFUL) {
214 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
214 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
215 }
215 }
216 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffff777; // reset f3 bits to 0, [1111 0111 0111 0111]
216 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffff777; // reset f3 bits to 0, [1111 0111 0111 0111]
217 }
217 }
218 }
218 }
219
219
220 switch(lfrCurrentMode)
220 switch(lfrCurrentMode)
221 {
221 {
222 //********
222 //********
223 // STANDBY
223 // STANDBY
224 case(LFR_MODE_STANDBY):
224 case(LFR_MODE_STANDBY):
225 break;
225 break;
226
226
227 //******
227 //******
228 // NORMAL
228 // NORMAL
229 case(LFR_MODE_NORMAL):
229 case(LFR_MODE_NORMAL):
230 if ( (waveform_picker_regs->status & 0xff8) != 0x00) // [1000] check the error bits
230 if ( (waveform_picker_regs->status & 0xff8) != 0x00) // [1000] check the error bits
231 {
231 {
232 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
232 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
233 }
233 }
234 if ( (waveform_picker_regs->status & 0x01) == 0x01) // [0001] check the f0 full bit
234 if ( (waveform_picker_regs->status & 0x01) == 0x01) // [0001] check the f0 full bit
235 {
235 {
236 // change F0 ring node
236 // change F0 ring node
237 ring_node_to_send_swf_f0 = current_ring_node_f0;
237 ring_node_to_send_swf_f0 = current_ring_node_f0;
238 current_ring_node_f0 = current_ring_node_f0->next;
238 current_ring_node_f0 = current_ring_node_f0->next;
239 waveform_picker_regs->addr_data_f0 = current_ring_node_f0->buffer_address;
239 waveform_picker_regs->addr_data_f0 = current_ring_node_f0->buffer_address;
240 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffeee; // [1110 1110 1110]
240 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffeee; // [1110 1110 1110]
241 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL_SWF_F0 ) != RTEMS_SUCCESSFUL) {
241 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL_SWF_F0 ) != RTEMS_SUCCESSFUL) {
242 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
242 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
243 }
243 }
244 }
244 }
245 if ( (waveform_picker_regs->status & 0x02) == 0x02) // [0010] check the f1 full bit
245 if ( (waveform_picker_regs->status & 0x02) == 0x02) // [0010] check the f1 full bit
246 {
246 {
247 // change F1 ring node
247 // change F1 ring node
248 ring_node_to_send_swf_f1 = current_ring_node_f1;
248 ring_node_to_send_swf_f1 = current_ring_node_f1;
249 current_ring_node_f1 = current_ring_node_f1->next;
249 current_ring_node_f1 = current_ring_node_f1->next;
250 waveform_picker_regs->addr_data_f1 = current_ring_node_f1->buffer_address;
250 waveform_picker_regs->addr_data_f1 = current_ring_node_f1->buffer_address;
251 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffddd; // [1101 1101 1101]
251 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffddd; // [1101 1101 1101]
252 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL_SWF_F1 ) != RTEMS_SUCCESSFUL) {
252 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL_SWF_F1 ) != RTEMS_SUCCESSFUL) {
253 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
253 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
254 }
254 }
255 }
255 }
256 if ( (waveform_picker_regs->status & 0x04) == 0x04) // [0100] check the f2 full bit
256 if ( (waveform_picker_regs->status & 0x04) == 0x04) // [0100] check the f2 full bit
257 {
257 {
258 // change F2 ring node
258 // change F2 ring node
259 ring_node_to_send_swf_f2 = current_ring_node_f2;
259 ring_node_to_send_swf_f2 = current_ring_node_f2;
260 current_ring_node_f2 = current_ring_node_f2->next;
260 current_ring_node_f2 = current_ring_node_f2->next;
261 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address;
261 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address;
262 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffbbb; // [1011 1011 1011]
262 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffbbb; // [1011 1011 1011]
263 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL_SWF_F2 ) != RTEMS_SUCCESSFUL) {
263 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL_SWF_F2 ) != RTEMS_SUCCESSFUL) {
264 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
264 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
265 }
265 }
266 }
266 }
267 break;
267 break;
268
268
269 //******
269 //******
270 // BURST
270 // BURST
271 case(LFR_MODE_BURST):
271 case(LFR_MODE_BURST):
272 if ( (waveform_picker_regs->status & 0x04) == 0x04 ){ // [0100] check the f2 full bit
272 if ( (waveform_picker_regs->status & 0x04) == 0x04 ){ // [0100] check the f2 full bit
273 // (1) change the receiving buffer for the waveform picker
273 // (1) change the receiving buffer for the waveform picker
274 ring_node_to_send_cwf_f2 = current_ring_node_f2;
274 ring_node_to_send_cwf_f2 = current_ring_node_f2;
275 current_ring_node_f2 = current_ring_node_f2->next;
275 current_ring_node_f2 = current_ring_node_f2->next;
276 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address;
276 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address;
277 // (2) send an event for the waveforms transmission
277 // (2) send an event for the waveforms transmission
278 if (rtems_event_send( Task_id[TASKID_CWF2], RTEMS_EVENT_MODE_BURST ) != RTEMS_SUCCESSFUL) {
278 if (rtems_event_send( Task_id[TASKID_CWF2], RTEMS_EVENT_MODE_BURST ) != RTEMS_SUCCESSFUL) {
279 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
279 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
280 }
280 }
281 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffbbb; // [1111 1011 1011 1011] f2 bit = 0
281 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffbbb; // [1111 1011 1011 1011] f2 bit = 0
282 }
282 }
283 break;
283 break;
284
284
285 //*****
285 //*****
286 // SBM1
286 // SBM1
287 case(LFR_MODE_SBM1):
287 case(LFR_MODE_SBM1):
288 if ( (waveform_picker_regs->status & 0x02) == 0x02 ) { // [0010] check the f1 full bit
288 if ( (waveform_picker_regs->status & 0x02) == 0x02 ) { // [0010] check the f1 full bit
289 // (1) change the receiving buffer for the waveform picker
289 // (1) change the receiving buffer for the waveform picker
290 ring_node_to_send_cwf_f1 = current_ring_node_f1;
290 ring_node_to_send_cwf_f1 = current_ring_node_f1;
291 current_ring_node_f1 = current_ring_node_f1->next;
291 current_ring_node_f1 = current_ring_node_f1->next;
292 waveform_picker_regs->addr_data_f1 = current_ring_node_f1->buffer_address;
292 waveform_picker_regs->addr_data_f1 = current_ring_node_f1->buffer_address;
293 // (2) send an event for the waveforms transmission
293 // (2) send an event for the waveforms transmission
294 if (rtems_event_send( Task_id[TASKID_CWF1], RTEMS_EVENT_MODE_SBM1 ) != RTEMS_SUCCESSFUL) {
294 if (rtems_event_send( Task_id[TASKID_CWF1], RTEMS_EVENT_MODE_SBM1 ) != RTEMS_SUCCESSFUL) {
295 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
295 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
296 }
296 }
297 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffddd; // [1111 1101 1101 1101] f1 bit = 0
297 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffddd; // [1111 1101 1101 1101] f1 bit = 0
298 }
298 }
299 if ( (waveform_picker_regs->status & 0x01) == 0x01 ) { // [0001] check the f0 full bit
299 if ( (waveform_picker_regs->status & 0x01) == 0x01 ) { // [0001] check the f0 full bit
300 ring_node_to_send_swf_f1 = current_ring_node_f1->previous;
300 ring_node_to_send_swf_f1 = current_ring_node_f1->previous;
301 }
301 }
302 if ( (waveform_picker_regs->status & 0x04) == 0x04 ) { // [0100] check the f2 full bit
302 if ( (waveform_picker_regs->status & 0x04) == 0x04 ) { // [0100] check the f2 full bit
303 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL ) != RTEMS_SUCCESSFUL) {
303 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL ) != RTEMS_SUCCESSFUL) {
304 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
304 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
305 }
305 }
306 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffaaa; // [1111 1010 1010 1010] f2 and f0 bits = 0
306 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffaaa; // [1111 1010 1010 1010] f2 and f0 bits = 0
307 }
307 }
308 break;
308 break;
309
309
310 //*****
310 //*****
311 // SBM2
311 // SBM2
312 case(LFR_MODE_SBM2):
312 case(LFR_MODE_SBM2):
313 if ( (waveform_picker_regs->status & 0x04) == 0x04 ){ // [0100] check the f2 full bit
313 if ( (waveform_picker_regs->status & 0x04) == 0x04 ){ // [0100] check the f2 full bit
314 // (1) change the receiving buffer for the waveform picker
314 // (1) change the receiving buffer for the waveform picker
315 ring_node_to_send_cwf_f2 = current_ring_node_f2;
315 ring_node_to_send_cwf_f2 = current_ring_node_f2;
316 current_ring_node_f2 = current_ring_node_f2->next;
316 current_ring_node_f2 = current_ring_node_f2->next;
317 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address;
317 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address;
318 // (2) send an event for the waveforms transmission
318 // (2) send an event for the waveforms transmission
319 if (rtems_event_send( Task_id[TASKID_CWF2], RTEMS_EVENT_MODE_SBM2 ) != RTEMS_SUCCESSFUL) {
319 if (rtems_event_send( Task_id[TASKID_CWF2], RTEMS_EVENT_MODE_SBM2 ) != RTEMS_SUCCESSFUL) {
320 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
320 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
321 }
321 }
322 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffbbb; // [1111 1011 1011 1011] f2 bit = 0
322 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffbbb; // [1111 1011 1011 1011] f2 bit = 0
323 }
323 }
324 if ( (waveform_picker_regs->status & 0x01) == 0x01 ) { // [0001] check the f0 full bit
324 if ( (waveform_picker_regs->status & 0x01) == 0x01 ) { // [0001] check the f0 full bit
325 ring_node_to_send_swf_f2 = current_ring_node_f2->previous;
325 ring_node_to_send_swf_f2 = current_ring_node_f2->previous;
326 }
326 }
327 if ( (waveform_picker_regs->status & 0x02) == 0x02 ) { // [0010] check the f1 full bit
327 if ( (waveform_picker_regs->status & 0x02) == 0x02 ) { // [0010] check the f1 full bit
328 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL ) != RTEMS_SUCCESSFUL) {
328 if (rtems_event_send( Task_id[TASKID_WFRM], RTEMS_EVENT_MODE_NORMAL ) != RTEMS_SUCCESSFUL) {
329 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
329 rtems_event_send( Task_id[TASKID_DUMB], RTEMS_EVENT_2 );
330 }
330 }
331 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffccc; // [1111 1100 1100 1100] f1, f0 bits = 0
331 waveform_picker_regs->status = waveform_picker_regs->status & 0xfffffccc; // [1111 1100 1100 1100] f1, f0 bits = 0
332 }
332 }
333 break;
333 break;
334
334
335 //********
335 //********
336 // DEFAULT
336 // DEFAULT
337 default:
337 default:
338 break;
338 break;
339 }
339 }
340 }
340 }
341
341
342 rtems_task wfrm_task(rtems_task_argument argument) //used with the waveform picker VHDL IP
342 rtems_task wfrm_task(rtems_task_argument argument) //used with the waveform picker VHDL IP
343 {
343 {
344 /** This RTEMS task is dedicated to the transmission of snapshots of the NORMAL mode.
344 /** This RTEMS task is dedicated to the transmission of snapshots of the NORMAL mode.
345 *
345 *
346 * @param unused is the starting argument of the RTEMS task
346 * @param unused is the starting argument of the RTEMS task
347 *
347 *
348 * The following data packets are sent by this task:
348 * The following data packets are sent by this task:
349 * - TM_LFR_SCIENCE_NORMAL_SWF_F0
349 * - TM_LFR_SCIENCE_NORMAL_SWF_F0
350 * - TM_LFR_SCIENCE_NORMAL_SWF_F1
350 * - TM_LFR_SCIENCE_NORMAL_SWF_F1
351 * - TM_LFR_SCIENCE_NORMAL_SWF_F2
351 * - TM_LFR_SCIENCE_NORMAL_SWF_F2
352 *
352 *
353 */
353 */
354
354
355 rtems_event_set event_out;
355 rtems_event_set event_out;
356 rtems_id queue_id;
356 rtems_id queue_id;
357 rtems_status_code status;
357 rtems_status_code status;
358
358
359 init_header_snapshot_wf_table( SID_NORM_SWF_F0, headerSWF_F0 );
359 init_header_snapshot_wf_table( SID_NORM_SWF_F0, headerSWF_F0 );
360 init_header_snapshot_wf_table( SID_NORM_SWF_F1, headerSWF_F1 );
360 init_header_snapshot_wf_table( SID_NORM_SWF_F1, headerSWF_F1 );
361 init_header_snapshot_wf_table( SID_NORM_SWF_F2, headerSWF_F2 );
361 init_header_snapshot_wf_table( SID_NORM_SWF_F2, headerSWF_F2 );
362
362
363 init_waveforms();
363 init_waveforms();
364
364
365 status = get_message_queue_id_send( &queue_id );
365 status = get_message_queue_id_send( &queue_id );
366 if (status != RTEMS_SUCCESSFUL)
366 if (status != RTEMS_SUCCESSFUL)
367 {
367 {
368 PRINTF1("in WFRM *** ERR get_message_queue_id_send %d\n", status)
368 PRINTF1("in WFRM *** ERR get_message_queue_id_send %d\n", status)
369 }
369 }
370
370
371 BOOT_PRINTF("in WFRM ***\n")
371 BOOT_PRINTF("in WFRM ***\n")
372
372
373 while(1){
373 while(1){
374 // wait for an RTEMS_EVENT
374 // wait for an RTEMS_EVENT
375 rtems_event_receive(RTEMS_EVENT_MODE_NORMAL | RTEMS_EVENT_MODE_SBM1
375 rtems_event_receive(RTEMS_EVENT_MODE_NORMAL | RTEMS_EVENT_MODE_SBM1
376 | RTEMS_EVENT_MODE_SBM2 | RTEMS_EVENT_MODE_SBM2_WFRM
376 | RTEMS_EVENT_MODE_SBM2 | RTEMS_EVENT_MODE_SBM2_WFRM
377 | RTEMS_EVENT_MODE_NORMAL_SWF_F0
377 | RTEMS_EVENT_MODE_NORMAL_SWF_F0
378 | RTEMS_EVENT_MODE_NORMAL_SWF_F1
378 | RTEMS_EVENT_MODE_NORMAL_SWF_F1
379 | RTEMS_EVENT_MODE_NORMAL_SWF_F2,
379 | RTEMS_EVENT_MODE_NORMAL_SWF_F2,
380 RTEMS_WAIT | RTEMS_EVENT_ANY, RTEMS_NO_TIMEOUT, &event_out);
380 RTEMS_WAIT | RTEMS_EVENT_ANY, RTEMS_NO_TIMEOUT, &event_out);
381 if (event_out == RTEMS_EVENT_MODE_NORMAL)
381 if (event_out == RTEMS_EVENT_MODE_NORMAL)
382 {
382 {
383 send_waveform_SWF((volatile int*) ring_node_to_send_swf_f0->buffer_address, SID_NORM_SWF_F0, headerSWF_F0, queue_id);
383 send_waveform_SWF((volatile int*) ring_node_to_send_swf_f0->buffer_address, SID_NORM_SWF_F0, headerSWF_F0, queue_id);
384 send_waveform_SWF((volatile int*) ring_node_to_send_swf_f1->buffer_address, SID_NORM_SWF_F1, headerSWF_F1, queue_id);
384 send_waveform_SWF((volatile int*) ring_node_to_send_swf_f1->buffer_address, SID_NORM_SWF_F1, headerSWF_F1, queue_id);
385 send_waveform_SWF((volatile int*) ring_node_to_send_swf_f2->buffer_address, SID_NORM_SWF_F2, headerSWF_F2, queue_id);
385 send_waveform_SWF((volatile int*) ring_node_to_send_swf_f2->buffer_address, SID_NORM_SWF_F2, headerSWF_F2, queue_id);
386 }
386 }
387 if ( (event_out & RTEMS_EVENT_MODE_NORMAL_SWF_F0) == RTEMS_EVENT_MODE_NORMAL_SWF_F0)
387 if ( (event_out & RTEMS_EVENT_MODE_NORMAL_SWF_F0) == RTEMS_EVENT_MODE_NORMAL_SWF_F0)
388 {
388 {
389 send_waveform_SWF((volatile int*) ring_node_to_send_swf_f0->buffer_address, SID_NORM_SWF_F0, headerSWF_F0, queue_id);
389 send_waveform_SWF((volatile int*) ring_node_to_send_swf_f0->buffer_address, SID_NORM_SWF_F0, headerSWF_F0, queue_id);
390 }
390 }
391 if ( (event_out & RTEMS_EVENT_MODE_NORMAL_SWF_F1) == RTEMS_EVENT_MODE_NORMAL_SWF_F1)
391 if ( (event_out & RTEMS_EVENT_MODE_NORMAL_SWF_F1) == RTEMS_EVENT_MODE_NORMAL_SWF_F1)
392 {
392 {
393 send_waveform_SWF((volatile int*) ring_node_to_send_swf_f1->buffer_address, SID_NORM_SWF_F1, headerSWF_F1, queue_id);
393 send_waveform_SWF((volatile int*) ring_node_to_send_swf_f1->buffer_address, SID_NORM_SWF_F1, headerSWF_F1, queue_id);
394 }
394 }
395 if ( (event_out & RTEMS_EVENT_MODE_NORMAL_SWF_F2) == RTEMS_EVENT_MODE_NORMAL_SWF_F2)
395 if ( (event_out & RTEMS_EVENT_MODE_NORMAL_SWF_F2) == RTEMS_EVENT_MODE_NORMAL_SWF_F2)
396 {
396 {
397 send_waveform_SWF((volatile int*) ring_node_to_send_swf_f2->buffer_address, SID_NORM_SWF_F2, headerSWF_F2, queue_id);
397 send_waveform_SWF((volatile int*) ring_node_to_send_swf_f2->buffer_address, SID_NORM_SWF_F2, headerSWF_F2, queue_id);
398 }
398 }
399 }
399 }
400 }
400 }
401
401
402 rtems_task cwf3_task(rtems_task_argument argument) //used with the waveform picker VHDL IP
402 rtems_task cwf3_task(rtems_task_argument argument) //used with the waveform picker VHDL IP
403 {
403 {
404 /** This RTEMS task is dedicated to the transmission of continuous waveforms at f3.
404 /** This RTEMS task is dedicated to the transmission of continuous waveforms at f3.
405 *
405 *
406 * @param unused is the starting argument of the RTEMS task
406 * @param unused is the starting argument of the RTEMS task
407 *
407 *
408 * The following data packet is sent by this task:
408 * The following data packet is sent by this task:
409 * - TM_LFR_SCIENCE_NORMAL_CWF_F3
409 * - TM_LFR_SCIENCE_NORMAL_CWF_F3
410 *
410 *
411 */
411 */
412
412
413 rtems_event_set event_out;
413 rtems_event_set event_out;
414 rtems_id queue_id;
414 rtems_id queue_id;
415 rtems_status_code status;
415 rtems_status_code status;
416
416
417 init_header_continuous_wf_table( SID_NORM_CWF_LONG_F3, headerCWF_F3 );
417 init_header_continuous_wf_table( SID_NORM_CWF_LONG_F3, headerCWF_F3 );
418 init_header_continuous_cwf3_light_table( headerCWF_F3_light );
418 init_header_continuous_cwf3_light_table( headerCWF_F3_light );
419
419
420 status = get_message_queue_id_send( &queue_id );
420 status = get_message_queue_id_send( &queue_id );
421 if (status != RTEMS_SUCCESSFUL)
421 if (status != RTEMS_SUCCESSFUL)
422 {
422 {
423 PRINTF1("in CWF3 *** ERR get_message_queue_id_send %d\n", status)
423 PRINTF1("in CWF3 *** ERR get_message_queue_id_send %d\n", status)
424 }
424 }
425
425
426 BOOT_PRINTF("in CWF3 ***\n")
426 BOOT_PRINTF("in CWF3 ***\n")
427
427
428 while(1){
428 while(1){
429 // wait for an RTEMS_EVENT
429 // wait for an RTEMS_EVENT
430 rtems_event_receive( RTEMS_EVENT_0,
430 rtems_event_receive( RTEMS_EVENT_0,
431 RTEMS_WAIT | RTEMS_EVENT_ANY, RTEMS_NO_TIMEOUT, &event_out);
431 RTEMS_WAIT | RTEMS_EVENT_ANY, RTEMS_NO_TIMEOUT, &event_out);
432 PRINTF("send CWF F3 \n")
432 PRINTF("send CWF F3 \n")
433 if (waveform_picker_regs->addr_data_f3 == (int) wf_cont_f3_a) {
433 if (waveform_picker_regs->addr_data_f3 == (int) wf_cont_f3_a) {
434 if ( (parameter_dump_packet.sy_lfr_n_cwf_long_f3 & 0x01) == 0x01)
434 if ( (parameter_dump_packet.sy_lfr_n_cwf_long_f3 & 0x01) == 0x01)
435 {
435 {
436 send_waveform_CWF( wf_cont_f3_b, SID_NORM_CWF_LONG_F3, headerCWF_F3, queue_id );
436 send_waveform_CWF( wf_cont_f3_b, SID_NORM_CWF_LONG_F3, headerCWF_F3, queue_id );
437 }
437 }
438 else
438 else
439 {
439 {
440 send_waveform_CWF3_light( wf_cont_f3_b, headerCWF_F3_light, queue_id );
440 send_waveform_CWF3_light( wf_cont_f3_b, headerCWF_F3_light, queue_id );
441 }
441 }
442 }
442 }
443 else
443 else
444 {
444 {
445 if ( (parameter_dump_packet.sy_lfr_n_cwf_long_f3 & 0x01) == 0x00)
445 if ( (parameter_dump_packet.sy_lfr_n_cwf_long_f3 & 0x01) == 0x00)
446 {
446 {
447 send_waveform_CWF( wf_cont_f3_a, SID_NORM_CWF_LONG_F3, headerCWF_F3, queue_id );
447 send_waveform_CWF( wf_cont_f3_a, SID_NORM_CWF_LONG_F3, headerCWF_F3, queue_id );
448 }
448 }
449 else
449 else
450 {
450 {
451 send_waveform_CWF3_light( wf_cont_f3_a, headerCWF_F3_light, queue_id );
451 send_waveform_CWF3_light( wf_cont_f3_a, headerCWF_F3_light, queue_id );
452 }
452 }
453
453
454 }
454 }
455 }
455 }
456 }
456 }
457
457
458 rtems_task cwf2_task(rtems_task_argument argument) // ONLY USED IN BURST AND SBM2
458 rtems_task cwf2_task(rtems_task_argument argument) // ONLY USED IN BURST AND SBM2
459 {
459 {
460 /** This RTEMS task is dedicated to the transmission of continuous waveforms at f2.
460 /** This RTEMS task is dedicated to the transmission of continuous waveforms at f2.
461 *
461 *
462 * @param unused is the starting argument of the RTEMS task
462 * @param unused is the starting argument of the RTEMS task
463 *
463 *
464 * The following data packet is sent by this function:
464 * The following data packet is sent by this function:
465 * - TM_LFR_SCIENCE_BURST_CWF_F2
465 * - TM_LFR_SCIENCE_BURST_CWF_F2
466 * - TM_LFR_SCIENCE_SBM2_CWF_F2
466 * - TM_LFR_SCIENCE_SBM2_CWF_F2
467 *
467 *
468 */
468 */
469
469
470 rtems_event_set event_out;
470 rtems_event_set event_out;
471 rtems_id queue_id;
471 rtems_id queue_id;
472 rtems_status_code status;
472 rtems_status_code status;
473
473
474 init_header_continuous_wf_table( SID_BURST_CWF_F2, headerCWF_F2_BURST );
474 init_header_continuous_wf_table( SID_BURST_CWF_F2, headerCWF_F2_BURST );
475 init_header_continuous_wf_table( SID_SBM2_CWF_F2, headerCWF_F2_SBM2 );
475 init_header_continuous_wf_table( SID_SBM2_CWF_F2, headerCWF_F2_SBM2 );
476
476
477 status = get_message_queue_id_send( &queue_id );
477 status = get_message_queue_id_send( &queue_id );
478 if (status != RTEMS_SUCCESSFUL)
478 if (status != RTEMS_SUCCESSFUL)
479 {
479 {
480 PRINTF1("in CWF2 *** ERR get_message_queue_id_send %d\n", status)
480 PRINTF1("in CWF2 *** ERR get_message_queue_id_send %d\n", status)
481 }
481 }
482
482
483 BOOT_PRINTF("in CWF2 ***\n")
483 BOOT_PRINTF("in CWF2 ***\n")
484
484
485 while(1){
485 while(1){
486 // wait for an RTEMS_EVENT
486 // wait for an RTEMS_EVENT
487 rtems_event_receive( RTEMS_EVENT_MODE_BURST | RTEMS_EVENT_MODE_SBM2,
487 rtems_event_receive( RTEMS_EVENT_MODE_BURST | RTEMS_EVENT_MODE_SBM2,
488 RTEMS_WAIT | RTEMS_EVENT_ANY, RTEMS_NO_TIMEOUT, &event_out);
488 RTEMS_WAIT | RTEMS_EVENT_ANY, RTEMS_NO_TIMEOUT, &event_out);
489 if (event_out == RTEMS_EVENT_MODE_BURST)
489 if (event_out == RTEMS_EVENT_MODE_BURST)
490 {
490 {
491 send_waveform_CWF( (volatile int *) ring_node_to_send_cwf_f2->buffer_address, SID_BURST_CWF_F2, headerCWF_F2_BURST, queue_id );
491 send_waveform_CWF( (volatile int *) ring_node_to_send_cwf_f2->buffer_address, SID_BURST_CWF_F2, headerCWF_F2_BURST, queue_id );
492 }
492 }
493 if (event_out == RTEMS_EVENT_MODE_SBM2)
493 if (event_out == RTEMS_EVENT_MODE_SBM2)
494 {
494 {
495 send_waveform_CWF( (volatile int *) ring_node_to_send_cwf_f2->buffer_address, SID_SBM2_CWF_F2, headerCWF_F2_SBM2, queue_id );
495 send_waveform_CWF( (volatile int *) ring_node_to_send_cwf_f2->buffer_address, SID_SBM2_CWF_F2, headerCWF_F2_SBM2, queue_id );
496 }
496 }
497 }
497 }
498 }
498 }
499
499
500 rtems_task cwf1_task(rtems_task_argument argument) // ONLY USED IN SBM1
500 rtems_task cwf1_task(rtems_task_argument argument) // ONLY USED IN SBM1
501 {
501 {
502 /** This RTEMS task is dedicated to the transmission of continuous waveforms at f1.
502 /** This RTEMS task is dedicated to the transmission of continuous waveforms at f1.
503 *
503 *
504 * @param unused is the starting argument of the RTEMS task
504 * @param unused is the starting argument of the RTEMS task
505 *
505 *
506 * The following data packet is sent by this function:
506 * The following data packet is sent by this function:
507 * - TM_LFR_SCIENCE_SBM1_CWF_F1
507 * - TM_LFR_SCIENCE_SBM1_CWF_F1
508 *
508 *
509 */
509 */
510
510
511 rtems_event_set event_out;
511 rtems_event_set event_out;
512 rtems_id queue_id;
512 rtems_id queue_id;
513 rtems_status_code status;
513 rtems_status_code status;
514
514
515 init_header_continuous_wf_table( SID_SBM1_CWF_F1, headerCWF_F1 );
515 init_header_continuous_wf_table( SID_SBM1_CWF_F1, headerCWF_F1 );
516
516
517 status = get_message_queue_id_send( &queue_id );
517 status = get_message_queue_id_send( &queue_id );
518 if (status != RTEMS_SUCCESSFUL)
518 if (status != RTEMS_SUCCESSFUL)
519 {
519 {
520 PRINTF1("in CWF1 *** ERR get_message_queue_id_send %d\n", status)
520 PRINTF1("in CWF1 *** ERR get_message_queue_id_send %d\n", status)
521 }
521 }
522
522
523 BOOT_PRINTF("in CWF1 ***\n")
523 BOOT_PRINTF("in CWF1 ***\n")
524
524
525 while(1){
525 while(1){
526 // wait for an RTEMS_EVENT
526 // wait for an RTEMS_EVENT
527 rtems_event_receive( RTEMS_EVENT_MODE_SBM1,
527 rtems_event_receive( RTEMS_EVENT_MODE_SBM1,
528 RTEMS_WAIT | RTEMS_EVENT_ANY, RTEMS_NO_TIMEOUT, &event_out);
528 RTEMS_WAIT | RTEMS_EVENT_ANY, RTEMS_NO_TIMEOUT, &event_out);
529 send_waveform_CWF( (volatile int*) ring_node_to_send_cwf_f1->buffer_address, SID_SBM1_CWF_F1, headerCWF_F1, queue_id );
529 send_waveform_CWF( (volatile int*) ring_node_to_send_cwf_f1->buffer_address, SID_SBM1_CWF_F1, headerCWF_F1, queue_id );
530 }
530 }
531 }
531 }
532
532
533 //******************
533 //******************
534 // general functions
534 // general functions
535 void init_waveforms( void )
535 void init_waveforms( void )
536 {
536 {
537 int i = 0;
537 int i = 0;
538
538
539 for (i=0; i< NB_SAMPLES_PER_SNAPSHOT; i++)
539 for (i=0; i< NB_SAMPLES_PER_SNAPSHOT; i++)
540 {
540 {
541 //***
541 //***
542 // F0
542 // F0
543 // wf_snap_f0[ (i* NB_WORDS_SWF_BLK) + 0 + TIME_OFFSET ] = 0x88887777; //
543 // wf_snap_f0[ (i* NB_WORDS_SWF_BLK) + 0 + TIME_OFFSET ] = 0x88887777; //
544 // wf_snap_f0[ (i* NB_WORDS_SWF_BLK) + 1 + TIME_OFFSET ] = 0x22221111; //
544 // wf_snap_f0[ (i* NB_WORDS_SWF_BLK) + 1 + TIME_OFFSET ] = 0x22221111; //
545 // wf_snap_f0[ (i* NB_WORDS_SWF_BLK) + 2 + TIME_OFFSET ] = 0x44443333; //
545 // wf_snap_f0[ (i* NB_WORDS_SWF_BLK) + 2 + TIME_OFFSET ] = 0x44443333; //
546
546
547 //***
547 //***
548 // F1
548 // F1
549 // wf_snap_f1[ (i* NB_WORDS_SWF_BLK) + 0 + TIME_OFFSET ] = 0x22221111;
549 // wf_snap_f1[ (i* NB_WORDS_SWF_BLK) + 0 + TIME_OFFSET ] = 0x22221111;
550 // wf_snap_f1[ (i* NB_WORDS_SWF_BLK) + 1 + TIME_OFFSET ] = 0x44443333;
550 // wf_snap_f1[ (i* NB_WORDS_SWF_BLK) + 1 + TIME_OFFSET ] = 0x44443333;
551 // wf_snap_f1[ (i* NB_WORDS_SWF_BLK) + 2 + TIME_OFFSET ] = 0xaaaa0000;
551 // wf_snap_f1[ (i* NB_WORDS_SWF_BLK) + 2 + TIME_OFFSET ] = 0xaaaa0000;
552
552
553 //***
553 //***
554 // F2
554 // F2
555 // wf_snap_f2[ (i* NB_WORDS_SWF_BLK) + 0 + TIME_OFFSET ] = 0x44443333;
555 // wf_snap_f2[ (i* NB_WORDS_SWF_BLK) + 0 + TIME_OFFSET ] = 0x44443333;
556 // wf_snap_f2[ (i* NB_WORDS_SWF_BLK) + 1 + TIME_OFFSET ] = 0x22221111;
556 // wf_snap_f2[ (i* NB_WORDS_SWF_BLK) + 1 + TIME_OFFSET ] = 0x22221111;
557 // wf_snap_f2[ (i* NB_WORDS_SWF_BLK) + 2 + TIME_OFFSET ] = 0xaaaa0000;
557 // wf_snap_f2[ (i* NB_WORDS_SWF_BLK) + 2 + TIME_OFFSET ] = 0xaaaa0000;
558
558
559 //***
559 //***
560 // F3
560 // F3
561 // wf_cont_f3[ (i* NB_WORDS_SWF_BLK) + 0 ] = val1;
561 // wf_cont_f3[ (i* NB_WORDS_SWF_BLK) + 0 ] = val1;
562 // wf_cont_f3[ (i* NB_WORDS_SWF_BLK) + 1 ] = val2;
562 // wf_cont_f3[ (i* NB_WORDS_SWF_BLK) + 1 ] = val2;
563 // wf_cont_f3[ (i* NB_WORDS_SWF_BLK) + 2 ] = 0xaaaa0000;
563 // wf_cont_f3[ (i* NB_WORDS_SWF_BLK) + 2 ] = 0xaaaa0000;
564 }
564 }
565 }
565 }
566
566
567 void init_waveform_rings( void )
567 void init_waveform_rings( void )
568 {
568 {
569 unsigned char i;
569 unsigned char i;
570
570
571 // F0 RING
571 // F0 RING
572 waveform_ring_f0[0].next = (ring_node*) &waveform_ring_f0[1];
572 waveform_ring_f0[0].next = (ring_node*) &waveform_ring_f0[1];
573 waveform_ring_f0[0].previous = (ring_node*) &waveform_ring_f0[NB_RING_NODES_F0-1];
573 waveform_ring_f0[0].previous = (ring_node*) &waveform_ring_f0[NB_RING_NODES_F0-1];
574 waveform_ring_f0[0].buffer_address = (int) &wf_snap_f0[0][0];
574 waveform_ring_f0[0].buffer_address = (int) &wf_snap_f0[0][0];
575
575
576 waveform_ring_f0[NB_RING_NODES_F0-1].next = (ring_node*) &waveform_ring_f0[0];
576 waveform_ring_f0[NB_RING_NODES_F0-1].next = (ring_node*) &waveform_ring_f0[0];
577 waveform_ring_f0[NB_RING_NODES_F0-1].previous = (ring_node*) &waveform_ring_f0[NB_RING_NODES_F0-2];
577 waveform_ring_f0[NB_RING_NODES_F0-1].previous = (ring_node*) &waveform_ring_f0[NB_RING_NODES_F0-2];
578 waveform_ring_f0[NB_RING_NODES_F0-1].buffer_address = (int) &wf_snap_f0[NB_RING_NODES_F0-1][0];
578 waveform_ring_f0[NB_RING_NODES_F0-1].buffer_address = (int) &wf_snap_f0[NB_RING_NODES_F0-1][0];
579
579
580 for(i=1; i<NB_RING_NODES_F0-1; i++)
580 for(i=1; i<NB_RING_NODES_F0-1; i++)
581 {
581 {
582 waveform_ring_f0[i].next = (ring_node*) &waveform_ring_f0[i+1];
582 waveform_ring_f0[i].next = (ring_node*) &waveform_ring_f0[i+1];
583 waveform_ring_f0[i].previous = (ring_node*) &waveform_ring_f0[i-1];
583 waveform_ring_f0[i].previous = (ring_node*) &waveform_ring_f0[i-1];
584 waveform_ring_f0[i].buffer_address = (int) &wf_snap_f0[i][0];
584 waveform_ring_f0[i].buffer_address = (int) &wf_snap_f0[i][0];
585 }
585 }
586
586
587 // F1 RING
587 // F1 RING
588 waveform_ring_f1[0].next = (ring_node*) &waveform_ring_f1[1];
588 waveform_ring_f1[0].next = (ring_node*) &waveform_ring_f1[1];
589 waveform_ring_f1[0].previous = (ring_node*) &waveform_ring_f1[NB_RING_NODES_F1-1];
589 waveform_ring_f1[0].previous = (ring_node*) &waveform_ring_f1[NB_RING_NODES_F1-1];
590 waveform_ring_f1[0].buffer_address = (int) &wf_snap_f1[0][0];
590 waveform_ring_f1[0].buffer_address = (int) &wf_snap_f1[0][0];
591
591
592 waveform_ring_f1[NB_RING_NODES_F1-1].next = (ring_node*) &waveform_ring_f1[0];
592 waveform_ring_f1[NB_RING_NODES_F1-1].next = (ring_node*) &waveform_ring_f1[0];
593 waveform_ring_f1[NB_RING_NODES_F1-1].previous = (ring_node*) &waveform_ring_f1[NB_RING_NODES_F1-2];
593 waveform_ring_f1[NB_RING_NODES_F1-1].previous = (ring_node*) &waveform_ring_f1[NB_RING_NODES_F1-2];
594 waveform_ring_f1[NB_RING_NODES_F1-1].buffer_address = (int) &wf_snap_f1[NB_RING_NODES_F1-1][0];
594 waveform_ring_f1[NB_RING_NODES_F1-1].buffer_address = (int) &wf_snap_f1[NB_RING_NODES_F1-1][0];
595
595
596 for(i=1; i<NB_RING_NODES_F1-1; i++)
596 for(i=1; i<NB_RING_NODES_F1-1; i++)
597 {
597 {
598 waveform_ring_f1[i].next = (ring_node*) &waveform_ring_f1[i+1];
598 waveform_ring_f1[i].next = (ring_node*) &waveform_ring_f1[i+1];
599 waveform_ring_f1[i].previous = (ring_node*) &waveform_ring_f1[i-1];
599 waveform_ring_f1[i].previous = (ring_node*) &waveform_ring_f1[i-1];
600 waveform_ring_f1[i].buffer_address = (int) &wf_snap_f1[i][0];
600 waveform_ring_f1[i].buffer_address = (int) &wf_snap_f1[i][0];
601 }
601 }
602
602
603 // F2 RING
603 // F2 RING
604 waveform_ring_f2[0].next = (ring_node*) &waveform_ring_f2[1];
604 waveform_ring_f2[0].next = (ring_node*) &waveform_ring_f2[1];
605 waveform_ring_f2[0].previous = (ring_node*) &waveform_ring_f2[NB_RING_NODES_F2-1];
605 waveform_ring_f2[0].previous = (ring_node*) &waveform_ring_f2[NB_RING_NODES_F2-1];
606 waveform_ring_f2[0].buffer_address = (int) &wf_snap_f2[0][0];
606 waveform_ring_f2[0].buffer_address = (int) &wf_snap_f2[0][0];
607
607
608 waveform_ring_f2[NB_RING_NODES_F2-1].next = (ring_node*) &waveform_ring_f2[0];
608 waveform_ring_f2[NB_RING_NODES_F2-1].next = (ring_node*) &waveform_ring_f2[0];
609 waveform_ring_f2[NB_RING_NODES_F2-1].previous = (ring_node*) &waveform_ring_f2[NB_RING_NODES_F2-2];
609 waveform_ring_f2[NB_RING_NODES_F2-1].previous = (ring_node*) &waveform_ring_f2[NB_RING_NODES_F2-2];
610 waveform_ring_f2[NB_RING_NODES_F2-1].buffer_address = (int) &wf_snap_f2[NB_RING_NODES_F2-1][0];
610 waveform_ring_f2[NB_RING_NODES_F2-1].buffer_address = (int) &wf_snap_f2[NB_RING_NODES_F2-1][0];
611
611
612 for(i=1; i<NB_RING_NODES_F2-1; i++)
612 for(i=1; i<NB_RING_NODES_F2-1; i++)
613 {
613 {
614 waveform_ring_f2[i].next = (ring_node*) &waveform_ring_f2[i+1];
614 waveform_ring_f2[i].next = (ring_node*) &waveform_ring_f2[i+1];
615 waveform_ring_f2[i].previous = (ring_node*) &waveform_ring_f2[i-1];
615 waveform_ring_f2[i].previous = (ring_node*) &waveform_ring_f2[i-1];
616 waveform_ring_f2[i].buffer_address = (int) &wf_snap_f2[i][0];
616 waveform_ring_f2[i].buffer_address = (int) &wf_snap_f2[i][0];
617 }
617 }
618
618
619 DEBUG_PRINTF1("waveform_ring_f0 @%x\n", (unsigned int) waveform_ring_f0)
619 DEBUG_PRINTF1("waveform_ring_f0 @%x\n", (unsigned int) waveform_ring_f0)
620 DEBUG_PRINTF1("waveform_ring_f1 @%x\n", (unsigned int) waveform_ring_f1)
620 DEBUG_PRINTF1("waveform_ring_f1 @%x\n", (unsigned int) waveform_ring_f1)
621 DEBUG_PRINTF1("waveform_ring_f2 @%x\n", (unsigned int) waveform_ring_f2)
621 DEBUG_PRINTF1("waveform_ring_f2 @%x\n", (unsigned int) waveform_ring_f2)
622
622
623 }
623 }
624
624
625 void reset_current_ring_nodes( void )
625 void reset_current_ring_nodes( void )
626 {
626 {
627 current_ring_node_f0 = waveform_ring_f0;
627 current_ring_node_f0 = waveform_ring_f0;
628 ring_node_to_send_swf_f0 = waveform_ring_f0;
628 ring_node_to_send_swf_f0 = waveform_ring_f0;
629
629
630 current_ring_node_f1 = waveform_ring_f1;
630 current_ring_node_f1 = waveform_ring_f1;
631 ring_node_to_send_cwf_f1 = waveform_ring_f1;
631 ring_node_to_send_cwf_f1 = waveform_ring_f1;
632 ring_node_to_send_swf_f1 = waveform_ring_f1;
632 ring_node_to_send_swf_f1 = waveform_ring_f1;
633
633
634 current_ring_node_f2 = waveform_ring_f2;
634 current_ring_node_f2 = waveform_ring_f2;
635 ring_node_to_send_cwf_f2 = waveform_ring_f2;
635 ring_node_to_send_cwf_f2 = waveform_ring_f2;
636 ring_node_to_send_swf_f2 = waveform_ring_f2;
636 ring_node_to_send_swf_f2 = waveform_ring_f2;
637 }
637 }
638
638
639 int init_header_snapshot_wf_table( unsigned int sid, Header_TM_LFR_SCIENCE_SWF_t *headerSWF)
639 int init_header_snapshot_wf_table( unsigned int sid, Header_TM_LFR_SCIENCE_SWF_t *headerSWF)
640 {
640 {
641 unsigned char i;
641 unsigned char i;
642
642
643 for (i=0; i<7; i++)
643 for (i=0; i<7; i++)
644 {
644 {
645 headerSWF[ i ].targetLogicalAddress = CCSDS_DESTINATION_ID;
645 headerSWF[ i ].targetLogicalAddress = CCSDS_DESTINATION_ID;
646 headerSWF[ i ].protocolIdentifier = CCSDS_PROTOCOLE_ID;
646 headerSWF[ i ].protocolIdentifier = CCSDS_PROTOCOLE_ID;
647 headerSWF[ i ].reserved = DEFAULT_RESERVED;
647 headerSWF[ i ].reserved = DEFAULT_RESERVED;
648 headerSWF[ i ].userApplication = CCSDS_USER_APP;
648 headerSWF[ i ].userApplication = CCSDS_USER_APP;
649 headerSWF[ i ].packetID[0] = (unsigned char) (TM_PACKET_ID_SCIENCE_NORMAL_BURST >> 8);
649 headerSWF[ i ].packetID[0] = (unsigned char) (TM_PACKET_ID_SCIENCE_NORMAL_BURST >> 8);
650 headerSWF[ i ].packetID[1] = (unsigned char) (TM_PACKET_ID_SCIENCE_NORMAL_BURST);
650 headerSWF[ i ].packetID[1] = (unsigned char) (TM_PACKET_ID_SCIENCE_NORMAL_BURST);
651 headerSWF[ i ].packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE;
651 headerSWF[ i ].packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE;
652 if (i == 6)
652 if (i == 6)
653 {
653 {
654 headerSWF[ i ].packetLength[0] = (unsigned char) (TM_LEN_SCI_SWF_224 >> 8);
654 headerSWF[ i ].packetLength[0] = (unsigned char) (TM_LEN_SCI_SWF_224 >> 8);
655 headerSWF[ i ].packetLength[1] = (unsigned char) (TM_LEN_SCI_SWF_224 );
655 headerSWF[ i ].packetLength[1] = (unsigned char) (TM_LEN_SCI_SWF_224 );
656 headerSWF[ i ].blkNr[0] = (unsigned char) (BLK_NR_224 >> 8);
656 headerSWF[ i ].blkNr[0] = (unsigned char) (BLK_NR_224 >> 8);
657 headerSWF[ i ].blkNr[1] = (unsigned char) (BLK_NR_224 );
657 headerSWF[ i ].blkNr[1] = (unsigned char) (BLK_NR_224 );
658 }
658 }
659 else
659 else
660 {
660 {
661 headerSWF[ i ].packetLength[0] = (unsigned char) (TM_LEN_SCI_SWF_304 >> 8);
661 headerSWF[ i ].packetLength[0] = (unsigned char) (TM_LEN_SCI_SWF_304 >> 8);
662 headerSWF[ i ].packetLength[1] = (unsigned char) (TM_LEN_SCI_SWF_304 );
662 headerSWF[ i ].packetLength[1] = (unsigned char) (TM_LEN_SCI_SWF_304 );
663 headerSWF[ i ].blkNr[0] = (unsigned char) (BLK_NR_304 >> 8);
663 headerSWF[ i ].blkNr[0] = (unsigned char) (BLK_NR_304 >> 8);
664 headerSWF[ i ].blkNr[1] = (unsigned char) (BLK_NR_304 );
664 headerSWF[ i ].blkNr[1] = (unsigned char) (BLK_NR_304 );
665 }
665 }
666 headerSWF[ i ].packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT;
666 headerSWF[ i ].packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT;
667 headerSWF[ i ].pktCnt = DEFAULT_PKTCNT; // PKT_CNT
667 headerSWF[ i ].pktCnt = DEFAULT_PKTCNT; // PKT_CNT
668 headerSWF[ i ].pktNr = i+1; // PKT_NR
668 headerSWF[ i ].pktNr = i+1; // PKT_NR
669 // DATA FIELD HEADER
669 // DATA FIELD HEADER
670 headerSWF[ i ].spare1_pusVersion_spare2 = DEFAULT_SPARE1_PUSVERSION_SPARE2;
670 headerSWF[ i ].spare1_pusVersion_spare2 = DEFAULT_SPARE1_PUSVERSION_SPARE2;
671 headerSWF[ i ].serviceType = TM_TYPE_LFR_SCIENCE; // service type
671 headerSWF[ i ].serviceType = TM_TYPE_LFR_SCIENCE; // service type
672 headerSWF[ i ].serviceSubType = TM_SUBTYPE_LFR_SCIENCE; // service subtype
672 headerSWF[ i ].serviceSubType = TM_SUBTYPE_LFR_SCIENCE; // service subtype
673 headerSWF[ i ].destinationID = TM_DESTINATION_ID_GROUND;
673 headerSWF[ i ].destinationID = TM_DESTINATION_ID_GROUND;
674 // AUXILIARY DATA HEADER
674 // AUXILIARY DATA HEADER
675 headerSWF[ i ].time[0] = 0x00;
675 headerSWF[ i ].time[0] = 0x00;
676 headerSWF[ i ].time[0] = 0x00;
676 headerSWF[ i ].time[0] = 0x00;
677 headerSWF[ i ].time[0] = 0x00;
677 headerSWF[ i ].time[0] = 0x00;
678 headerSWF[ i ].time[0] = 0x00;
678 headerSWF[ i ].time[0] = 0x00;
679 headerSWF[ i ].time[0] = 0x00;
679 headerSWF[ i ].time[0] = 0x00;
680 headerSWF[ i ].time[0] = 0x00;
680 headerSWF[ i ].time[0] = 0x00;
681 headerSWF[ i ].sid = sid;
681 headerSWF[ i ].sid = sid;
682 headerSWF[ i ].hkBIA = DEFAULT_HKBIA;
682 headerSWF[ i ].hkBIA = DEFAULT_HKBIA;
683 }
683 }
684 return LFR_SUCCESSFUL;
684 return LFR_SUCCESSFUL;
685 }
685 }
686
686
687 int init_header_continuous_wf_table( unsigned int sid, Header_TM_LFR_SCIENCE_CWF_t *headerCWF )
687 int init_header_continuous_wf_table( unsigned int sid, Header_TM_LFR_SCIENCE_CWF_t *headerCWF )
688 {
688 {
689 unsigned int i;
689 unsigned int i;
690
690
691 for (i=0; i<7; i++)
691 for (i=0; i<7; i++)
692 {
692 {
693 headerCWF[ i ].targetLogicalAddress = CCSDS_DESTINATION_ID;
693 headerCWF[ i ].targetLogicalAddress = CCSDS_DESTINATION_ID;
694 headerCWF[ i ].protocolIdentifier = CCSDS_PROTOCOLE_ID;
694 headerCWF[ i ].protocolIdentifier = CCSDS_PROTOCOLE_ID;
695 headerCWF[ i ].reserved = DEFAULT_RESERVED;
695 headerCWF[ i ].reserved = DEFAULT_RESERVED;
696 headerCWF[ i ].userApplication = CCSDS_USER_APP;
696 headerCWF[ i ].userApplication = CCSDS_USER_APP;
697 if ( (sid == SID_SBM1_CWF_F1) || (sid == SID_SBM2_CWF_F2) )
697 if ( (sid == SID_SBM1_CWF_F1) || (sid == SID_SBM2_CWF_F2) )
698 {
698 {
699 headerCWF[ i ].packetID[0] = (unsigned char) (TM_PACKET_ID_SCIENCE_SBM1_SBM2 >> 8);
699 headerCWF[ i ].packetID[0] = (unsigned char) (TM_PACKET_ID_SCIENCE_SBM1_SBM2 >> 8);
700 headerCWF[ i ].packetID[1] = (unsigned char) (TM_PACKET_ID_SCIENCE_SBM1_SBM2);
700 headerCWF[ i ].packetID[1] = (unsigned char) (TM_PACKET_ID_SCIENCE_SBM1_SBM2);
701 }
701 }
702 else
702 else
703 {
703 {
704 headerCWF[ i ].packetID[0] = (unsigned char) (TM_PACKET_ID_SCIENCE_NORMAL_BURST >> 8);
704 headerCWF[ i ].packetID[0] = (unsigned char) (TM_PACKET_ID_SCIENCE_NORMAL_BURST >> 8);
705 headerCWF[ i ].packetID[1] = (unsigned char) (TM_PACKET_ID_SCIENCE_NORMAL_BURST);
705 headerCWF[ i ].packetID[1] = (unsigned char) (TM_PACKET_ID_SCIENCE_NORMAL_BURST);
706 }
706 }
707 headerCWF[ i ].packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE;
707 headerCWF[ i ].packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE;
708 headerCWF[ i ].packetLength[0] = (unsigned char) (TM_LEN_SCI_CWF_336 >> 8);
708 headerCWF[ i ].packetLength[0] = (unsigned char) (TM_LEN_SCI_CWF_336 >> 8);
709 headerCWF[ i ].packetLength[1] = (unsigned char) (TM_LEN_SCI_CWF_336 );
709 headerCWF[ i ].packetLength[1] = (unsigned char) (TM_LEN_SCI_CWF_336 );
710 headerCWF[ i ].blkNr[0] = (unsigned char) (BLK_NR_CWF >> 8);
710 headerCWF[ i ].blkNr[0] = (unsigned char) (BLK_NR_CWF >> 8);
711 headerCWF[ i ].blkNr[1] = (unsigned char) (BLK_NR_CWF );
711 headerCWF[ i ].blkNr[1] = (unsigned char) (BLK_NR_CWF );
712 headerCWF[ i ].packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT;
712 headerCWF[ i ].packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT;
713 // DATA FIELD HEADER
713 // DATA FIELD HEADER
714 headerCWF[ i ].spare1_pusVersion_spare2 = DEFAULT_SPARE1_PUSVERSION_SPARE2;
714 headerCWF[ i ].spare1_pusVersion_spare2 = DEFAULT_SPARE1_PUSVERSION_SPARE2;
715 headerCWF[ i ].serviceType = TM_TYPE_LFR_SCIENCE; // service type
715 headerCWF[ i ].serviceType = TM_TYPE_LFR_SCIENCE; // service type
716 headerCWF[ i ].serviceSubType = TM_SUBTYPE_LFR_SCIENCE; // service subtype
716 headerCWF[ i ].serviceSubType = TM_SUBTYPE_LFR_SCIENCE; // service subtype
717 headerCWF[ i ].destinationID = TM_DESTINATION_ID_GROUND;
717 headerCWF[ i ].destinationID = TM_DESTINATION_ID_GROUND;
718 // AUXILIARY DATA HEADER
718 // AUXILIARY DATA HEADER
719 headerCWF[ i ].sid = sid;
719 headerCWF[ i ].sid = sid;
720 headerCWF[ i ].hkBIA = DEFAULT_HKBIA;
720 headerCWF[ i ].hkBIA = DEFAULT_HKBIA;
721 headerCWF[ i ].time[0] = 0x00;
721 headerCWF[ i ].time[0] = 0x00;
722 headerCWF[ i ].time[0] = 0x00;
722 headerCWF[ i ].time[0] = 0x00;
723 headerCWF[ i ].time[0] = 0x00;
723 headerCWF[ i ].time[0] = 0x00;
724 headerCWF[ i ].time[0] = 0x00;
724 headerCWF[ i ].time[0] = 0x00;
725 headerCWF[ i ].time[0] = 0x00;
725 headerCWF[ i ].time[0] = 0x00;
726 headerCWF[ i ].time[0] = 0x00;
726 headerCWF[ i ].time[0] = 0x00;
727 }
727 }
728 return LFR_SUCCESSFUL;
728 return LFR_SUCCESSFUL;
729 }
729 }
730
730
731 int init_header_continuous_cwf3_light_table( Header_TM_LFR_SCIENCE_CWF_t *headerCWF )
731 int init_header_continuous_cwf3_light_table( Header_TM_LFR_SCIENCE_CWF_t *headerCWF )
732 {
732 {
733 unsigned int i;
733 unsigned int i;
734
734
735 for (i=0; i<7; i++)
735 for (i=0; i<7; i++)
736 {
736 {
737 headerCWF[ i ].targetLogicalAddress = CCSDS_DESTINATION_ID;
737 headerCWF[ i ].targetLogicalAddress = CCSDS_DESTINATION_ID;
738 headerCWF[ i ].protocolIdentifier = CCSDS_PROTOCOLE_ID;
738 headerCWF[ i ].protocolIdentifier = CCSDS_PROTOCOLE_ID;
739 headerCWF[ i ].reserved = DEFAULT_RESERVED;
739 headerCWF[ i ].reserved = DEFAULT_RESERVED;
740 headerCWF[ i ].userApplication = CCSDS_USER_APP;
740 headerCWF[ i ].userApplication = CCSDS_USER_APP;
741
741
742 headerCWF[ i ].packetID[0] = (unsigned char) (TM_PACKET_ID_SCIENCE_NORMAL_BURST >> 8);
742 headerCWF[ i ].packetID[0] = (unsigned char) (TM_PACKET_ID_SCIENCE_NORMAL_BURST >> 8);
743 headerCWF[ i ].packetID[1] = (unsigned char) (TM_PACKET_ID_SCIENCE_NORMAL_BURST);
743 headerCWF[ i ].packetID[1] = (unsigned char) (TM_PACKET_ID_SCIENCE_NORMAL_BURST);
744
744
745 headerCWF[ i ].packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE;
745 headerCWF[ i ].packetSequenceControl[0] = TM_PACKET_SEQ_CTRL_STANDALONE;
746 headerCWF[ i ].packetLength[0] = (unsigned char) (TM_LEN_SCI_CWF_672 >> 8);
746 headerCWF[ i ].packetLength[0] = (unsigned char) (TM_LEN_SCI_CWF_672 >> 8);
747 headerCWF[ i ].packetLength[1] = (unsigned char) (TM_LEN_SCI_CWF_672 );
747 headerCWF[ i ].packetLength[1] = (unsigned char) (TM_LEN_SCI_CWF_672 );
748 headerCWF[ i ].blkNr[0] = (unsigned char) (BLK_NR_CWF_SHORT_F3 >> 8);
748 headerCWF[ i ].blkNr[0] = (unsigned char) (BLK_NR_CWF_SHORT_F3 >> 8);
749 headerCWF[ i ].blkNr[1] = (unsigned char) (BLK_NR_CWF_SHORT_F3 );
749 headerCWF[ i ].blkNr[1] = (unsigned char) (BLK_NR_CWF_SHORT_F3 );
750
750
751 headerCWF[ i ].packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT;
751 headerCWF[ i ].packetSequenceControl[1] = TM_PACKET_SEQ_CNT_DEFAULT;
752 // DATA FIELD HEADER
752 // DATA FIELD HEADER
753 headerCWF[ i ].spare1_pusVersion_spare2 = DEFAULT_SPARE1_PUSVERSION_SPARE2;
753 headerCWF[ i ].spare1_pusVersion_spare2 = DEFAULT_SPARE1_PUSVERSION_SPARE2;
754 headerCWF[ i ].serviceType = TM_TYPE_LFR_SCIENCE; // service type
754 headerCWF[ i ].serviceType = TM_TYPE_LFR_SCIENCE; // service type
755 headerCWF[ i ].serviceSubType = TM_SUBTYPE_LFR_SCIENCE; // service subtype
755 headerCWF[ i ].serviceSubType = TM_SUBTYPE_LFR_SCIENCE; // service subtype
756 headerCWF[ i ].destinationID = TM_DESTINATION_ID_GROUND;
756 headerCWF[ i ].destinationID = TM_DESTINATION_ID_GROUND;
757 // AUXILIARY DATA HEADER
757 // AUXILIARY DATA HEADER
758 headerCWF[ i ].sid = SID_NORM_CWF_F3;
758 headerCWF[ i ].sid = SID_NORM_CWF_F3;
759 headerCWF[ i ].hkBIA = DEFAULT_HKBIA;
759 headerCWF[ i ].hkBIA = DEFAULT_HKBIA;
760 headerCWF[ i ].time[0] = 0x00;
760 headerCWF[ i ].time[0] = 0x00;
761 headerCWF[ i ].time[0] = 0x00;
761 headerCWF[ i ].time[0] = 0x00;
762 headerCWF[ i ].time[0] = 0x00;
762 headerCWF[ i ].time[0] = 0x00;
763 headerCWF[ i ].time[0] = 0x00;
763 headerCWF[ i ].time[0] = 0x00;
764 headerCWF[ i ].time[0] = 0x00;
764 headerCWF[ i ].time[0] = 0x00;
765 headerCWF[ i ].time[0] = 0x00;
765 headerCWF[ i ].time[0] = 0x00;
766 }
766 }
767 return LFR_SUCCESSFUL;
767 return LFR_SUCCESSFUL;
768 }
768 }
769
769
770 int send_waveform_SWF( volatile int *waveform, unsigned int sid,
770 int send_waveform_SWF( volatile int *waveform, unsigned int sid,
771 Header_TM_LFR_SCIENCE_SWF_t *headerSWF, rtems_id queue_id )
771 Header_TM_LFR_SCIENCE_SWF_t *headerSWF, rtems_id queue_id )
772 {
772 {
773 /** This function sends SWF CCSDS packets (F2, F1 or F0).
773 /** This function sends SWF CCSDS packets (F2, F1 or F0).
774 *
774 *
775 * @param waveform points to the buffer containing the data that will be send.
775 * @param waveform points to the buffer containing the data that will be send.
776 * @param sid is the source identifier of the data that will be sent.
776 * @param sid is the source identifier of the data that will be sent.
777 * @param headerSWF points to a table of headers that have been prepared for the data transmission.
777 * @param headerSWF points to a table of headers that have been prepared for the data transmission.
778 * @param queue_id is the id of the rtems queue to which spw_ioctl_pkt_send structures will be send. The structures
778 * @param queue_id is the id of the rtems queue to which spw_ioctl_pkt_send structures will be send. The structures
779 * contain information to setup the transmission of the data packets.
779 * contain information to setup the transmission of the data packets.
780 *
780 *
781 * One group of 2048 samples is sent as 7 consecutive packets, 6 packets containing 340 blocks and 8 packets containing 8 blocks.
781 * One group of 2048 samples is sent as 7 consecutive packets, 6 packets containing 340 blocks and 8 packets containing 8 blocks.
782 *
782 *
783 */
783 */
784
784
785 unsigned int i;
785 unsigned int i;
786 int ret;
786 int ret;
787 unsigned int coarseTime;
787 unsigned int coarseTime;
788 unsigned int fineTime;
788 unsigned int fineTime;
789 rtems_status_code status;
789 rtems_status_code status;
790 spw_ioctl_pkt_send spw_ioctl_send_SWF;
790 spw_ioctl_pkt_send spw_ioctl_send_SWF;
791
791
792 spw_ioctl_send_SWF.hlen = TM_HEADER_LEN + 4 + 12; // + 4 is for the protocole extra header, + 12 is for the auxiliary header
792 spw_ioctl_send_SWF.hlen = TM_HEADER_LEN + 4 + 12; // + 4 is for the protocole extra header, + 12 is for the auxiliary header
793 spw_ioctl_send_SWF.options = 0;
793 spw_ioctl_send_SWF.options = 0;
794
794
795 ret = LFR_DEFAULT;
795 ret = LFR_DEFAULT;
796
796
797 PRINTF1("sid = %d, ", sid)
797 PRINTF1("sid = %d, ", sid)
798 PRINTF2("coarse = %x, fine = %x\n", waveform[0], waveform[1])
798 PRINTF2("coarse = %x, fine = %x\n", waveform[0], waveform[1])
799
799
800 for (i=0; i<7; i++) // send waveform
800 for (i=0; i<7; i++) // send waveform
801 {
801 {
802 #ifdef VHDL_DEV
802 #ifdef VHDL_DEV
803 spw_ioctl_send_SWF.data = (char*) &waveform[ (i * BLK_NR_304 * NB_WORDS_SWF_BLK) + TIME_OFFSET];
803 spw_ioctl_send_SWF.data = (char*) &waveform[ (i * BLK_NR_304 * NB_WORDS_SWF_BLK) + TIME_OFFSET];
804 #else
804 #else
805 spw_ioctl_send_SWF.data = (char*) &waveform[ (i * BLK_NR_304 * NB_WORDS_SWF_BLK) ];
805 spw_ioctl_send_SWF.data = (char*) &waveform[ (i * BLK_NR_304 * NB_WORDS_SWF_BLK) ];
806 #endif
806 #endif
807 spw_ioctl_send_SWF.hdr = (char*) &headerSWF[ i ];
807 spw_ioctl_send_SWF.hdr = (char*) &headerSWF[ i ];
808 // BUILD THE DATA
808 // BUILD THE DATA
809 if (i==6) {
809 if (i==6) {
810 spw_ioctl_send_SWF.dlen = BLK_NR_224 * NB_BYTES_SWF_BLK;
810 spw_ioctl_send_SWF.dlen = BLK_NR_224 * NB_BYTES_SWF_BLK;
811 }
811 }
812 else {
812 else {
813 spw_ioctl_send_SWF.dlen = BLK_NR_304 * NB_BYTES_SWF_BLK;
813 spw_ioctl_send_SWF.dlen = BLK_NR_304 * NB_BYTES_SWF_BLK;
814 }
814 }
815 // SET PACKET SEQUENCE COUNTER
815 // SET PACKET SEQUENCE COUNTER
816 increment_seq_counter_source_id( headerSWF[ i ].packetSequenceControl, sid );
816 increment_seq_counter_source_id( headerSWF[ i ].packetSequenceControl, sid );
817 // SET PACKET TIME
817 // SET PACKET TIME
818 #ifdef VHDL_DEV
818 #ifdef VHDL_DEV
819 coarseTime = waveform[0];
819 coarseTime = waveform[0];
820 fineTime = waveform[1];
820 fineTime = waveform[1];
821 compute_acquisition_time( &coarseTime, &fineTime, sid, i);
821 compute_acquisition_time( &coarseTime, &fineTime, sid, i);
822
822
823 headerSWF[ i ].acquisitionTime[0] = (unsigned char) (coarseTime >> 24 );
823 headerSWF[ i ].acquisitionTime[0] = (unsigned char) (coarseTime >> 24 );
824 headerSWF[ i ].acquisitionTime[1] = (unsigned char) (coarseTime >> 16 );
824 headerSWF[ i ].acquisitionTime[1] = (unsigned char) (coarseTime >> 16 );
825 headerSWF[ i ].acquisitionTime[2] = (unsigned char) (coarseTime >> 8 );
825 headerSWF[ i ].acquisitionTime[2] = (unsigned char) (coarseTime >> 8 );
826 headerSWF[ i ].acquisitionTime[3] = (unsigned char) (coarseTime );
826 headerSWF[ i ].acquisitionTime[3] = (unsigned char) (coarseTime );
827 headerSWF[ i ].acquisitionTime[4] = (unsigned char) (fineTime >> 8 );
827 headerSWF[ i ].acquisitionTime[4] = (unsigned char) (fineTime >> 8 );
828 headerSWF[ i ].acquisitionTime[5] = (unsigned char) (fineTime );
828 headerSWF[ i ].acquisitionTime[5] = (unsigned char) (fineTime );
829 #else
829 #else
830 headerSWF[ i ].acquisitionTime[0] = (unsigned char) (time_management_regs->coarse_time>>24);
830 headerSWF[ i ].acquisitionTime[0] = (unsigned char) (time_management_regs->coarse_time>>24);
831 headerSWF[ i ].acquisitionTime[1] = (unsigned char) (time_management_regs->coarse_time>>16);
831 headerSWF[ i ].acquisitionTime[1] = (unsigned char) (time_management_regs->coarse_time>>16);
832 headerSWF[ i ].acquisitionTime[2] = (unsigned char) (time_management_regs->coarse_time>>8);
832 headerSWF[ i ].acquisitionTime[2] = (unsigned char) (time_management_regs->coarse_time>>8);
833 headerSWF[ i ].acquisitionTime[3] = (unsigned char) (time_management_regs->coarse_time);
833 headerSWF[ i ].acquisitionTime[3] = (unsigned char) (time_management_regs->coarse_time);
834 headerSWF[ i ].acquisitionTime[4] = (unsigned char) (time_management_regs->fine_time>>8);
834 headerSWF[ i ].acquisitionTime[4] = (unsigned char) (time_management_regs->fine_time>>8);
835 headerSWF[ i ].acquisitionTime[5] = (unsigned char) (time_management_regs->fine_time);
835 headerSWF[ i ].acquisitionTime[5] = (unsigned char) (time_management_regs->fine_time);
836 #endif
836 #endif
837 headerSWF[ i ].time[0] = (unsigned char) (time_management_regs->coarse_time>>24);
837 headerSWF[ i ].time[0] = (unsigned char) (time_management_regs->coarse_time>>24);
838 headerSWF[ i ].time[1] = (unsigned char) (time_management_regs->coarse_time>>16);
838 headerSWF[ i ].time[1] = (unsigned char) (time_management_regs->coarse_time>>16);
839 headerSWF[ i ].time[2] = (unsigned char) (time_management_regs->coarse_time>>8);
839 headerSWF[ i ].time[2] = (unsigned char) (time_management_regs->coarse_time>>8);
840 headerSWF[ i ].time[3] = (unsigned char) (time_management_regs->coarse_time);
840 headerSWF[ i ].time[3] = (unsigned char) (time_management_regs->coarse_time);
841 headerSWF[ i ].time[4] = (unsigned char) (time_management_regs->fine_time>>8);
841 headerSWF[ i ].time[4] = (unsigned char) (time_management_regs->fine_time>>8);
842 headerSWF[ i ].time[5] = (unsigned char) (time_management_regs->fine_time);
842 headerSWF[ i ].time[5] = (unsigned char) (time_management_regs->fine_time);
843 // SEND PACKET
843 // SEND PACKET
844 status = rtems_message_queue_send( queue_id, &spw_ioctl_send_SWF, ACTION_MSG_SPW_IOCTL_SEND_SIZE);
844 status = rtems_message_queue_send( queue_id, &spw_ioctl_send_SWF, ACTION_MSG_SPW_IOCTL_SEND_SIZE);
845 if (status != RTEMS_SUCCESSFUL) {
845 if (status != RTEMS_SUCCESSFUL) {
846 printf("%d-%d, ERR %d\n", sid, i, (int) status);
846 printf("%d-%d, ERR %d\n", sid, i, (int) status);
847 ret = LFR_DEFAULT;
847 ret = LFR_DEFAULT;
848 }
848 }
849 // rtems_task_wake_after(TIME_BETWEEN_TWO_SWF_PACKETS); // 300 ms between each packet => 7 * 3 = 21 packets => 6.3 seconds
849 // rtems_task_wake_after(TIME_BETWEEN_TWO_SWF_PACKETS); // 300 ms between each packet => 7 * 3 = 21 packets => 6.3 seconds
850 }
850 }
851
851
852 return ret;
852 return ret;
853 }
853 }
854
854
855 int send_waveform_CWF(volatile int *waveform, unsigned int sid,
855 int send_waveform_CWF(volatile int *waveform, unsigned int sid,
856 Header_TM_LFR_SCIENCE_CWF_t *headerCWF, rtems_id queue_id)
856 Header_TM_LFR_SCIENCE_CWF_t *headerCWF, rtems_id queue_id)
857 {
857 {
858 /** This function sends CWF CCSDS packets (F2, F1 or F0).
858 /** This function sends CWF CCSDS packets (F2, F1 or F0).
859 *
859 *
860 * @param waveform points to the buffer containing the data that will be send.
860 * @param waveform points to the buffer containing the data that will be send.
861 * @param sid is the source identifier of the data that will be sent.
861 * @param sid is the source identifier of the data that will be sent.
862 * @param headerCWF points to a table of headers that have been prepared for the data transmission.
862 * @param headerCWF points to a table of headers that have been prepared for the data transmission.
863 * @param queue_id is the id of the rtems queue to which spw_ioctl_pkt_send structures will be send. The structures
863 * @param queue_id is the id of the rtems queue to which spw_ioctl_pkt_send structures will be send. The structures
864 * contain information to setup the transmission of the data packets.
864 * contain information to setup the transmission of the data packets.
865 *
865 *
866 * One group of 2048 samples is sent as 7 consecutive packets, 6 packets containing 340 blocks and 8 packets containing 8 blocks.
866 * One group of 2048 samples is sent as 7 consecutive packets, 6 packets containing 340 blocks and 8 packets containing 8 blocks.
867 *
867 *
868 */
868 */
869
869
870 unsigned int i;
870 unsigned int i;
871 int ret;
871 int ret;
872 unsigned char *coarseTimePtr;
872 unsigned char *coarseTimePtr;
873 unsigned char *fineTimePtr;
873 unsigned char *fineTimePtr;
874 rtems_status_code status;
874 rtems_status_code status;
875 spw_ioctl_pkt_send spw_ioctl_send_CWF;
875 spw_ioctl_pkt_send spw_ioctl_send_CWF;
876
876
877 spw_ioctl_send_CWF.hlen = TM_HEADER_LEN + 4 + 10; // + 4 is for the protocole extra header, + 10 is for the auxiliary header
877 spw_ioctl_send_CWF.hlen = TM_HEADER_LEN + 4 + 10; // + 4 is for the protocole extra header, + 10 is for the auxiliary header
878 spw_ioctl_send_CWF.options = 0;
878 spw_ioctl_send_CWF.options = 0;
879
879
880 ret = LFR_DEFAULT;
880 ret = LFR_DEFAULT;
881
881
882 for (i=0; i<7; i++) // send waveform
882 for (i=0; i<7; i++) // send waveform
883 {
883 {
884 int coarseTime = 0x00;
884 int coarseTime = 0x00;
885 int fineTime = 0x00;
885 int fineTime = 0x00;
886 #ifdef VHDL_DEV
886 #ifdef VHDL_DEV
887 spw_ioctl_send_CWF.data = (char*) &waveform[ (i * BLK_NR_CWF * NB_WORDS_SWF_BLK) + TIME_OFFSET];
887 spw_ioctl_send_CWF.data = (char*) &waveform[ (i * BLK_NR_CWF * NB_WORDS_SWF_BLK) + TIME_OFFSET];
888 #else
888 #else
889 spw_ioctl_send_CWF.data = (char*) &waveform[ (i * BLK_NR_CWF * NB_WORDS_SWF_BLK) ];
889 spw_ioctl_send_CWF.data = (char*) &waveform[ (i * BLK_NR_CWF * NB_WORDS_SWF_BLK) ];
890 #endif
890 #endif
891 spw_ioctl_send_CWF.hdr = (char*) &headerCWF[ i ];
891 spw_ioctl_send_CWF.hdr = (char*) &headerCWF[ i ];
892 // BUILD THE DATA
892 // BUILD THE DATA
893 spw_ioctl_send_CWF.dlen = BLK_NR_CWF * NB_BYTES_SWF_BLK;
893 spw_ioctl_send_CWF.dlen = BLK_NR_CWF * NB_BYTES_SWF_BLK;
894 // SET PACKET SEQUENCE COUNTER
894 // SET PACKET SEQUENCE COUNTER
895 increment_seq_counter_source_id( headerCWF[ i ].packetSequenceControl, sid );
895 increment_seq_counter_source_id( headerCWF[ i ].packetSequenceControl, sid );
896 // SET PACKET TIME
896 // SET PACKET TIME
897 #ifdef VHDL_DEV
897 #ifdef VHDL_DEV
898 coarseTimePtr = (unsigned char *) &waveform;
898 coarseTimePtr = (unsigned char *) &waveform;
899 fineTimePtr = (unsigned char *) &waveform[1];
899 fineTimePtr = (unsigned char *) &waveform[1];
900 headerCWF[ i ].acquisitionTime[0] = coarseTimePtr[2];
900 headerCWF[ i ].acquisitionTime[0] = coarseTimePtr[2];
901 headerCWF[ i ].acquisitionTime[1] = coarseTimePtr[3];
901 headerCWF[ i ].acquisitionTime[1] = coarseTimePtr[3];
902 headerCWF[ i ].acquisitionTime[2] = coarseTimePtr[0];
902 headerCWF[ i ].acquisitionTime[2] = coarseTimePtr[0];
903 headerCWF[ i ].acquisitionTime[3] = coarseTimePtr[1];
903 headerCWF[ i ].acquisitionTime[3] = coarseTimePtr[1];
904 headerCWF[ i ].acquisitionTime[4] = fineTimePtr[0];
904 headerCWF[ i ].acquisitionTime[4] = fineTimePtr[0];
905 headerCWF[ i ].acquisitionTime[5] = fineTimePtr[1];
905 headerCWF[ i ].acquisitionTime[5] = fineTimePtr[1];
906 #else
906 #else
907 coarseTime = time_management_regs->coarse_time;
907 coarseTime = time_management_regs->coarse_time;
908 fineTime = time_management_regs->fine_time;
908 fineTime = time_management_regs->fine_time;
909 headerCWF[ i ].acquisitionTime[0] = (unsigned char) (coarseTime>>24);
909 headerCWF[ i ].acquisitionTime[0] = (unsigned char) (coarseTime>>24);
910 headerCWF[ i ].acquisitionTime[1] = (unsigned char) (coarseTime>>16);
910 headerCWF[ i ].acquisitionTime[1] = (unsigned char) (coarseTime>>16);
911 headerCWF[ i ].acquisitionTime[2] = (unsigned char) (coarseTime>>8);
911 headerCWF[ i ].acquisitionTime[2] = (unsigned char) (coarseTime>>8);
912 headerCWF[ i ].acquisitionTime[3] = (unsigned char) (coarseTime);
912 headerCWF[ i ].acquisitionTime[3] = (unsigned char) (coarseTime);
913 headerCWF[ i ].acquisitionTime[4] = (unsigned char) (fineTime>>8);
913 headerCWF[ i ].acquisitionTime[4] = (unsigned char) (fineTime>>8);
914 headerCWF[ i ].acquisitionTime[5] = (unsigned char) (fineTime);
914 headerCWF[ i ].acquisitionTime[5] = (unsigned char) (fineTime);
915 #endif
915 #endif
916
916
917 headerCWF[ i ].time[0] = (unsigned char) (coarseTime>>24);
917 headerCWF[ i ].time[0] = (unsigned char) (coarseTime>>24);
918 headerCWF[ i ].time[1] = (unsigned char) (coarseTime>>16);
918 headerCWF[ i ].time[1] = (unsigned char) (coarseTime>>16);
919 headerCWF[ i ].time[2] = (unsigned char) (coarseTime>>8);
919 headerCWF[ i ].time[2] = (unsigned char) (coarseTime>>8);
920 headerCWF[ i ].time[3] = (unsigned char) (coarseTime);
920 headerCWF[ i ].time[3] = (unsigned char) (coarseTime);
921 headerCWF[ i ].time[4] = (unsigned char) (fineTime>>8);
921 headerCWF[ i ].time[4] = (unsigned char) (fineTime>>8);
922 headerCWF[ i ].time[5] = (unsigned char) (fineTime);
922 headerCWF[ i ].time[5] = (unsigned char) (fineTime);
923 // SEND PACKET
923 // SEND PACKET
924 if (sid == SID_NORM_CWF_LONG_F3)
924 if (sid == SID_NORM_CWF_LONG_F3)
925 {
925 {
926 status = rtems_message_queue_send( queue_id, &spw_ioctl_send_CWF, sizeof(spw_ioctl_send_CWF));
926 status = rtems_message_queue_send( queue_id, &spw_ioctl_send_CWF, sizeof(spw_ioctl_send_CWF));
927 if (status != RTEMS_SUCCESSFUL) {
927 if (status != RTEMS_SUCCESSFUL) {
928 printf("%d-%d, ERR %d\n", sid, i, (int) status);
928 printf("%d-%d, ERR %d\n", sid, i, (int) status);
929 ret = LFR_DEFAULT;
929 ret = LFR_DEFAULT;
930 }
930 }
931 rtems_task_wake_after(TIME_BETWEEN_TWO_CWF3_PACKETS);
931 rtems_task_wake_after(TIME_BETWEEN_TWO_CWF3_PACKETS);
932 }
932 }
933 else
933 else
934 {
934 {
935 status = rtems_message_queue_send( queue_id, &spw_ioctl_send_CWF, sizeof(spw_ioctl_send_CWF));
935 status = rtems_message_queue_send( queue_id, &spw_ioctl_send_CWF, sizeof(spw_ioctl_send_CWF));
936 if (status != RTEMS_SUCCESSFUL) {
936 if (status != RTEMS_SUCCESSFUL) {
937 printf("%d-%d, ERR %d\n", sid, i, (int) status);
937 printf("%d-%d, ERR %d\n", sid, i, (int) status);
938 ret = LFR_DEFAULT;
938 ret = LFR_DEFAULT;
939 }
939 }
940 }
940 }
941 }
941 }
942
942
943 return ret;
943 return ret;
944 }
944 }
945
945
946 int send_waveform_CWF3_light(volatile int *waveform, Header_TM_LFR_SCIENCE_CWF_t *headerCWF, rtems_id queue_id)
946 int send_waveform_CWF3_light(volatile int *waveform, Header_TM_LFR_SCIENCE_CWF_t *headerCWF, rtems_id queue_id)
947 {
947 {
948 /** This function sends CWF_F3 CCSDS packets without the b1, b2 and b3 data.
948 /** This function sends CWF_F3 CCSDS packets without the b1, b2 and b3 data.
949 *
949 *
950 * @param waveform points to the buffer containing the data that will be send.
950 * @param waveform points to the buffer containing the data that will be send.
951 * @param headerCWF points to a table of headers that have been prepared for the data transmission.
951 * @param headerCWF points to a table of headers that have been prepared for the data transmission.
952 * @param queue_id is the id of the rtems queue to which spw_ioctl_pkt_send structures will be send. The structures
952 * @param queue_id is the id of the rtems queue to which spw_ioctl_pkt_send structures will be send. The structures
953 * contain information to setup the transmission of the data packets.
953 * contain information to setup the transmission of the data packets.
954 *
954 *
955 * By default, CWF_F3 packet are send without the b1, b2 and b3 data. This function rebuilds a data buffer
955 * By default, CWF_F3 packet are send without the b1, b2 and b3 data. This function rebuilds a data buffer
956 * from the incoming data and sends it in 7 packets, 6 containing 340 blocks and 1 one containing 8 blocks.
956 * from the incoming data and sends it in 7 packets, 6 containing 340 blocks and 1 one containing 8 blocks.
957 *
957 *
958 */
958 */
959
959
960 unsigned int i;
960 unsigned int i;
961 int ret;
961 int ret;
962 unsigned char *coarseTimePtr;
962 unsigned char *coarseTimePtr;
963 unsigned char *fineTimePtr;
963 unsigned char *fineTimePtr;
964 rtems_status_code status;
964 rtems_status_code status;
965 spw_ioctl_pkt_send spw_ioctl_send_CWF;
965 spw_ioctl_pkt_send spw_ioctl_send_CWF;
966 char *sample;
966 char *sample;
967
967
968 spw_ioctl_send_CWF.hlen = TM_HEADER_LEN + 4 + 10; // + 4 is for the protocole extra header, + 10 is for the auxiliary header
968 spw_ioctl_send_CWF.hlen = TM_HEADER_LEN + 4 + 10; // + 4 is for the protocole extra header, + 10 is for the auxiliary header
969 spw_ioctl_send_CWF.options = 0;
969 spw_ioctl_send_CWF.options = 0;
970
970
971 ret = LFR_DEFAULT;
971 ret = LFR_DEFAULT;
972
972
973 //**********************
973 //**********************
974 // BUILD CWF3_light DATA
974 // BUILD CWF3_light DATA
975 for ( i=0; i< NB_SAMPLES_PER_SNAPSHOT; i++)
975 for ( i=0; i< NB_SAMPLES_PER_SNAPSHOT; i++)
976 {
976 {
977 #ifdef VHDL_DEV
977 #ifdef VHDL_DEV
978 sample = (char*) &waveform[ (i * NB_WORDS_SWF_BLK) + TIME_OFFSET ];
978 sample = (char*) &waveform[ (i * NB_WORDS_SWF_BLK) + TIME_OFFSET ];
979 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + TIME_OFFSET_IN_BYTES ] = sample[ 0 ];
979 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + TIME_OFFSET_IN_BYTES ] = sample[ 0 ];
980 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 1 + TIME_OFFSET_IN_BYTES ] = sample[ 1 ];
980 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 1 + TIME_OFFSET_IN_BYTES ] = sample[ 1 ];
981 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 2 + TIME_OFFSET_IN_BYTES ] = sample[ 2 ];
981 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 2 + TIME_OFFSET_IN_BYTES ] = sample[ 2 ];
982 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 3 + TIME_OFFSET_IN_BYTES ] = sample[ 3 ];
982 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 3 + TIME_OFFSET_IN_BYTES ] = sample[ 3 ];
983 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 4 + TIME_OFFSET_IN_BYTES ] = sample[ 4 ];
983 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 4 + TIME_OFFSET_IN_BYTES ] = sample[ 4 ];
984 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 5 + TIME_OFFSET_IN_BYTES ] = sample[ 5 ];
984 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 5 + TIME_OFFSET_IN_BYTES ] = sample[ 5 ];
985 #else
985 #else
986 sample = (char*) &waveform[ i * NB_WORDS_SWF_BLK ];
986 sample = (char*) &waveform[ i * NB_WORDS_SWF_BLK ];
987 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) ] = sample[ 0 ];
987 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) ] = sample[ 0 ];
988 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 1 ] = sample[ 1 ];
988 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 1 ] = sample[ 1 ];
989 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 2 ] = sample[ 2 ];
989 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 2 ] = sample[ 2 ];
990 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 3 ] = sample[ 3 ];
990 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 3 ] = sample[ 3 ];
991 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 4 ] = sample[ 4 ];
991 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 4 ] = sample[ 4 ];
992 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 5 ] = sample[ 5 ];
992 wf_cont_f3_light[ (i * NB_BYTES_CWF3_LIGHT_BLK) + 5 ] = sample[ 5 ];
993 #endif
993 #endif
994 }
994 }
995
995
996 //*********************
996 //*********************
997 // SEND CWF3_light DATA
997 // SEND CWF3_light DATA
998
998
999 for (i=0; i<7; i++) // send waveform
999 for (i=0; i<7; i++) // send waveform
1000 {
1000 {
1001 int coarseTime = 0x00;
1001 int coarseTime = 0x00;
1002 int fineTime = 0x00;
1002 int fineTime = 0x00;
1003
1003
1004 #ifdef VHDL_DEV
1004 #ifdef VHDL_DEV
1005 spw_ioctl_send_CWF.data = (char*) &wf_cont_f3_light[ (i * BLK_NR_CWF_SHORT_F3 * NB_BYTES_CWF3_LIGHT_BLK) + TIME_OFFSET_IN_BYTES];
1005 spw_ioctl_send_CWF.data = (char*) &wf_cont_f3_light[ (i * BLK_NR_CWF_SHORT_F3 * NB_BYTES_CWF3_LIGHT_BLK) + TIME_OFFSET_IN_BYTES];
1006 #else
1006 #else
1007 spw_ioctl_send_CWF.data = (char*) &wf_cont_f3_light[ (i * BLK_NR_CWF_SHORT_F3 * NB_BYTES_CWF3_LIGHT_BLK) ];
1007 spw_ioctl_send_CWF.data = (char*) &wf_cont_f3_light[ (i * BLK_NR_CWF_SHORT_F3 * NB_BYTES_CWF3_LIGHT_BLK) ];
1008 #endif
1008 #endif
1009 spw_ioctl_send_CWF.hdr = (char*) &headerCWF[ i ];
1009 spw_ioctl_send_CWF.hdr = (char*) &headerCWF[ i ];
1010 // BUILD THE DATA
1010 // BUILD THE DATA
1011 spw_ioctl_send_CWF.dlen = BLK_NR_CWF_SHORT_F3 * NB_BYTES_CWF3_LIGHT_BLK;
1011 spw_ioctl_send_CWF.dlen = BLK_NR_CWF_SHORT_F3 * NB_BYTES_CWF3_LIGHT_BLK;
1012 // SET PACKET SEQUENCE COUNTER
1012 // SET PACKET SEQUENCE COUNTER
1013 increment_seq_counter_source_id( headerCWF[ i ].packetSequenceControl, SID_NORM_CWF_F3 );
1013 increment_seq_counter_source_id( headerCWF[ i ].packetSequenceControl, SID_NORM_CWF_F3 );
1014 // SET PACKET TIME
1014 // SET PACKET TIME
1015 #ifdef VHDL_DEV
1015 #ifdef VHDL_DEV
1016 coarseTimePtr = (unsigned char *) &waveform;
1016 coarseTimePtr = (unsigned char *) &waveform;
1017 fineTimePtr = (unsigned char *) &waveform[1];
1017 fineTimePtr = (unsigned char *) &waveform[1];
1018 headerCWF[ i ].acquisitionTime[0] = coarseTimePtr[2];
1018 headerCWF[ i ].acquisitionTime[0] = coarseTimePtr[2];
1019 headerCWF[ i ].acquisitionTime[1] = coarseTimePtr[3];
1019 headerCWF[ i ].acquisitionTime[1] = coarseTimePtr[3];
1020 headerCWF[ i ].acquisitionTime[2] = coarseTimePtr[0];
1020 headerCWF[ i ].acquisitionTime[2] = coarseTimePtr[0];
1021 headerCWF[ i ].acquisitionTime[3] = coarseTimePtr[1];
1021 headerCWF[ i ].acquisitionTime[3] = coarseTimePtr[1];
1022 headerCWF[ i ].acquisitionTime[4] = fineTimePtr[0];
1022 headerCWF[ i ].acquisitionTime[4] = fineTimePtr[0];
1023 headerCWF[ i ].acquisitionTime[5] = fineTimePtr[1];
1023 headerCWF[ i ].acquisitionTime[5] = fineTimePtr[1];
1024 #else
1024 #else
1025 coarseTime = time_management_regs->coarse_time;
1025 coarseTime = time_management_regs->coarse_time;
1026 fineTime = time_management_regs->fine_time;
1026 fineTime = time_management_regs->fine_time;
1027 headerCWF[ i ].acquisitionTime[0] = (unsigned char) (coarseTime>>24);
1027 headerCWF[ i ].acquisitionTime[0] = (unsigned char) (coarseTime>>24);
1028 headerCWF[ i ].acquisitionTime[1] = (unsigned char) (coarseTime>>16);
1028 headerCWF[ i ].acquisitionTime[1] = (unsigned char) (coarseTime>>16);
1029 headerCWF[ i ].acquisitionTime[2] = (unsigned char) (coarseTime>>8);
1029 headerCWF[ i ].acquisitionTime[2] = (unsigned char) (coarseTime>>8);
1030 headerCWF[ i ].acquisitionTime[3] = (unsigned char) (coarseTime);
1030 headerCWF[ i ].acquisitionTime[3] = (unsigned char) (coarseTime);
1031 headerCWF[ i ].acquisitionTime[4] = (unsigned char) (fineTime>>8);
1031 headerCWF[ i ].acquisitionTime[4] = (unsigned char) (fineTime>>8);
1032 headerCWF[ i ].acquisitionTime[5] = (unsigned char) (fineTime);
1032 headerCWF[ i ].acquisitionTime[5] = (unsigned char) (fineTime);
1033 #endif
1033 #endif
1034 headerCWF[ i ].time[0] = (unsigned char) (coarseTime>>24);
1034 headerCWF[ i ].time[0] = (unsigned char) (coarseTime>>24);
1035 headerCWF[ i ].time[1] = (unsigned char) (coarseTime>>16);
1035 headerCWF[ i ].time[1] = (unsigned char) (coarseTime>>16);
1036 headerCWF[ i ].time[2] = (unsigned char) (coarseTime>>8);
1036 headerCWF[ i ].time[2] = (unsigned char) (coarseTime>>8);
1037 headerCWF[ i ].time[3] = (unsigned char) (coarseTime);
1037 headerCWF[ i ].time[3] = (unsigned char) (coarseTime);
1038 headerCWF[ i ].time[4] = (unsigned char) (fineTime>>8);
1038 headerCWF[ i ].time[4] = (unsigned char) (fineTime>>8);
1039 headerCWF[ i ].time[5] = (unsigned char) (fineTime);
1039 headerCWF[ i ].time[5] = (unsigned char) (fineTime);
1040 // SEND PACKET
1040 // SEND PACKET
1041 status = rtems_message_queue_send( queue_id, &spw_ioctl_send_CWF, sizeof(spw_ioctl_send_CWF));
1041 status = rtems_message_queue_send( queue_id, &spw_ioctl_send_CWF, sizeof(spw_ioctl_send_CWF));
1042 if (status != RTEMS_SUCCESSFUL) {
1042 if (status != RTEMS_SUCCESSFUL) {
1043 printf("%d-%d, ERR %d\n", SID_NORM_CWF_F3, i, (int) status);
1043 printf("%d-%d, ERR %d\n", SID_NORM_CWF_F3, i, (int) status);
1044 ret = LFR_DEFAULT;
1044 ret = LFR_DEFAULT;
1045 }
1045 }
1046 rtems_task_wake_after(TIME_BETWEEN_TWO_CWF3_PACKETS);
1046 rtems_task_wake_after(TIME_BETWEEN_TWO_CWF3_PACKETS);
1047 }
1047 }
1048
1048
1049 return ret;
1049 return ret;
1050 }
1050 }
1051
1051
1052 void compute_acquisition_time( unsigned int *coarseTime, unsigned int *fineTime, unsigned int sid, unsigned char pa_lfr_pkt_nr )
1052 void compute_acquisition_time( unsigned int *coarseTime, unsigned int *fineTime, unsigned int sid, unsigned char pa_lfr_pkt_nr )
1053 {
1053 {
1054 unsigned long long int acquisitionTimeAsLong;
1054 unsigned long long int acquisitionTimeAsLong;
1055 unsigned char acquisitionTime[6];
1055 unsigned char acquisitionTime[6];
1056 float deltaT = 0.;
1056 float deltaT = 0.;
1057
1057
1058 acquisitionTime[0] = (unsigned char) ( *coarseTime >> 8 );
1058 acquisitionTime[0] = (unsigned char) ( *coarseTime >> 8 );
1059 acquisitionTime[1] = (unsigned char) ( *coarseTime );
1059 acquisitionTime[1] = (unsigned char) ( *coarseTime );
1060 acquisitionTime[2] = (unsigned char) ( *coarseTime >> 24 );
1060 acquisitionTime[2] = (unsigned char) ( *coarseTime >> 24 );
1061 acquisitionTime[3] = (unsigned char) ( *coarseTime >> 16 );
1061 acquisitionTime[3] = (unsigned char) ( *coarseTime >> 16 );
1062 acquisitionTime[4] = (unsigned char) ( *fineTime >> 24 );
1062 acquisitionTime[4] = (unsigned char) ( *fineTime >> 24 );
1063 acquisitionTime[5] = (unsigned char) ( *fineTime >> 16 );
1063 acquisitionTime[5] = (unsigned char) ( *fineTime >> 16 );
1064
1064
1065 acquisitionTimeAsLong = ( (unsigned long long int) acquisitionTime[0] << 40 )
1065 acquisitionTimeAsLong = ( (unsigned long long int) acquisitionTime[0] << 40 )
1066 + ( (unsigned long long int) acquisitionTime[1] << 32 )
1066 + ( (unsigned long long int) acquisitionTime[1] << 32 )
1067 + ( acquisitionTime[2] << 24 )
1067 + ( acquisitionTime[2] << 24 )
1068 + ( acquisitionTime[3] << 16 )
1068 + ( acquisitionTime[3] << 16 )
1069 + ( acquisitionTime[4] << 8 )
1069 + ( acquisitionTime[4] << 8 )
1070 + ( acquisitionTime[5] );
1070 + ( acquisitionTime[5] );
1071
1071
1072 switch( sid )
1072 switch( sid )
1073 {
1073 {
1074 case SID_NORM_SWF_F0:
1074 case SID_NORM_SWF_F0:
1075 deltaT = ( (float ) (pa_lfr_pkt_nr) ) * BLK_NR_304 * 65536. / 24576. ;
1075 deltaT = ( (float ) (pa_lfr_pkt_nr) ) * BLK_NR_304 * 65536. / 24576. ;
1076 break;
1076 break;
1077
1077
1078 case SID_NORM_SWF_F1:
1078 case SID_NORM_SWF_F1:
1079 deltaT = ( (float ) (pa_lfr_pkt_nr) ) * BLK_NR_304 * 65536. / 4096. ;
1079 deltaT = ( (float ) (pa_lfr_pkt_nr) ) * BLK_NR_304 * 65536. / 4096. ;
1080 break;
1080 break;
1081
1081
1082 case SID_NORM_SWF_F2:
1082 case SID_NORM_SWF_F2:
1083 deltaT = ( (float ) (pa_lfr_pkt_nr) ) * BLK_NR_304 * 65536. / 256. ;
1083 deltaT = ( (float ) (pa_lfr_pkt_nr) ) * BLK_NR_304 * 65536. / 256. ;
1084 break;
1084 break;
1085
1085
1086 default:
1086 default:
1087 deltaT = 0.;
1087 deltaT = 0.;
1088 break;
1088 break;
1089 }
1089 }
1090
1090
1091 acquisitionTimeAsLong = acquisitionTimeAsLong + (unsigned long long int) deltaT;
1091 acquisitionTimeAsLong = acquisitionTimeAsLong + (unsigned long long int) deltaT;
1092
1092
1093 *coarseTime = (unsigned int) (acquisitionTimeAsLong >> 16);
1093 *coarseTime = (unsigned int) (acquisitionTimeAsLong >> 16);
1094 *fineTime = (unsigned int) (acquisitionTimeAsLong & 0xffff);
1094 *fineTime = (unsigned int) (acquisitionTimeAsLong & 0xffff);
1095 }
1095 }
1096
1096
1097 //**************
1097 //**************
1098 // wfp registers
1098 // wfp registers
1099 void set_wfp_data_shaping()
1099 void reset_wfp_burst_enable(void)
1100 {
1101 /** This function resets the waveform picker burst_enable register.
1102 *
1103 * The burst bits [f2 f1 f0] and the enable bits [f3 f2 f1 f0] are set to 0.
1104 *
1105 */
1106
1107 #ifdef VHDL_DEV
1108 waveform_picker_regs->run_burst_enable = 0x00; // burst f2, f1, f0 enable f3, f2, f1, f0
1109 #else
1110 waveform_picker_regs->burst_enable = 0x00; // burst f2, f1, f0 enable f3, f2, f1, f0
1111 #endif
1112 }
1113
1114 void reset_wfp_status( void )
1115 {
1116 /** This function resets the waveform picker status register.
1117 *
1118 * All status bits are set to 0 [new_err full_err full].
1119 *
1120 */
1121
1122 #ifdef GSA
1123 #else
1124 waveform_picker_regs->status = 0x00; // burst f2, f1, f0 enable f3, f2, f1, f0
1125 #endif
1126 }
1127
1128 void reset_waveform_picker_regs(void)
1129 {
1130 /** This function resets the waveform picker module registers.
1131 *
1132 * The registers affected by this function are located at the following offset addresses:
1133 * - 0x00 data_shaping
1134 * - 0x04 run_burst_enable
1135 * - 0x08 addr_data_f0
1136 * - 0x0C addr_data_f1
1137 * - 0x10 addr_data_f2
1138 * - 0x14 addr_data_f3
1139 * - 0x18 status
1140 * - 0x1C delta_snapshot
1141 * - 0x20 delta_f0
1142 * - 0x24 delta_f0_2
1143 * - 0x28 delta_f1
1144 * - 0x2c delta_f2
1145 * - 0x30 nb_data_by_buffer
1146 * - 0x34 nb_snapshot_param
1147 * - 0x38 start_date
1148 * - 0x3c nb_word_in_buffer
1149 *
1150 */
1151
1152 waveform_picker_regs->data_shaping = 0x01; // 0x00 *** R1 R0 SP1 SP0 BW
1153 waveform_picker_regs->run_burst_enable = 0x00; // 0x04 *** [run *** burst f2, f1, f0 *** enable f3, f2, f1, f0 ]
1154 waveform_picker_regs->addr_data_f0 = current_ring_node_f0->buffer_address; // 0x08
1155 waveform_picker_regs->addr_data_f1 = current_ring_node_f1->buffer_address; // 0x0c
1156 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address; // 0x10
1157 waveform_picker_regs->addr_data_f3 = (int) (wf_cont_f3_a); // 0x14
1158 waveform_picker_regs->status = 0x00; // 0x18
1159 //
1160 set_wfp_delta_snapshot(); // 0x1c
1161 set_wfp_delta_f0_f0_2(); // 0x20, 0x24
1162 set_wfp_delta_f1(); // 0x28
1163 set_wfp_delta_f2(); // 0x2c
1164 DEBUG_PRINTF1("delta_snapshot %x\n", waveform_picker_regs->delta_snapshot)
1165 DEBUG_PRINTF1("delta_f0 %x\n", waveform_picker_regs->delta_f0)
1166 DEBUG_PRINTF1("delta_f0_2 %x\n", waveform_picker_regs->delta_f0_2)
1167 DEBUG_PRINTF1("delta_f1 %x\n", waveform_picker_regs->delta_f1)
1168 DEBUG_PRINTF1("delta_f2 %x\n", waveform_picker_regs->delta_f2)
1169 // 2352 = 7 * 336
1170 waveform_picker_regs->nb_data_by_buffer = 0x92f; // 0x30 *** 2352 - 1 => nb samples -1
1171 waveform_picker_regs->snapshot_param = 0x930; // 0x34 *** 2352 => nb samples
1172 waveform_picker_regs->start_date = 0x00; // 0x38
1173 waveform_picker_regs->nb_word_in_buffer = 0x1b92; // 0x3c *** 2352 * 3 + 2 = 7058
1174 }
1175
1176 void set_wfp_data_shaping( void )
1100 {
1177 {
1101 /** This function sets the data_shaping register of the waveform picker module.
1178 /** This function sets the data_shaping register of the waveform picker module.
1102 *
1179 *
1103 * The value is read from one field of the parameter_dump_packet structure:\n
1180 * The value is read from one field of the parameter_dump_packet structure:\n
1104 * bw_sp0_sp1_r0_r1
1181 * bw_sp0_sp1_r0_r1
1105 *
1182 *
1106 */
1183 */
1107
1184
1108 unsigned char data_shaping;
1185 unsigned char data_shaping;
1109
1186
1110 // get the parameters for the data shaping [BW SP0 SP1 R0 R1] in sy_lfr_common1 and configure the register
1187 // get the parameters for the data shaping [BW SP0 SP1 R0 R1] in sy_lfr_common1 and configure the register
1111 // waveform picker : [R1 R0 SP1 SP0 BW]
1188 // waveform picker : [R1 R0 SP1 SP0 BW]
1112
1189
1113 data_shaping = parameter_dump_packet.bw_sp0_sp1_r0_r1;
1190 data_shaping = parameter_dump_packet.bw_sp0_sp1_r0_r1;
1114
1191
1115 #ifdef GSA
1116 #else
1117 waveform_picker_regs->data_shaping =
1192 waveform_picker_regs->data_shaping =
1118 ( (data_shaping & 0x10) >> 4 ) // BW
1193 ( (data_shaping & 0x10) >> 4 ) // BW
1119 + ( (data_shaping & 0x08) >> 2 ) // SP0
1194 + ( (data_shaping & 0x08) >> 2 ) // SP0
1120 + ( (data_shaping & 0x04) ) // SP1
1195 + ( (data_shaping & 0x04) ) // SP1
1121 + ( (data_shaping & 0x02) << 2 ) // R0
1196 + ( (data_shaping & 0x02) << 2 ) // R0
1122 + ( (data_shaping & 0x01) << 4 ); // R1
1197 + ( (data_shaping & 0x01) << 4 ); // R1
1123 #endif
1124 }
1198 }
1125
1199
1126 char set_wfp_delta_snapshot()
1127 {
1128 /** This function sets the delta_snapshot register of the waveform picker module.
1129 *
1130 * The value is read from two (unsigned char) of the parameter_dump_packet structure:
1131 * - sy_lfr_n_swf_p[0]
1132 * - sy_lfr_n_swf_p[1]
1133 *
1134 */
1135
1136 char ret;
1137 unsigned int delta_snapshot;
1138 unsigned int aux;
1139
1140 aux = 0;
1141 ret = LFR_DEFAULT;
1142
1143 delta_snapshot = parameter_dump_packet.sy_lfr_n_swf_p[0]*256
1144 + parameter_dump_packet.sy_lfr_n_swf_p[1];
1145
1146 #ifdef GSA
1147 #else
1148 if ( delta_snapshot < MIN_DELTA_SNAPSHOT )
1149 {
1150 aux = MIN_DELTA_SNAPSHOT;
1151 ret = LFR_DEFAULT;
1152 }
1153 else
1154 {
1155 aux = delta_snapshot ;
1156 ret = LFR_SUCCESSFUL;
1157 }
1158 waveform_picker_regs->delta_snapshot = aux - 1; // max 2 bytes
1159 #endif
1160
1161 return ret;
1162 }
1163
1164 #ifdef VHDL_DEV
1165 void set_wfp_burst_enable_register( unsigned char mode )
1200 void set_wfp_burst_enable_register( unsigned char mode )
1166 {
1201 {
1167 /** This function sets the waveform picker burst_enable register depending on the mode.
1202 /** This function sets the waveform picker burst_enable register depending on the mode.
1168 *
1203 *
1169 * @param mode is the LFR mode to launch.
1204 * @param mode is the LFR mode to launch.
1170 *
1205 *
1171 * The burst bits shall be before the enable bits.
1206 * The burst bits shall be before the enable bits.
1172 *
1207 *
1173 */
1208 */
1174
1209
1175 // [0000 0000] burst f2, f1, f0 enable f3 f2 f1 f0
1210 // [0000 0000] burst f2, f1, f0 enable f3 f2 f1 f0
1176 // the burst bits shall be set first, before the enable bits
1211 // the burst bits shall be set first, before the enable bits
1177 switch(mode) {
1212 switch(mode) {
1178 case(LFR_MODE_NORMAL):
1213 case(LFR_MODE_NORMAL):
1179 waveform_picker_regs->run_burst_enable = 0x00; // [0000 0000] no burst enable
1214 waveform_picker_regs->run_burst_enable = 0x00; // [0000 0000] no burst enable
1180 waveform_picker_regs->run_burst_enable = 0x0f; // [0000 1111] enable f3 f2 f1 f0
1215 waveform_picker_regs->run_burst_enable = 0x0f; // [0000 1111] enable f3 f2 f1 f0
1181 break;
1216 break;
1182 case(LFR_MODE_BURST):
1217 case(LFR_MODE_BURST):
1183 waveform_picker_regs->run_burst_enable = 0x40; // [0100 0000] f2 burst enabled
1218 waveform_picker_regs->run_burst_enable = 0x40; // [0100 0000] f2 burst enabled
1184 waveform_picker_regs->run_burst_enable = waveform_picker_regs->run_burst_enable | 0x04; // [0100] enable f2
1219 waveform_picker_regs->run_burst_enable = waveform_picker_regs->run_burst_enable | 0x04; // [0100] enable f2
1185 break;
1220 break;
1186 case(LFR_MODE_SBM1):
1221 case(LFR_MODE_SBM1):
1187 waveform_picker_regs->run_burst_enable = 0x20; // [0010 0000] f1 burst enabled
1222 waveform_picker_regs->run_burst_enable = 0x20; // [0010 0000] f1 burst enabled
1188 waveform_picker_regs->run_burst_enable = waveform_picker_regs->run_burst_enable | 0x0f; // [1111] enable f3 f2 f1 f0
1223 waveform_picker_regs->run_burst_enable = waveform_picker_regs->run_burst_enable | 0x0f; // [1111] enable f3 f2 f1 f0
1189 break;
1224 break;
1190 case(LFR_MODE_SBM2):
1225 case(LFR_MODE_SBM2):
1191 waveform_picker_regs->run_burst_enable = 0x40; // [0100 0000] f2 burst enabled
1226 waveform_picker_regs->run_burst_enable = 0x40; // [0100 0000] f2 burst enabled
1192 waveform_picker_regs->run_burst_enable = waveform_picker_regs->run_burst_enable | 0x0f; // [1111] enable f3 f2 f1 f0
1227 waveform_picker_regs->run_burst_enable = waveform_picker_regs->run_burst_enable | 0x0f; // [1111] enable f3 f2 f1 f0
1193 break;
1228 break;
1194 default:
1229 default:
1195 waveform_picker_regs->run_burst_enable = 0x00; // [0000 0000] no burst enabled, no waveform enabled
1230 waveform_picker_regs->run_burst_enable = 0x00; // [0000 0000] no burst enabled, no waveform enabled
1196 break;
1231 break;
1197 }
1232 }
1198 }
1233 }
1199 #else
1234
1200 void set_wfp_burst_enable_register( unsigned char mode )
1235 void set_wfp_delta_snapshot( void )
1201 {
1236 {
1202 /** This function sets the waveform picker burst_enable register depending on the mode.
1237 /** This function sets the delta_snapshot register of the waveform picker module.
1203 *
1204 * @param mode is the LFR mode to launch.
1205 *
1206 * The burst bits shall be before the enable bits.
1207 *
1238 *
1208 */
1239 * The value is read from two (unsigned char) of the parameter_dump_packet structure:
1209
1240 * - sy_lfr_n_swf_p[0]
1210 // [0000 0000] burst f2, f1, f0 enable f3 f2 f1 f0
1241 * - sy_lfr_n_swf_p[1]
1211 // the burst bits shall be set first, before the enable bits
1212 switch(mode) {
1213 case(LFR_MODE_NORMAL):
1214 waveform_picker_regs->burst_enable = 0x00; // [0000 0000] no burst enable
1215 waveform_picker_regs->burst_enable = 0x0f; // [0000 1111] enable f3 f2 f1 f0
1216 break;
1217 case(LFR_MODE_BURST):
1218 waveform_picker_regs->burst_enable = 0x40; // [0100 0000] f2 burst enabled
1219 waveform_picker_regs->burst_enable = waveform_picker_regs->burst_enable | 0x04; // [0100] enable f2
1220 break;
1221 case(LFR_MODE_SBM1):
1222 waveform_picker_regs->burst_enable = 0x20; // [0010 0000] f1 burst enabled
1223 waveform_picker_regs->burst_enable = waveform_picker_regs->burst_enable | 0x0f; // [1111] enable f3 f2 f1 f0
1224 break;
1225 case(LFR_MODE_SBM2):
1226 waveform_picker_regs->burst_enable = 0x40; // [0100 0000] f2 burst enabled
1227 waveform_picker_regs->burst_enable = waveform_picker_regs->burst_enable | 0x0f; // [1111] enable f3 f2 f1 f0
1228 break;
1229 default:
1230 waveform_picker_regs->burst_enable = 0x00; // [0000 0000] no burst enabled, no waveform enabled
1231 break;
1232 }
1233 }
1234 #endif
1235
1236 void reset_wfp_burst_enable()
1237 {
1238 /** This function resets the waveform picker burst_enable register.
1239 *
1240 * The burst bits [f2 f1 f0] and the enable bits [f3 f2 f1 f0] are set to 0.
1241 *
1242 */
1243
1244 #ifdef VHDL_DEV
1245 waveform_picker_regs->run_burst_enable = 0x00; // burst f2, f1, f0 enable f3, f2, f1, f0
1246 #else
1247 waveform_picker_regs->burst_enable = 0x00; // burst f2, f1, f0 enable f3, f2, f1, f0
1248 #endif
1249 }
1250
1251 void reset_wfp_status()
1252 {
1253 /** This function resets the waveform picker status register.
1254 *
1255 * All status bits are set to 0 [new_err full_err full].
1256 *
1242 *
1257 */
1243 */
1258
1244
1259 #ifdef GSA
1245 unsigned int delta_snapshot;
1260 #else
1246 unsigned int delta_snapshot_in_T2;
1261 waveform_picker_regs->status = 0x00; // burst f2, f1, f0 enable f3, f2, f1, f0
1262 #endif
1263 }
1264
1247
1265 void reset_waveform_picker_regs_vhdl_dev()
1248 delta_snapshot = parameter_dump_packet.sy_lfr_n_swf_p[0]*256
1266 {
1249 + parameter_dump_packet.sy_lfr_n_swf_p[1];
1267 /** This function resets the waveform picker module registers.
1250
1268 *
1251 delta_snapshot_in_T2 = delta_snapshot * 256;
1269 * The registers affected by this function are located at the following offset addresses:
1252 waveform_picker_regs->delta_snapshot = delta_snapshot_in_T2; // max 4 bytes
1270 * - 0x00 data_shaping
1271 * - 0x04 run_burst_enable
1272 * - 0x08 addr_data_f0
1273 * - 0x0C addr_data_f1
1274 * - 0x10 addr_data_f2
1275 * - 0x14 addr_data_f3
1276 * - 0x18 status
1277 * - 0x1C delta_snapshot
1278 * - 0x20 delta_f0
1279 * - 0x24 delta_f0_2
1280 * - 0x28 delta_f1
1281 * - 0x2c delta_f2
1282 * - 0x30 nb_data_by_buffer
1283 * - 0x34 nb_snapshot_param
1284 * - 0x38 start_date
1285 * - 0x3c nb_word_in_buffer
1286 *
1287 */
1288 waveform_picker_regs->data_shaping = 0x01; // 0x00 *** R1 R0 SP1 SP0 BW
1289 waveform_picker_regs->run_burst_enable = 0x00; // 0x04 *** [run *** burst f2, f1, f0 *** enable f3, f2, f1, f0 ]
1290 //waveform_picker_regs->addr_data_f0 = (int) (wf_snap_f0); // 0x08
1291 waveform_picker_regs->addr_data_f0 = current_ring_node_f0->buffer_address; // 0x08
1292 waveform_picker_regs->addr_data_f1 = current_ring_node_f1->buffer_address; // 0x0c
1293 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address; // 0x10
1294 waveform_picker_regs->addr_data_f3 = (int) (wf_cont_f3_a); // 0x14
1295 waveform_picker_regs->status = 0x00; // 0x18
1296 //
1297 waveform_picker_regs->delta_snapshot = 0x1000; // 0x1c *** 4096 = 16 * 256
1298 waveform_picker_regs->delta_f0 = 0xc0b; // 0x20 *** 3083 = 4096 - 1013
1299 waveform_picker_regs->delta_f0_2 = 0x7; // 0x24 *** 7 [7 bits]
1300 waveform_picker_regs->delta_f1 = 0xc40; // 0x28 *** 3136 = 4096 - 960
1301 waveform_picker_regs->delta_f2 = 0xc00; // 0x2c *** 3072 = 12 * 256
1302 //
1303 // waveform_picker_regs->delta_snapshot = 0x1000; // 0x1c *** 4096 = 16 * 256
1304 // waveform_picker_regs->delta_f0 = 0x1; // 0x20 ***
1305 // waveform_picker_regs->delta_f0_2 = 0x7; // 0x24 *** 7 [7 bits]
1306 // waveform_picker_regs->delta_f1 = 0x1; // 0x28 ***
1307 // waveform_picker_regs->delta_f2 = 0x1; // 0x2c ***
1308 //
1309 // waveform_picker_regs->delta_snapshot = 0x1000; // 0x1c *** 4096 = 16 * 256
1310 // waveform_picker_regs->delta_f0 = 0x0fff; // 0x20 ***
1311 // waveform_picker_regs->delta_f0_2 = 0x7; // 0x24 *** 7 [7 bits]
1312 // waveform_picker_regs->delta_f1 = 0x0fff; // 0x28 ***
1313 // waveform_picker_regs->delta_f2 = 0x1; // 0x2c ***
1314 // 2048
1315 // waveform_picker_regs->nb_data_by_buffer = 0x7ff; // 0x30 *** 2048 -1 => nb samples -1
1316 // waveform_picker_regs->snapshot_param = 0x800; // 0x34 *** 2048 => nb samples
1317 // waveform_picker_regs->start_date = 0x00; // 0x38
1318 // waveform_picker_regs->nb_word_in_buffer = 0x1802; // 0x3c *** 2048 * 3 + 2 = 6146
1319 // 2352 = 7 * 336
1320 // waveform_picker_regs->nb_data_by_buffer = 0x92f; // 0x30 *** 2352 - 1 => nb samples -1
1321 // waveform_picker_regs->snapshot_param = 0x930; // 0x34 *** 2352 => nb samples
1322 // waveform_picker_regs->start_date = 0x00; // 0x38
1323 // waveform_picker_regs->nb_word_in_buffer = 0x1b92; // 0x3c *** 2352 * 3 + 2 = 7058
1324 // 128
1325 waveform_picker_regs->nb_data_by_buffer = 0x7f; // 0x30 *** 128 - 1 => nb samples -1
1326 waveform_picker_regs->snapshot_param = 0x80; // 0x34 *** 128 => nb samples
1327 waveform_picker_regs->start_date = 0x00; // 0x38
1328 waveform_picker_regs->nb_word_in_buffer = 0x182; // 0x3c *** 128 * 3 + 2 = 386
1329 }
1253 }
1330
1254
1331 void reset_waveform_picker_regs_vhdl_dev_debug()
1255 void set_wfp_delta_f0_f0_2( void )
1332 {
1256 {
1333 /** This function resets the waveform picker module registers.
1257 unsigned int delta_snapshot;
1334 *
1258 unsigned int nb_samples_per_snapshot;
1335 * The registers affected by this function are located at the following offset addresses:
1259 float delta_f0_in_float;
1336 * - 0x00 data_shaping
1260
1337 * - 0x04 run_burst_enable
1261 delta_snapshot = waveform_picker_regs->delta_snapshot;
1338 * - 0x08 addr_data_f0
1262 nb_samples_per_snapshot = parameter_dump_packet.sy_lfr_n_swf_l[0] * 256 + parameter_dump_packet.sy_lfr_n_swf_l[1];
1339 * - 0x0C addr_data_f1
1263 delta_f0_in_float =nb_samples_per_snapshot / 2. * ( 1. / 256. - 1. / 24576.) * 256.;
1340 * - 0x10 addr_data_f2
1264
1341 * - 0x14 addr_data_f3
1265 waveform_picker_regs->delta_f0 = delta_snapshot - floor( delta_f0_in_float );
1342 * - 0x18 status
1266 waveform_picker_regs->delta_f0_2 = 0x7; // max 7 bits
1343 * - 0x1C delta_snapshot
1344 * - 0x20 delta_f0
1345 * - 0x24 delta_f0_2
1346 * - 0x28 delta_f1
1347 * - 0x2c delta_f2
1348 * - 0x30 nb_data_by_buffer
1349 * - 0x34 nb_snapshot_param
1350 * - 0x38 start_date
1351 * - 0x3c nb_word_in_buffer
1352 *
1353 */
1354 waveform_picker_regs->data_shaping = 0x01; // 0x00 *** R1 R0 SP1 SP0 BW
1355 waveform_picker_regs->run_burst_enable = 0x00; // 0x04 *** [run *** burst f2, f1, f0 *** enable f3, f2, f1, f0 ]
1356 //waveform_picker_regs->addr_data_f0 = (int) (wf_snap_f0); // 0x08
1357 waveform_picker_regs->addr_data_f0 = current_ring_node_f0->buffer_address; // 0x08
1358 waveform_picker_regs->addr_data_f1 = current_ring_node_f1->buffer_address; // 0x0c
1359 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address; // 0x10
1360 waveform_picker_regs->addr_data_f3 = (int) (wf_cont_f3_a); // 0x14
1361 waveform_picker_regs->status = 0x00; // 0x18
1362 //
1363 waveform_picker_regs->delta_snapshot = 0x100; // 0x1c *** 256
1364 waveform_picker_regs->delta_f0 = 0xc1; // 0x20 *** 256 - 63
1365 waveform_picker_regs->delta_f0_2 = 0x7; // 0x24 *** 7 [7 bits]
1366 waveform_picker_regs->delta_f1 = 0xc4; // 0x28 *** 256 - 60
1367 waveform_picker_regs->delta_f2 = 0xc0; // 0x2c *** 192
1368 // 128
1369 waveform_picker_regs->nb_data_by_buffer = 0x7f; // 0x30 *** 128 - 1 => nb samples -1
1370 waveform_picker_regs->snapshot_param = 0x80; // 0x34 *** 128 => nb samples
1371 waveform_picker_regs->start_date = 0x00; // 0x38
1372 waveform_picker_regs->nb_word_in_buffer = 0x182; // 0x3c *** 128 * 3 + 2 = 386
1373 }
1267 }
1374
1268
1375 void reset_waveform_picker_regs_vhdl_dev_debug_64()
1269 void set_wfp_delta_f1( void )
1376 {
1270 {
1377 /** This function resets the waveform picker module registers.
1271 unsigned int delta_snapshot;
1378 *
1272 unsigned int nb_samples_per_snapshot;
1379 * The registers affected by this function are located at the following offset addresses:
1273 float delta_f1_in_float;
1380 * - 0x00 data_shaping
1274
1381 * - 0x04 run_burst_enable
1275 delta_snapshot = waveform_picker_regs->delta_snapshot;
1382 * - 0x08 addr_data_f0
1276 nb_samples_per_snapshot = parameter_dump_packet.sy_lfr_n_swf_l[0] * 256 + parameter_dump_packet.sy_lfr_n_swf_l[1];
1383 * - 0x0C addr_data_f1
1277 delta_f1_in_float = nb_samples_per_snapshot / 2. * ( 1. / 256. - 1. / 4096.) * 256.;
1384 * - 0x10 addr_data_f2
1278
1385 * - 0x14 addr_data_f3
1279 waveform_picker_regs->delta_f1 = delta_snapshot - floor( delta_f1_in_float );
1386 * - 0x18 status
1387 * - 0x1C delta_snapshot
1388 * - 0x20 delta_f0
1389 * - 0x24 delta_f0_2
1390 * - 0x28 delta_f1
1391 * - 0x2c delta_f2
1392 * - 0x30 nb_data_by_buffer
1393 * - 0x34 nb_snapshot_param
1394 * - 0x38 start_date
1395 * - 0x3c nb_word_in_buffer
1396 *
1397 */
1398 waveform_picker_regs->data_shaping = 0x01; // 0x00 *** R1 R0 SP1 SP0 BW
1399 waveform_picker_regs->run_burst_enable = 0x00; // 0x04 *** [run *** burst f2, f1, f0 *** enable f3, f2, f1, f0 ]
1400 //waveform_picker_regs->addr_data_f0 = (int) (wf_snap_f0); // 0x08
1401 waveform_picker_regs->addr_data_f0 = current_ring_node_f0->buffer_address; // 0x08
1402 waveform_picker_regs->addr_data_f1 = current_ring_node_f1->buffer_address; // 0x0c
1403 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address; // 0x10
1404 waveform_picker_regs->addr_data_f3 = (int) (wf_cont_f3_a); // 0x14
1405 waveform_picker_regs->status = 0x00; // 0x18
1406 //
1407 waveform_picker_regs->delta_snapshot = 0x80; // 0x1c *** 128
1408 waveform_picker_regs->delta_f0 = 0x60; // 0x20 *** 128 - 32 = 96
1409 waveform_picker_regs->delta_f0_2 = 0x7; // 0x24 *** 7 [7 bits]
1410 waveform_picker_regs->delta_f1 = 0x62; // 0x28 *** 128 - 30 = 90
1411 waveform_picker_regs->delta_f2 = 0x60; // 0x2c *** 192
1412 // 128
1413 waveform_picker_regs->nb_data_by_buffer = 0x3f; // 0x30 *** 64 - 1 => nb samples -1
1414 waveform_picker_regs->snapshot_param = 0x40; // 0x34 *** 64 => nb samples
1415 waveform_picker_regs->start_date = 0x00; // 0x38
1416 waveform_picker_regs->nb_word_in_buffer = 0xc2; // 0x3c *** 64 * 3 + 2 = 194
1417 }
1280 }
1418
1281
1419 void reset_waveform_picker_regs()
1282 void set_wfp_delta_f2()
1420 {
1283 {
1421 /** This function resets the waveform picker module registers.
1284 unsigned int delta_snapshot;
1422 *
1285 unsigned int nb_samples_per_snapshot;
1423 * The registers affected by this function are located at the following offset addresses:
1424 * - 0x00 data_shaping
1425 * - 0x04 burst_enable
1426 * - 0x08 addr_data_f0
1427 * - 0x0C addr_data_f1
1428 * - 0x10 addr_data_f2
1429 * - 0x14 addr_data_f3
1430 * - 0x18 status
1431 * - 0x1C delta_snapshot
1432 * - 0x20 delta_f2_f1
1433 * - 0x24 delta_f2_f0
1434 * - 0x28 nb_burst
1435 * - 0x2C nb_snapshot
1436 *
1437 */
1438
1286
1439 #ifdef VHDL_DEV
1287 delta_snapshot = waveform_picker_regs->delta_snapshot;
1440 #else
1288 nb_samples_per_snapshot = parameter_dump_packet.sy_lfr_n_swf_l[0] * 256 + parameter_dump_packet.sy_lfr_n_swf_l[1];
1441 reset_wfp_burst_enable();
1289
1442 reset_wfp_status();
1290 waveform_picker_regs->delta_f2 = delta_snapshot - nb_samples_per_snapshot / 2;
1443 // set buffer addresses
1444 waveform_picker_regs->addr_data_f0 = (int) (wf_snap_f0);
1445 waveform_picker_regs->addr_data_f1 = current_ring_node_f1->buffer_address;
1446 waveform_picker_regs->addr_data_f2 = current_ring_node_f2->buffer_address;
1447 waveform_picker_regs->addr_data_f3 = (int) (wf_cont_f3_a);
1448 // set other parameters
1449 set_wfp_data_shaping();
1450 set_wfp_delta_snapshot(); // time in seconds between two snapshots
1451 waveform_picker_regs->delta_f2_f1 = 0xffff; // 0x16800 => 92160 (max 4 bytes)
1452 waveform_picker_regs->delta_f2_f0 = 0x17c00; // 97 280 (max 5 bytes)
1453 // waveform_picker_regs->nb_burst_available = 0x180; // max 3 bytes, size of the buffer in burst (1 burst = 16 x 4 octets)
1454 // // 3 * 2048 / 16 = 384
1455 // waveform_picker_regs->nb_snapshot_param = 0x7ff; // max 3 octets, 2048 - 1
1456 waveform_picker_regs->nb_burst_available = 0x1b9; // max 3 bytes, size of the buffer in burst (1 burst = 16 x 4 octets)
1457 // 3 * 2352 / 16 = 441
1458 waveform_picker_regs->nb_snapshot_param = 0x944; // max 3 octets, 2372 - 1
1459 #endif
1460 }
1291 }
1461
1292
1462 //*****************
1293 //*****************
1463 // local parameters
1294 // local parameters
1464 void set_local_nb_interrupt_f0_MAX( void )
1295 void set_local_nb_interrupt_f0_MAX( void )
1465 {
1296 {
1466 /** This function sets the value of the nb_interrupt_f0_MAX local parameter.
1297 /** This function sets the value of the nb_interrupt_f0_MAX local parameter.
1467 *
1298 *
1468 * This parameter is used for the SM validation only.\n
1299 * This parameter is used for the SM validation only.\n
1469 * The software waits param_local.local_nb_interrupt_f0_MAX interruptions from the spectral matrices
1300 * The software waits param_local.local_nb_interrupt_f0_MAX interruptions from the spectral matrices
1470 * module before launching a basic processing.
1301 * module before launching a basic processing.
1471 *
1302 *
1472 */
1303 */
1473
1304
1474 param_local.local_nb_interrupt_f0_MAX = ( (parameter_dump_packet.sy_lfr_n_asm_p[0]) * 256
1305 param_local.local_nb_interrupt_f0_MAX = ( (parameter_dump_packet.sy_lfr_n_asm_p[0]) * 256
1475 + parameter_dump_packet.sy_lfr_n_asm_p[1] ) * 100;
1306 + parameter_dump_packet.sy_lfr_n_asm_p[1] ) * 100;
1476 }
1307 }
1477
1308
1478 void increment_seq_counter_source_id( unsigned char *packet_sequence_control, unsigned int sid )
1309 void increment_seq_counter_source_id( unsigned char *packet_sequence_control, unsigned int sid )
1479 {
1310 {
1480 unsigned short *sequence_cnt;
1311 unsigned short *sequence_cnt;
1481 unsigned short segmentation_grouping_flag;
1312 unsigned short segmentation_grouping_flag;
1482 unsigned short new_packet_sequence_control;
1313 unsigned short new_packet_sequence_control;
1483
1314
1484 if ( (sid ==SID_NORM_SWF_F0) || (sid ==SID_NORM_SWF_F1) || (sid ==SID_NORM_SWF_F2)
1315 if ( (sid ==SID_NORM_SWF_F0) || (sid ==SID_NORM_SWF_F1) || (sid ==SID_NORM_SWF_F2)
1485 || (sid ==SID_NORM_CWF_F3) || (sid==SID_NORM_CWF_LONG_F3) || (sid ==SID_BURST_CWF_F2) )
1316 || (sid ==SID_NORM_CWF_F3) || (sid==SID_NORM_CWF_LONG_F3) || (sid ==SID_BURST_CWF_F2) )
1486 {
1317 {
1487 sequence_cnt = &sequenceCounters_SCIENCE_NORMAL_BURST;
1318 sequence_cnt = &sequenceCounters_SCIENCE_NORMAL_BURST;
1488 }
1319 }
1489 else if ( (sid ==SID_SBM1_CWF_F1) || (sid ==SID_SBM2_CWF_F2) )
1320 else if ( (sid ==SID_SBM1_CWF_F1) || (sid ==SID_SBM2_CWF_F2) )
1490 {
1321 {
1491 sequence_cnt = &sequenceCounters_SCIENCE_SBM1_SBM2;
1322 sequence_cnt = &sequenceCounters_SCIENCE_SBM1_SBM2;
1492 }
1323 }
1493 else
1324 else
1494 {
1325 {
1495 sequence_cnt = NULL;
1326 sequence_cnt = NULL;
1496 PRINTF1("in increment_seq_counter_source_id *** ERR apid_destid %d not known\n", sid)
1327 PRINTF1("in increment_seq_counter_source_id *** ERR apid_destid %d not known\n", sid)
1497 }
1328 }
1498
1329
1499 if (sequence_cnt != NULL)
1330 if (sequence_cnt != NULL)
1500 {
1331 {
1501 segmentation_grouping_flag = (packet_sequence_control[ 0 ] & 0xc0) << 8;
1332 segmentation_grouping_flag = (packet_sequence_control[ 0 ] & 0xc0) << 8;
1502 *sequence_cnt = (*sequence_cnt) & 0x3fff;
1333 *sequence_cnt = (*sequence_cnt) & 0x3fff;
1503
1334
1504 new_packet_sequence_control = segmentation_grouping_flag | *sequence_cnt ;
1335 new_packet_sequence_control = segmentation_grouping_flag | *sequence_cnt ;
1505
1336
1506 packet_sequence_control[0] = (unsigned char) (new_packet_sequence_control >> 8);
1337 packet_sequence_control[0] = (unsigned char) (new_packet_sequence_control >> 8);
1507 packet_sequence_control[1] = (unsigned char) (new_packet_sequence_control );
1338 packet_sequence_control[1] = (unsigned char) (new_packet_sequence_control );
1508
1339
1509 // increment the sequence counter for the next packet
1340 // increment the sequence counter for the next packet
1510 if ( *sequence_cnt < SEQ_CNT_MAX)
1341 if ( *sequence_cnt < SEQ_CNT_MAX)
1511 {
1342 {
1512 *sequence_cnt = *sequence_cnt + 1;
1343 *sequence_cnt = *sequence_cnt + 1;
1513 }
1344 }
1514 else
1345 else
1515 {
1346 {
1516 *sequence_cnt = 0;
1347 *sequence_cnt = 0;
1517 }
1348 }
1518 }
1349 }
1519 }
1350 }
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