##// END OF EJS Templates
Correction de la FSM qui regule les données entrant dans la FFT
pellion -
r557:7faec0eb9fbb (MINI-LFR) WFP_MS-0-1-67 (LFR-EM) WFP_MS_1-1-67 JC
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@@ -1,455 +1,455
1 1 ------------------------------------------------------------------------------
2 2 -- This file is a part of the LPP VHDL IP LIBRARY
3 3 -- Copyright (C) 2009 - 2010, Laboratory of Plasmas Physic - CNRS
4 4 --
5 5 -- This program is free software; you can redistribute it and/or modify
6 6 -- it under the terms of the GNU General Public License as published by
7 7 -- the Free Software Foundation; either version 3 of the License, or
8 8 -- (at your option) any later version.
9 9 --
10 10 -- This program is distributed in the hope that it will be useful,
11 11 -- but WITHOUT ANY WARRANTY; without even the implied warranty of
12 12 -- MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
13 13 -- GNU General Public License for more details.
14 14 --
15 15 -- You should have received a copy of the GNU General Public License
16 16 -- along with this program; if not, write to the Free Software
17 17 -- Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
18 18 -------------------------------------------------------------------------------
19 19 -- Author : Jean-christophe Pellion
20 20 -- Mail : jean-christophe.pellion@lpp.polytechnique.fr
21 21 -------------------------------------------------------------------------------
22 22 LIBRARY IEEE;
23 23 USE IEEE.numeric_std.ALL;
24 24 USE IEEE.std_logic_1164.ALL;
25 25 LIBRARY grlib;
26 26 USE grlib.amba.ALL;
27 27 USE grlib.stdlib.ALL;
28 28 LIBRARY techmap;
29 29 USE techmap.gencomp.ALL;
30 30 LIBRARY gaisler;
31 31 USE gaisler.memctrl.ALL;
32 32 USE gaisler.leon3.ALL;
33 33 USE gaisler.uart.ALL;
34 34 USE gaisler.misc.ALL;
35 35 USE gaisler.spacewire.ALL;
36 36 LIBRARY esa;
37 37 USE esa.memoryctrl.ALL;
38 38 LIBRARY lpp;
39 39 USE lpp.lpp_memory.ALL;
40 40 USE lpp.lpp_ad_conv.ALL;
41 41 USE lpp.lpp_lfr_pkg.ALL; -- contains lpp_lfr, not in the 206 rev of the VHD_Lib
42 42 USE lpp.lpp_top_lfr_pkg.ALL; -- contains top_wf_picker
43 43 USE lpp.iir_filter.ALL;
44 44 USE lpp.general_purpose.ALL;
45 45 USE lpp.lpp_lfr_management.ALL;
46 46 USE lpp.lpp_leon3_soc_pkg.ALL;
47 47
48 48 ENTITY LFR_em IS
49 49
50 50 PORT (
51 51 clk100MHz : IN STD_ULOGIC;
52 52 clk49_152MHz : IN STD_ULOGIC;
53 53 reset : IN STD_ULOGIC;
54 54
55 55 -- TAG --------------------------------------------------------------------
56 56 TAG1 : IN STD_ULOGIC; -- DSU rx data
57 57 TAG3 : OUT STD_ULOGIC; -- DSU tx data
58 58 -- UART APB ---------------------------------------------------------------
59 59 TAG2 : IN STD_ULOGIC; -- UART1 rx data
60 60 TAG4 : OUT STD_ULOGIC; -- UART1 tx data
61 61 -- RAM --------------------------------------------------------------------
62 62 address : OUT STD_LOGIC_VECTOR(19 DOWNTO 0);
63 63 data : INOUT STD_LOGIC_VECTOR(31 DOWNTO 0);
64 64 nSRAM_BE0 : OUT STD_LOGIC;
65 65 nSRAM_BE1 : OUT STD_LOGIC;
66 66 nSRAM_BE2 : OUT STD_LOGIC;
67 67 nSRAM_BE3 : OUT STD_LOGIC;
68 68 nSRAM_WE : OUT STD_LOGIC;
69 69 nSRAM_CE : OUT STD_LOGIC;
70 70 nSRAM_OE : OUT STD_LOGIC;
71 71 -- SPW --------------------------------------------------------------------
72 72 spw1_din : IN STD_LOGIC;
73 73 spw1_sin : IN STD_LOGIC;
74 74 spw1_dout : OUT STD_LOGIC;
75 75 spw1_sout : OUT STD_LOGIC;
76 76 spw2_din : IN STD_LOGIC;
77 77 spw2_sin : IN STD_LOGIC;
78 78 spw2_dout : OUT STD_LOGIC;
79 79 spw2_sout : OUT STD_LOGIC;
80 80 -- ADC --------------------------------------------------------------------
81 81 bias_fail_sw : OUT STD_LOGIC;
82 82 ADC_OEB_bar_CH : OUT STD_LOGIC_VECTOR(7 DOWNTO 0);
83 83 ADC_smpclk : OUT STD_LOGIC;
84 84 ADC_data : IN STD_LOGIC_VECTOR(13 DOWNTO 0);
85 85 -- DAC --------------------------------------------------------------------
86 86 DAC_SDO : OUT STD_LOGIC;
87 87 DAC_SCK : OUT STD_LOGIC;
88 88 DAC_SYNC : OUT STD_LOGIC;
89 89 DAC_CAL_EN : OUT STD_LOGIC;
90 90 -- HK ---------------------------------------------------------------------
91 91 HK_smpclk : OUT STD_LOGIC;
92 92 ADC_OEB_bar_HK : OUT STD_LOGIC;
93 93 HK_SEL : OUT STD_LOGIC_VECTOR(1 DOWNTO 0);
94 94 ---------------------------------------------------------------------------
95 95 TAG8 : OUT STD_LOGIC;
96 96 led : OUT STD_LOGIC_VECTOR(2 DOWNTO 0)
97 97 );
98 98
99 99 END LFR_em;
100 100
101 101
102 102 ARCHITECTURE beh OF LFR_em IS
103 103 SIGNAL clk_50_s : STD_LOGIC := '0';
104 104 SIGNAL clk_25 : STD_LOGIC := '0';
105 105 SIGNAL clk_24 : STD_LOGIC := '0';
106 106 -----------------------------------------------------------------------------
107 107 SIGNAL coarse_time : STD_LOGIC_VECTOR(31 DOWNTO 0);
108 108 SIGNAL fine_time : STD_LOGIC_VECTOR(15 DOWNTO 0);
109 109
110 110 -- CONSTANTS
111 111 CONSTANT CFG_PADTECH : INTEGER := inferred;
112 112 CONSTANT NB_APB_SLAVE : INTEGER := 11; -- 3 = grspw + waveform picker + time manager, 11 allows pindex = f
113 113 CONSTANT NB_AHB_SLAVE : INTEGER := 1;
114 114 CONSTANT NB_AHB_MASTER : INTEGER := 2; -- 2 = grspw + waveform picker
115 115
116 116 SIGNAL apbi_ext : apb_slv_in_type;
117 117 SIGNAL apbo_ext : soc_apb_slv_out_vector(NB_APB_SLAVE-1+5 DOWNTO 5) := (OTHERS => apb_none);
118 118 SIGNAL ahbi_s_ext : ahb_slv_in_type;
119 119 SIGNAL ahbo_s_ext : soc_ahb_slv_out_vector(NB_AHB_SLAVE-1+3 DOWNTO 3) := (OTHERS => ahbs_none);
120 120 SIGNAL ahbi_m_ext : AHB_Mst_In_Type;
121 121 SIGNAL ahbo_m_ext : soc_ahb_mst_out_vector(NB_AHB_MASTER-1+1 DOWNTO 1) := (OTHERS => ahbm_none);
122 122
123 123 -- Spacewire signals
124 124 SIGNAL dtmp : STD_LOGIC_VECTOR(1 DOWNTO 0);
125 125 SIGNAL stmp : STD_LOGIC_VECTOR(1 DOWNTO 0);
126 126 SIGNAL spw_rxclk : STD_LOGIC_VECTOR(1 DOWNTO 0);
127 127 SIGNAL spw_rxtxclk : STD_ULOGIC;
128 128 SIGNAL spw_rxclkn : STD_ULOGIC;
129 129 SIGNAL spw_clk : STD_LOGIC;
130 130 SIGNAL swni : grspw_in_type;
131 131 SIGNAL swno : grspw_out_type;
132 132
133 133 --GPIO
134 134 SIGNAL gpioi : gpio_in_type;
135 135 SIGNAL gpioo : gpio_out_type;
136 136
137 137 -- AD Converter ADS7886
138 138 SIGNAL sample : Samples14v(8 DOWNTO 0);
139 139 SIGNAL sample_s : Samples(8 DOWNTO 0);
140 140 SIGNAL sample_val : STD_LOGIC;
141 141 SIGNAL ADC_OEB_bar_CH_s : STD_LOGIC_VECTOR(8 DOWNTO 0);
142 142
143 143 -----------------------------------------------------------------------------
144 144 SIGNAL observation_reg : STD_LOGIC_VECTOR(31 DOWNTO 0);
145 145
146 146 -----------------------------------------------------------------------------
147 147 SIGNAL rstn : STD_LOGIC;
148 148
149 149 SIGNAL LFR_soft_rstn : STD_LOGIC;
150 150 SIGNAL LFR_rstn : STD_LOGIC;
151 151
152 152 SIGNAL ADC_smpclk_s : STD_LOGIC;
153 153 -----------------------------------------------------------------------------
154 154 SIGNAL nSRAM_CE_s : STD_LOGIC_VECTOR(1 DOWNTO 0);
155 155
156 156 BEGIN -- beh
157 157
158 158 -----------------------------------------------------------------------------
159 159 -- CLK
160 160 -----------------------------------------------------------------------------
161 161 rst0 : rstgen PORT MAP (reset, clk_25, '1', rstn, OPEN);
162 162
163 163 PROCESS(clk100MHz)
164 164 BEGIN
165 165 IF clk100MHz'EVENT AND clk100MHz = '1' THEN
166 166 clk_50_s <= NOT clk_50_s;
167 167 END IF;
168 168 END PROCESS;
169 169
170 170 PROCESS(clk_50_s)
171 171 BEGIN
172 172 IF clk_50_s'EVENT AND clk_50_s = '1' THEN
173 173 clk_25 <= NOT clk_25;
174 174 END IF;
175 175 END PROCESS;
176 176
177 177 PROCESS(clk49_152MHz)
178 178 BEGIN
179 179 IF clk49_152MHz'EVENT AND clk49_152MHz = '1' THEN
180 180 clk_24 <= NOT clk_24;
181 181 END IF;
182 182 END PROCESS;
183 183
184 184 -----------------------------------------------------------------------------
185 185
186 186 PROCESS (clk_25, rstn)
187 187 BEGIN -- PROCESS
188 188 IF rstn = '0' THEN -- asynchronous reset (active low)
189 189 led(0) <= '0';
190 190 led(1) <= '0';
191 191 led(2) <= '0';
192 192 ELSIF clk_25'EVENT AND clk_25 = '1' THEN -- rising clock edge
193 193 led(0) <= '0';
194 194 led(1) <= '1';
195 195 led(2) <= '1';
196 196 END IF;
197 197 END PROCESS;
198 198
199 199 --
200 200 leon3_soc_1 : leon3_soc
201 201 GENERIC MAP (
202 202 fabtech => apa3e,
203 203 memtech => apa3e,
204 204 padtech => inferred,
205 205 clktech => inferred,
206 206 disas => 0,
207 207 dbguart => 0,
208 208 pclow => 2,
209 209 clk_freq => 25000,
210 210 IS_RADHARD => 0,
211 211 NB_CPU => 1,
212 212 ENABLE_FPU => 1,
213 213 FPU_NETLIST => 0,
214 214 ENABLE_DSU => 1,
215 215 ENABLE_AHB_UART => 1,
216 216 ENABLE_APB_UART => 1,
217 217 ENABLE_IRQMP => 1,
218 218 ENABLE_GPT => 1,
219 219 NB_AHB_MASTER => NB_AHB_MASTER,
220 220 NB_AHB_SLAVE => NB_AHB_SLAVE,
221 221 NB_APB_SLAVE => NB_APB_SLAVE,
222 222 ADDRESS_SIZE => 20,
223 223 USES_IAP_MEMCTRLR => 0)
224 224 PORT MAP (
225 225 clk => clk_25,
226 226 reset => rstn,
227 227 errorn => OPEN,
228 228
229 229 ahbrxd => TAG1,
230 230 ahbtxd => TAG3,
231 231 urxd1 => TAG2,
232 232 utxd1 => TAG4,
233 233
234 234 address => address,
235 235 data => data,
236 236 nSRAM_BE0 => nSRAM_BE0,
237 237 nSRAM_BE1 => nSRAM_BE1,
238 238 nSRAM_BE2 => nSRAM_BE2,
239 239 nSRAM_BE3 => nSRAM_BE3,
240 240 nSRAM_WE => nSRAM_WE,
241 241 nSRAM_CE => nSRAM_CE_s,
242 242 nSRAM_OE => nSRAM_OE,
243 243 nSRAM_READY => '0',
244 244 SRAM_MBE => OPEN,
245 245
246 246 apbi_ext => apbi_ext,
247 247 apbo_ext => apbo_ext,
248 248 ahbi_s_ext => ahbi_s_ext,
249 249 ahbo_s_ext => ahbo_s_ext,
250 250 ahbi_m_ext => ahbi_m_ext,
251 251 ahbo_m_ext => ahbo_m_ext);
252 252
253 253
254 254 nSRAM_CE <= nSRAM_CE_s(0);
255 255
256 256 -------------------------------------------------------------------------------
257 257 -- APB_LFR_TIME_MANAGEMENT ----------------------------------------------------
258 258 -------------------------------------------------------------------------------
259 259 apb_lfr_management_1 : apb_lfr_management
260 260 GENERIC MAP (
261 261 tech => apa3e,
262 262 pindex => 6,
263 263 paddr => 6,
264 264 pmask => 16#fff#,
265 265 FIRST_DIVISION => 374, -- ((49.152/2) /2^16) - 1 = 375 - 1 = 374
266 266 NB_SECOND_DESYNC => 60) -- 60 secondes of desynchronization before CoarseTime's MSB is Set
267 267 PORT MAP (
268 268 clk25MHz => clk_25,
269 269 clk24_576MHz => clk_24, -- 49.152MHz/2
270 270 resetn => rstn,
271 271 grspw_tick => swno.tickout,
272 272 apbi => apbi_ext,
273 273 apbo => apbo_ext(6),
274 274
275 275 HK_sample => sample_s(8),
276 276 HK_val => sample_val,
277 277 HK_sel => HK_SEL,
278 278
279 279 DAC_SDO => DAC_SDO,
280 280 DAC_SCK => DAC_SCK,
281 281 DAC_SYNC => DAC_SYNC,
282 282 DAC_CAL_EN => DAC_CAL_EN,
283 283
284 284 coarse_time => coarse_time,
285 285 fine_time => fine_time,
286 286 LFR_soft_rstn => LFR_soft_rstn
287 287 );
288 288
289 289 -----------------------------------------------------------------------
290 290 --- SpaceWire --------------------------------------------------------
291 291 -----------------------------------------------------------------------
292 292
293 293 -- SPW_EN <= '1';
294 294
295 295 spw_clk <= clk_50_s;
296 296 spw_rxtxclk <= spw_clk;
297 297 spw_rxclkn <= NOT spw_rxtxclk;
298 298
299 299 -- PADS for SPW1
300 300 spw1_rxd_pad : inpad GENERIC MAP (tech => inferred)
301 301 PORT MAP (spw1_din, dtmp(0));
302 302 spw1_rxs_pad : inpad GENERIC MAP (tech => inferred)
303 303 PORT MAP (spw1_sin, stmp(0));
304 304 spw1_txd_pad : outpad GENERIC MAP (tech => inferred)
305 305 PORT MAP (spw1_dout, swno.d(0));
306 306 spw1_txs_pad : outpad GENERIC MAP (tech => inferred)
307 307 PORT MAP (spw1_sout, swno.s(0));
308 308 -- PADS FOR SPW2
309 309 spw2_rxd_pad : inpad GENERIC MAP (tech => inferred) -- bad naming of the MINI-LFR /!\
310 310 PORT MAP (spw2_din, dtmp(1));
311 311 spw2_rxs_pad : inpad GENERIC MAP (tech => inferred) -- bad naming of the MINI-LFR /!\
312 312 PORT MAP (spw2_sin, stmp(1));
313 313 spw2_txd_pad : outpad GENERIC MAP (tech => inferred)
314 314 PORT MAP (spw2_dout, swno.d(1));
315 315 spw2_txs_pad : outpad GENERIC MAP (tech => inferred)
316 316 PORT MAP (spw2_sout, swno.s(1));
317 317
318 318 -- GRSPW PHY
319 319 --spw1_input: if CFG_SPW_GRSPW = 1 generate
320 320 spw_inputloop : FOR j IN 0 TO 1 GENERATE
321 321 spw_phy0 : grspw_phy
322 322 GENERIC MAP(
323 323 tech => apa3e,
324 324 rxclkbuftype => 1,
325 325 scantest => 0)
326 326 PORT MAP(
327 327 rxrst => swno.rxrst,
328 328 di => dtmp(j),
329 329 si => stmp(j),
330 330 rxclko => spw_rxclk(j),
331 331 do => swni.d(j),
332 332 ndo => swni.nd(j*5+4 DOWNTO j*5),
333 333 dconnect => swni.dconnect(j*2+1 DOWNTO j*2));
334 334 END GENERATE spw_inputloop;
335 335
336 336 -- SPW core
337 337 sw0 : grspwm GENERIC MAP(
338 338 tech => apa3e,
339 339 hindex => 1,
340 340 pindex => 5,
341 341 paddr => 5,
342 342 pirq => 11,
343 343 sysfreq => 25000, -- CPU_FREQ
344 344 rmap => 1,
345 345 rmapcrc => 1,
346 346 fifosize1 => 16,
347 347 fifosize2 => 16,
348 348 rxclkbuftype => 1,
349 349 rxunaligned => 0,
350 350 rmapbufs => 4,
351 351 ft => 0,
352 352 netlist => 0,
353 353 ports => 2,
354 354 --dmachan => CFG_SPW_DMACHAN, -- not used byt the spw core 1
355 355 memtech => apa3e,
356 356 destkey => 2,
357 357 spwcore => 1
358 358 --input_type => CFG_SPW_INPUT, -- not used byt the spw core 1
359 359 --output_type => CFG_SPW_OUTPUT, -- not used byt the spw core 1
360 360 --rxtx_sameclk => CFG_SPW_RTSAME -- not used byt the spw core 1
361 361 )
362 362 PORT MAP(rstn, clk_25, spw_rxclk(0),
363 363 spw_rxclk(1), spw_rxtxclk, spw_rxtxclk,
364 364 ahbi_m_ext, ahbo_m_ext(1), apbi_ext, apbo_ext(5),
365 365 swni, swno);
366 366
367 367 swni.tickin <= '0';
368 368 swni.rmapen <= '1';
369 369 swni.clkdiv10 <= "00000100"; -- 10 MHz / (4 + 1) = 10 MHz
370 370 swni.tickinraw <= '0';
371 371 swni.timein <= (OTHERS => '0');
372 372 swni.dcrstval <= (OTHERS => '0');
373 373 swni.timerrstval <= (OTHERS => '0');
374 374
375 375 -------------------------------------------------------------------------------
376 376 -- LFR ------------------------------------------------------------------------
377 377 -------------------------------------------------------------------------------
378 378 LFR_rstn <= LFR_soft_rstn AND rstn;
379 379
380 380 lpp_lfr_1 : lpp_lfr
381 381 GENERIC MAP (
382 382 Mem_use => use_RAM,
383 383 nb_data_by_buffer_size => 32,
384 384 --nb_word_by_buffer_size => 30,
385 385 nb_snapshot_param_size => 32,
386 386 delta_vector_size => 32,
387 387 delta_vector_size_f0_2 => 7, -- log2(96)
388 388 pindex => 15,
389 389 paddr => 15,
390 390 pmask => 16#fff#,
391 391 pirq_ms => 6,
392 392 pirq_wfp => 14,
393 393 hindex => 2,
394 top_lfr_version => X"010140") -- aa.bb.cc version
394 top_lfr_version => X"010143") -- aa.bb.cc version
395 395 -- AA : BOARD NUMBER
396 396 -- 0 => MINI_LFR
397 397 -- 1 => EM
398 398 PORT MAP (
399 399 clk => clk_25,
400 400 rstn => LFR_rstn,
401 401 sample_B => sample_s(2 DOWNTO 0),
402 402 sample_E => sample_s(7 DOWNTO 3),
403 403 sample_val => sample_val,
404 404 apbi => apbi_ext,
405 405 apbo => apbo_ext(15),
406 406 ahbi => ahbi_m_ext,
407 407 ahbo => ahbo_m_ext(2),
408 408 coarse_time => coarse_time,
409 409 fine_time => fine_time,
410 410 data_shaping_BW => bias_fail_sw,
411 411 debug_vector => OPEN,
412 412 debug_vector_ms => OPEN); --,
413 413 --observation_vector_0 => OPEN,
414 414 --observation_vector_1 => OPEN,
415 415 --observation_reg => observation_reg);
416 416
417 417
418 418 all_sample : FOR I IN 7 DOWNTO 0 GENERATE
419 419 sample_s(I) <= sample(I) & '0' & '0';
420 420 END GENERATE all_sample;
421 421 sample_s(8) <= sample(8)(13) & sample(8)(13) & sample(8);
422 422
423 423 -----------------------------------------------------------------------------
424 424 --
425 425 -----------------------------------------------------------------------------
426 426 top_ad_conv_RHF1401_withFilter_1 : top_ad_conv_RHF1401_withFilter
427 427 GENERIC MAP (
428 428 ChanelCount => 9,
429 429 ncycle_cnv_high => 13,
430 430 ncycle_cnv => 25,
431 431 FILTER_ENABLED => 16#FF#)
432 432 PORT MAP (
433 433 cnv_clk => clk_24,
434 434 cnv_rstn => rstn,
435 435 cnv => ADC_smpclk_s,
436 436 clk => clk_25,
437 437 rstn => rstn,
438 438 ADC_data => ADC_data,
439 439 ADC_nOE => ADC_OEB_bar_CH_s,
440 440 sample => sample,
441 441 sample_val => sample_val);
442 442
443 443 ADC_OEB_bar_CH <= ADC_OEB_bar_CH_s(7 DOWNTO 0);
444 444
445 445 ADC_smpclk <= ADC_smpclk_s;
446 446 HK_smpclk <= ADC_smpclk_s;
447 447
448 448 TAG8 <= ADC_smpclk_s;
449 449
450 450 -----------------------------------------------------------------------------
451 451 -- HK
452 452 -----------------------------------------------------------------------------
453 453 ADC_OEB_bar_HK <= ADC_OEB_bar_CH_s(8);
454 454
455 455 END beh;
@@ -1,737 +1,737
1 1 ------------------------------------------------------------------------------
2 2 -- This file is a part of the LPP VHDL IP LIBRARY
3 3 -- Copyright (C) 2009 - 2010, Laboratory of Plasmas Physic - CNRS
4 4 --
5 5 -- This program is free software; you can redistribute it and/or modify
6 6 -- it under the terms of the GNU General Public License as published by
7 7 -- the Free Software Foundation; either version 3 of the License, or
8 8 -- (at your option) any later version.
9 9 --
10 10 -- This program is distributed in the hope that it will be useful,
11 11 -- but WITHOUT ANY WARRANTY; without even the implied warranty of
12 12 -- MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
13 13 -- GNU General Public License for more details.
14 14 --
15 15 -- You should have received a copy of the GNU General Public License
16 16 -- along with this program; if not, write to the Free Software
17 17 -- Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
18 18 -------------------------------------------------------------------------------
19 19 -- Author : Jean-christophe Pellion
20 20 -- Mail : jean-christophe.pellion@lpp.polytechnique.fr
21 21 -------------------------------------------------------------------------------
22 22 LIBRARY IEEE;
23 23 USE IEEE.numeric_std.ALL;
24 24 USE IEEE.std_logic_1164.ALL;
25 25 LIBRARY grlib;
26 26 USE grlib.amba.ALL;
27 27 USE grlib.stdlib.ALL;
28 28 LIBRARY techmap;
29 29 USE techmap.gencomp.ALL;
30 30 LIBRARY gaisler;
31 31 USE gaisler.memctrl.ALL;
32 32 USE gaisler.leon3.ALL;
33 33 USE gaisler.uart.ALL;
34 34 USE gaisler.misc.ALL;
35 35 USE gaisler.spacewire.ALL;
36 36 LIBRARY esa;
37 37 USE esa.memoryctrl.ALL;
38 38 LIBRARY lpp;
39 39 USE lpp.lpp_memory.ALL;
40 40 USE lpp.lpp_ad_conv.ALL;
41 41 USE lpp.lpp_lfr_pkg.ALL; -- contains lpp_lfr, not in the 206 rev of the VHD_Lib
42 42 USE lpp.lpp_top_lfr_pkg.ALL; -- contains top_wf_picker
43 43 USE lpp.iir_filter.ALL;
44 44 USE lpp.general_purpose.ALL;
45 45 USE lpp.lpp_lfr_management.ALL;
46 46 USE lpp.lpp_leon3_soc_pkg.ALL;
47 47
48 48 ENTITY MINI_LFR_top IS
49 49
50 50 PORT (
51 51 clk_50 : IN STD_LOGIC;
52 52 clk_49 : IN STD_LOGIC;
53 53 reset : IN STD_LOGIC;
54 54 --BPs
55 55 BP0 : IN STD_LOGIC;
56 56 BP1 : IN STD_LOGIC;
57 57 --LEDs
58 58 LED0 : OUT STD_LOGIC;
59 59 LED1 : OUT STD_LOGIC;
60 60 LED2 : OUT STD_LOGIC;
61 61 --UARTs
62 62 TXD1 : IN STD_LOGIC;
63 63 RXD1 : OUT STD_LOGIC;
64 64 nCTS1 : OUT STD_LOGIC;
65 65 nRTS1 : IN STD_LOGIC;
66 66
67 67 TXD2 : IN STD_LOGIC;
68 68 RXD2 : OUT STD_LOGIC;
69 69 nCTS2 : OUT STD_LOGIC;
70 70 nDTR2 : IN STD_LOGIC;
71 71 nRTS2 : IN STD_LOGIC;
72 72 nDCD2 : OUT STD_LOGIC;
73 73
74 74 --EXT CONNECTOR
75 75 IO0 : INOUT STD_LOGIC;
76 76 IO1 : INOUT STD_LOGIC;
77 77 IO2 : INOUT STD_LOGIC;
78 78 IO3 : INOUT STD_LOGIC;
79 79 IO4 : INOUT STD_LOGIC;
80 80 IO5 : INOUT STD_LOGIC;
81 81 IO6 : INOUT STD_LOGIC;
82 82 IO7 : INOUT STD_LOGIC;
83 83 IO8 : INOUT STD_LOGIC;
84 84 IO9 : INOUT STD_LOGIC;
85 85 IO10 : INOUT STD_LOGIC;
86 86 IO11 : INOUT STD_LOGIC;
87 87
88 88 --SPACE WIRE
89 89 SPW_EN : OUT STD_LOGIC; -- 0 => off
90 90 SPW_NOM_DIN : IN STD_LOGIC; -- NOMINAL LINK
91 91 SPW_NOM_SIN : IN STD_LOGIC;
92 92 SPW_NOM_DOUT : OUT STD_LOGIC;
93 93 SPW_NOM_SOUT : OUT STD_LOGIC;
94 94 SPW_RED_DIN : IN STD_LOGIC; -- REDUNDANT LINK
95 95 SPW_RED_SIN : IN STD_LOGIC;
96 96 SPW_RED_DOUT : OUT STD_LOGIC;
97 97 SPW_RED_SOUT : OUT STD_LOGIC;
98 98 -- MINI LFR ADC INPUTS
99 99 ADC_nCS : OUT STD_LOGIC;
100 100 ADC_CLK : OUT STD_LOGIC;
101 101 ADC_SDO : IN STD_LOGIC_VECTOR(7 DOWNTO 0);
102 102
103 103 -- SRAM
104 104 SRAM_nWE : OUT STD_LOGIC;
105 105 SRAM_CE : OUT STD_LOGIC;
106 106 SRAM_nOE : OUT STD_LOGIC;
107 107 SRAM_nBE : OUT STD_LOGIC_VECTOR(3 DOWNTO 0);
108 108 SRAM_A : OUT STD_LOGIC_VECTOR(19 DOWNTO 0);
109 109 SRAM_DQ : INOUT STD_LOGIC_VECTOR(31 DOWNTO 0)
110 110 );
111 111
112 112 END MINI_LFR_top;
113 113
114 114
115 115 ARCHITECTURE beh OF MINI_LFR_top IS
116 116 SIGNAL clk_50_s : STD_LOGIC := '0';
117 117 SIGNAL clk_25 : STD_LOGIC := '0';
118 118 SIGNAL clk_24 : STD_LOGIC := '0';
119 119 -----------------------------------------------------------------------------
120 120 SIGNAL coarse_time : STD_LOGIC_VECTOR(31 DOWNTO 0);
121 121 SIGNAL fine_time : STD_LOGIC_VECTOR(15 DOWNTO 0);
122 122 --
123 123 SIGNAL errorn : STD_LOGIC;
124 124 -- UART AHB ---------------------------------------------------------------
125 125 -- SIGNAL ahbrxd : STD_ULOGIC; -- DSU rx data
126 126 -- SIGNAL ahbtxd : STD_ULOGIC; -- DSU tx data
127 127
128 128 -- UART APB ---------------------------------------------------------------
129 129 -- SIGNAL urxd1 : STD_ULOGIC; -- UART1 rx data
130 130 -- SIGNAL utxd1 : STD_ULOGIC; -- UART1 tx data
131 131 --
132 132 SIGNAL I00_s : STD_LOGIC;
133 133
134 134 -- CONSTANTS
135 135 CONSTANT CFG_PADTECH : INTEGER := inferred;
136 136 --
137 137 CONSTANT NB_APB_SLAVE : INTEGER := 11; -- 3 = grspw + waveform picker + time manager, 11 allows pindex = f
138 138 CONSTANT NB_AHB_SLAVE : INTEGER := 1;
139 139 CONSTANT NB_AHB_MASTER : INTEGER := 2; -- 2 = grspw + waveform picker
140 140
141 141 SIGNAL apbi_ext : apb_slv_in_type;
142 142 SIGNAL apbo_ext : soc_apb_slv_out_vector(NB_APB_SLAVE-1+5 DOWNTO 5); -- := (OTHERS => apb_none);
143 143 SIGNAL ahbi_s_ext : ahb_slv_in_type;
144 144 SIGNAL ahbo_s_ext : soc_ahb_slv_out_vector(NB_AHB_SLAVE-1+3 DOWNTO 3); -- := (OTHERS => ahbs_none);
145 145 SIGNAL ahbi_m_ext : AHB_Mst_In_Type;
146 146 SIGNAL ahbo_m_ext : soc_ahb_mst_out_vector(NB_AHB_MASTER-1+1 DOWNTO 1); -- := (OTHERS => ahbm_none);
147 147
148 148 -- Spacewire signals
149 149 SIGNAL dtmp : STD_LOGIC_VECTOR(1 DOWNTO 0);
150 150 SIGNAL stmp : STD_LOGIC_VECTOR(1 DOWNTO 0);
151 151 SIGNAL spw_rxclk : STD_LOGIC_VECTOR(1 DOWNTO 0);
152 152 SIGNAL spw_rxtxclk : STD_ULOGIC;
153 153 SIGNAL spw_rxclkn : STD_ULOGIC;
154 154 SIGNAL spw_clk : STD_LOGIC;
155 155 SIGNAL swni : grspw_in_type;
156 156 SIGNAL swno : grspw_out_type;
157 157 -- SIGNAL clkmn : STD_ULOGIC;
158 158 -- SIGNAL txclk : STD_ULOGIC;
159 159
160 160 --GPIO
161 161 SIGNAL gpioi : gpio_in_type;
162 162 SIGNAL gpioo : gpio_out_type;
163 163
164 164 -- AD Converter ADS7886
165 165 SIGNAL sample : Samples14v(7 DOWNTO 0);
166 166 SIGNAL sample_s : Samples(7 DOWNTO 0);
167 167 SIGNAL sample_val : STD_LOGIC;
168 168 SIGNAL ADC_nCS_sig : STD_LOGIC;
169 169 SIGNAL ADC_CLK_sig : STD_LOGIC;
170 170 SIGNAL ADC_SDO_sig : STD_LOGIC_VECTOR(7 DOWNTO 0);
171 171
172 172 SIGNAL bias_fail_sw_sig : STD_LOGIC;
173 173
174 174 SIGNAL observation_reg : STD_LOGIC_VECTOR(31 DOWNTO 0);
175 175 SIGNAL observation_vector_0 : STD_LOGIC_VECTOR(11 DOWNTO 0);
176 176 SIGNAL observation_vector_1 : STD_LOGIC_VECTOR(11 DOWNTO 0);
177 177 -----------------------------------------------------------------------------
178 178
179 179 SIGNAL LFR_soft_rstn : STD_LOGIC;
180 180 SIGNAL LFR_rstn : STD_LOGIC;
181 181
182 182
183 183 SIGNAL rstn_25 : STD_LOGIC;
184 184 SIGNAL rstn_25_d1 : STD_LOGIC;
185 185 SIGNAL rstn_25_d2 : STD_LOGIC;
186 186 SIGNAL rstn_25_d3 : STD_LOGIC;
187 187
188 188 SIGNAL rstn_50 : STD_LOGIC;
189 189 SIGNAL rstn_50_d1 : STD_LOGIC;
190 190 SIGNAL rstn_50_d2 : STD_LOGIC;
191 191 SIGNAL rstn_50_d3 : STD_LOGIC;
192 192
193 193 SIGNAL lfr_debug_vector : STD_LOGIC_VECTOR(11 DOWNTO 0);
194 194 SIGNAL lfr_debug_vector_ms : STD_LOGIC_VECTOR(11 DOWNTO 0);
195 195
196 196 --
197 197 SIGNAL SRAM_CE_s : STD_LOGIC_VECTOR(1 DOWNTO 0);
198 198
199 199 --
200 200 SIGNAL sample_hk : STD_LOGIC_VECTOR(15 DOWNTO 0);
201 201 SIGNAL HK_SEL : STD_LOGIC_VECTOR( 1 DOWNTO 0);
202 202
203 203 BEGIN -- beh
204 204
205 205 -----------------------------------------------------------------------------
206 206 -- CLK
207 207 -----------------------------------------------------------------------------
208 208
209 209 --PROCESS(clk_50)
210 210 --BEGIN
211 211 -- IF clk_50'EVENT AND clk_50 = '1' THEN
212 212 -- clk_50_s <= NOT clk_50_s;
213 213 -- END IF;
214 214 --END PROCESS;
215 215
216 216 --PROCESS(clk_50_s)
217 217 --BEGIN
218 218 -- IF clk_50_s'EVENT AND clk_50_s = '1' THEN
219 219 -- clk_25 <= NOT clk_25;
220 220 -- END IF;
221 221 --END PROCESS;
222 222
223 223 --PROCESS(clk_49)
224 224 --BEGIN
225 225 -- IF clk_49'EVENT AND clk_49 = '1' THEN
226 226 -- clk_24 <= NOT clk_24;
227 227 -- END IF;
228 228 --END PROCESS;
229 229
230 230 --PROCESS(clk_25)
231 231 --BEGIN
232 232 -- IF clk_25'EVENT AND clk_25 = '1' THEN
233 233 -- rstn_25 <= reset;
234 234 -- END IF;
235 235 --END PROCESS;
236 236
237 237 PROCESS (clk_50, reset)
238 238 BEGIN -- PROCESS
239 239 IF reset = '0' THEN -- asynchronous reset (active low)
240 240 clk_50_s <= '0';
241 241 rstn_50 <= '0';
242 242 rstn_50_d1 <= '0';
243 243 rstn_50_d2 <= '0';
244 244 rstn_50_d3 <= '0';
245 245
246 246 ELSIF clk_50'EVENT AND clk_50 = '1' THEN -- rising clock edge
247 247 clk_50_s <= NOT clk_50_s;
248 248 rstn_50_d1 <= '1';
249 249 rstn_50_d2 <= rstn_50_d1;
250 250 rstn_50_d3 <= rstn_50_d2;
251 251 rstn_50 <= rstn_50_d3;
252 252 END IF;
253 253 END PROCESS;
254 254
255 255 PROCESS (clk_50_s, rstn_50)
256 256 BEGIN -- PROCESS
257 257 IF rstn_50 = '0' THEN -- asynchronous reset (active low)
258 258 clk_25 <= '0';
259 259 rstn_25 <= '0';
260 260 rstn_25_d1 <= '0';
261 261 rstn_25_d2 <= '0';
262 262 rstn_25_d3 <= '0';
263 263 ELSIF clk_50_s'EVENT AND clk_50_s = '1' THEN -- rising clock edge
264 264 clk_25 <= NOT clk_25;
265 265 rstn_25_d1 <= '1';
266 266 rstn_25_d2 <= rstn_25_d1;
267 267 rstn_25_d3 <= rstn_25_d2;
268 268 rstn_25 <= rstn_25_d3;
269 269 END IF;
270 270 END PROCESS;
271 271
272 272 PROCESS (clk_49, reset)
273 273 BEGIN -- PROCESS
274 274 IF reset = '0' THEN -- asynchronous reset (active low)
275 275 clk_24 <= '0';
276 276 ELSIF clk_49'EVENT AND clk_49 = '1' THEN -- rising clock edge
277 277 clk_24 <= NOT clk_24;
278 278 END IF;
279 279 END PROCESS;
280 280
281 281 -----------------------------------------------------------------------------
282 282
283 283 PROCESS (clk_25, rstn_25)
284 284 BEGIN -- PROCESS
285 285 IF rstn_25 = '0' THEN -- asynchronous reset (active low)
286 286 LED0 <= '0';
287 287 LED1 <= '0';
288 288 LED2 <= '0';
289 289 --IO1 <= '0';
290 290 --IO2 <= '1';
291 291 --IO3 <= '0';
292 292 --IO4 <= '0';
293 293 --IO5 <= '0';
294 294 --IO6 <= '0';
295 295 --IO7 <= '0';
296 296 --IO8 <= '0';
297 297 --IO9 <= '0';
298 298 --IO10 <= '0';
299 299 --IO11 <= '0';
300 300 ELSIF clk_25'EVENT AND clk_25 = '1' THEN -- rising clock edge
301 301 LED0 <= '0';
302 302 LED1 <= '1';
303 303 LED2 <= BP0 OR BP1 OR nDTR2 OR nRTS2 OR nRTS1;
304 304 --IO1 <= '1';
305 305 --IO2 <= SPW_NOM_DIN OR SPW_NOM_SIN OR SPW_RED_DIN OR SPW_RED_SIN;
306 306 --IO3 <= ADC_SDO(0);
307 307 --IO4 <= ADC_SDO(1);
308 308 --IO5 <= ADC_SDO(2);
309 309 --IO6 <= ADC_SDO(3);
310 310 --IO7 <= ADC_SDO(4);
311 311 --IO8 <= ADC_SDO(5);
312 312 --IO9 <= ADC_SDO(6);
313 313 --IO10 <= ADC_SDO(7);
314 314 --IO11 <= BP1 OR nDTR2 OR nRTS2 OR nRTS1;
315 315 END IF;
316 316 END PROCESS;
317 317
318 318 PROCESS (clk_24, rstn_25)
319 319 BEGIN -- PROCESS
320 320 IF rstn_25 = '0' THEN -- asynchronous reset (active low)
321 321 I00_s <= '0';
322 322 ELSIF clk_24'EVENT AND clk_24 = '1' THEN -- rising clock edge
323 323 I00_s <= NOT I00_s;
324 324 END IF;
325 325 END PROCESS;
326 326 -- IO0 <= I00_s;
327 327
328 328 --UARTs
329 329 nCTS1 <= '1';
330 330 nCTS2 <= '1';
331 331 nDCD2 <= '1';
332 332
333 333 --
334 334
335 335 leon3_soc_1 : leon3_soc
336 336 GENERIC MAP (
337 337 fabtech => apa3e,
338 338 memtech => apa3e,
339 339 padtech => inferred,
340 340 clktech => inferred,
341 341 disas => 0,
342 342 dbguart => 0,
343 343 pclow => 2,
344 344 clk_freq => 25000,
345 345 IS_RADHARD => 0,
346 346 NB_CPU => 1,
347 347 ENABLE_FPU => 1,
348 348 FPU_NETLIST => 0,
349 349 ENABLE_DSU => 1,
350 350 ENABLE_AHB_UART => 1,
351 351 ENABLE_APB_UART => 1,
352 352 ENABLE_IRQMP => 1,
353 353 ENABLE_GPT => 1,
354 354 NB_AHB_MASTER => NB_AHB_MASTER,
355 355 NB_AHB_SLAVE => NB_AHB_SLAVE,
356 356 NB_APB_SLAVE => NB_APB_SLAVE,
357 357 ADDRESS_SIZE => 20,
358 358 USES_IAP_MEMCTRLR => 0)
359 359 PORT MAP (
360 360 clk => clk_25,
361 361 reset => rstn_25,
362 362 errorn => errorn,
363 363 ahbrxd => TXD1,
364 364 ahbtxd => RXD1,
365 365 urxd1 => TXD2,
366 366 utxd1 => RXD2,
367 367 address => SRAM_A,
368 368 data => SRAM_DQ,
369 369 nSRAM_BE0 => SRAM_nBE(0),
370 370 nSRAM_BE1 => SRAM_nBE(1),
371 371 nSRAM_BE2 => SRAM_nBE(2),
372 372 nSRAM_BE3 => SRAM_nBE(3),
373 373 nSRAM_WE => SRAM_nWE,
374 374 nSRAM_CE => SRAM_CE_s,
375 375 nSRAM_OE => SRAM_nOE,
376 376 nSRAM_READY => '0',
377 377 SRAM_MBE => OPEN,
378 378 apbi_ext => apbi_ext,
379 379 apbo_ext => apbo_ext,
380 380 ahbi_s_ext => ahbi_s_ext,
381 381 ahbo_s_ext => ahbo_s_ext,
382 382 ahbi_m_ext => ahbi_m_ext,
383 383 ahbo_m_ext => ahbo_m_ext);
384 384
385 385 SRAM_CE <= SRAM_CE_s(0);
386 386 -------------------------------------------------------------------------------
387 387 -- APB_LFR_MANAGEMENT ---------------------------------------------------------
388 388 -------------------------------------------------------------------------------
389 389 apb_lfr_management_1 : apb_lfr_management
390 390 GENERIC MAP (
391 391 tech => apa3e,
392 392 pindex => 6,
393 393 paddr => 6,
394 394 pmask => 16#fff#,
395 395 FIRST_DIVISION => 374, -- ((49.152/2) /2^16) - 1 = 375 - 1 = 374
396 396 NB_SECOND_DESYNC => 60) -- 60 secondes of desynchronization before CoarseTime's MSB is Set
397 397 PORT MAP (
398 398 clk25MHz => clk_25,
399 399 clk24_576MHz => clk_24, -- 49.152MHz/2
400 400 resetn => rstn_25,
401 401 grspw_tick => swno.tickout,
402 402 apbi => apbi_ext,
403 403 apbo => apbo_ext(6),
404 404 HK_sample => sample_hk,
405 405 HK_val => sample_val,
406 406 HK_sel => HK_SEL,
407 407 DAC_SDO => OPEN,
408 408 DAC_SCK => OPEN,
409 409 DAC_SYNC => OPEN,
410 410 DAC_CAL_EN => OPEN,
411 411 coarse_time => coarse_time,
412 412 fine_time => fine_time,
413 413 LFR_soft_rstn => LFR_soft_rstn
414 414 );
415 415
416 416 -----------------------------------------------------------------------
417 417 --- SpaceWire --------------------------------------------------------
418 418 -----------------------------------------------------------------------
419 419
420 420 SPW_EN <= '1';
421 421
422 422 spw_clk <= clk_50_s;
423 423 spw_rxtxclk <= spw_clk;
424 424 spw_rxclkn <= NOT spw_rxtxclk;
425 425
426 426 -- PADS for SPW1
427 427 spw1_rxd_pad : inpad GENERIC MAP (tech => inferred)
428 428 PORT MAP (SPW_NOM_DIN, dtmp(0));
429 429 spw1_rxs_pad : inpad GENERIC MAP (tech => inferred)
430 430 PORT MAP (SPW_NOM_SIN, stmp(0));
431 431 spw1_txd_pad : outpad GENERIC MAP (tech => inferred)
432 432 PORT MAP (SPW_NOM_DOUT, swno.d(0));
433 433 spw1_txs_pad : outpad GENERIC MAP (tech => inferred)
434 434 PORT MAP (SPW_NOM_SOUT, swno.s(0));
435 435 -- PADS FOR SPW2
436 436 spw2_rxd_pad : inpad GENERIC MAP (tech => inferred) -- bad naming of the MINI-LFR /!\
437 437 PORT MAP (SPW_RED_SIN, dtmp(1));
438 438 spw2_rxs_pad : inpad GENERIC MAP (tech => inferred) -- bad naming of the MINI-LFR /!\
439 439 PORT MAP (SPW_RED_DIN, stmp(1));
440 440 spw2_txd_pad : outpad GENERIC MAP (tech => inferred)
441 441 PORT MAP (SPW_RED_DOUT, swno.d(1));
442 442 spw2_txs_pad : outpad GENERIC MAP (tech => inferred)
443 443 PORT MAP (SPW_RED_SOUT, swno.s(1));
444 444
445 445 -- GRSPW PHY
446 446 --spw1_input: if CFG_SPW_GRSPW = 1 generate
447 447 spw_inputloop : FOR j IN 0 TO 1 GENERATE
448 448 spw_phy0 : grspw_phy
449 449 GENERIC MAP(
450 450 tech => apa3e,
451 451 rxclkbuftype => 1,
452 452 scantest => 0)
453 453 PORT MAP(
454 454 rxrst => swno.rxrst,
455 455 di => dtmp(j),
456 456 si => stmp(j),
457 457 rxclko => spw_rxclk(j),
458 458 do => swni.d(j),
459 459 ndo => swni.nd(j*5+4 DOWNTO j*5),
460 460 dconnect => swni.dconnect(j*2+1 DOWNTO j*2));
461 461 END GENERATE spw_inputloop;
462 462
463 463 swni.rmapnodeaddr <= (OTHERS => '0');
464 464
465 465 -- SPW core
466 466 sw0 : grspwm GENERIC MAP(
467 467 tech => apa3e,
468 468 hindex => 1,
469 469 pindex => 5,
470 470 paddr => 5,
471 471 pirq => 11,
472 472 sysfreq => 25000, -- CPU_FREQ
473 473 rmap => 1,
474 474 rmapcrc => 1,
475 475 fifosize1 => 16,
476 476 fifosize2 => 16,
477 477 rxclkbuftype => 1,
478 478 rxunaligned => 0,
479 479 rmapbufs => 4,
480 480 ft => 0,
481 481 netlist => 0,
482 482 ports => 2,
483 483 --dmachan => CFG_SPW_DMACHAN, -- not used byt the spw core 1
484 484 memtech => apa3e,
485 485 destkey => 2,
486 486 spwcore => 1
487 487 --input_type => CFG_SPW_INPUT, -- not used byt the spw core 1
488 488 --output_type => CFG_SPW_OUTPUT, -- not used byt the spw core 1
489 489 --rxtx_sameclk => CFG_SPW_RTSAME -- not used byt the spw core 1
490 490 )
491 491 PORT MAP(rstn_25, clk_25, spw_rxclk(0),
492 492 spw_rxclk(1), spw_rxtxclk, spw_rxtxclk,
493 493 ahbi_m_ext, ahbo_m_ext(1), apbi_ext, apbo_ext(5),
494 494 swni, swno);
495 495
496 496 swni.tickin <= '0';
497 497 swni.rmapen <= '1';
498 498 swni.clkdiv10 <= "00000100"; -- 10 MHz / (4 + 1) = 10 MHz
499 499 swni.tickinraw <= '0';
500 500 swni.timein <= (OTHERS => '0');
501 501 swni.dcrstval <= (OTHERS => '0');
502 502 swni.timerrstval <= (OTHERS => '0');
503 503
504 504 -------------------------------------------------------------------------------
505 505 -- LFR ------------------------------------------------------------------------
506 506 -------------------------------------------------------------------------------
507 507
508 508
509 509 LFR_rstn <= LFR_soft_rstn AND rstn_25;
510 510 --LFR_rstn <= rstn_25;
511 511
512 512 lpp_lfr_1 : lpp_lfr
513 513 GENERIC MAP (
514 514 Mem_use => use_RAM,
515 515 nb_data_by_buffer_size => 32,
516 516 nb_snapshot_param_size => 32,
517 517 delta_vector_size => 32,
518 518 delta_vector_size_f0_2 => 7, -- log2(96)
519 519 pindex => 15,
520 520 paddr => 15,
521 521 pmask => 16#fff#,
522 522 pirq_ms => 6,
523 523 pirq_wfp => 14,
524 524 hindex => 2,
525 top_lfr_version => X"000142") -- aa.bb.cc version
525 top_lfr_version => X"000143") -- aa.bb.cc version
526 526 PORT MAP (
527 527 clk => clk_25,
528 528 rstn => LFR_rstn,
529 529 sample_B => sample_s(2 DOWNTO 0),
530 530 sample_E => sample_s(7 DOWNTO 3),
531 531 sample_val => sample_val,
532 532 apbi => apbi_ext,
533 533 apbo => apbo_ext(15),
534 534 ahbi => ahbi_m_ext,
535 535 ahbo => ahbo_m_ext(2),
536 536 coarse_time => coarse_time,
537 537 fine_time => fine_time,
538 538 data_shaping_BW => bias_fail_sw_sig,
539 539 debug_vector => lfr_debug_vector,
540 540 debug_vector_ms => lfr_debug_vector_ms
541 541 );
542 542
543 543 observation_reg(11 DOWNTO 0) <= lfr_debug_vector;
544 544 observation_reg(31 DOWNTO 12) <= (OTHERS => '0');
545 545 observation_vector_0(11 DOWNTO 0) <= lfr_debug_vector;
546 546 observation_vector_1(11 DOWNTO 0) <= lfr_debug_vector;
547 547 IO0 <= rstn_25;
548 548 IO1 <= lfr_debug_vector_ms(0); -- LFR MS FFT data_valid
549 549 IO2 <= lfr_debug_vector_ms(0); -- LFR MS FFT ready
550 550 IO3 <= lfr_debug_vector(0); -- LFR APBREG error_buffer_full
551 551 IO4 <= lfr_debug_vector(1); -- LFR APBREG reg_sp.status_error_buffer_full
552 552 IO5 <= lfr_debug_vector(8); -- LFR APBREG ready_matrix_f2
553 553 IO6 <= lfr_debug_vector(9); -- LFR APBREG reg0_ready_matrix_f2
554 554 IO7 <= lfr_debug_vector(10); -- LFR APBREG reg0_ready_matrix_f2
555 555
556 556 all_sample : FOR I IN 7 DOWNTO 0 GENERATE
557 557 sample_s(I) <= sample(I)(11 DOWNTO 0) & '0' & '0' & '0' & '0';
558 558 END GENERATE all_sample;
559 559
560 560 top_ad_conv_ADS7886_v2_1 : top_ad_conv_ADS7886_v2
561 561 GENERIC MAP(
562 562 ChannelCount => 8,
563 563 SampleNbBits => 14,
564 564 ncycle_cnv_high => 40, -- at least 32 cycles at 25 MHz, 32 * 49.152 / 25 /2 = 31.5
565 565 ncycle_cnv => 249) -- 49 152 000 / 98304 /2
566 566 PORT MAP (
567 567 -- CONV
568 568 cnv_clk => clk_24,
569 569 cnv_rstn => rstn_25,
570 570 cnv => ADC_nCS_sig,
571 571 -- DATA
572 572 clk => clk_25,
573 573 rstn => rstn_25,
574 574 sck => ADC_CLK_sig,
575 575 sdo => ADC_SDO_sig,
576 576 -- SAMPLE
577 577 sample => sample,
578 578 sample_val => sample_val);
579 579
580 580 --IO10 <= ADC_SDO_sig(5);
581 581 --IO9 <= ADC_SDO_sig(4);
582 582 --IO8 <= ADC_SDO_sig(3);
583 583
584 584 ADC_nCS <= ADC_nCS_sig;
585 585 ADC_CLK <= ADC_CLK_sig;
586 586 ADC_SDO_sig <= ADC_SDO;
587 587
588 588 sample_hk <= "0001000100010001" WHEN HK_SEL = "00" ELSE
589 589 "0010001000100010" WHEN HK_SEL = "01" ELSE
590 590 "0100010001000100" WHEN HK_SEL = "10" ELSE
591 591 (OTHERS => '0');
592 592
593 593
594 594 ----------------------------------------------------------------------
595 595 --- GPIO -----------------------------------------------------------
596 596 ----------------------------------------------------------------------
597 597
598 598 grgpio0 : grgpio
599 599 GENERIC MAP(pindex => 11, paddr => 11, imask => 16#0000#, nbits => 8)
600 600 PORT MAP(rstn_25, clk_25, apbi_ext, apbo_ext(11), gpioi, gpioo);
601 601
602 602 gpioi.sig_en <= (OTHERS => '0');
603 603 gpioi.sig_in <= (OTHERS => '0');
604 604 gpioi.din <= (OTHERS => '0');
605 605 --pio_pad_0 : iopad
606 606 -- GENERIC MAP (tech => CFG_PADTECH)
607 607 -- PORT MAP (IO0, gpioo.dout(0), gpioo.oen(0), gpioi.din(0));
608 608 --pio_pad_1 : iopad
609 609 -- GENERIC MAP (tech => CFG_PADTECH)
610 610 -- PORT MAP (IO1, gpioo.dout(1), gpioo.oen(1), gpioi.din(1));
611 611 --pio_pad_2 : iopad
612 612 -- GENERIC MAP (tech => CFG_PADTECH)
613 613 -- PORT MAP (IO2, gpioo.dout(2), gpioo.oen(2), gpioi.din(2));
614 614 --pio_pad_3 : iopad
615 615 -- GENERIC MAP (tech => CFG_PADTECH)
616 616 -- PORT MAP (IO3, gpioo.dout(3), gpioo.oen(3), gpioi.din(3));
617 617 --pio_pad_4 : iopad
618 618 -- GENERIC MAP (tech => CFG_PADTECH)
619 619 -- PORT MAP (IO4, gpioo.dout(4), gpioo.oen(4), gpioi.din(4));
620 620 --pio_pad_5 : iopad
621 621 -- GENERIC MAP (tech => CFG_PADTECH)
622 622 -- PORT MAP (IO5, gpioo.dout(5), gpioo.oen(5), gpioi.din(5));
623 623 --pio_pad_6 : iopad
624 624 -- GENERIC MAP (tech => CFG_PADTECH)
625 625 -- PORT MAP (IO6, gpioo.dout(6), gpioo.oen(6), gpioi.din(6));
626 626 --pio_pad_7 : iopad
627 627 -- GENERIC MAP (tech => CFG_PADTECH)
628 628 -- PORT MAP (IO7, gpioo.dout(7), gpioo.oen(7), gpioi.din(7));
629 629
630 630 PROCESS (clk_25, rstn_25)
631 631 BEGIN -- PROCESS
632 632 IF rstn_25 = '0' THEN -- asynchronous reset (active low)
633 633 -- --IO0 <= '0';
634 634 -- IO1 <= '0';
635 635 -- IO2 <= '0';
636 636 -- IO3 <= '0';
637 637 -- IO4 <= '0';
638 638 -- IO5 <= '0';
639 639 -- IO6 <= '0';
640 640 -- IO7 <= '0';
641 641 IO8 <= '0';
642 642 IO9 <= '0';
643 643 IO10 <= '0';
644 644 IO11 <= '0';
645 645 ELSIF clk_25'EVENT AND clk_25 = '1' THEN -- rising clock edge
646 646 CASE gpioo.dout(2 DOWNTO 0) IS
647 647 WHEN "011" =>
648 648 -- --IO0 <= observation_reg(0 );
649 649 -- IO1 <= observation_reg(1 );
650 650 -- IO2 <= observation_reg(2 );
651 651 -- IO3 <= observation_reg(3 );
652 652 -- IO4 <= observation_reg(4 );
653 653 -- IO5 <= observation_reg(5 );
654 654 -- IO6 <= observation_reg(6 );
655 655 -- IO7 <= observation_reg(7 );
656 656 IO8 <= observation_reg(8);
657 657 IO9 <= observation_reg(9);
658 658 IO10 <= observation_reg(10);
659 659 IO11 <= observation_reg(11);
660 660 WHEN "001" =>
661 661 -- --IO0 <= observation_reg(0 + 12);
662 662 -- IO1 <= observation_reg(1 + 12);
663 663 -- IO2 <= observation_reg(2 + 12);
664 664 -- IO3 <= observation_reg(3 + 12);
665 665 -- IO4 <= observation_reg(4 + 12);
666 666 -- IO5 <= observation_reg(5 + 12);
667 667 -- IO6 <= observation_reg(6 + 12);
668 668 -- IO7 <= observation_reg(7 + 12);
669 669 IO8 <= observation_reg(8 + 12);
670 670 IO9 <= observation_reg(9 + 12);
671 671 IO10 <= observation_reg(10 + 12);
672 672 IO11 <= observation_reg(11 + 12);
673 673 WHEN "010" =>
674 674 -- --IO0 <= observation_reg(0 + 12 + 12);
675 675 -- IO1 <= observation_reg(1 + 12 + 12);
676 676 -- IO2 <= observation_reg(2 + 12 + 12);
677 677 -- IO3 <= observation_reg(3 + 12 + 12);
678 678 -- IO4 <= observation_reg(4 + 12 + 12);
679 679 -- IO5 <= observation_reg(5 + 12 + 12);
680 680 -- IO6 <= observation_reg(6 + 12 + 12);
681 681 -- IO7 <= observation_reg(7 + 12 + 12);
682 682 IO8 <= '0';
683 683 IO9 <= '0';
684 684 IO10 <= '0';
685 685 IO11 <= '0';
686 686 WHEN "000" =>
687 687 -- --IO0 <= observation_vector_0(0 );
688 688 -- IO1 <= observation_vector_0(1 );
689 689 -- IO2 <= observation_vector_0(2 );
690 690 -- IO3 <= observation_vector_0(3 );
691 691 -- IO4 <= observation_vector_0(4 );
692 692 -- IO5 <= observation_vector_0(5 );
693 693 -- IO6 <= observation_vector_0(6 );
694 694 -- IO7 <= observation_vector_0(7 );
695 695 IO8 <= observation_vector_0(8);
696 696 IO9 <= observation_vector_0(9);
697 697 IO10 <= observation_vector_0(10);
698 698 IO11 <= observation_vector_0(11);
699 699 WHEN "100" =>
700 700 -- --IO0 <= observation_vector_1(0 );
701 701 -- IO1 <= observation_vector_1(1 );
702 702 -- IO2 <= observation_vector_1(2 );
703 703 -- IO3 <= observation_vector_1(3 );
704 704 -- IO4 <= observation_vector_1(4 );
705 705 -- IO5 <= observation_vector_1(5 );
706 706 -- IO6 <= observation_vector_1(6 );
707 707 -- IO7 <= observation_vector_1(7 );
708 708 IO8 <= observation_vector_1(8);
709 709 IO9 <= observation_vector_1(9);
710 710 IO10 <= observation_vector_1(10);
711 711 IO11 <= observation_vector_1(11);
712 712 WHEN OTHERS => NULL;
713 713 END CASE;
714 714
715 715 END IF;
716 716 END PROCESS;
717 717 -----------------------------------------------------------------------------
718 718 --
719 719 -----------------------------------------------------------------------------
720 720 all_apbo_ext : FOR I IN NB_APB_SLAVE-1+5 DOWNTO 5 GENERATE
721 721 apbo_ext_not_used : IF I /= 5 AND I /= 6 AND I /= 11 AND I /= 15 GENERATE
722 722 apbo_ext(I) <= apb_none;
723 723 END GENERATE apbo_ext_not_used;
724 724 END GENERATE all_apbo_ext;
725 725
726 726
727 727 all_ahbo_ext : FOR I IN NB_AHB_SLAVE-1+3 DOWNTO 3 GENERATE
728 728 ahbo_s_ext(I) <= ahbs_none;
729 729 END GENERATE all_ahbo_ext;
730 730
731 731 all_ahbo_m_ext : FOR I IN NB_AHB_MASTER-1+1 DOWNTO 1 GENERATE
732 732 ahbo_m_ext_not_used : IF I /= 1 AND I /= 2 GENERATE
733 733 ahbo_m_ext(I) <= ahbm_none;
734 734 END GENERATE ahbo_m_ext_not_used;
735 735 END GENERATE all_ahbo_m_ext;
736 736
737 737 END beh;
@@ -1,214 +1,214
1 1 onerror {resume}
2 2 quietly virtual signal -install /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix { /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/rdata(31 downto 0)} data_0
3 3 quietly virtual signal -install /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix { /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/rdata(63 downto 32)} data_1
4 4 quietly virtual signal -install /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix { /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/rdata(95 downto 64)} data_2
5 5 quietly virtual signal -install /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix { /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/rdata(127 downto 96)} data_3
6 6 quietly virtual signal -install /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix { /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/rdata(159 downto 128)} data_4
7 7 quietly virtual signal -install /testbench/data_read_with_timer_f0 { /testbench/data_read_with_timer_f0/data_out(15 downto 0)} f0_0
8 8 quietly virtual signal -install /testbench/data_read_with_timer_f0 { /testbench/data_read_with_timer_f0/data_out(31 downto 16)} f0_1
9 9 quietly virtual signal -install /testbench/data_read_with_timer_f0 { /testbench/data_read_with_timer_f0/data_out(47 downto 32)} f0_2
10 10 quietly virtual signal -install /testbench/data_read_with_timer_f0 { /testbench/data_read_with_timer_f0/data_out(63 downto 48)} f0_4
11 11 quietly virtual signal -install /testbench/data_read_with_timer_f0 { /testbench/data_read_with_timer_f0/data_out(79 downto 64)} f0_4001
12 12 quietly WaveActivateNextPane {} 0
13 13 add wave -noupdate -expand -group DATA_GEN_F0 /testbench/data_read_with_timer_f0/data_out_val
14 14 add wave -noupdate -expand -group DATA_GEN_F0 /testbench/data_read_with_timer_f0/end_of_file
15 15 add wave -noupdate -expand -group DATA_GEN_F0 -label f0_0 -radix decimal /testbench/data_read_with_timer_f0/f0_0
16 16 add wave -noupdate -expand -group DATA_GEN_F0 -label f0_1 -radix decimal /testbench/data_read_with_timer_f0/f0_1
17 17 add wave -noupdate -expand -group DATA_GEN_F0 -label f0_2 -radix decimal /testbench/data_read_with_timer_f0/f0_2
18 18 add wave -noupdate -expand -group DATA_GEN_F0 -label f0_3 -radix decimal /testbench/data_read_with_timer_f0/f0_4
19 19 add wave -noupdate -expand -group DATA_GEN_F0 -label f0_4 -radix decimal /testbench/data_read_with_timer_f0/f0_4001
20 20 add wave -noupdate -expand -group DATA_GEN_F0 /testbench/data_read_with_timer_f0/data_out
21 21 add wave -noupdate -expand -group DATA_GEN_F1 /testbench/data_read_with_timer_f1/data_out_val
22 22 add wave -noupdate -expand -group DATA_GEN_F1 /testbench/data_read_with_timer_f1/end_of_file
23 23 add wave -noupdate -expand -group DATA_GEN_F1 /testbench/data_read_with_timer_f1/data_out
24 24 add wave -noupdate -expand -group DATA_GEN_F2 /testbench/data_read_with_timer_f2/data_out_val
25 25 add wave -noupdate -expand -group DATA_GEN_F2 /testbench/data_read_with_timer_f2/end_of_file
26 26 add wave -noupdate -expand -group DATA_GEN_F2 /testbench/data_read_with_timer_f2/data_out
27 27 add wave -noupdate -expand -group DMA_interface /testbench/lpp_lfr_ms_1/dma_buffer_addr
28 28 add wave -noupdate -expand -group DMA_interface /testbench/lpp_lfr_ms_1/dma_buffer_full
29 29 add wave -noupdate -expand -group DMA_interface /testbench/lpp_lfr_ms_1/dma_buffer_full_err
30 30 add wave -noupdate -expand -group DMA_interface /testbench/lpp_lfr_ms_1/dma_buffer_length
31 31 add wave -noupdate -expand -group DMA_interface /testbench/lpp_lfr_ms_1/dma_buffer_new
32 32 add wave -noupdate -expand -group DMA_interface /testbench/lpp_lfr_ms_1/dma_fifo_burst_valid
33 33 add wave -noupdate -expand -group DMA_interface /testbench/lpp_lfr_ms_1/dma_fifo_data
34 34 add wave -noupdate -expand -group DMA_interface /testbench/lpp_lfr_ms_1/dma_fifo_ren
35 35 add wave -noupdate /testbench/dma_ren_counter
36 36 add wave -noupdate /testbench/dma_output_counter
37 37 add wave -noupdate -expand -group MEM_IN_MS -radix hexadecimal -childformat {{/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(0) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(1) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(2) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(3) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(4) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(5) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(6) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(7) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(8) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(9) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(10) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(11) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(12) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(13) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(14) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(15) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(16) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(17) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(18) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(19) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(20) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(21) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(22) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(23) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(24) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(25) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(26) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(27) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(28) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(29) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(30) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(31) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(32) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(33) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(34) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(35) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(36) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(37) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(38) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(39) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(40) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(41) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(42) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(43) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(44) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(45) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(46) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(47) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(48) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(49) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(50) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(51) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(52) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(53) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(54) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(55) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(56) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(57) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(58) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(59) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(60) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(61) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(62) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(63) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(64) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(65) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(66) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(67) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(68) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(69) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(70) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(0)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(71) -radix hexadecimal} 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/testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(40) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(41) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(42) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(43) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(44) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(45) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(46) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(47) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(48) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(49) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(50) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(51) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(52) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(53) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(54) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(55) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(56) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(57) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(58) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(59) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(60) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(61) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(62) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(63) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(64) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(65) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(66) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(67) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(68) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(69) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(70) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(71) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(72) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(73) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(74) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(75) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(76) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(77) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(78) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(79) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(80) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(81) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(82) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(83) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(84) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(85) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(86) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(87) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(88) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(89) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(90) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(91) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(92) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(93) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(94) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(95) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(96) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(97) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(98) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(99) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(100) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(101) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(102) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(103) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(104) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(105) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(106) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(107) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(108) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(109) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(110) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(111) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(112) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(113) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(114) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(115) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(116) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(117) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(118) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(119) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(120) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(121) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(122) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(123) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(124) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(125) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(126) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd(127) {-height 15 -radix hexadecimal}} /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/fifos(4)/lpp_fifo_1/memRAM/SRAM/inf/x0/rfd
42 42 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/data_0
43 43 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/ren(0)
44 44 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/wen(0)
45 45 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/full(0)
46 46 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/empty(0)
47 47 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/ReUse(0)
48 48 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group fif0_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/data_1
49 49 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group fif0_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/ren(1)
50 50 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group fif0_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/wen(1)
51 51 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group fif0_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/full(1)
52 52 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group fif0_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/empty(1)
53 53 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group fif0_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/ReUse(1)
54 54 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_2 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/data_2
55 55 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_2 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/ren(2)
56 56 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_2 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/wen(2)
57 57 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_2 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/full(2)
58 58 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_2 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/empty(2)
59 59 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_2 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/ReUse(2)
60 60 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_3 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/data_3
61 61 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_3 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/ren(3)
62 62 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_3 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/wen(3)
63 63 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_3 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/full(3)
64 64 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_3 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/empty(3)
65 65 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_3 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/ReUse(3)
66 66 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_4 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/data_4
67 67 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_4 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/ren(4)
68 68 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_4 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/wen(4)
69 69 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_4 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/full(4)
70 70 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_4 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/empty(4)
71 71 add wave -noupdate -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -expand -group MEM_IN_MS -expand -group MEM_IN_MS_control -group fif0_4 -radix hexadecimal /testbench/lpp_lfr_ms_1/Mem_In_SpectralMatrix/ReUse(4)
72 72 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(0)/Mem_Out_SpectralMatrix_I/full_threshold
73 73 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(0)/Mem_Out_SpectralMatrix_I/full
74 74 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(0)/Mem_Out_SpectralMatrix_I/empty
75 75 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(0)/Mem_Out_SpectralMatrix_I/full_almost
76 76 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(0)/Mem_Out_SpectralMatrix_I/empty_threshold
77 77 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(0)/Mem_Out_SpectralMatrix_I/wen
78 78 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(0)/Mem_Out_SpectralMatrix_I/wdata
79 79 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(0)/Mem_Out_SpectralMatrix_I/ren
80 80 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(0)/Mem_Out_SpectralMatrix_I/rdata
81 81 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(0)/Mem_Out_SpectralMatrix_I/run
82 82 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_0 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(0)/Mem_Out_SpectralMatrix_I/reUse
83 83 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/full_threshold
84 84 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/full
85 85 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/empty
86 86 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/full_almost
87 87 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/empty_threshold
88 88 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/wen
89 89 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/wdata
90 90 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_1 -radix decimal -childformat {{/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(31) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(30) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(29) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(28) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(27) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(26) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(25) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(24) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(23) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(22) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(21) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(20) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(19) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(18) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(17) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(16) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(15) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(14) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(13) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(12) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(11) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(10) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(9) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(8) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(7) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(6) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(5) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(4) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(3) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(2) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(1) -radix hexadecimal} {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(0) -radix hexadecimal}} -subitemconfig {/testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(31) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(30) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(29) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(28) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(27) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(26) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(25) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(24) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(23) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(22) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(21) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(20) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(19) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(18) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(17) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(16) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(15) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(14) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(13) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(12) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(11) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(10) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(9) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(8) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(7) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(6) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(5) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(4) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(3) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(2) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(1) {-height 15 -radix hexadecimal} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata(0) {-height 15 -radix hexadecimal}} /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/rdata
91 91 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/ren
92 92 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/run
93 93 add wave -noupdate -expand -group MEM_OUT_MS -expand -group fifo_1 -radix hexadecimal /testbench/lpp_lfr_ms_1/all_Mem_Out_SpectralMatrix(1)/Mem_Out_SpectralMatrix_I/reUse
94 94 add wave -noupdate -radix hexadecimal /testbench/lpp_lfr_ms_1/dma_fifo_data
95 95 add wave -noupdate -expand -group ALU_MS -radix decimal /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/RES
96 96 add wave -noupdate -expand -group ALU_MS -radix decimal -childformat {{/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(15) -radix decimal} {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(14) -radix decimal} {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(13) -radix decimal} {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(12) -radix decimal} {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(11) -radix decimal} {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(10) -radix decimal} {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(9) -radix decimal} {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(8) -radix decimal} {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(7) -radix decimal} {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(6) -radix decimal} {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(5) -radix decimal} {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(4) -radix decimal} {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(3) -radix decimal} {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(2) -radix decimal} {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(1) -radix decimal} {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(0) -radix decimal}} -subitemconfig {/testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(15) {-height 15 -radix decimal} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(14) {-height 15 -radix decimal} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(13) {-height 15 -radix decimal} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(12) {-height 15 -radix decimal} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(11) {-height 15 -radix decimal} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(10) {-height 15 -radix decimal} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(9) {-height 15 -radix decimal} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(8) {-height 15 -radix decimal} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(7) {-height 15 -radix decimal} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(6) {-height 15 -radix decimal} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(5) {-height 15 -radix decimal} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(4) {-height 15 -radix decimal} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(3) {-height 15 -radix decimal} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(2) {-height 15 -radix decimal} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(1) {-height 15 -radix decimal} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2(0) {-height 15 -radix decimal}} /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP2
97 97 add wave -noupdate -expand -group ALU_MS -radix decimal /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/OP1
98 98 add wave -noupdate -expand -group ALU_MS -radix hexadecimal /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/comp
99 99 add wave -noupdate -expand -group ALU_MS -radix hexadecimal /testbench/lpp_lfr_ms_1/MS_calculation_1/ALU_MS/ctrl
100 100 add wave -noupdate /testbench/lpp_lfr_ms_1/MS_control_1/state
101 101 add wave -noupdate /testbench/lpp_lfr_ms_1/MS_calculation_1/state
102 102 add wave -noupdate -radix hexadecimal /testbench/lpp_lfr_ms_1/MS_calculation_1/fifo_in_data
103 103 add wave -noupdate /testbench/lpp_lfr_ms_1/MS_calculation_1/fifo_in_ren
104 104 add wave -noupdate /testbench/lpp_lfr_ms_1/MEM_OUT_SM_Full
105 105 add wave -noupdate /testbench/lpp_lfr_ms_1/MEM_OUT_SM_Full_s
106 106 add wave -noupdate /testbench/lpp_lfr_ms_1/SM_correlation_done
107 107 add wave -noupdate /testbench/lpp_lfr_ms_1/SM_correlation_done_reg1
108 108 add wave -noupdate /testbench/lpp_lfr_ms_1/SM_correlation_done_reg2
109 109 add wave -noupdate /testbench/lpp_lfr_ms_1/SM_correlation_done_reg3
110 110 add wave -noupdate /testbench/lpp_lfr_ms_1/current_matrix_wait_empty
111 111 add wave -noupdate /testbench/lpp_lfr_ms_1/current_matrix_write
112 112 add wave -noupdate /testbench/lpp_lfr_ms_1/MEM_OUT_SM_Empty
113 113 add wave -noupdate /testbench/lpp_lfr_ms_1/dma_fifo_ren
114 114 add wave -noupdate /testbench/lpp_lfr_ms_1/addr_matrix_f2
115 115 add wave -noupdate /testbench/lpp_lfr_ms_1/addr_matrix_f1
116 116 add wave -noupdate /testbench/lpp_lfr_ms_1/length_matrix_f2
117 117 add wave -noupdate /testbench/lpp_lfr_ms_1/dma_buffer_full
118 118 add wave -noupdate /testbench/lpp_lfr_ms_1/dma_buffer_full_err
119 119 add wave -noupdate /testbench/lpp_lfr_ms_1/addr_matrix_f0
120 120 add wave -noupdate /testbench/lpp_lfr_ms_1/status_ready_matrix_f2
121 121 add wave -noupdate /testbench/lpp_lfr_ms_1/status_ready_matrix_f1
122 122 add wave -noupdate /testbench/lpp_lfr_ms_1/status_ready_matrix_f0
123 123 add wave -noupdate /testbench/lpp_lfr_ms_1/current_matrix_write
124 124 add wave -noupdate /testbench/lpp_lfr_ms_1/matrix_time_f2
125 125 add wave -noupdate /testbench/lpp_lfr_ms_1/matrix_time_f1
126 126 add wave -noupdate /testbench/lpp_lfr_ms_1/matrix_time_f0
127 127 add wave -noupdate /testbench/lpp_lfr_ms_1/error_input_fifo_write
128 128 add wave -noupdate /testbench/lpp_lfr_ms_1/error_buffer_full
129 129 add wave -noupdate /testbench/lpp_lfr_ms_1/ready_matrix_f2
130 130 add wave -noupdate /testbench/lpp_lfr_ms_1/ready_matrix_f1
131 131 add wave -noupdate /testbench/lpp_lfr_ms_1/ready_matrix_f0
132 132 add wave -noupdate /testbench/lpp_lfr_ms_1/dma_buffer_length
133 133 add wave -noupdate /testbench/lpp_lfr_ms_1/dma_buffer_addr
134 134 add wave -noupdate /testbench/lpp_lfr_ms_1/dma_buffer_new
135 135 add wave -noupdate /testbench/lpp_lfr_ms_1/dma_fifo_data
136 136 add wave -noupdate /testbench/lpp_lfr_ms_1/dma_fifo_burst_valid
137 137 add wave -noupdate /testbench/lpp_lfr_ms_1/debug_vector
138 138 add wave -noupdate /testbench/lpp_lfr_ms_1/lpp_lfr_ms_fsmdma_1/state
139 139 add wave -noupdate /testbench/lpp_lfr_ms_1/fifo_0_ready
140 140 add wave -noupdate /testbench/lpp_lfr_ms_1/fifo_1_ready
141 141 add wave -noupdate /testbench/lpp_lfr_ms_1/fifo_ongoing
142 142 add wave -noupdate /testbench/lpp_lfr_ms_1/status_component_fifo_0
143 143 add wave -noupdate /testbench/lpp_lfr_ms_1/status_component_fifo_1
144 144 add wave -noupdate /testbench/lpp_lfr_ms_1/status_component_fifo_0_end
145 145 add wave -noupdate /testbench/lpp_lfr_ms_1/status_component_fifo_1_end
146 146 add wave -noupdate /testbench/lpp_lfr_ms_1/MS_calculation_1/state
147 147 add wave -noupdate /testbench/lpp_lfr_ms_1/MS_calculation_1/fifo_in_empty
148 148 add wave -noupdate /testbench/lpp_lfr_ms_1/MS_calculation_1/fifo_in_empty_reg
149 149 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/start_date
150 150 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/coarse_time
151 151 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/sample_f0_wen
152 152 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/sample_f0_wdata
153 153 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/sample_f1_wen
154 154 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/sample_f1_wdata
155 155 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/sample_f2_wen
156 156 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/sample_f2_wdata
157 157 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/length_matrix_f1
158 158 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/length_matrix_f0
159 159 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/dma_fifo_ren
160 160 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/addr_matrix_f2
161 161 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/addr_matrix_f1
162 162 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/length_matrix_f2
163 163 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/dma_buffer_full
164 164 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/dma_buffer_full_err
165 165 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/addr_matrix_f0
166 166 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/status_ready_matrix_f2
167 167 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/status_ready_matrix_f1
168 168 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/status_ready_matrix_f0
169 169 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/matrix_time_f2
170 170 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/matrix_time_f1
171 171 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/matrix_time_f0
172 172 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/error_input_fifo_write
173 173 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/error_buffer_full
174 174 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/ready_matrix_f2
175 175 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/ready_matrix_f1
176 176 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/ready_matrix_f0
177 177 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/dma_buffer_length
178 178 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/dma_buffer_addr
179 179 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/dma_buffer_new
180 180 add wave -noupdate -expand -group TOP_IN_OUT -radix decimal /testbench/lpp_lfr_ms_1/dma_fifo_data
181 181 add wave -noupdate -expand -group TOP_IN_OUT /testbench/lpp_lfr_ms_1/dma_fifo_burst_valid
182 182 add wave -noupdate -expand -group FFT /testbench/lpp_lfr_ms_1/lpp_lfr_ms_FFT_1/fft_pong
183 183 add wave -noupdate -expand -group FFT /testbench/lpp_lfr_ms_1/lpp_lfr_ms_FFT_1/fft_ready
184 184 add wave -noupdate -expand -group FFT -expand -group IN -format Analog-Step -height 74 -max 4096.0 -min -1800.0 -radix decimal /testbench/lpp_lfr_ms_1/lpp_lfr_ms_FFT_1/sample_data
185 185 add wave -noupdate -expand -group FFT -expand -group IN /testbench/lpp_lfr_ms_1/lpp_lfr_ms_FFT_1/sample_load
186 186 add wave -noupdate -expand -group FFT -expand -group IN /testbench/lpp_lfr_ms_1/lpp_lfr_ms_FFT_1/fft_read
187 187 add wave -noupdate -expand -group FFT -expand -group IN /testbench/lpp_lfr_ms_1/lpp_lfr_ms_FFT_1/sample_valid
188 add wave -noupdate -expand -group FFT -expand -group OUT -radix decimal /testbench/lpp_lfr_ms_1/lpp_lfr_ms_FFT_1/fft_data_im
189 add wave -noupdate -expand -group FFT -expand -group OUT -radix decimal /testbench/lpp_lfr_ms_1/lpp_lfr_ms_FFT_1/fft_data_re
188 add wave -noupdate -expand -group FFT -expand -group OUT -format Analog-Step -height 74 -max 17.0 -min -17.0 -radix decimal /testbench/lpp_lfr_ms_1/lpp_lfr_ms_FFT_1/fft_data_im
189 add wave -noupdate -expand -group FFT -expand -group OUT -format Analog-Step -height 74 -max 4660.0 -min -1.0 -radix decimal /testbench/lpp_lfr_ms_1/lpp_lfr_ms_FFT_1/fft_data_re
190 190 add wave -noupdate -expand -group FFT -expand -group OUT /testbench/lpp_lfr_ms_1/lpp_lfr_ms_FFT_1/fft_data_valid
191 191 add wave -noupdate /testbench/lpp_lfr_ms_1/sample_valid
192 192 add wave -noupdate /testbench/lpp_lfr_ms_1/sample_valid_delay
193 193 add wave -noupdate /testbench/lpp_lfr_ms_1/sample_valid_r
194 194 add wave -noupdate /testbench/lpp_lfr_ms_1/state_fsm_load_FFT
195 add wave -noupdate -expand /testbench/lpp_lfr_ms_1/sample_f0_A_ren
195 add wave -noupdate /testbench/lpp_lfr_ms_1/sample_f0_A_ren
196 196 add wave -noupdate /testbench/lpp_lfr_ms_1/sample_f0_B_ren
197 197 TreeUpdate [SetDefaultTree]
198 WaveRestoreCursors {WDATA_1 {10541340000 ps} 1} {WDATA_2 {10541500000 ps} 1} {WDATA_8 {10542460000 ps} 1} {WDATA_16 {10543740000 ps} 1} {{Cursor 9} {10490580000 ps} 0} {{Cursor 10} {6346220000 ps} 0}
199 quietly wave cursor active 5
198 WaveRestoreCursors {WDATA_1 {10541340000 ps} 1} {WDATA_2 {10541500000 ps} 1} {WDATA_8 {10542460000 ps} 1} {WDATA_16 {10543740000 ps} 1} {{Cursor 9} {91072272990 ps} 0} {{Cursor 10} {62824940000 ps} 0} {{Cursor 7} {62825020000 ps} 0}
199 quietly wave cursor active 7
200 200 configure wave -namecolwidth 573
201 201 configure wave -valuecolwidth 108
202 202 configure wave -justifyvalue left
203 203 configure wave -signalnamewidth 0
204 204 configure wave -snapdistance 10
205 205 configure wave -datasetprefix 0
206 206 configure wave -rowmargin 4
207 207 configure wave -childrowmargin 2
208 208 configure wave -gridoffset 0
209 209 configure wave -gridperiod 1
210 210 configure wave -griddelta 40
211 211 configure wave -timeline 0
212 212 configure wave -timelineunits ns
213 213 update
214 WaveRestoreZoom {10489250172 ps} {10491702980 ps}
214 WaveRestoreZoom {62467271961 ps} {63182321178 ps}
@@ -1,1248 +1,1250
1 1 LIBRARY ieee;
2 2 USE ieee.std_logic_1164.ALL;
3 3 USE ieee.numeric_std.ALL;
4 4
5 5
6 6 LIBRARY lpp;
7 7 USE lpp.lpp_memory.ALL;
8 8 USE lpp.iir_filter.ALL;
9 9 USE lpp.spectral_matrix_package.ALL;
10 10 USE lpp.lpp_dma_pkg.ALL;
11 11 USE lpp.lpp_Header.ALL;
12 12 USE lpp.lpp_matrix.ALL;
13 13 USE lpp.lpp_matrix.ALL;
14 14 USE lpp.lpp_lfr_pkg.ALL;
15 15 USE lpp.lpp_fft.ALL;
16 16 USE lpp.fft_components.ALL;
17 17
18 18 ENTITY lpp_lfr_ms IS
19 19 GENERIC (
20 20 Mem_use : INTEGER := use_RAM
21 21 );
22 22 PORT (
23 23 clk : IN STD_LOGIC;
24 24 rstn : IN STD_LOGIC;
25 25 run : IN STD_LOGIC;
26 26
27 27 ---------------------------------------------------------------------------
28 28 -- DATA INPUT
29 29 ---------------------------------------------------------------------------
30 30 start_date : IN STD_LOGIC_VECTOR(30 DOWNTO 0);
31 31 coarse_time : IN STD_LOGIC_VECTOR(31 DOWNTO 0);
32 32 --fine_time : IN STD_LOGIC_VECTOR(15 DOWNTO 0); -- todo
33 33 --
34 34 sample_f0_wen : IN STD_LOGIC_VECTOR(4 DOWNTO 0);
35 35 sample_f0_wdata : IN STD_LOGIC_VECTOR((5*16)-1 DOWNTO 0);
36 36 sample_f0_time : IN STD_LOGIC_VECTOR(47 DOWNTO 0);
37 37 --
38 38 sample_f1_wen : IN STD_LOGIC_VECTOR(4 DOWNTO 0);
39 39 sample_f1_wdata : IN STD_LOGIC_VECTOR((5*16)-1 DOWNTO 0);
40 40 sample_f1_time : IN STD_LOGIC_VECTOR(47 DOWNTO 0);
41 41 --
42 42 sample_f2_wen : IN STD_LOGIC_VECTOR(4 DOWNTO 0);
43 43 sample_f2_wdata : IN STD_LOGIC_VECTOR((5*16)-1 DOWNTO 0);
44 44 sample_f2_time : IN STD_LOGIC_VECTOR(47 DOWNTO 0);
45 45
46 46 ---------------------------------------------------------------------------
47 47 -- DMA
48 48 ---------------------------------------------------------------------------
49 49 dma_fifo_burst_valid: OUT STD_LOGIC; --TODO
50 50 dma_fifo_data : OUT STD_LOGIC_VECTOR(31 DOWNTO 0); --TODO
51 51 dma_fifo_ren : IN STD_LOGIC; --TODO
52 52 dma_buffer_new : OUT STD_LOGIC; --TODOx
53 53 dma_buffer_addr : OUT STD_LOGIC_VECTOR(31 DOWNTO 0); --TODO
54 54 dma_buffer_length : OUT STD_LOGIC_VECTOR(25 DOWNTO 0); --TODO
55 55 dma_buffer_full : IN STD_LOGIC; --TODO
56 56 dma_buffer_full_err : IN STD_LOGIC; --TODO
57 57
58 58 -- Reg out
59 59 ready_matrix_f0 : OUT STD_LOGIC; -- TODO
60 60 ready_matrix_f1 : OUT STD_LOGIC; -- TODO
61 61 ready_matrix_f2 : OUT STD_LOGIC; -- TODO
62 62 -- error_bad_component_error : OUT STD_LOGIC; -- TODO
63 63 error_buffer_full : OUT STD_LOGIC; -- TODO
64 64 error_input_fifo_write : OUT STD_LOGIC_VECTOR(2 DOWNTO 0);
65 65
66 66 -- Reg In
67 67 status_ready_matrix_f0 : IN STD_LOGIC; -- TODO
68 68 status_ready_matrix_f1 : IN STD_LOGIC; -- TODO
69 69 status_ready_matrix_f2 : IN STD_LOGIC; -- TODO
70 70
71 71 addr_matrix_f0 : IN STD_LOGIC_VECTOR(31 DOWNTO 0); -- TODO
72 72 addr_matrix_f1 : IN STD_LOGIC_VECTOR(31 DOWNTO 0); -- TODO
73 73 addr_matrix_f2 : IN STD_LOGIC_VECTOR(31 DOWNTO 0); -- TODO
74 74
75 75 length_matrix_f0 : IN STD_LOGIC_VECTOR(25 DOWNTO 0); -- TODO
76 76 length_matrix_f1 : IN STD_LOGIC_VECTOR(25 DOWNTO 0); -- TODO
77 77 length_matrix_f2 : IN STD_LOGIC_VECTOR(25 DOWNTO 0); -- TODO
78 78
79 79 matrix_time_f0 : OUT STD_LOGIC_VECTOR(47 DOWNTO 0); -- TODO
80 80 matrix_time_f1 : OUT STD_LOGIC_VECTOR(47 DOWNTO 0); -- TODO
81 81 matrix_time_f2 : OUT STD_LOGIC_VECTOR(47 DOWNTO 0); -- TODO
82 82 ---------------------------------------------------------------------------
83 83 debug_vector : OUT STD_LOGIC_VECTOR(11 DOWNTO 0)
84 84 );
85 85 END;
86 86
87 87 ARCHITECTURE Behavioral OF lpp_lfr_ms IS
88 88
89 89 SIGNAL sample_f0_A_rdata : STD_LOGIC_VECTOR((5*16)-1 DOWNTO 0);
90 90 SIGNAL sample_f0_A_ren : STD_LOGIC_VECTOR(4 DOWNTO 0);
91 91 SIGNAL sample_f0_A_wen : STD_LOGIC_VECTOR(4 DOWNTO 0);
92 92 SIGNAL sample_f0_A_full : STD_LOGIC_VECTOR(4 DOWNTO 0);
93 93 SIGNAL sample_f0_A_empty : STD_LOGIC_VECTOR(4 DOWNTO 0);
94 94
95 95 SIGNAL sample_f0_B_rdata : STD_LOGIC_VECTOR((5*16)-1 DOWNTO 0);
96 96 SIGNAL sample_f0_B_ren : STD_LOGIC_VECTOR(4 DOWNTO 0);
97 97 SIGNAL sample_f0_B_wen : STD_LOGIC_VECTOR(4 DOWNTO 0);
98 98 SIGNAL sample_f0_B_full : STD_LOGIC_VECTOR(4 DOWNTO 0);
99 99 SIGNAL sample_f0_B_empty : STD_LOGIC_VECTOR(4 DOWNTO 0);
100 100
101 101 SIGNAL sample_f1_rdata : STD_LOGIC_VECTOR((5*16)-1 DOWNTO 0);
102 102 SIGNAL sample_f1_ren : STD_LOGIC_VECTOR(4 DOWNTO 0);
103 103 SIGNAL sample_f1_full : STD_LOGIC_VECTOR(4 DOWNTO 0);
104 104 SIGNAL sample_f1_empty : STD_LOGIC_VECTOR(4 DOWNTO 0);
105 105
106 106 SIGNAL sample_f1_almost_full : STD_LOGIC_VECTOR(4 DOWNTO 0);
107 107
108 108 SIGNAL sample_f2_rdata : STD_LOGIC_VECTOR((5*16)-1 DOWNTO 0);
109 109 SIGNAL sample_f2_ren : STD_LOGIC_VECTOR(4 DOWNTO 0);
110 110 SIGNAL sample_f2_full : STD_LOGIC_VECTOR(4 DOWNTO 0);
111 111 SIGNAL sample_f2_empty : STD_LOGIC_VECTOR(4 DOWNTO 0);
112 112
113 113 SIGNAL error_wen_f0 : STD_LOGIC;
114 114 SIGNAL error_wen_f1 : STD_LOGIC;
115 115 SIGNAL error_wen_f2 : STD_LOGIC;
116 116
117 117 SIGNAL one_sample_f1_full : STD_LOGIC;
118 118 SIGNAL one_sample_f1_wen : STD_LOGIC;
119 119 SIGNAL one_sample_f2_full : STD_LOGIC;
120 120 SIGNAL one_sample_f2_wen : STD_LOGIC;
121 121
122 122 -----------------------------------------------------------------------------
123 123 -- FSM / SWITCH SELECT CHANNEL
124 124 -----------------------------------------------------------------------------
125 125 TYPE fsm_select_channel IS (IDLE, SWITCH_F0_A, SWITCH_F0_B, SWITCH_F1, SWITCH_F2);
126 126 SIGNAL state_fsm_select_channel : fsm_select_channel;
127 127 -- SIGNAL pre_state_fsm_select_channel : fsm_select_channel;
128 128 SIGNAL select_channel : STD_LOGIC_VECTOR(1 DOWNTO 0);
129 129 SIGNAL select_channel_reg : STD_LOGIC_VECTOR(1 DOWNTO 0);
130 130
131 131 SIGNAL sample_rdata : STD_LOGIC_VECTOR((5*16)-1 DOWNTO 0);
132 132 SIGNAL sample_ren : STD_LOGIC_VECTOR(4 DOWNTO 0);
133 133 SIGNAL sample_full : STD_LOGIC_VECTOR(4 DOWNTO 0);
134 134 SIGNAL sample_empty : STD_LOGIC_VECTOR(4 DOWNTO 0);
135 135
136 136 -----------------------------------------------------------------------------
137 137 -- FSM LOAD FFT
138 138 -----------------------------------------------------------------------------
139 139 TYPE fsm_load_FFT IS (IDLE, FIFO_1, FIFO_2, FIFO_3, FIFO_4, FIFO_5, WAIT_STATE, WAIT_STATE_2);
140 140 SIGNAL state_fsm_load_FFT : fsm_load_FFT;
141 141 SIGNAL next_state_fsm_load_FFT : fsm_load_FFT;
142 142 SIGNAL select_fifo : STD_LOGIC_VECTOR(2 DOWNTO 0);
143 143 SIGNAL select_fifo_reg : STD_LOGIC_VECTOR(2 DOWNTO 0);
144 144
145 145 SIGNAL sample_ren_s : STD_LOGIC_VECTOR(4 DOWNTO 0);
146 146 SIGNAL sample_load : STD_LOGIC;
147 147 SIGNAL sample_valid : STD_LOGIC;
148 148 SIGNAL sample_valid_r : STD_LOGIC;
149 149 SIGNAL sample_data : STD_LOGIC_VECTOR(15 DOWNTO 0);
150 150
151 151
152 152 -----------------------------------------------------------------------------
153 153 -- FFT
154 154 -----------------------------------------------------------------------------
155 155 SIGNAL fft_read : STD_LOGIC;
156 156 SIGNAL fft_pong : STD_LOGIC;
157 157 SIGNAL fft_data_im : STD_LOGIC_VECTOR(15 DOWNTO 0);
158 158 SIGNAL fft_data_re : STD_LOGIC_VECTOR(15 DOWNTO 0);
159 159 SIGNAL fft_data_valid : STD_LOGIC;
160 160 SIGNAL fft_data_valid_pre : STD_LOGIC;
161 161 SIGNAL fft_ready : STD_LOGIC;
162 162 -----------------------------------------------------------------------------
163 163 -- SIGNAL fft_linker_ReUse : STD_LOGIC_VECTOR(4 DOWNTO 0);
164 164 -----------------------------------------------------------------------------
165 165 TYPE fsm_load_MS_memory IS (IDLE, LOAD_FIFO, TRASH_FFT);
166 166 SIGNAL state_fsm_load_MS_memory : fsm_load_MS_memory;
167 167 SIGNAL current_fifo_load : STD_LOGIC_VECTOR(4 DOWNTO 0);
168 168 SIGNAL current_fifo_empty : STD_LOGIC;
169 169 SIGNAL current_fifo_locked : STD_LOGIC;
170 170 SIGNAL current_fifo_full : STD_LOGIC;
171 171 SIGNAL MEM_IN_SM_locked : STD_LOGIC_VECTOR(4 DOWNTO 0);
172 172
173 173 -----------------------------------------------------------------------------
174 174 SIGNAL MEM_IN_SM_ReUse : STD_LOGIC_VECTOR(4 DOWNTO 0);
175 175 SIGNAL MEM_IN_SM_wen : STD_LOGIC_VECTOR(4 DOWNTO 0);
176 176 SIGNAL MEM_IN_SM_wen_s : STD_LOGIC_VECTOR(4 DOWNTO 0);
177 177 SIGNAL MEM_IN_SM_ren : STD_LOGIC_VECTOR(4 DOWNTO 0);
178 178 SIGNAL MEM_IN_SM_wData : STD_LOGIC_VECTOR(16*2*5-1 DOWNTO 0);
179 179 SIGNAL MEM_IN_SM_rData : STD_LOGIC_VECTOR(16*2*5-1 DOWNTO 0);
180 180 SIGNAL MEM_IN_SM_Full : STD_LOGIC_VECTOR(4 DOWNTO 0);
181 181 SIGNAL MEM_IN_SM_Empty : STD_LOGIC_VECTOR(4 DOWNTO 0);
182 182 -----------------------------------------------------------------------------
183 183 SIGNAL SM_in_data : STD_LOGIC_VECTOR(32*2-1 DOWNTO 0);
184 184 SIGNAL SM_in_ren : STD_LOGIC_VECTOR(1 DOWNTO 0);
185 185 SIGNAL SM_in_empty : STD_LOGIC_VECTOR(1 DOWNTO 0);
186 186
187 187 SIGNAL SM_correlation_start : STD_LOGIC;
188 188 SIGNAL SM_correlation_auto : STD_LOGIC;
189 189 SIGNAL SM_correlation_done : STD_LOGIC;
190 190 SIGNAL SM_correlation_done_reg1 : STD_LOGIC;
191 191 SIGNAL SM_correlation_done_reg2 : STD_LOGIC;
192 192 SIGNAL SM_correlation_done_reg3 : STD_LOGIC;
193 193 SIGNAL SM_correlation_begin : STD_LOGIC;
194 194
195 195 SIGNAL MEM_OUT_SM_Full_s : STD_LOGIC;
196 196 SIGNAL MEM_OUT_SM_Data_in_s : STD_LOGIC_VECTOR(31 DOWNTO 0);
197 197 SIGNAL MEM_OUT_SM_Write_s : STD_LOGIC;
198 198
199 199 SIGNAL current_matrix_write : STD_LOGIC;
200 200 SIGNAL current_matrix_wait_empty : STD_LOGIC;
201 201 -----------------------------------------------------------------------------
202 202 SIGNAL fifo_0_ready : STD_LOGIC;
203 203 SIGNAL fifo_1_ready : STD_LOGIC;
204 204 SIGNAL fifo_ongoing : STD_LOGIC;
205 205 SIGNAL fifo_ongoing_reg : STD_LOGIC;
206 206
207 207 SIGNAL FSM_DMA_fifo_ren : STD_LOGIC;
208 208 SIGNAL FSM_DMA_fifo_empty : STD_LOGIC;
209 209 SIGNAL FSM_DMA_fifo_empty_threshold : STD_LOGIC;
210 210 SIGNAL FSM_DMA_fifo_data : STD_LOGIC_VECTOR(31 DOWNTO 0);
211 211 SIGNAL FSM_DMA_fifo_status : STD_LOGIC_VECTOR(53 DOWNTO 4);
212 212 -----------------------------------------------------------------------------
213 213 SIGNAL MEM_OUT_SM_Write : STD_LOGIC_VECTOR(1 DOWNTO 0);
214 214 SIGNAL MEM_OUT_SM_Read : STD_LOGIC_VECTOR(1 DOWNTO 0);
215 215 SIGNAL MEM_OUT_SM_Data_in : STD_LOGIC_VECTOR(63 DOWNTO 0);
216 216 SIGNAL MEM_OUT_SM_Data_out : STD_LOGIC_VECTOR(63 DOWNTO 0);
217 217 SIGNAL MEM_OUT_SM_Full : STD_LOGIC_VECTOR(1 DOWNTO 0);
218 218 SIGNAL MEM_OUT_SM_Empty : STD_LOGIC_VECTOR(1 DOWNTO 0);
219 219 SIGNAL MEM_OUT_SM_Empty_Threshold : STD_LOGIC_VECTOR(1 DOWNTO 0);
220 220
221 221 -----------------------------------------------------------------------------
222 222 -- TIME REG & INFOs
223 223 -----------------------------------------------------------------------------
224 224 SIGNAL all_time : STD_LOGIC_VECTOR(48*4-1 DOWNTO 0);
225 225
226 226 SIGNAL f_empty : STD_LOGIC_VECTOR(3 DOWNTO 0);
227 227 SIGNAL f_empty_reg : STD_LOGIC_VECTOR(3 DOWNTO 0);
228 228 SIGNAL time_update_f : STD_LOGIC_VECTOR(3 DOWNTO 0);
229 229 SIGNAL time_reg_f : STD_LOGIC_VECTOR(48*4-1 DOWNTO 0);
230 230
231 231 SIGNAL time_reg_f0_A : STD_LOGIC_VECTOR(47 DOWNTO 0);
232 232 SIGNAL time_reg_f0_B : STD_LOGIC_VECTOR(47 DOWNTO 0);
233 233 SIGNAL time_reg_f1 : STD_LOGIC_VECTOR(47 DOWNTO 0);
234 234 SIGNAL time_reg_f2 : STD_LOGIC_VECTOR(47 DOWNTO 0);
235 235
236 236 --SIGNAL time_update_f0_A : STD_LOGIC;
237 237 --SIGNAL time_update_f0_B : STD_LOGIC;
238 238 --SIGNAL time_update_f1 : STD_LOGIC;
239 239 --SIGNAL time_update_f2 : STD_LOGIC;
240 240 --
241 241 SIGNAL status_channel : STD_LOGIC_VECTOR(49 DOWNTO 0);
242 242 SIGNAL status_MS_input : STD_LOGIC_VECTOR(49 DOWNTO 0);
243 243 SIGNAL status_component : STD_LOGIC_VECTOR(53 DOWNTO 0);
244 244
245 245 SIGNAL status_component_fifo_0 : STD_LOGIC_VECTOR(53 DOWNTO 4);
246 246 SIGNAL status_component_fifo_1 : STD_LOGIC_VECTOR(53 DOWNTO 4);
247 247 SIGNAL status_component_fifo_0_end : STD_LOGIC;
248 248 SIGNAL status_component_fifo_1_end : STD_LOGIC;
249 249 -----------------------------------------------------------------------------
250 250 SIGNAL fft_ongoing_counter : STD_LOGIC;--_VECTOR(1 DOWNTO 0);
251 251
252 252 SIGNAL fft_ready_reg : STD_LOGIC;
253 253 SIGNAL fft_ready_rising_down : STD_LOGIC;
254 254
255 255 SIGNAL sample_load_reg : STD_LOGIC;
256 256 SIGNAL sample_load_rising_down : STD_LOGIC;
257 257
258 258 -----------------------------------------------------------------------------
259 259 SIGNAL sample_f1_wen_head : STD_LOGIC_VECTOR(4 DOWNTO 0);
260 260 SIGNAL sample_f1_wen_head_in : STD_LOGIC;
261 261 SIGNAL sample_f1_wen_head_out : STD_LOGIC;
262 262 SIGNAL sample_f1_full_head_in : STD_LOGIC;
263 263 SIGNAL sample_f1_full_head_out : STD_LOGIC;
264 264 SIGNAL sample_f1_empty_head_in : STD_LOGIC;
265 265
266 266 SIGNAL sample_f1_wdata_head : STD_LOGIC_VECTOR((5*16)-1 DOWNTO 0);
267 267 -----------------------------------------------------------------------------
268 268 SIGNAL sample_f0_wen_s : STD_LOGIC_VECTOR(4 DOWNTO 0);
269 269 SIGNAL sample_f1_wen_s : STD_LOGIC_VECTOR(4 DOWNTO 0);
270 270 SIGNAL sample_f2_wen_s : STD_LOGIC_VECTOR(4 DOWNTO 0);
271 271 SIGNAL ongoing : STD_LOGIC;
272 272
273 273 BEGIN
274 274
275 275 PROCESS (clk, rstn)
276 276 BEGIN -- PROCESS
277 277 IF rstn = '0' THEN -- asynchronous reset (active low)
278 278 sample_f0_wen_s <= (OTHERS => '1');
279 279 sample_f1_wen_s <= (OTHERS => '1');
280 280 sample_f2_wen_s <= (OTHERS => '1');
281 281 ongoing <= '0';
282 282 ELSIF clk'event AND clk = '1' THEN -- rising clock edge
283 283 IF ongoing = '1' THEN
284 284 sample_f0_wen_s <= sample_f0_wen;
285 285 sample_f1_wen_s <= sample_f1_wen;
286 286 sample_f2_wen_s <= sample_f2_wen;
287 287 ELSE
288 288 IF start_date = coarse_time(30 DOWNTO 0) THEN
289 289 ongoing <= '1';
290 290 END IF;
291 291 sample_f0_wen_s <= (OTHERS => '1');
292 292 sample_f1_wen_s <= (OTHERS => '1');
293 293 sample_f2_wen_s <= (OTHERS => '1');
294 294 END IF;
295 295 END IF;
296 296 END PROCESS;
297 297
298 298
299 299 error_input_fifo_write <= error_wen_f2 & error_wen_f1 & error_wen_f0;
300 300
301 301
302 302 switch_f0_inst : spectral_matrix_switch_f0
303 303 PORT MAP (
304 304 clk => clk,
305 305 rstn => rstn,
306 306
307 307 sample_wen => sample_f0_wen_s,
308 308
309 309 fifo_A_empty => sample_f0_A_empty,
310 310 fifo_A_full => sample_f0_A_full,
311 311 fifo_A_wen => sample_f0_A_wen,
312 312
313 313 fifo_B_empty => sample_f0_B_empty,
314 314 fifo_B_full => sample_f0_B_full,
315 315 fifo_B_wen => sample_f0_B_wen,
316 316
317 317 error_wen => error_wen_f0); -- TODO
318 318
319 319 -----------------------------------------------------------------------------
320 320 -- FIFO IN
321 321 -----------------------------------------------------------------------------
322 322 lppFIFOxN_f0_a : lppFIFOxN
323 323 GENERIC MAP (
324 324 tech => 0,
325 325 Mem_use => Mem_use,
326 326 Data_sz => 16,
327 327 Addr_sz => 8,
328 328 FifoCnt => 5)
329 329 PORT MAP (
330 330 clk => clk,
331 331 rstn => rstn,
332 332
333 333 ReUse => (OTHERS => '0'),
334 334
335 335 run => (OTHERS => '1'),
336 336
337 337 wen => sample_f0_A_wen,
338 338 wdata => sample_f0_wdata,
339 339
340 340 ren => sample_f0_A_ren,
341 341 rdata => sample_f0_A_rdata,
342 342
343 343 empty => sample_f0_A_empty,
344 344 full => sample_f0_A_full,
345 345 almost_full => OPEN);
346 346
347 347 lppFIFOxN_f0_b : lppFIFOxN
348 348 GENERIC MAP (
349 349 tech => 0,
350 350 Mem_use => Mem_use,
351 351 Data_sz => 16,
352 352 Addr_sz => 8,
353 353 FifoCnt => 5)
354 354 PORT MAP (
355 355 clk => clk,
356 356 rstn => rstn,
357 357
358 358 ReUse => (OTHERS => '0'),
359 359 run => (OTHERS => '1'),
360 360
361 361 wen => sample_f0_B_wen,
362 362 wdata => sample_f0_wdata,
363 363 ren => sample_f0_B_ren,
364 364 rdata => sample_f0_B_rdata,
365 365 empty => sample_f0_B_empty,
366 366 full => sample_f0_B_full,
367 367 almost_full => OPEN);
368 368
369 369 -----------------------------------------------------------------------------
370 370 -- sample_f1_wen in
371 371 -- sample_f1_wdata in
372 372 -- sample_f1_full OUT
373 373
374 374 sample_f1_wen_head_in <= '0' WHEN sample_f1_wen_s = "00000" ELSE '1';
375 375 sample_f1_full_head_in <= '0' WHEN sample_f1_full = "00000" ELSE '1';
376 376 sample_f1_empty_head_in <= '1' WHEN sample_f1_empty = "11111" ELSE '0';
377 377
378 378 lpp_lfr_ms_reg_head_1:lpp_lfr_ms_reg_head
379 379 PORT MAP (
380 380 clk => clk,
381 381 rstn => rstn,
382 382 in_wen => sample_f1_wen_head_in,
383 383 in_data => sample_f1_wdata,
384 384 in_full => sample_f1_full_head_in,
385 385 in_empty => sample_f1_empty_head_in,
386 386 out_write_error => error_wen_f1,
387 387 out_wen => sample_f1_wen_head_out,
388 388 out_data => sample_f1_wdata_head,
389 389 out_full => sample_f1_full_head_out);
390 390
391 391 sample_f1_wen_head <= sample_f1_wen_head_out & sample_f1_wen_head_out & sample_f1_wen_head_out & sample_f1_wen_head_out & sample_f1_wen_head_out;
392 392
393 393
394 394 lppFIFOxN_f1 : lppFIFOxN
395 395 GENERIC MAP (
396 396 tech => 0,
397 397 Mem_use => Mem_use,
398 398 Data_sz => 16,
399 399 Addr_sz => 8,
400 400 FifoCnt => 5)
401 401 PORT MAP (
402 402 clk => clk,
403 403 rstn => rstn,
404 404
405 405 ReUse => (OTHERS => '0'),
406 406 run => (OTHERS => '1'),
407 407
408 408 wen => sample_f1_wen_head,
409 409 wdata => sample_f1_wdata_head,
410 410 ren => sample_f1_ren,
411 411 rdata => sample_f1_rdata,
412 412 empty => sample_f1_empty,
413 413 full => sample_f1_full,
414 414 almost_full => sample_f1_almost_full);
415 415
416 416
417 417 one_sample_f1_wen <= '0' WHEN sample_f1_wen_head = "11111" ELSE '1';
418 418
419 419 PROCESS (clk, rstn)
420 420 BEGIN -- PROCESS
421 421 IF rstn = '0' THEN -- asynchronous reset (active low)
422 422 one_sample_f1_full <= '0';
423 423 --error_wen_f1 <= '0';
424 424 ELSIF clk'EVENT AND clk = '1' THEN -- rising clock edge
425 425 IF sample_f1_full_head_out = '0' THEN
426 426 one_sample_f1_full <= '0';
427 427 ELSE
428 428 one_sample_f1_full <= '1';
429 429 END IF;
430 430 --error_wen_f1 <= one_sample_f1_wen AND one_sample_f1_full;
431 431 END IF;
432 432 END PROCESS;
433 433
434 434 -----------------------------------------------------------------------------
435 435
436 436
437 437 lppFIFOxN_f2 : lppFIFOxN
438 438 GENERIC MAP (
439 439 tech => 0,
440 440 Mem_use => Mem_use,
441 441 Data_sz => 16,
442 442 Addr_sz => 8,
443 443 FifoCnt => 5)
444 444 PORT MAP (
445 445 clk => clk,
446 446 rstn => rstn,
447 447
448 448 ReUse => (OTHERS => '0'),
449 449 run => (OTHERS => '1'),
450 450
451 451 wen => sample_f2_wen_s,
452 452 wdata => sample_f2_wdata,
453 453 ren => sample_f2_ren,
454 454 rdata => sample_f2_rdata,
455 455 empty => sample_f2_empty,
456 456 full => sample_f2_full,
457 457 almost_full => OPEN);
458 458
459 459
460 460 one_sample_f2_wen <= '0' WHEN sample_f2_wen_s = "11111" ELSE '1';
461 461
462 462 PROCESS (clk, rstn)
463 463 BEGIN -- PROCESS
464 464 IF rstn = '0' THEN -- asynchronous reset (active low)
465 465 one_sample_f2_full <= '0';
466 466 error_wen_f2 <= '0';
467 467 ELSIF clk'EVENT AND clk = '1' THEN -- rising clock edge
468 468 IF sample_f2_full = "00000" THEN
469 469 one_sample_f2_full <= '0';
470 470 ELSE
471 471 one_sample_f2_full <= '1';
472 472 END IF;
473 473 error_wen_f2 <= one_sample_f2_wen AND one_sample_f2_full;
474 474 END IF;
475 475 END PROCESS;
476 476
477 477 -----------------------------------------------------------------------------
478 478 -- FSM SELECT CHANNEL
479 479 -----------------------------------------------------------------------------
480 480 PROCESS (clk, rstn)
481 481 BEGIN
482 482 IF rstn = '0' THEN
483 483 state_fsm_select_channel <= IDLE;
484 484 select_channel <= (OTHERS => '0');
485 485 ELSIF clk'EVENT AND clk = '1' THEN
486 486 CASE state_fsm_select_channel IS
487 487 WHEN IDLE =>
488 488 IF sample_f1_full = "11111" THEN
489 489 state_fsm_select_channel <= SWITCH_F1;
490 490 select_channel <= "10";
491 491 ELSIF sample_f1_almost_full = "00000" THEN
492 492 IF sample_f0_A_full = "11111" THEN
493 493 state_fsm_select_channel <= SWITCH_F0_A;
494 494 select_channel <= "00";
495 495 ELSIF sample_f0_B_full = "11111" THEN
496 496 state_fsm_select_channel <= SWITCH_F0_B;
497 497 select_channel <= "01";
498 498 ELSIF sample_f2_full = "11111" THEN
499 499 state_fsm_select_channel <= SWITCH_F2;
500 500 select_channel <= "11";
501 501 END IF;
502 502 END IF;
503 503
504 504 WHEN SWITCH_F0_A =>
505 505 IF sample_f0_A_empty = "11111" THEN
506 506 state_fsm_select_channel <= IDLE;
507 507 select_channel <= (OTHERS => '0');
508 508 END IF;
509 509 WHEN SWITCH_F0_B =>
510 510 IF sample_f0_B_empty = "11111" THEN
511 511 state_fsm_select_channel <= IDLE;
512 512 select_channel <= (OTHERS => '0');
513 513 END IF;
514 514 WHEN SWITCH_F1 =>
515 515 IF sample_f1_empty = "11111" THEN
516 516 state_fsm_select_channel <= IDLE;
517 517 select_channel <= (OTHERS => '0');
518 518 END IF;
519 519 WHEN SWITCH_F2 =>
520 520 IF sample_f2_empty = "11111" THEN
521 521 state_fsm_select_channel <= IDLE;
522 522 select_channel <= (OTHERS => '0');
523 523 END IF;
524 524 WHEN OTHERS => NULL;
525 525 END CASE;
526 526
527 527 END IF;
528 528 END PROCESS;
529 529
530 530 PROCESS (clk, rstn)
531 531 BEGIN
532 532 IF rstn = '0' THEN
533 533 select_channel_reg <= (OTHERS => '0');
534 534 --pre_state_fsm_select_channel <= IDLE;
535 535 ELSIF clk'EVENT AND clk = '1' THEN
536 536 select_channel_reg <= select_channel;
537 537 --pre_state_fsm_select_channel <= state_fsm_select_channel;
538 538 END IF;
539 539 END PROCESS;
540 540
541 541
542 542 -----------------------------------------------------------------------------
543 543 -- SWITCH SELECT CHANNEL
544 544 -----------------------------------------------------------------------------
545 545 sample_empty <= sample_f0_A_empty WHEN state_fsm_select_channel = SWITCH_F0_A ELSE
546 546 sample_f0_B_empty WHEN state_fsm_select_channel = SWITCH_F0_B ELSE
547 547 sample_f1_empty WHEN state_fsm_select_channel = SWITCH_F1 ELSE
548 548 sample_f2_empty WHEN state_fsm_select_channel = SWITCH_F2 ELSE
549 549 (OTHERS => '1');
550 550
551 551 sample_full <= sample_f0_A_full WHEN state_fsm_select_channel = SWITCH_F0_A ELSE
552 552 sample_f0_B_full WHEN state_fsm_select_channel = SWITCH_F0_B ELSE
553 553 sample_f1_full WHEN state_fsm_select_channel = SWITCH_F1 ELSE
554 554 sample_f2_full WHEN state_fsm_select_channel = SWITCH_F2 ELSE
555 555 (OTHERS => '0');
556 556
557 557 --sample_rdata <= sample_f0_A_rdata WHEN pre_state_fsm_select_channel = SWITCH_F0_A ELSE
558 558 -- sample_f0_B_rdata WHEN pre_state_fsm_select_channel = SWITCH_F0_B ELSE
559 559 -- sample_f1_rdata WHEN pre_state_fsm_select_channel = SWITCH_F1 ELSE
560 560 -- sample_f2_rdata; -- WHEN state_fsm_select_channel = SWITCH_F2 ELSE
561 561 sample_rdata <= sample_f0_A_rdata WHEN select_channel_reg = "00" ELSE
562 562 sample_f0_B_rdata WHEN select_channel_reg = "01" ELSE
563 563 sample_f1_rdata WHEN select_channel_reg = "10" ELSE
564 564 sample_f2_rdata; -- WHEN state_fsm_select_channel = SWITCH_F2 ELSE
565 565
566 566
567 567 sample_f0_A_ren <= sample_ren WHEN state_fsm_select_channel = SWITCH_F0_A ELSE (OTHERS => '1');
568 568 sample_f0_B_ren <= sample_ren WHEN state_fsm_select_channel = SWITCH_F0_B ELSE (OTHERS => '1');
569 569 sample_f1_ren <= sample_ren WHEN state_fsm_select_channel = SWITCH_F1 ELSE (OTHERS => '1');
570 570 sample_f2_ren <= sample_ren WHEN state_fsm_select_channel = SWITCH_F2 ELSE (OTHERS => '1');
571 571
572 572
573 573 status_channel <= time_reg_f0_A & "00" WHEN state_fsm_select_channel = SWITCH_F0_A ELSE
574 574 time_reg_f0_B & "00" WHEN state_fsm_select_channel = SWITCH_F0_B ELSE
575 575 time_reg_f1 & "01" WHEN state_fsm_select_channel = SWITCH_F1 ELSE
576 576 time_reg_f2 & "10"; -- WHEN state_fsm_select_channel = SWITCH_F2
577 577
578 578 -----------------------------------------------------------------------------
579 579 -- FSM LOAD FFT
580 580 -----------------------------------------------------------------------------
581 581
582 582 sample_ren <= (OTHERS => '1') WHEN fft_ongoing_counter = '1' ELSE
583 583 sample_ren_s WHEN sample_load = '1' ELSE
584 584 (OTHERS => '1');
585 585
586 586 PROCESS (clk, rstn)
587 587 BEGIN
588 588 IF rstn = '0' THEN
589 589 sample_ren_s <= (OTHERS => '1');
590 590 state_fsm_load_FFT <= IDLE;
591 591 status_MS_input <= (OTHERS => '0');
592 592 select_fifo <= "000";
593 593 --next_state_fsm_load_FFT <= IDLE;
594 594 --sample_valid <= '0';
595 595 ELSIF clk'EVENT AND clk = '1' THEN
596 596 CASE state_fsm_load_FFT IS
597 597 WHEN IDLE =>
598 598 --sample_valid <= '0';
599 599 sample_ren_s <= (OTHERS => '1');
600 600 IF sample_full = "11111" AND sample_load = '1' THEN
601 601 sample_ren_s <= "11111";
602 602 state_fsm_load_FFT <= FIFO_1;
603 603 status_MS_input <= status_channel;
604 604 select_fifo <= "000";
605 605 END IF;
606 606
607 607 WHEN FIFO_1 =>
608 608 sample_ren_s <= "1111" & NOT(sample_load);
609 609 IF sample_empty(0) = '1' THEN
610 610 sample_ren_s <= "11111";
611 611 state_fsm_load_FFT <= WAIT_STATE;
612 612 next_state_fsm_load_FFT <= FIFO_2;
613 613 select_fifo <= "001";
614 614 END IF;
615 615
616 616 WHEN FIFO_2 =>
617 617 sample_ren_s <= "111" & NOT(sample_load) & '1';
618 618 IF sample_empty(1) = '1' THEN
619 619 sample_ren_s <= "11111";
620 620 state_fsm_load_FFT <= WAIT_STATE;
621 621 next_state_fsm_load_FFT <= FIFO_3;
622 622 select_fifo <= "010";
623 623 END IF;
624 624
625 625 WHEN FIFO_3 =>
626 626 sample_ren_s <= "11" & NOT(sample_load) & "11";
627 627 IF sample_empty(2) = '1' THEN
628 628 sample_ren_s <= "11111";
629 629 state_fsm_load_FFT <= WAIT_STATE;
630 630 next_state_fsm_load_FFT <= FIFO_4;
631 631 select_fifo <= "011";
632 632 END IF;
633 633
634 634 WHEN FIFO_4 =>
635 635 sample_ren_s <= '1' & NOT(sample_load) & "111";
636 636 IF sample_empty(3) = '1' THEN
637 637 sample_ren_s <= "11111";
638 638 state_fsm_load_FFT <= WAIT_STATE;
639 639 next_state_fsm_load_FFT <= FIFO_5;
640 640 select_fifo <= "100";
641 641 END IF;
642 642
643 643 WHEN FIFO_5 =>
644 644 sample_ren_s <= NOT(sample_load) & "1111";
645 645 IF sample_empty(4) = '1' THEN
646 sample_ren_s <= (OTHERS => '1');
647 state_fsm_load_FFT <= IDLE;
646 sample_ren_s <= (OTHERS => '1');
647 state_fsm_load_FFT <= WAIT_STATE;
648 next_state_fsm_load_FFT <= IDLE;
649 --state_fsm_load_FFT <= IDLE;
648 650 select_fifo <= "000";
649 651 END IF;
650 652
651 653 WHEN WAIT_STATE =>
652 654 sample_ren_s <= (OTHERS => '1');
653 655 IF sample_load = '1' THEN
654 656 state_fsm_load_FFT <= WAIT_STATE_2 ;
655 657 END IF;
656 658
657 659 WHEN WAIT_STATE_2 =>
658 660 sample_ren_s <= (OTHERS => '1');
659 661 IF fft_data_valid = '0' AND fft_data_valid_pre = '1' THEN
660 662 state_fsm_load_FFT <= next_state_fsm_load_FFT;
661 663 END IF;
662 664
663 665 WHEN OTHERS => NULL;
664 666 END CASE;
665 667 END IF;
666 668 END PROCESS;
667 669
668 670 PROCESS (clk, rstn)
669 671 BEGIN -- PROCESS
670 672 IF rstn = '0' THEN -- asynchronous reset (active low)
671 673 fft_data_valid_pre <= '0';
672 674 ELSIF clk'event AND clk = '1' THEN -- rising clock edge
673 675 fft_data_valid_pre <= fft_data_valid;
674 676 END IF;
675 677 END PROCESS;
676 678
677 679 PROCESS (clk, rstn)
678 680 BEGIN
679 681 IF rstn = '0' THEN
680 682 sample_valid_r <= '0';
681 683 select_fifo_reg <= (OTHERS => '0');
682 684 --next_state_fsm_load_FFT <= IDLE;
683 685 ELSIF clk'EVENT AND clk = '1' THEN
684 686 select_fifo_reg <= select_fifo;
685 687 --next_state_fsm_load_FFT <= state_fsm_load_FFT;
686 688 IF sample_ren_s = "11111" THEN
687 689 sample_valid_r <= '0';
688 690 ELSE
689 691 sample_valid_r <= '1';
690 692 END IF;
691 693 END IF;
692 694 END PROCESS;
693 695
694 696 sample_valid <= '0' WHEN fft_ongoing_counter = '1' ELSE sample_valid_r AND sample_load;
695 697
696 698 --sample_data <= sample_rdata(16*1-1 DOWNTO 16*0) WHEN next_state_fsm_load_FFT = FIFO_1 ELSE
697 699 -- sample_rdata(16*2-1 DOWNTO 16*1) WHEN next_state_fsm_load_FFT = FIFO_2 ELSE
698 700 -- sample_rdata(16*3-1 DOWNTO 16*2) WHEN next_state_fsm_load_FFT = FIFO_3 ELSE
699 701 -- sample_rdata(16*4-1 DOWNTO 16*3) WHEN next_state_fsm_load_FFT = FIFO_4 ELSE
700 702 -- sample_rdata(16*5-1 DOWNTO 16*4); --WHEN next_state_fsm_load_FFT = FIFO_5 ELSE
701 703 sample_data <= sample_rdata(16*1-1 DOWNTO 16*0) WHEN select_fifo_reg = "000" ELSE
702 704 sample_rdata(16*2-1 DOWNTO 16*1) WHEN select_fifo_reg = "001" ELSE
703 705 sample_rdata(16*3-1 DOWNTO 16*2) WHEN select_fifo_reg = "010" ELSE
704 706 sample_rdata(16*4-1 DOWNTO 16*3) WHEN select_fifo_reg = "011" ELSE
705 707 sample_rdata(16*5-1 DOWNTO 16*4); --WHEN next_state_fsm_load_FFT = FIFO_5 ELSE
706 708
707 709 -----------------------------------------------------------------------------
708 710 -- FFT
709 711 -----------------------------------------------------------------------------
710 712 lpp_lfr_ms_FFT_1 : lpp_lfr_ms_FFT
711 713 PORT MAP (
712 714 clk => clk,
713 715 rstn => rstn,
714 716 sample_valid => sample_valid,
715 717 fft_read => fft_read,
716 718 sample_data => sample_data,
717 719 sample_load => sample_load,
718 720 fft_pong => fft_pong,
719 721 fft_data_im => fft_data_im,
720 722 fft_data_re => fft_data_re,
721 723 fft_data_valid => fft_data_valid,
722 724 fft_ready => fft_ready);
723 725
724 726 debug_vector(0) <= fft_data_valid;
725 727 debug_vector(1) <= fft_ready;
726 728 debug_vector(11 DOWNTO 2) <= (OTHERS => '0');
727 729
728 730
729 731 -----------------------------------------------------------------------------
730 732 fft_ready_rising_down <= fft_ready_reg AND NOT fft_ready;
731 733 sample_load_rising_down <= sample_load_reg AND NOT sample_load;
732 734
733 735 PROCESS (clk, rstn)
734 736 BEGIN
735 737 IF rstn = '0' THEN
736 738 fft_ready_reg <= '0';
737 739 sample_load_reg <= '0';
738 740
739 741 fft_ongoing_counter <= '0';
740 742 ELSIF clk'event AND clk = '1' THEN
741 743 fft_ready_reg <= fft_ready;
742 744 sample_load_reg <= sample_load;
743 745
744 746 IF fft_ready_rising_down = '1' AND sample_load_rising_down = '0' THEN
745 747 fft_ongoing_counter <= '0';
746 748
747 749 -- CASE fft_ongoing_counter IS
748 750 -- WHEN "01" => fft_ongoing_counter <= "00";
749 751 ---- WHEN "10" => fft_ongoing_counter <= "01";
750 752 -- WHEN OTHERS => NULL;
751 753 -- END CASE;
752 754 ELSIF fft_ready_rising_down = '0' AND sample_load_rising_down = '1' THEN
753 755 fft_ongoing_counter <= '1';
754 756 -- CASE fft_ongoing_counter IS
755 757 -- WHEN "00" => fft_ongoing_counter <= "01";
756 758 ---- WHEN "01" => fft_ongoing_counter <= "10";
757 759 -- WHEN OTHERS => NULL;
758 760 -- END CASE;
759 761 END IF;
760 762
761 763 END IF;
762 764 END PROCESS;
763 765
764 766 -----------------------------------------------------------------------------
765 767 PROCESS (clk, rstn)
766 768 BEGIN
767 769 IF rstn = '0' THEN
768 770 state_fsm_load_MS_memory <= IDLE;
769 771 current_fifo_load <= "00001";
770 772 ELSIF clk'EVENT AND clk = '1' THEN
771 773 CASE state_fsm_load_MS_memory IS
772 774 WHEN IDLE =>
773 775 IF current_fifo_empty = '1' AND fft_ready = '1' AND current_fifo_locked = '0' THEN
774 776 state_fsm_load_MS_memory <= LOAD_FIFO;
775 777 END IF;
776 778 WHEN LOAD_FIFO =>
777 779 IF current_fifo_full = '1' THEN
778 780 state_fsm_load_MS_memory <= TRASH_FFT;
779 781 END IF;
780 782 WHEN TRASH_FFT =>
781 783 IF fft_ready = '0' THEN
782 784 state_fsm_load_MS_memory <= IDLE;
783 785 current_fifo_load <= current_fifo_load(3 DOWNTO 0) & current_fifo_load(4);
784 786 END IF;
785 787 WHEN OTHERS => NULL;
786 788 END CASE;
787 789
788 790 END IF;
789 791 END PROCESS;
790 792
791 793 current_fifo_empty <= MEM_IN_SM_Empty(0) WHEN current_fifo_load(0) = '1' ELSE
792 794 MEM_IN_SM_Empty(1) WHEN current_fifo_load(1) = '1' ELSE
793 795 MEM_IN_SM_Empty(2) WHEN current_fifo_load(2) = '1' ELSE
794 796 MEM_IN_SM_Empty(3) WHEN current_fifo_load(3) = '1' ELSE
795 797 MEM_IN_SM_Empty(4); -- WHEN current_fifo_load(3) = '1' ELSE
796 798
797 799 current_fifo_full <= MEM_IN_SM_Full(0) WHEN current_fifo_load(0) = '1' ELSE
798 800 MEM_IN_SM_Full(1) WHEN current_fifo_load(1) = '1' ELSE
799 801 MEM_IN_SM_Full(2) WHEN current_fifo_load(2) = '1' ELSE
800 802 MEM_IN_SM_Full(3) WHEN current_fifo_load(3) = '1' ELSE
801 803 MEM_IN_SM_Full(4); -- WHEN current_fifo_load(3) = '1' ELSE
802 804
803 805 current_fifo_locked <= MEM_IN_SM_locked(0) WHEN current_fifo_load(0) = '1' ELSE
804 806 MEM_IN_SM_locked(1) WHEN current_fifo_load(1) = '1' ELSE
805 807 MEM_IN_SM_locked(2) WHEN current_fifo_load(2) = '1' ELSE
806 808 MEM_IN_SM_locked(3) WHEN current_fifo_load(3) = '1' ELSE
807 809 MEM_IN_SM_locked(4); -- WHEN current_fifo_load(3) = '1' ELSE
808 810
809 811 fft_read <= '0' WHEN state_fsm_load_MS_memory = IDLE ELSE '1';
810 812
811 813 all_fifo : FOR I IN 4 DOWNTO 0 GENERATE
812 814 MEM_IN_SM_wen_s(I) <= '0' WHEN fft_data_valid = '1'
813 815 AND state_fsm_load_MS_memory = LOAD_FIFO
814 816 AND current_fifo_load(I) = '1'
815 817 ELSE '1';
816 818 END GENERATE all_fifo;
817 819
818 820 PROCESS (clk, rstn)
819 821 BEGIN
820 822 IF rstn = '0' THEN
821 823 MEM_IN_SM_wen <= (OTHERS => '1');
822 824 ELSIF clk'EVENT AND clk = '1' THEN
823 825 MEM_IN_SM_wen <= MEM_IN_SM_wen_s;
824 826 END IF;
825 827 END PROCESS;
826 828
827 829 MEM_IN_SM_wData <= (fft_data_im & fft_data_re) &
828 830 (fft_data_im & fft_data_re) &
829 831 (fft_data_im & fft_data_re) &
830 832 (fft_data_im & fft_data_re) &
831 833 (fft_data_im & fft_data_re);
832 834 -----------------------------------------------------------------------------
833 835
834 836
835 837 -----------------------------------------------------------------------------
836 838 Mem_In_SpectralMatrix : lppFIFOxN
837 839 GENERIC MAP (
838 840 tech => 0,
839 841 Mem_use => Mem_use,
840 842 Data_sz => 32, --16,
841 843 Addr_sz => 7, --8
842 844 FifoCnt => 5)
843 845 PORT MAP (
844 846 clk => clk,
845 847 rstn => rstn,
846 848
847 849 ReUse => MEM_IN_SM_ReUse,
848 850 run => (OTHERS => '1'),
849 851
850 852 wen => MEM_IN_SM_wen,
851 853 wdata => MEM_IN_SM_wData,
852 854
853 855 ren => MEM_IN_SM_ren,
854 856 rdata => MEM_IN_SM_rData,
855 857 full => MEM_IN_SM_Full,
856 858 empty => MEM_IN_SM_Empty,
857 859 almost_full => OPEN);
858 860
859 861
860 862 -----------------------------------------------------------------------------
861 863 MS_control_1 : MS_control
862 864 PORT MAP (
863 865 clk => clk,
864 866 rstn => rstn,
865 867
866 868 current_status_ms => status_MS_input,
867 869
868 870 fifo_in_lock => MEM_IN_SM_locked,
869 871 fifo_in_data => MEM_IN_SM_rdata,
870 872 fifo_in_full => MEM_IN_SM_Full,
871 873 fifo_in_empty => MEM_IN_SM_Empty,
872 874 fifo_in_ren => MEM_IN_SM_ren,
873 875 fifo_in_reuse => MEM_IN_SM_ReUse,
874 876
875 877 fifo_out_data => SM_in_data,
876 878 fifo_out_ren => SM_in_ren,
877 879 fifo_out_empty => SM_in_empty,
878 880
879 881 current_status_component => status_component,
880 882
881 883 correlation_start => SM_correlation_start,
882 884 correlation_auto => SM_correlation_auto,
883 885 correlation_done => SM_correlation_done);
884 886
885 887
886 888 MS_calculation_1 : MS_calculation
887 889 PORT MAP (
888 890 clk => clk,
889 891 rstn => rstn,
890 892
891 893 fifo_in_data => SM_in_data,
892 894 fifo_in_ren => SM_in_ren,
893 895 fifo_in_empty => SM_in_empty,
894 896
895 897 fifo_out_data => MEM_OUT_SM_Data_in_s, -- TODO
896 898 fifo_out_wen => MEM_OUT_SM_Write_s, -- TODO
897 899 fifo_out_full => MEM_OUT_SM_Full_s, -- TODO
898 900
899 901 correlation_start => SM_correlation_start,
900 902 correlation_auto => SM_correlation_auto,
901 903 correlation_begin => SM_correlation_begin,
902 904 correlation_done => SM_correlation_done);
903 905
904 906 -----------------------------------------------------------------------------
905 907 PROCESS (clk, rstn)
906 908 BEGIN -- PROCESS
907 909 IF rstn = '0' THEN -- asynchronous reset (active low)
908 910 current_matrix_write <= '0';
909 911 current_matrix_wait_empty <= '1';
910 912 status_component_fifo_0 <= (OTHERS => '0');
911 913 status_component_fifo_1 <= (OTHERS => '0');
912 914 status_component_fifo_0_end <= '0';
913 915 status_component_fifo_1_end <= '0';
914 916 SM_correlation_done_reg1 <= '0';
915 917 SM_correlation_done_reg2 <= '0';
916 918 SM_correlation_done_reg3 <= '0';
917 919
918 920 ELSIF clk'EVENT AND clk = '1' THEN -- rising clock edge
919 921 SM_correlation_done_reg1 <= SM_correlation_done;
920 922 SM_correlation_done_reg2 <= SM_correlation_done_reg1;
921 923 SM_correlation_done_reg3 <= SM_correlation_done_reg2;
922 924 status_component_fifo_0_end <= '0';
923 925 status_component_fifo_1_end <= '0';
924 926 IF SM_correlation_begin = '1' THEN
925 927 IF current_matrix_write = '0' THEN
926 928 status_component_fifo_0 <= status_component(53 DOWNTO 4);
927 929 ELSE
928 930 status_component_fifo_1 <= status_component(53 DOWNTO 4);
929 931 END IF;
930 932 END IF;
931 933
932 934 IF SM_correlation_done_reg3 = '1' THEN
933 935 IF current_matrix_write = '0' THEN
934 936 status_component_fifo_0_end <= '1';
935 937 ELSE
936 938 status_component_fifo_1_end <= '1';
937 939 END IF;
938 940 current_matrix_wait_empty <= '1';
939 941 current_matrix_write <= NOT current_matrix_write;
940 942 END IF;
941 943
942 944 IF current_matrix_wait_empty <= '1' THEN
943 945 IF current_matrix_write = '0' THEN
944 946 current_matrix_wait_empty <= NOT MEM_OUT_SM_Empty(0);
945 947 ELSE
946 948 current_matrix_wait_empty <= NOT MEM_OUT_SM_Empty(1);
947 949 END IF;
948 950 END IF;
949 951
950 952 END IF;
951 953 END PROCESS;
952 954
953 955 MEM_OUT_SM_Full_s <= '1' WHEN SM_correlation_done = '1' ELSE
954 956 '1' WHEN SM_correlation_done_reg1 = '1' ELSE
955 957 '1' WHEN SM_correlation_done_reg2 = '1' ELSE
956 958 '1' WHEN SM_correlation_done_reg3 = '1' ELSE
957 959 '1' WHEN current_matrix_wait_empty = '1' ELSE
958 960 MEM_OUT_SM_Full(0) WHEN current_matrix_write = '0' ELSE
959 961 MEM_OUT_SM_Full(1);
960 962
961 963 MEM_OUT_SM_Write(0) <= MEM_OUT_SM_Write_s WHEN current_matrix_write = '0' ELSE '1';
962 964 MEM_OUT_SM_Write(1) <= MEM_OUT_SM_Write_s WHEN current_matrix_write = '1' ELSE '1';
963 965
964 966 MEM_OUT_SM_Data_in <= MEM_OUT_SM_Data_in_s & MEM_OUT_SM_Data_in_s;
965 967 -----------------------------------------------------------------------------
966 968
967 969 --Mem_Out_SpectralMatrix : lppFIFOxN
968 970 -- GENERIC MAP (
969 971 -- tech => 0,
970 972 -- Mem_use => Mem_use,
971 973 -- Data_sz => 32,
972 974 -- Addr_sz => 8,
973 975 -- FifoCnt => 2)
974 976 -- PORT MAP (
975 977 -- clk => clk,
976 978 -- rstn => rstn,
977 979
978 980 -- ReUse => (OTHERS => '0'),
979 981 -- run => (OTHERS => '1'),
980 982
981 983 -- wen => MEM_OUT_SM_Write,
982 984 -- wdata => MEM_OUT_SM_Data_in,
983 985
984 986 -- ren => MEM_OUT_SM_Read,
985 987 -- rdata => MEM_OUT_SM_Data_out,
986 988
987 989 -- full => MEM_OUT_SM_Full,
988 990 -- empty => MEM_OUT_SM_Empty,
989 991 -- almost_full => OPEN);
990 992
991 993
992 994 all_Mem_Out_SpectralMatrix: FOR I IN 1 DOWNTO 0 GENERATE
993 995 Mem_Out_SpectralMatrix_I: lpp_fifo
994 996 GENERIC MAP (
995 997 tech => 0,
996 998 Mem_use => Mem_use,
997 999 EMPTY_THRESHOLD_LIMIT => 15,
998 1000 FULL_THRESHOLD_LIMIT => 1,
999 1001 DataSz => 32,
1000 1002 AddrSz => 8)
1001 1003 PORT MAP (
1002 1004 clk => clk,
1003 1005 rstn => rstn,
1004 1006 reUse => '0',
1005 1007 run => run,
1006 1008
1007 1009 ren => MEM_OUT_SM_Read(I),
1008 1010 rdata => MEM_OUT_SM_Data_out(32*(I+1)-1 DOWNTO 32*i),
1009 1011
1010 1012 wen => MEM_OUT_SM_Write(I),
1011 1013 wdata => MEM_OUT_SM_Data_in(32*(I+1)-1 DOWNTO 32*i),
1012 1014
1013 1015 empty => MEM_OUT_SM_Empty(I),
1014 1016 full => MEM_OUT_SM_Full(I),
1015 1017 full_almost => OPEN,
1016 1018 empty_threshold => MEM_OUT_SM_Empty_Threshold(I),
1017 1019
1018 1020 full_threshold => OPEN);
1019 1021
1020 1022 END GENERATE all_Mem_Out_SpectralMatrix;
1021 1023
1022 1024 -----------------------------------------------------------------------------
1023 1025 -- MEM_OUT_SM_Read <= "00";
1024 1026 PROCESS (clk, rstn)
1025 1027 BEGIN
1026 1028 IF rstn = '0' THEN
1027 1029 fifo_0_ready <= '0';
1028 1030 fifo_1_ready <= '0';
1029 1031 fifo_ongoing <= '0';
1030 1032 fifo_ongoing_reg <= '0';
1031 1033 ELSIF clk'EVENT AND clk = '1' THEN
1032 1034 fifo_ongoing_reg <= fifo_ongoing;
1033 1035 IF fifo_0_ready = '1' AND MEM_OUT_SM_Empty(0) = '1' THEN
1034 1036 fifo_ongoing <= '1';
1035 1037 fifo_0_ready <= '0';
1036 1038 ELSIF status_component_fifo_0_end = '1' THEN
1037 1039 fifo_0_ready <= '1';
1038 1040 END IF;
1039 1041
1040 1042 IF fifo_1_ready = '1' AND MEM_OUT_SM_Empty(1) = '1' THEN
1041 1043 fifo_ongoing <= '0';
1042 1044 fifo_1_ready <= '0';
1043 1045 ELSIF status_component_fifo_1_end = '1' THEN
1044 1046 fifo_1_ready <= '1';
1045 1047 END IF;
1046 1048
1047 1049 END IF;
1048 1050 END PROCESS;
1049 1051
1050 1052 MEM_OUT_SM_Read(0) <= '1' WHEN fifo_ongoing = '1' ELSE
1051 1053 '1' WHEN fifo_0_ready = '0' ELSE
1052 1054 FSM_DMA_fifo_ren;
1053 1055
1054 1056 MEM_OUT_SM_Read(1) <= '1' WHEN fifo_ongoing = '0' ELSE
1055 1057 '1' WHEN fifo_1_ready = '0' ELSE
1056 1058 FSM_DMA_fifo_ren;
1057 1059
1058 1060 FSM_DMA_fifo_empty <= MEM_OUT_SM_Empty(0) WHEN fifo_ongoing = '0' AND fifo_0_ready = '1' ELSE
1059 1061 MEM_OUT_SM_Empty(1) WHEN fifo_ongoing = '1' AND fifo_1_ready = '1' ELSE
1060 1062 '1';
1061 1063
1062 1064 FSM_DMA_fifo_status <= status_component_fifo_0 WHEN fifo_ongoing = '0' ELSE
1063 1065 status_component_fifo_1;
1064 1066
1065 1067 FSM_DMA_fifo_data <= MEM_OUT_SM_Data_out(31 DOWNTO 0) WHEN fifo_ongoing_reg = '0' ELSE
1066 1068 MEM_OUT_SM_Data_out(63 DOWNTO 32);
1067 1069
1068 1070
1069 1071 FSM_DMA_fifo_empty_threshold <= MEM_OUT_SM_Empty_Threshold(0) WHEN fifo_ongoing = '0' AND fifo_0_ready = '1' ELSE
1070 1072 MEM_OUT_SM_Empty_Threshold(1) WHEN fifo_ongoing = '1' AND fifo_1_ready = '1' ELSE
1071 1073 '1';
1072 1074
1073 1075 -----------------------------------------------------------------------------
1074 1076 -- fifo_matrix_type => FSM_DMA_fifo_status(5 DOWNTO 4), --IN
1075 1077 -- fifo_matrix_component => FSM_DMA_fifo_status(3 DOWNTO 0), --IN
1076 1078 -- fifo_matrix_time => FSM_DMA_fifo_status(53 DOWNTO 6), --IN
1077 1079 -- fifo_data => FSM_DMA_fifo_data, --IN
1078 1080 -- fifo_empty => FSM_DMA_fifo_empty, --IN
1079 1081 -- fifo_empty_threshold => FSM_DMA_fifo_empty_threshold, --IN
1080 1082 -- fifo_ren => FSM_DMA_fifo_ren, --OUT
1081 1083
1082 1084
1083 1085 lpp_lfr_ms_fsmdma_1: lpp_lfr_ms_fsmdma
1084 1086 PORT MAP (
1085 1087 clk => clk,
1086 1088 rstn => rstn,
1087 1089 run => run,
1088 1090
1089 1091 fifo_matrix_type => FSM_DMA_fifo_status(5 DOWNTO 4),
1090 1092 fifo_matrix_time => FSM_DMA_fifo_status(53 DOWNTO 6),
1091 1093 fifo_data => FSM_DMA_fifo_data,
1092 1094 fifo_empty => FSM_DMA_fifo_empty,
1093 1095 fifo_empty_threshold => FSM_DMA_fifo_empty_threshold,
1094 1096 fifo_ren => FSM_DMA_fifo_ren,
1095 1097
1096 1098 dma_fifo_valid_burst => dma_fifo_burst_valid,
1097 1099 dma_fifo_data => dma_fifo_data,
1098 1100 dma_fifo_ren => dma_fifo_ren,
1099 1101 dma_buffer_new => dma_buffer_new,
1100 1102 dma_buffer_addr => dma_buffer_addr,
1101 1103 dma_buffer_length => dma_buffer_length,
1102 1104 dma_buffer_full => dma_buffer_full,
1103 1105 dma_buffer_full_err => dma_buffer_full_err,
1104 1106
1105 1107 status_ready_matrix_f0 => status_ready_matrix_f0,
1106 1108 status_ready_matrix_f1 => status_ready_matrix_f1,
1107 1109 status_ready_matrix_f2 => status_ready_matrix_f2,
1108 1110 addr_matrix_f0 => addr_matrix_f0,
1109 1111 addr_matrix_f1 => addr_matrix_f1,
1110 1112 addr_matrix_f2 => addr_matrix_f2,
1111 1113 length_matrix_f0 => length_matrix_f0,
1112 1114 length_matrix_f1 => length_matrix_f1,
1113 1115 length_matrix_f2 => length_matrix_f2,
1114 1116 ready_matrix_f0 => ready_matrix_f0,
1115 1117 ready_matrix_f1 => ready_matrix_f1,
1116 1118 ready_matrix_f2 => ready_matrix_f2,
1117 1119 matrix_time_f0 => matrix_time_f0,
1118 1120 matrix_time_f1 => matrix_time_f1,
1119 1121 matrix_time_f2 => matrix_time_f2,
1120 1122 error_buffer_full => error_buffer_full);
1121 1123
1122 1124
1123 1125
1124 1126
1125 1127
1126 1128 --dma_fifo_burst_valid: OUT STD_LOGIC; --TODO
1127 1129 --dma_fifo_data : OUT STD_LOGIC_VECTOR(31 DOWNTO 0); --TODO
1128 1130 --dma_fifo_ren : IN STD_LOGIC; --TODO
1129 1131 --dma_buffer_new : OUT STD_LOGIC; --TODO
1130 1132 --dma_buffer_addr : OUT STD_LOGIC_VECTOR(31 DOWNTO 0); --TODO
1131 1133 --dma_buffer_length : OUT STD_LOGIC_VECTOR(25 DOWNTO 0); --TODO
1132 1134 --dma_buffer_full : IN STD_LOGIC; --TODO
1133 1135 --dma_buffer_full_err : IN STD_LOGIC; --TODO
1134 1136
1135 1137 ---- Reg out
1136 1138 --ready_matrix_f0 : OUT STD_LOGIC; -- TODO
1137 1139 --ready_matrix_f1 : OUT STD_LOGIC; -- TODO
1138 1140 --ready_matrix_f2 : OUT STD_LOGIC; -- TODO
1139 1141 --error_bad_component_error : OUT STD_LOGIC; -- TODO
1140 1142 --error_buffer_full : OUT STD_LOGIC; -- TODO
1141 1143
1142 1144 ---- Reg In
1143 1145 --status_ready_matrix_f0 : IN STD_LOGIC; -- TODO
1144 1146 --status_ready_matrix_f1 : IN STD_LOGIC; -- TODO
1145 1147 --status_ready_matrix_f2 : IN STD_LOGIC; -- TODO
1146 1148
1147 1149 --addr_matrix_f0 : IN STD_LOGIC_VECTOR(31 DOWNTO 0); -- TODO
1148 1150 --addr_matrix_f1 : IN STD_LOGIC_VECTOR(31 DOWNTO 0); -- TODO
1149 1151 --addr_matrix_f2 : IN STD_LOGIC_VECTOR(31 DOWNTO 0); -- TODO
1150 1152
1151 1153 --matrix_time_f0 : OUT STD_LOGIC_VECTOR(47 DOWNTO 0); -- TODO
1152 1154 --matrix_time_f1 : OUT STD_LOGIC_VECTOR(47 DOWNTO 0); -- TODO
1153 1155 --matrix_time_f2 : OUT STD_LOGIC_VECTOR(47 DOWNTO 0) -- TODO
1154 1156 -----------------------------------------------------------------------------
1155 1157
1156 1158 -----------------------------------------------------------------------------
1157 1159 --lpp_lfr_ms_fsmdma_1 : lpp_lfr_ms_fsmdma
1158 1160 -- PORT MAP (
1159 1161 -- HCLK => clk,
1160 1162 -- HRESETn => rstn,
1161 1163
1162 1164 -- fifo_matrix_type => FSM_DMA_fifo_status(5 DOWNTO 4),
1163 1165 -- fifo_matrix_component => FSM_DMA_fifo_status(3 DOWNTO 0),
1164 1166 -- fifo_matrix_time => FSM_DMA_fifo_status(53 DOWNTO 6),
1165 1167 -- fifo_data => FSM_DMA_fifo_data,
1166 1168 -- fifo_empty => FSM_DMA_fifo_empty,
1167 1169 -- fifo_ren => FSM_DMA_fifo_ren,
1168 1170
1169 1171 -- dma_addr => dma_addr,
1170 1172 -- dma_data => dma_data,
1171 1173 -- dma_valid => dma_valid,
1172 1174 -- dma_valid_burst => dma_valid_burst,
1173 1175 -- dma_ren => dma_ren,
1174 1176 -- dma_done => dma_done,
1175 1177
1176 1178 -- ready_matrix_f0 => ready_matrix_f0,
1177 1179 -- ready_matrix_f1 => ready_matrix_f1,
1178 1180 -- ready_matrix_f2 => ready_matrix_f2,
1179 1181
1180 1182 -- error_bad_component_error => error_bad_component_error,
1181 1183 -- error_buffer_full => error_buffer_full,
1182 1184
1183 1185 -- debug_reg => debug_reg,
1184 1186 -- status_ready_matrix_f0 => status_ready_matrix_f0,
1185 1187 -- status_ready_matrix_f1 => status_ready_matrix_f1,
1186 1188 -- status_ready_matrix_f2 => status_ready_matrix_f2,
1187 1189
1188 1190 -- config_active_interruption_onNewMatrix => config_active_interruption_onNewMatrix,
1189 1191 -- config_active_interruption_onError => config_active_interruption_onError,
1190 1192
1191 1193 -- addr_matrix_f0 => addr_matrix_f0,
1192 1194 -- addr_matrix_f1 => addr_matrix_f1,
1193 1195 -- addr_matrix_f2 => addr_matrix_f2,
1194 1196
1195 1197 -- matrix_time_f0 => matrix_time_f0,
1196 1198 -- matrix_time_f1 => matrix_time_f1,
1197 1199 -- matrix_time_f2 => matrix_time_f2
1198 1200 -- );
1199 1201 -----------------------------------------------------------------------------
1200 1202
1201 1203
1202 1204
1203 1205
1204 1206
1205 1207
1206 1208 -----------------------------------------------------------------------------
1207 1209 -- TIME MANAGMENT
1208 1210 -----------------------------------------------------------------------------
1209 1211 all_time <= sample_f2_time & sample_f1_time & sample_f0_time & sample_f0_time;
1210 1212 --all_time <= coarse_time & fine_time;
1211 1213 --
1212 1214 f_empty(0) <= '1' WHEN sample_f0_A_empty = "11111" ELSE '0';
1213 1215 f_empty(1) <= '1' WHEN sample_f0_B_empty = "11111" ELSE '0';
1214 1216 f_empty(2) <= '1' WHEN sample_f1_empty = "11111" ELSE '0';
1215 1217 f_empty(3) <= '1' WHEN sample_f2_empty = "11111" ELSE '0';
1216 1218
1217 1219 all_time_reg: FOR I IN 0 TO 3 GENERATE
1218 1220
1219 1221 PROCESS (clk, rstn)
1220 1222 BEGIN
1221 1223 IF rstn = '0' THEN
1222 1224 f_empty_reg(I) <= '1';
1223 1225 ELSIF clk'event AND clk = '1' THEN
1224 1226 f_empty_reg(I) <= f_empty(I);
1225 1227 END IF;
1226 1228 END PROCESS;
1227 1229
1228 1230 time_update_f(I) <= '1' WHEN f_empty(I) = '0' AND f_empty_reg(I) = '1' ELSE '0';
1229 1231
1230 1232 s_m_t_m_f0_A : spectral_matrix_time_managment
1231 1233 PORT MAP (
1232 1234 clk => clk,
1233 1235 rstn => rstn,
1234 1236 time_in => all_time((I+1)*48-1 DOWNTO I*48),
1235 1237 update_1 => time_update_f(I),
1236 1238 time_out => time_reg_f((I+1)*48-1 DOWNTO I*48)
1237 1239 );
1238 1240
1239 1241 END GENERATE all_time_reg;
1240 1242
1241 1243 time_reg_f0_A <= time_reg_f((0+1)*48-1 DOWNTO 0*48);
1242 1244 time_reg_f0_B <= time_reg_f((1+1)*48-1 DOWNTO 1*48);
1243 1245 time_reg_f1 <= time_reg_f((2+1)*48-1 DOWNTO 2*48);
1244 1246 time_reg_f2 <= time_reg_f((3+1)*48-1 DOWNTO 3*48);
1245 1247
1246 1248 -----------------------------------------------------------------------------
1247 1249
1248 1250 END Behavioral;
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