Coverage Report

Created: 2026-08-31 07:12

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/libxaac/encoder/iusace_fft.c
Line
Count
Source
1
/******************************************************************************
2
 *                                                                            *
3
 * Copyright (C) 2023 The Android Open Source Project
4
 *
5
 * Licensed under the Apache License, Version 2.0 (the "License");
6
 * you may not use this file except in compliance with the License.
7
 * You may obtain a copy of the License at:
8
 *
9
 * http://www.apache.org/licenses/LICENSE-2.0
10
 *
11
 * Unless required by applicable law or agreed to in writing, software
12
 * distributed under the License is distributed on an "AS IS" BASIS,
13
 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
14
 * See the License for the specific language governing permissions and
15
 * limitations under the License.
16
 *
17
 *****************************************************************************
18
 * Originally developed and contributed by Ittiam Systems Pvt. Ltd, Bangalore
19
 */
20
21
#include <string.h>
22
#include "ixheaac_type_def.h"
23
#include "ixheaace_adjust_threshold_data.h"
24
#include "iusace_cnst.h"
25
#include "iusace_block_switch_const.h"
26
#include "iusace_rom.h"
27
#include "iusace_bitbuffer.h"
28
29
/* DRC */
30
#include "impd_drc_common_enc.h"
31
#include "impd_drc_uni_drc.h"
32
#include "impd_drc_tables.h"
33
#include "impd_drc_api.h"
34
#include "impd_drc_uni_drc_eq.h"
35
#include "impd_drc_uni_drc_filter_bank.h"
36
#include "impd_drc_gain_enc.h"
37
#include "impd_drc_struct_def.h"
38
39
#include "iusace_tns_usac.h"
40
#include "iusace_psy_mod.h"
41
#include "iusace_config.h"
42
#include "iusace_fft.h"
43
#include "iusace_basic_ops_flt.h"
44
#include "ixheaac_constants.h"
45
#include "ixheaace_aac_constants.h"
46
#include "ixheaac_basic_ops32.h"
47
#include "ixheaace_common_utils.h"
48
#include "ixheaac_error_standards.h"
49
#include "ixheaace_error_codes.h"
50
51
#define DIG_REV(i, m, j)                                    \
52
497M
  do {                                                      \
53
497M
    unsigned _ = (i);                                       \
54
497M
    _ = ((_ & 0x33333333) << 2) | ((_ & ~0x33333333) >> 2); \
55
497M
    _ = ((_ & 0x0F0F0F0F) << 4) | ((_ & ~0x0F0F0F0F) >> 4); \
56
497M
    _ = ((_ & 0x00FF00FF) << 8) | ((_ & ~0x00FF00FF) >> 8); \
57
497M
    (j) = _ >> (m);                                         \
58
497M
  } while (0)
59
60
44.7M
static PLATFORM_INLINE WORD8 iusace_calc_norm(WORD32 a) {
61
44.7M
  WORD8 norm_val;
62
63
44.7M
  if (a == 0) {
64
0
    norm_val = 31;
65
44.7M
  } else {
66
44.7M
    if (a == (WORD32)0xffffffffL) {
67
0
      norm_val = 31;
68
44.7M
    } else {
69
44.7M
      if (a < 0) {
70
0
        a = ~a;
71
0
      }
72
1.16G
      for (norm_val = 0; a < (WORD32)0x40000000L; norm_val++) {
73
1.12G
        a <<= 1;
74
1.12G
      }
75
44.7M
    }
76
44.7M
  }
77
78
44.7M
  return norm_val;
79
44.7M
}
80
81
101M
static PLATFORM_INLINE VOID iusace_complex_3point_fft(FLOAT32 *ptr_in, FLOAT32 *ptr_out) {
82
101M
  FLOAT32 add_r, sub_r;
83
101M
  FLOAT32 add_i, sub_i;
84
101M
  FLOAT32 x01r, x01i, temp;
85
101M
  FLOAT32 p1, p2, p3, p4;
86
101M
  FLOAT64 sinmu;
87
88
101M
  sinmu = 0.866025403784439;
89
90
101M
  x01r = ptr_in[0] + ptr_in[2];
91
101M
  x01i = ptr_in[1] + ptr_in[3];
92
93
101M
  add_r = ptr_in[2] + ptr_in[4];
94
101M
  add_i = ptr_in[3] + ptr_in[5];
95
96
101M
  sub_r = ptr_in[2] - ptr_in[4];
97
101M
  sub_i = ptr_in[3] - ptr_in[5];
98
99
101M
  p1 = add_r / (FLOAT32)2.0;
100
101M
  p4 = add_i / (FLOAT32)2.0;
101
101M
  p2 = (FLOAT32)((FLOAT64)sub_i * sinmu);
102
101M
  p3 = (FLOAT32)((FLOAT64)sub_r * sinmu);
103
104
101M
  temp = ptr_in[0] - p1;
105
106
101M
  ptr_out[0] = x01r + ptr_in[4];
107
101M
  ptr_out[1] = x01i + ptr_in[5];
108
101M
  ptr_out[2] = temp + p2;
109
101M
  ptr_out[3] = (ptr_in[1] - p3) - p4;
110
101M
  ptr_out[4] = temp - p2;
111
101M
  ptr_out[5] = (ptr_in[1] + p3) - p4;
112
113
101M
  return;
114
101M
}
115
116
22.3M
VOID iusace_complex_fft_p2(FLOAT32 *ptr_x, WORD32 nlength, FLOAT32 *scratch_fft_p2_y) {
117
22.3M
  WORD32 i, j, k, n_stages, h2;
118
22.3M
  FLOAT32 x0r, x0i, x1r, x1i, x2r, x2i, x3r, x3i;
119
22.3M
  FLOAT32 tmp;
120
22.3M
  WORD32 del, nodespacing, in_loop_cnt;
121
22.3M
  WORD32 not_power_4;
122
22.3M
  WORD32 dig_rev_shift;
123
22.3M
  FLOAT32 *y = scratch_fft_p2_y;
124
22.3M
  WORD32 mpass = nlength;
125
22.3M
  WORD32 npoints = nlength;
126
22.3M
  FLOAT32 *ptr_y = y;
127
22.3M
  const FLOAT64 *ptr_w;
128
129
22.3M
  dig_rev_shift = iusace_calc_norm(mpass) + 1 - 16;
130
22.3M
  n_stages = 30 - iusace_calc_norm(mpass);
131
22.3M
  not_power_4 = n_stages & 1;
132
133
22.3M
  n_stages = n_stages >> 1;
134
135
22.3M
  ptr_w = iusace_twiddle_table_fft_32x32;
136
137
22.3M
  if (dig_rev_shift < 0) {
138
0
    dig_rev_shift = 0;
139
0
  }
140
141
470M
  for (i = 0; i < npoints; i += 4) {
142
448M
    FLOAT32 *inp = ptr_x;
143
448M
    FLOAT32 tmk;
144
145
448M
    DIG_REV(i, dig_rev_shift, h2);
146
448M
    if (not_power_4) {
147
207M
      h2 += 1;
148
207M
      h2 &= ~1;
149
207M
    }
150
448M
    inp += (h2);
151
152
448M
    x0r = *inp;
153
448M
    x0i = *(inp + 1);
154
448M
    inp += (npoints >> 1);
155
156
448M
    x1r = *inp;
157
448M
    x1i = *(inp + 1);
158
448M
    inp += (npoints >> 1);
159
160
448M
    x2r = *inp;
161
448M
    x2i = *(inp + 1);
162
448M
    inp += (npoints >> 1);
163
164
448M
    x3r = *inp;
165
448M
    x3i = *(inp + 1);
166
167
448M
    x0r = x0r + x2r;
168
448M
    x0i = x0i + x2i;
169
170
448M
    tmk = x0r - x2r;
171
448M
    x2r = tmk - x2r;
172
448M
    tmk = x0i - x2i;
173
448M
    x2i = tmk - x2i;
174
175
448M
    x1r = x1r + x3r;
176
448M
    x1i = x1i + x3i;
177
178
448M
    tmk = x1r - x3r;
179
448M
    x3r = tmk - x3r;
180
448M
    tmk = x1i - x3i;
181
448M
    x3i = tmk - x3i;
182
183
448M
    x0r = x0r + x1r;
184
448M
    x0i = x0i + x1i;
185
186
448M
    tmk = x0r - x1r;
187
448M
    x1r = tmk - x1r;
188
448M
    tmk = x0i - x1i;
189
448M
    x1i = tmk - x1i;
190
191
448M
    x2r = x2r + x3i;
192
448M
    x2i = x2i - x3r;
193
194
448M
    tmk = x2r - x3i;
195
448M
    x3i = tmk - x3i;
196
448M
    tmk = x2i + x3r;
197
448M
    x3r = tmk + x3r;
198
199
448M
    *ptr_y++ = x0r;
200
448M
    *ptr_y++ = x0i;
201
448M
    *ptr_y++ = x2r;
202
448M
    *ptr_y++ = x2i;
203
448M
    *ptr_y++ = x1r;
204
448M
    *ptr_y++ = x1i;
205
448M
    *ptr_y++ = x3i;
206
448M
    *ptr_y++ = x3r;
207
448M
  }
208
22.3M
  ptr_y -= 2 * npoints;
209
22.3M
  del = 4;
210
22.3M
  nodespacing = 64;
211
22.3M
  in_loop_cnt = npoints >> 4;
212
49.8M
  for (i = n_stages - 1; i > 0; i--) {
213
27.4M
    const FLOAT64 *twiddles = ptr_w;
214
27.4M
    FLOAT32 *data = ptr_y;
215
27.4M
    FLOAT64 w_1, w_2, w_3, w_4, w_5, w_6;
216
27.4M
    WORD32 sec_loop_cnt;
217
218
165M
    for (k = in_loop_cnt; k != 0; k--) {
219
138M
      x0r = (*data);
220
138M
      x0i = (*(data + 1));
221
138M
      data += ((SIZE_T)del << 1);
222
223
138M
      x1r = (*data);
224
138M
      x1i = (*(data + 1));
225
138M
      data += ((SIZE_T)del << 1);
226
227
138M
      x2r = (*data);
228
138M
      x2i = (*(data + 1));
229
138M
      data += ((SIZE_T)del << 1);
230
231
138M
      x3r = (*data);
232
138M
      x3i = (*(data + 1));
233
138M
      data -= 3 * (del << 1);
234
235
138M
      x0r = x0r + x2r;
236
138M
      x0i = x0i + x2i;
237
138M
      x2r = x0r - (x2r * 2);
238
138M
      x2i = x0i - (x2i * 2);
239
138M
      x1r = x1r + x3r;
240
138M
      x1i = x1i + x3i;
241
138M
      x3r = x1r - (x3r * 2);
242
138M
      x3i = x1i - (x3i * 2);
243
244
138M
      x0r = x0r + x1r;
245
138M
      x0i = x0i + x1i;
246
138M
      x1r = x0r - (x1r * 2);
247
138M
      x1i = x0i - (x1i * 2);
248
138M
      x2r = x2r + x3i;
249
138M
      x2i = x2i - x3r;
250
138M
      x3i = x2r - (x3i * 2);
251
138M
      x3r = x2i + (x3r * 2);
252
253
138M
      *data = x0r;
254
138M
      *(data + 1) = x0i;
255
138M
      data += ((SIZE_T)del << 1);
256
257
138M
      *data = x2r;
258
138M
      *(data + 1) = x2i;
259
138M
      data += ((SIZE_T)del << 1);
260
261
138M
      *data = x1r;
262
138M
      *(data + 1) = x1i;
263
138M
      data += ((SIZE_T)del << 1);
264
265
138M
      *data = x3i;
266
138M
      *(data + 1) = x3r;
267
138M
      data += ((SIZE_T)del << 1);
268
138M
    }
269
27.4M
    data = ptr_y + 2;
270
271
27.4M
    sec_loop_cnt = (nodespacing * del);
272
27.4M
    sec_loop_cnt = (sec_loop_cnt / 4) + (sec_loop_cnt / 8) - (sec_loop_cnt / 16) +
273
27.4M
                   (sec_loop_cnt / 32) - (sec_loop_cnt / 64) + (sec_loop_cnt / 128) -
274
27.4M
                   (sec_loop_cnt / 256);
275
276
161M
    for (j = nodespacing; j <= sec_loop_cnt; j += nodespacing) {
277
133M
      w_1 = *(twiddles + j);
278
133M
      w_4 = *(twiddles + j + 257);
279
133M
      w_2 = *(twiddles + ((SIZE_T)j << 1));
280
133M
      w_5 = *(twiddles + ((SIZE_T)j << 1) + 257);
281
133M
      w_3 = *(twiddles + j + ((SIZE_T)j << 1));
282
133M
      w_6 = *(twiddles + j + ((SIZE_T)j << 1) + 257);
283
284
485M
      for (k = in_loop_cnt; k != 0; k--) {
285
351M
        data += ((SIZE_T)del << 1);
286
287
351M
        x1r = *data;
288
351M
        x1i = *(data + 1);
289
351M
        data += ((SIZE_T)del << 1);
290
291
351M
        x2r = *data;
292
351M
        x2i = *(data + 1);
293
351M
        data += ((SIZE_T)del << 1);
294
295
351M
        x3r = *data;
296
351M
        x3i = *(data + 1);
297
351M
        data -= 3 * (del << 1);
298
299
351M
        tmp = (FLOAT32)(ixheaace_dmult((FLOAT64)x1r, w_1) - ixheaace_dmult((FLOAT64)x1i, w_4));
300
351M
        x1i = (FLOAT32)ixheaace_dmac(ixheaace_dmult((FLOAT64)x1r, w_4), (FLOAT64)x1i, w_1);
301
351M
        x1r = tmp;
302
303
351M
        tmp = (FLOAT32)(ixheaace_dmult((FLOAT64)x2r, w_2) - ixheaace_dmult((FLOAT64)x2i, w_5));
304
351M
        x2i = (FLOAT32)ixheaace_dmac(ixheaace_dmult((FLOAT64)x2r, w_5), (FLOAT64)x2i, w_2);
305
351M
        x2r = tmp;
306
307
351M
        tmp = (FLOAT32)(ixheaace_dmult((FLOAT64)x3r, w_3) - ixheaace_dmult((FLOAT64)x3i, w_6));
308
351M
        x3i = (FLOAT32)ixheaace_dmac(ixheaace_dmult((FLOAT64)x3r, w_6), (FLOAT64)x3i, w_3);
309
351M
        x3r = tmp;
310
311
351M
        x0r = (*data);
312
351M
        x0i = (*(data + 1));
313
314
351M
        x0r = x0r + (x2r);
315
351M
        x0i = x0i + (x2i);
316
351M
        x2r = x0r - (x2r * 2);
317
351M
        x2i = x0i - (x2i * 2);
318
351M
        x1r = x1r + x3r;
319
351M
        x1i = x1i + x3i;
320
351M
        x3r = x1r - (x3r * 2);
321
351M
        x3i = x1i - (x3i * 2);
322
323
351M
        x0r = x0r + (x1r);
324
351M
        x0i = x0i + (x1i);
325
351M
        x1r = x0r - (x1r * 2);
326
351M
        x1i = x0i - (x1i * 2);
327
351M
        x2r = x2r + (x3i);
328
351M
        x2i = x2i - (x3r);
329
351M
        x3i = x2r - (x3i * 2);
330
351M
        x3r = x2i + (x3r * 2);
331
332
351M
        *data = x0r;
333
351M
        *(data + 1) = x0i;
334
351M
        data += ((SIZE_T)del << 1);
335
336
351M
        *data = x2r;
337
351M
        *(data + 1) = x2i;
338
351M
        data += ((SIZE_T)del << 1);
339
340
351M
        *data = x1r;
341
351M
        *(data + 1) = x1i;
342
351M
        data += ((SIZE_T)del << 1);
343
344
351M
        *data = x3i;
345
351M
        *(data + 1) = x3r;
346
351M
        data += ((SIZE_T)del << 1);
347
351M
      }
348
133M
      data -= 2 * npoints;
349
133M
      data += 2;
350
133M
    }
351
108M
    for (; j <= (nodespacing * del) >> 1; j += nodespacing) {
352
80.6M
      w_1 = *(twiddles + j);
353
80.6M
      w_4 = *(twiddles + j + 257);
354
80.6M
      w_2 = *(twiddles + ((SIZE_T)j << 1));
355
80.6M
      w_5 = *(twiddles + ((SIZE_T)j << 1) + 257);
356
80.6M
      w_3 = *(twiddles + j + ((SIZE_T)j << 1) - 256);
357
80.6M
      w_6 = *(twiddles + j + ((SIZE_T)j << 1) + 1);
358
359
325M
      for (k = in_loop_cnt; k != 0; k--) {
360
244M
        data += ((SIZE_T)del << 1);
361
362
244M
        x1r = *data;
363
244M
        x1i = *(data + 1);
364
244M
        data += ((SIZE_T)del << 1);
365
366
244M
        x2r = *data;
367
244M
        x2i = *(data + 1);
368
244M
        data += ((SIZE_T)del << 1);
369
370
244M
        x3r = *data;
371
244M
        x3i = *(data + 1);
372
244M
        data -= 3 * (del << 1);
373
374
244M
        tmp = (FLOAT32)(ixheaace_dmult((FLOAT64)x1r, w_1) - ixheaace_dmult((FLOAT64)x1i, w_4));
375
244M
        x1i = (FLOAT32)ixheaace_dmac(ixheaace_dmult((FLOAT64)x1r, w_4), (FLOAT64)x1i, w_1);
376
244M
        x1r = tmp;
377
378
244M
        tmp = (FLOAT32)(ixheaace_dmult((FLOAT64)x2r, w_2) - ixheaace_dmult((FLOAT64)x2i, w_5));
379
244M
        x2i = (FLOAT32)ixheaace_dmac(ixheaace_dmult((FLOAT64)x2r, w_5), (FLOAT64)x2i, w_2);
380
244M
        x2r = tmp;
381
382
244M
        tmp = (FLOAT32)(ixheaace_dmult((FLOAT64)x3r, w_6) + ixheaace_dmult((FLOAT64)x3i, w_3));
383
244M
        x3i = (FLOAT32)(-ixheaace_dmult((FLOAT64)x3r, w_3) + ixheaace_dmult((FLOAT64)x3i, w_6));
384
244M
        x3r = tmp;
385
386
244M
        x0r = (*data);
387
244M
        x0i = (*(data + 1));
388
389
244M
        x0r = x0r + (x2r);
390
244M
        x0i = x0i + (x2i);
391
244M
        x2r = x0r - (x2r * 2);
392
244M
        x2i = x0i - (x2i * 2);
393
244M
        x1r = x1r + x3r;
394
244M
        x1i = x1i + x3i;
395
244M
        x3r = x1r - (x3r * 2);
396
244M
        x3i = x1i - (x3i * 2);
397
398
244M
        x0r = x0r + (x1r);
399
244M
        x0i = x0i + (x1i);
400
244M
        x1r = x0r - (x1r * 2);
401
244M
        x1i = x0i - (x1i * 2);
402
244M
        x2r = x2r + (x3i);
403
244M
        x2i = x2i - (x3r);
404
244M
        x3i = x2r - (x3i * 2);
405
244M
        x3r = x2i + (x3r * 2);
406
407
244M
        *data = x0r;
408
244M
        *(data + 1) = x0i;
409
244M
        data += ((SIZE_T)del << 1);
410
411
244M
        *data = x2r;
412
244M
        *(data + 1) = x2i;
413
244M
        data += ((SIZE_T)del << 1);
414
415
244M
        *data = x1r;
416
244M
        *(data + 1) = x1i;
417
244M
        data += ((SIZE_T)del << 1);
418
419
244M
        *data = x3i;
420
244M
        *(data + 1) = x3r;
421
244M
        data += ((SIZE_T)del << 1);
422
244M
      }
423
80.6M
      data -= 2 * npoints;
424
80.6M
      data += 2;
425
80.6M
    }
426
80.6M
    for (; j <= sec_loop_cnt * 2; j += nodespacing) {
427
53.2M
      w_1 = *(twiddles + j);
428
53.2M
      w_4 = *(twiddles + j + 257);
429
53.2M
      w_2 = *(twiddles + ((SIZE_T)j << 1) - 256);
430
53.2M
      w_5 = *(twiddles + ((SIZE_T)j << 1) + 1);
431
53.2M
      w_3 = *(twiddles + j + ((SIZE_T)j << 1) - 256);
432
53.2M
      w_6 = *(twiddles + j + ((SIZE_T)j << 1) + 1);
433
434
159M
      for (k = in_loop_cnt; k != 0; k--) {
435
106M
        data += ((SIZE_T)del << 1);
436
437
106M
        x1r = *data;
438
106M
        x1i = *(data + 1);
439
106M
        data += ((SIZE_T)del << 1);
440
441
106M
        x2r = *data;
442
106M
        x2i = *(data + 1);
443
106M
        data += ((SIZE_T)del << 1);
444
445
106M
        x3r = *data;
446
106M
        x3i = *(data + 1);
447
106M
        data -= 3 * (del << 1);
448
449
106M
        tmp = (FLOAT32)(ixheaace_dmult((FLOAT64)x1r, w_1) - ixheaace_dmult((FLOAT64)x1i, w_4));
450
106M
        x1i = (FLOAT32)ixheaace_dmac(ixheaace_dmult(x1r, w_4), x1i, w_1);
451
106M
        x1r = tmp;
452
453
106M
        tmp = (FLOAT32)(ixheaace_dmult((FLOAT64)x2r, w_5) + ixheaace_dmult((FLOAT64)x2i, w_2));
454
106M
        x2i = (FLOAT32)(-ixheaace_dmult(x2r, w_2) + ixheaace_dmult(x2i, w_5));
455
106M
        x2r = tmp;
456
457
106M
        tmp = (FLOAT32)(ixheaace_dmult((FLOAT64)x3r, w_6) + ixheaace_dmult((FLOAT64)x3i, w_3));
458
106M
        x3i = (FLOAT32)(-ixheaace_dmult((FLOAT64)x3r, w_3) + ixheaace_dmult((FLOAT64)x3i, w_6));
459
106M
        x3r = tmp;
460
461
106M
        x0r = (*data);
462
106M
        x0i = (*(data + 1));
463
464
106M
        x0r = x0r + (x2r);
465
106M
        x0i = x0i + (x2i);
466
106M
        x2r = x0r - (x2r * 2);
467
106M
        x2i = x0i - (x2i * 2);
468
106M
        x1r = x1r + x3r;
469
106M
        x1i = x1i + x3i;
470
106M
        x3r = x1r - (x3r * 2);
471
106M
        x3i = x1i - (x3i * 2);
472
473
106M
        x0r = x0r + (x1r);
474
106M
        x0i = x0i + (x1i);
475
106M
        x1r = x0r - (x1r * 2);
476
106M
        x1i = x0i - (x1i * 2);
477
106M
        x2r = x2r + (x3i);
478
106M
        x2i = x2i - (x3r);
479
106M
        x3i = x2r - (x3i * 2);
480
106M
        x3r = x2i + (x3r * 2);
481
482
106M
        *data = x0r;
483
106M
        *(data + 1) = x0i;
484
106M
        data += ((SIZE_T)del << 1);
485
486
106M
        *data = x2r;
487
106M
        *(data + 1) = x2i;
488
106M
        data += ((SIZE_T)del << 1);
489
490
106M
        *data = x1r;
491
106M
        *(data + 1) = x1i;
492
106M
        data += ((SIZE_T)del << 1);
493
494
106M
        *data = x3i;
495
106M
        *(data + 1) = x3r;
496
106M
        data += ((SIZE_T)del << 1);
497
106M
      }
498
53.2M
      data -= 2 * npoints;
499
53.2M
      data += 2;
500
53.2M
    }
501
161M
    for (; j < nodespacing * del; j += nodespacing) {
502
133M
      w_1 = *(twiddles + j);
503
133M
      w_4 = *(twiddles + j + 257);
504
133M
      w_2 = *(twiddles + ((SIZE_T)j << 1) - 256);
505
133M
      w_5 = *(twiddles + ((SIZE_T)j << 1) + 1);
506
133M
      w_3 = *(twiddles + j + ((SIZE_T)j << 1) - 512);
507
133M
      w_6 = *(twiddles + j + ((SIZE_T)j << 1) - 512 + 257);
508
509
485M
      for (k = in_loop_cnt; k != 0; k--) {
510
351M
        data += ((SIZE_T)del << 1);
511
512
351M
        x1r = *data;
513
351M
        x1i = *(data + 1);
514
351M
        data += ((SIZE_T)del << 1);
515
516
351M
        x2r = *data;
517
351M
        x2i = *(data + 1);
518
351M
        data += ((SIZE_T)del << 1);
519
520
351M
        x3r = *data;
521
351M
        x3i = *(data + 1);
522
351M
        data -= 3 * ((SIZE_T)del << 1);
523
524
351M
        tmp = (FLOAT32)(ixheaace_dmult((FLOAT64)x1r, w_1) - ixheaace_dmult((FLOAT64)x1i, w_4));
525
351M
        x1i = (FLOAT32)ixheaace_dmac(ixheaace_dmult((FLOAT64)x1r, w_4), (FLOAT64)x1i, w_1);
526
351M
        x1r = tmp;
527
528
351M
        tmp = (FLOAT32)(ixheaace_dmult((FLOAT64)x2r, w_5) + ixheaace_dmult((FLOAT64)x2i, w_2));
529
351M
        x2i = (FLOAT32)(-ixheaace_dmult((FLOAT64)x2r, w_2) + ixheaace_dmult((FLOAT64)x2i, w_5));
530
351M
        x2r = tmp;
531
532
351M
        tmp = (FLOAT32)(-ixheaace_dmult((FLOAT64)x3r, w_3) + ixheaace_dmult((FLOAT64)x3i, w_6));
533
351M
        x3i = (FLOAT32)ixheaace_dmac(ixheaace_dmult((FLOAT64)x3r, w_6), (FLOAT64)x3i, w_3);
534
351M
        x3r = tmp;
535
536
351M
        x0r = (*data);
537
351M
        x0i = (*(data + 1));
538
539
351M
        x0r = x0r + (x2r);
540
351M
        x0i = x0i + (x2i);
541
351M
        x2r = x0r - (x2r * 2);
542
351M
        x2i = x0i - (x2i * 2);
543
351M
        x1r = x1r + x3r;
544
351M
        x1i = x1i - x3i;
545
351M
        x3r = x1r - (x3r * 2);
546
351M
        x3i = x1i + (x3i * 2);
547
548
351M
        x0r = x0r + (x1r);
549
351M
        x0i = x0i + (x1i);
550
351M
        x1r = x0r - (x1r * 2);
551
351M
        x1i = x0i - (x1i * 2);
552
351M
        x2r = x2r + (x3i);
553
351M
        x2i = x2i - (x3r);
554
351M
        x3i = x2r - (x3i * 2);
555
351M
        x3r = x2i + (x3r * 2);
556
557
351M
        *data = x0r;
558
351M
        *(data + 1) = x0i;
559
351M
        data += ((SIZE_T)del << 1);
560
561
351M
        *data = x2r;
562
351M
        *(data + 1) = x2i;
563
351M
        data += ((SIZE_T)del << 1);
564
565
351M
        *data = x1r;
566
351M
        *(data + 1) = x1i;
567
351M
        data += ((SIZE_T)del << 1);
568
569
351M
        *data = x3i;
570
351M
        *(data + 1) = x3r;
571
351M
        data += ((SIZE_T)del << 1);
572
351M
      }
573
133M
      data -= 2 * npoints;
574
133M
      data += 2;
575
133M
    }
576
27.4M
    nodespacing >>= 2;
577
27.4M
    del <<= 2;
578
27.4M
    in_loop_cnt >>= 2;
579
27.4M
  }
580
22.3M
  if (not_power_4) {
581
11.5M
    const FLOAT64 *twiddles = ptr_w;
582
11.5M
    nodespacing <<= 1;
583
584
218M
    for (j = del / 2; j != 0; j--) {
585
207M
      FLOAT64 w_1 = *twiddles;
586
207M
      FLOAT64 w_4 = *(twiddles + 257);
587
207M
      twiddles += nodespacing;
588
589
207M
      x0r = *ptr_y;
590
207M
      x0i = *(ptr_y + 1);
591
207M
      ptr_y += ((SIZE_T)del << 1);
592
593
207M
      x1r = *ptr_y;
594
207M
      x1i = *(ptr_y + 1);
595
596
207M
      tmp = (FLOAT32)(ixheaace_dmult((FLOAT64)x1r, w_1) - ixheaace_dmult((FLOAT64)x1i, w_4));
597
207M
      x1i = (FLOAT32)ixheaace_dmac(ixheaace_dmult((FLOAT64)x1r, w_4), (FLOAT64)x1i, w_1);
598
207M
      x1r = tmp;
599
600
207M
      *ptr_y = (x0r) - (x1r);
601
207M
      *(ptr_y + 1) = (x0i) - (x1i);
602
207M
      ptr_y -= ((SIZE_T)del << 1);
603
604
207M
      *ptr_y = (x0r) + (x1r);
605
207M
      *(ptr_y + 1) = (x0i) + (x1i);
606
207M
      ptr_y += 2;
607
207M
    }
608
11.5M
    twiddles = ptr_w;
609
218M
    for (j = del / 2; j != 0; j--) {
610
207M
      FLOAT64 w_1 = *twiddles;
611
207M
      FLOAT64 w_4 = *(twiddles + 257);
612
207M
      twiddles += nodespacing;
613
614
207M
      x0r = *ptr_y;
615
207M
      x0i = *(ptr_y + 1);
616
207M
      ptr_y += ((SIZE_T)del << 1);
617
618
207M
      x1r = *ptr_y;
619
207M
      x1i = *(ptr_y + 1);
620
621
207M
      tmp = (FLOAT32)(ixheaace_dmult((FLOAT64)x1r, w_4) + ixheaace_dmult((FLOAT64)x1i, w_1));
622
207M
      x1i = (FLOAT32)(-ixheaace_dmult((FLOAT64)x1r, w_1) + ixheaace_dmult((FLOAT64)x1i, w_4));
623
207M
      x1r = tmp;
624
625
207M
      *ptr_y = (x0r) - (x1r);
626
207M
      *(ptr_y + 1) = (x0i) - (x1i);
627
207M
      ptr_y -= ((SIZE_T)del << 1);
628
629
207M
      *ptr_y = (x0r) + (x1r);
630
207M
      *(ptr_y + 1) = (x0i) + (x1i);
631
207M
      ptr_y += 2;
632
207M
    }
633
11.5M
  }
634
635
1.81G
  for (i = 0; i < nlength; i++) {
636
1.79G
    *(ptr_x + 2 * i) = y[2 * i];
637
1.79G
    *(ptr_x + 2 * i + 1) = y[2 * i + 1];
638
1.79G
  }
639
22.3M
}
640
641
static VOID iusace_complex_fft_p3(FLOAT32 *data, WORD32 nlength,
642
3.08M
                                  iusace_scratch_mem *pstr_scratch) {
643
3.08M
  WORD32 i, j;
644
3.08M
  FLOAT32 *data_3 = pstr_scratch->p_fft_p3_data_3;
645
3.08M
  FLOAT32 *y = pstr_scratch->p_fft_p3_y;
646
3.08M
  WORD32 cnfac;
647
3.08M
  WORD32 mpass = nlength;
648
3.08M
  FLOAT32 *ptr_x = data;
649
3.08M
  FLOAT32 *ptr_y = y;
650
651
3.08M
  cnfac = 0;
652
6.16M
  while (mpass % 3 == 0) {
653
3.08M
    mpass /= 3;
654
3.08M
    cnfac++;
655
3.08M
  }
656
657
12.3M
  for (i = 0; i < 3 * cnfac; i++) {
658
313M
    for (j = 0; j < mpass; j++) {
659
303M
      data_3[2 * j] = data[3 * (2 * j) + (2 * i)];
660
303M
      data_3[2 * j + 1] = data[3 * (2 * j) + 1 + (2 * i)];
661
303M
    }
662
9.25M
    iusace_complex_fft_p2(data_3, mpass, pstr_scratch->p_fft_p2_y);
663
664
313M
    for (j = 0; j < mpass; j++) {
665
303M
      data[3 * (2 * j) + (2 * i)] = data_3[2 * j];
666
303M
      data[3 * (2 * j) + 1 + (2 * i)] = data_3[2 * j + 1];
667
303M
    }
668
9.25M
  }
669
670
3.08M
  {
671
3.08M
    const FLOAT64 *w1r, *w1i;
672
3.08M
    FLOAT32 tmp;
673
3.08M
    w1r = iusace_twiddle_table_3pr;
674
3.08M
    w1i = iusace_twiddle_table_3pi;
675
676
104M
    for (i = 0; i < nlength; i += 3) {
677
101M
      tmp = (FLOAT32)((FLOAT64)data[2 * i] * (*w1r) - (FLOAT64)data[2 * i + 1] * (*w1i));
678
101M
      data[2 * i + 1] =
679
101M
          (FLOAT32)((FLOAT64)data[2 * i] * (*w1i) + (FLOAT64)data[2 * i + 1] * (*w1r));
680
101M
      data[2 * i] = tmp;
681
682
101M
      w1r++;
683
101M
      w1i++;
684
685
101M
      tmp = (FLOAT32)((FLOAT64)data[2 * (i + 1)] * (*w1r) -
686
101M
                      (FLOAT64)data[2 * (i + 1) + 1] * (*w1i));
687
101M
      data[2 * (i + 1) + 1] = (FLOAT32)((FLOAT64)data[2 * (i + 1)] * (*w1i) +
688
101M
                                        (FLOAT64)data[2 * (i + 1) + 1] * (*w1r));
689
101M
      data[2 * (i + 1)] = tmp;
690
691
101M
      w1r++;
692
101M
      w1i++;
693
694
101M
      tmp = (FLOAT32)((FLOAT64)data[2 * (i + 2)] * (*w1r) -
695
101M
                      (FLOAT64)data[2 * (i + 2) + 1] * (*w1i));
696
101M
      data[2 * (i + 2) + 1] = (FLOAT32)((FLOAT64)data[2 * (i + 2)] * (*w1i) +
697
101M
                                        (FLOAT64)data[2 * (i + 2) + 1] * (*w1r));
698
101M
      data[2 * (i + 2)] = tmp;
699
700
101M
      w1r += 3 * (128 / mpass - 1) + 1;
701
101M
      w1i += 3 * (128 / mpass - 1) + 1;
702
101M
    }
703
3.08M
  }
704
705
104M
  for (i = 0; i < mpass; i++) {
706
101M
    iusace_complex_3point_fft(ptr_x, ptr_y);
707
708
101M
    ptr_x = ptr_x + 6;
709
101M
    ptr_y = ptr_y + 6;
710
101M
  }
711
712
104M
  for (i = 0; i < mpass; i++) {
713
101M
    data[2 * i] = y[6 * i];
714
101M
    data[2 * i + 1] = y[6 * i + 1];
715
101M
  }
716
717
104M
  for (i = 0; i < mpass; i++) {
718
101M
    data[2 * (i + mpass)] = y[6 * i + 2];
719
101M
    data[2 * (i + mpass) + 1] = y[6 * i + 3];
720
101M
  }
721
722
104M
  for (i = 0; i < mpass; i++) {
723
101M
    data[2 * (i + 2 * mpass)] = y[6 * i + 4];
724
101M
    data[2 * (i + 2 * mpass) + 1] = y[6 * i + 5];
725
101M
  }
726
3.08M
}
727
728
0
VOID iusace_complex_fft_p3_no_scratch(FLOAT32 *data, WORD32 nlength) {
729
0
  WORD32 i, j;
730
731
0
  FLOAT32 data_3[800];
732
0
  FLOAT32 y[1024];
733
0
  FLOAT32 p_fft_p2_y[2048];
734
0
  WORD32 cnfac;
735
0
  WORD32 mpass = nlength;
736
0
  FLOAT32 *ptr_x = data;
737
0
  FLOAT32 *ptr_y = y;
738
739
0
  cnfac = 0;
740
0
  while (mpass % 3 == 0) {
741
0
    mpass /= 3;
742
0
    cnfac++;
743
0
  }
744
745
0
  for (i = 0; i < 3 * cnfac; i++) {
746
0
    for (j = 0; j < mpass; j++) {
747
0
      data_3[2 * j] = data[3 * (2 * j) + (2 * i)];
748
0
      data_3[2 * j + 1] = data[3 * (2 * j) + 1 + (2 * i)];
749
0
    }
750
0
    iusace_complex_fft_p2(data_3, mpass, p_fft_p2_y);
751
752
0
    for (j = 0; j < mpass; j++) {
753
0
      data[3 * (2 * j) + (2 * i)] = data_3[2 * j];
754
0
      data[3 * (2 * j) + 1 + (2 * i)] = data_3[2 * j + 1];
755
0
    }
756
0
  }
757
758
0
  {
759
0
    const FLOAT64 *w1r, *w1i;
760
0
    FLOAT32 tmp;
761
0
    w1r = iusace_twiddle_table_3pr;
762
0
    w1i = iusace_twiddle_table_3pi;
763
764
0
    for (i = 0; i < nlength; i += 3) {
765
0
      tmp = (FLOAT32)((FLOAT64)data[2 * i] * (*w1r) - (FLOAT64)data[2 * i + 1] * (*w1i));
766
0
      data[2 * i + 1] =
767
0
          (FLOAT32)((FLOAT64)data[2 * i] * (*w1i) + (FLOAT64)data[2 * i + 1] * (*w1r));
768
0
      data[2 * i] = tmp;
769
770
0
      w1r++;
771
0
      w1i++;
772
773
0
      tmp = (FLOAT32)((FLOAT64)data[2 * (i + 1)] * (*w1r) -
774
0
                      (FLOAT64)data[2 * (i + 1) + 1] * (*w1i));
775
0
      data[2 * (i + 1) + 1] = (FLOAT32)((FLOAT64)data[2 * (i + 1)] * (*w1i) +
776
0
                                        (FLOAT64)data[2 * (i + 1) + 1] * (*w1r));
777
0
      data[2 * (i + 1)] = tmp;
778
779
0
      w1r++;
780
0
      w1i++;
781
782
0
      tmp = (FLOAT32)((FLOAT64)data[2 * (i + 2)] * (*w1r) -
783
0
                      (FLOAT64)data[2 * (i + 2) + 1] * (*w1i));
784
0
      data[2 * (i + 2) + 1] = (FLOAT32)((FLOAT64)data[2 * (i + 2)] * (*w1i) +
785
0
                                        (FLOAT64)data[2 * (i + 2) + 1] * (*w1r));
786
0
      data[2 * (i + 2)] = tmp;
787
788
0
      w1r += 3 * (128 / mpass - 1) + 1;
789
0
      w1i += 3 * (128 / mpass - 1) + 1;
790
0
    }
791
0
  }
792
793
0
  for (i = 0; i < mpass; i++) {
794
0
    iusace_complex_3point_fft(ptr_x, ptr_y);
795
796
0
    ptr_x = ptr_x + 6;
797
0
    ptr_y = ptr_y + 6;
798
0
  }
799
800
0
  for (i = 0; i < mpass; i++) {
801
0
    data[2 * i] = y[6 * i];
802
0
    data[2 * i + 1] = y[6 * i + 1];
803
0
  }
804
805
0
  for (i = 0; i < mpass; i++) {
806
0
    data[2 * (i + mpass)] = y[6 * i + 2];
807
0
    data[2 * (i + mpass) + 1] = y[6 * i + 3];
808
0
  }
809
810
0
  for (i = 0; i < mpass; i++) {
811
0
    data[2 * (i + 2 * mpass)] = y[6 * i + 4];
812
0
    data[2 * (i + 2 * mpass) + 1] = y[6 * i + 5];
813
0
  }
814
0
}
815
816
static VOID iusace_calc_pre_twid_enc(FLOAT64 *ptr_in, FLOAT32 *fft_ptr, WORD32 npoints,
817
                                     const FLOAT64 *cos_ptr, const FLOAT64 *sin_ptr,
818
2.81M
                                     const WORD32 tx_flag) {
819
2.81M
  WORD32 i, n;
820
2.81M
  WORD32 b = npoints >> 1;
821
2.81M
  WORD32 a = npoints - b;
822
2.81M
  WORD32 nlength = npoints >> 2;
823
2.81M
  FLOAT64 tempr, tempi;
824
825
2.81M
  if (tx_flag == 0) {
826
1.40M
    FLOAT64 norm;
827
408M
    for (i = 0; i < b; i++) {
828
406M
      norm = ptr_in[i]; /* reuse MDCT: spectrally reverse all bins */
829
406M
      ptr_in[i] = ptr_in[npoints - 1 - i];
830
406M
      ptr_in[npoints - 1 - i] = norm;
831
406M
    }
832
1.40M
  }
833
409M
  for (i = 0; i < nlength; i++) {
834
406M
    n = npoints / 2 - 1 - 2 * i;
835
406M
    if (i < b / 4) {
836
203M
      tempr = ptr_in[a / 2 + n] + ptr_in[npoints + a / 2 - 1 - n];
837
203M
    } else {
838
203M
      tempr = ptr_in[a / 2 + n] - ptr_in[a / 2 - 1 - n];
839
203M
    }
840
406M
    n = 2 * i;
841
406M
    if (i < a / 4) {
842
203M
      tempi = ptr_in[a / 2 + n] - ptr_in[a / 2 - 1 - n];
843
203M
    } else {
844
203M
      tempi = ptr_in[a / 2 + n] + ptr_in[npoints + a / 2 - 1 - n];
845
203M
    }
846
847
406M
    fft_ptr[2 * i] = (FLOAT32)(tempr * (*cos_ptr) + tempi * (*sin_ptr));
848
406M
    fft_ptr[2 * i + 1] = (FLOAT32)(tempi * (*cos_ptr++) - tempr * (*sin_ptr++));
849
406M
  }
850
2.81M
}
851
852
10.1M
VOID iusace_complex_fft(FLOAT32 *data, WORD32 nlength, iusace_scratch_mem *pstr_scratch) {
853
10.1M
  if (nlength & (nlength - 1)) {
854
3.08M
    iusace_complex_fft_p3(data, nlength, pstr_scratch);
855
7.04M
  } else {
856
7.04M
    iusace_complex_fft_p2(data, nlength, pstr_scratch->p_fft_p2_y);
857
7.04M
  }
858
10.1M
}
859
860
static VOID iusace_calc_post_twid_enc(FLOAT64 *ptr_out, FLOAT32 *fft_ptr, WORD32 npoints,
861
                                      const FLOAT64 *cos_ptr, const FLOAT64 *sin_ptr,
862
2.81M
                                      const WORD32 tx_flag) {
863
2.81M
  WORD32 i;
864
2.81M
  WORD32 nlength = npoints >> 2;
865
2.81M
  FLOAT64 tempr, tempi;
866
867
  /* post-twiddle FFT output and then get output data */
868
409M
  for (i = 0; i < nlength; i++) {
869
406M
    tempr =
870
406M
        2 * ((FLOAT64)(fft_ptr[2 * i]) * (*cos_ptr) + (FLOAT64)(fft_ptr[2 * i + 1]) * (*sin_ptr));
871
406M
    tempi = 2 * ((FLOAT64)(fft_ptr[2 * i + 1]) * (*cos_ptr++) -
872
406M
                 (FLOAT64)(fft_ptr[2 * i]) * (*sin_ptr++));
873
874
406M
    ptr_out[2 * i] = -tempr;
875
406M
    ptr_out[npoints / 2 - 1 - 2 * i] = tempi;
876
406M
    ptr_out[npoints / 2 + 2 * i] = -tempi;
877
406M
    ptr_out[npoints - 1 - 2 * i] = tempr;
878
406M
  }
879
2.81M
  if (tx_flag == 0) {
880
408M
    for (i = 0; i < npoints; i += 2) {
881
406M
      ptr_out[i] *= -1; /* reuse MDCT: flip signs at odd indices */
882
406M
    }
883
1.40M
  }
884
2.81M
}
885
886
IA_ERRORCODE iusace_fft_based_mdct(FLOAT64 *ptr_in, FLOAT64 *ptr_out, WORD32 npoints,
887
2.81M
                                   const WORD32 tx_flag, iusace_scratch_mem *pstr_scratch) {
888
2.81M
  FLOAT32 *ptr_scratch1 = pstr_scratch->p_fft_mdct_buf;
889
2.81M
  const FLOAT64 *cos_ptr = NULL;
890
2.81M
  const FLOAT64 *sin_ptr = NULL;
891
2.81M
  WORD32 nlength = npoints >> 1;
892
2.81M
  WORD32 n_total = npoints << 1;
893
894
2.81M
  memset(ptr_scratch1, 0, ((SIZE_T)n_total << 1) * sizeof(*ptr_scratch1));
895
896
2.81M
  switch (npoints) {
897
768k
    case (96):
898
768k
      cos_ptr = iexheaac_pre_post_twid_cos_192;
899
768k
      sin_ptr = iexheaac_pre_post_twid_sin_192;
900
768k
      break;
901
1.48M
    case (128):
902
1.48M
      cos_ptr = iusace_pre_post_twid_cos_256;
903
1.48M
      sin_ptr = iusace_pre_post_twid_sin_256;
904
1.48M
      break;
905
118k
    case (768):
906
118k
      cos_ptr = iexheaac_pre_post_twid_cos_1536;
907
118k
      sin_ptr = iexheaac_pre_post_twid_sin_1536;
908
118k
      break;
909
448k
    case (1024):
910
448k
      cos_ptr = iusace_pre_post_twid_cos_2048;
911
448k
      sin_ptr = iusace_pre_post_twid_sin_2048;
912
448k
      break;
913
0
    default:
914
0
      return IA_EXHEAACE_EXE_FATAL_USAC_INVALID_WINDOW_LENGTH;
915
2.81M
  }
916
917
  /* pre-twiddle */
918
2.81M
  iusace_calc_pre_twid_enc(ptr_in, ptr_scratch1, npoints << 1, cos_ptr, sin_ptr, tx_flag);
919
920
  /* complex FFT */
921
2.81M
  iusace_complex_fft(ptr_scratch1, nlength, pstr_scratch);
922
923
  /* post-twiddle */
924
2.81M
  iusace_calc_post_twid_enc(ptr_out, ptr_scratch1, npoints << 1, cos_ptr, sin_ptr, tx_flag);
925
926
2.81M
  return IA_NO_ERROR;
927
2.81M
}
928
929
192k
VOID iusace_complex_fft_2048(FLOAT32 *ptr_x, FLOAT32 *scratch_fft) {
930
192k
  WORD32 i;
931
192k
  FLOAT32 re, im, c_v, s_v, tmp_re, tmp_im;
932
192k
  FLOAT32 *ptr_re, *ptr_im, *ptr_re_h, *ptr_im_h;
933
192k
  FLOAT32 *ptr_cos_val, *ptr_sin_val;
934
192k
  iusace_complex_fft_p2(ptr_x, 1024, scratch_fft);
935
192k
  iusace_complex_fft_p2(ptr_x + 2048, 1024, scratch_fft);
936
937
192k
  ptr_re = ptr_x;
938
192k
  ptr_im = ptr_x + 1;
939
192k
  ptr_re_h = ptr_x + 2048;
940
192k
  ptr_im_h = ptr_x + 2048 + 1;
941
192k
  ptr_cos_val = (FLOAT32 *)&iusace_twiddle_cos_2048[0];
942
192k
  ptr_sin_val = (FLOAT32 *)&iusace_twiddle_sin_2048[0];
943
197M
  for (i = 0; i < 1024; i++) {
944
197M
    re = *ptr_re_h;
945
197M
    im = *ptr_im_h;
946
197M
    c_v = ptr_cos_val[i];
947
197M
    s_v = ptr_sin_val[i];
948
197M
    tmp_re = (re * c_v) + (im * s_v);
949
197M
    tmp_im = -(re * s_v) + (im * c_v);
950
197M
    re = *ptr_re;
951
197M
    im = *ptr_im;
952
953
197M
    *ptr_re = re + tmp_re;
954
197M
    *ptr_im = im + tmp_im;
955
197M
    *ptr_re_h = re - tmp_re;
956
197M
    *ptr_im_h = im - tmp_im;
957
958
197M
    ptr_re += 2;
959
197M
    ptr_im += 2;
960
197M
    ptr_re_h += 2;
961
197M
    ptr_im_h += 2;
962
197M
  }
963
192k
}
964
static VOID ixheaace_rad2_cplx_fft(FLOAT32 *ptr_real, FLOAT32 *ptr_imag, WORD32 n_points,
965
194k
                                   FLOAT32 *ptr_scratch) {
966
194k
  WORD32 i, j, k, n_stages, h2;
967
194k
  FLOAT32 x0r, x0i, x1r, x1i, x2r, x2i, x3r, x3i;
968
194k
  WORD32 del, nodespacing, in_loop_cnt;
969
194k
  WORD32 not_power_4;
970
194k
  WORD32 dig_rev_shift;
971
194k
  WORD32 m_points = n_points;
972
194k
  FLOAT32 *ptr_x = ptr_scratch;
973
194k
  FLOAT32 *y = ptr_scratch + 2048;
974
194k
  FLOAT32 *ptr_y = y;
975
194k
  const FLOAT32 *ptr_w;
976
977
194k
  dig_rev_shift = ixheaac_norm32(m_points) + 1 - 16;
978
194k
  n_stages = 30 - ixheaac_norm32(m_points);
979
194k
  not_power_4 = n_stages & 1;
980
981
194k
  n_stages = n_stages >> 1;
982
983
194k
  ptr_w = ia_fft_twiddle_table_float;
984
985
199M
  for (i = 0; i < n_points; i++) {
986
199M
    ptr_x[2 * i] = ptr_real[i];
987
199M
    ptr_x[2 * i + 1] = ptr_imag[i];
988
199M
  }
989
194k
  dig_rev_shift = max(dig_rev_shift, 0);
990
49.9M
  for (i = 0; i < n_points; i += 4) {
991
49.8M
    FLOAT32 *inp = ptr_x;
992
49.8M
    FLOAT32 tmk;
993
994
49.8M
    DIG_REV(i, dig_rev_shift, h2);
995
49.8M
    if (not_power_4) {
996
0
      h2 += 1;
997
0
      h2 &= ~1;
998
0
    }
999
49.8M
    inp += (h2);
1000
1001
49.8M
    x0r = *inp;
1002
49.8M
    x0i = *(inp + 1);
1003
49.8M
    inp += (n_points >> 1);
1004
1005
49.8M
    x1r = *inp;
1006
49.8M
    x1i = *(inp + 1);
1007
49.8M
    inp += (n_points >> 1);
1008
1009
49.8M
    x2r = *inp;
1010
49.8M
    x2i = *(inp + 1);
1011
49.8M
    inp += (n_points >> 1);
1012
1013
49.8M
    x3r = *inp;
1014
49.8M
    x3i = *(inp + 1);
1015
1016
49.8M
    x0r = ia_add_flt(x0r, x2r);
1017
49.8M
    x0i = ia_add_flt(x0i, x2i);
1018
1019
49.8M
    tmk = ia_sub_flt(x0r, x2r);
1020
49.8M
    x2r = ia_sub_flt(tmk, x2r);
1021
49.8M
    tmk = ia_sub_flt(x0i, x2i);
1022
49.8M
    x2i = ia_sub_flt(tmk, x2i);
1023
1024
49.8M
    x1r = ia_add_flt(x1r, x3r);
1025
49.8M
    x1i = ia_add_flt(x1i, x3i);
1026
1027
49.8M
    tmk = ia_sub_flt(x1r, x3r);
1028
49.8M
    x3r = ia_sub_flt(tmk, x3r);
1029
49.8M
    tmk = ia_sub_flt(x1i, x3i);
1030
49.8M
    x3i = ia_sub_flt(tmk, x3i);
1031
1032
49.8M
    x0r = ia_add_flt(x0r, x1r);
1033
49.8M
    x0i = ia_add_flt(x0i, x1i);
1034
1035
49.8M
    tmk = ia_sub_flt(x0r, x1r);
1036
49.8M
    x1r = ia_sub_flt(tmk, x1r);
1037
49.8M
    tmk = ia_sub_flt(x0i, x1i);
1038
49.8M
    x1i = ia_sub_flt(tmk, x1i);
1039
1040
49.8M
    x2r = ia_add_flt(x2r, x3i);
1041
49.8M
    x2i = ia_sub_flt(x2i, x3r);
1042
1043
49.8M
    tmk = ia_sub_flt(x2r, x3i);
1044
49.8M
    x3i = ia_sub_flt(tmk, x3i);
1045
49.8M
    tmk = ia_add_flt(x2i, x3r);
1046
49.8M
    x3r = ia_add_flt(tmk, x3r);
1047
1048
49.8M
    *ptr_y++ = x0r;
1049
49.8M
    *ptr_y++ = x0i;
1050
49.8M
    *ptr_y++ = x2r;
1051
49.8M
    *ptr_y++ = x2i;
1052
49.8M
    *ptr_y++ = x1r;
1053
49.8M
    *ptr_y++ = x1i;
1054
49.8M
    *ptr_y++ = x3i;
1055
49.8M
    *ptr_y++ = x3r;
1056
49.8M
  }
1057
194k
  ptr_y -= 2 * n_points;
1058
194k
  del = 4;
1059
194k
  nodespacing = 64;
1060
194k
  in_loop_cnt = n_points >> 4;
1061
972k
  for (i = n_stages - 1; i > 0; i--) {
1062
778k
    const FLOAT32 *twiddles = ptr_w;
1063
778k
    FLOAT32 *data = ptr_y;
1064
778k
    FLOAT32 w_1, w_2, w_3, w_4, w_5, w_6;
1065
778k
    WORD32 sec_loop_cnt;
1066
1067
17.3M
    for (k = in_loop_cnt; k != 0; k--) {
1068
16.5M
      x0r = (*data);
1069
16.5M
      x0i = (*(data + 1));
1070
16.5M
      data += ((SIZE_T)del << 1);
1071
1072
16.5M
      x1r = (*data);
1073
16.5M
      x1i = (*(data + 1));
1074
16.5M
      data += ((SIZE_T)del << 1);
1075
1076
16.5M
      x2r = (*data);
1077
16.5M
      x2i = (*(data + 1));
1078
16.5M
      data += ((SIZE_T)del << 1);
1079
1080
16.5M
      x3r = (*data);
1081
16.5M
      x3i = (*(data + 1));
1082
16.5M
      data -= 3 * (del << 1);
1083
1084
16.5M
      x0r = ia_add_flt(x0r, x2r);
1085
16.5M
      x0i = ia_add_flt(x0i, x2i);
1086
16.5M
      x2r = ia_msu_flt(x0r, x2r, 2);
1087
16.5M
      x2i = ia_msu_flt(x0i, x2i, 2);
1088
16.5M
      x1r = ia_add_flt(x1r, x3r);
1089
16.5M
      x1i = ia_add_flt(x1i, x3i);
1090
16.5M
      x3r = ia_msu_flt(x1r, x3r, 2);
1091
16.5M
      x3i = ia_msu_flt(x1i, x3i, 2);
1092
1093
16.5M
      x0r = ia_add_flt(x0r, x1r);
1094
16.5M
      x0i = ia_add_flt(x0i, x1i);
1095
16.5M
      x1r = ia_msu_flt(x0r, x1r, 2);
1096
16.5M
      x1i = ia_msu_flt(x0i, x1i, 2);
1097
16.5M
      x2r = ia_add_flt(x2r, x3i);
1098
16.5M
      x2i = ia_sub_flt(x2i, x3r);
1099
16.5M
      x3i = ia_msu_flt(x2r, x3i, 2);
1100
16.5M
      x3r = ia_mac_flt(x2i, x3r, 2);
1101
1102
16.5M
      *data = x0r;
1103
16.5M
      *(data + 1) = x0i;
1104
16.5M
      data += ((SIZE_T)del << 1);
1105
1106
16.5M
      *data = x2r;
1107
16.5M
      *(data + 1) = x2i;
1108
16.5M
      data += ((SIZE_T)del << 1);
1109
1110
16.5M
      *data = x1r;
1111
16.5M
      *(data + 1) = x1i;
1112
16.5M
      data += ((SIZE_T)del << 1);
1113
1114
16.5M
      *data = x3i;
1115
16.5M
      *(data + 1) = x3r;
1116
16.5M
      data += ((SIZE_T)del << 1);
1117
16.5M
    }
1118
778k
    data = ptr_y + 2;
1119
1120
778k
    sec_loop_cnt = (nodespacing * del);
1121
778k
    sec_loop_cnt = (sec_loop_cnt / 4) + (sec_loop_cnt / 8) - (sec_loop_cnt / 16) +
1122
778k
                   (sec_loop_cnt / 32) - (sec_loop_cnt / 64) + (sec_loop_cnt / 128) -
1123
778k
                   (sec_loop_cnt / 256);
1124
1125
22.5M
    for (j = nodespacing; j <= sec_loop_cnt; j += nodespacing) {
1126
21.7M
      w_1 = *(twiddles + j);
1127
21.7M
      w_4 = *(twiddles + j + 257);
1128
21.7M
      w_2 = *(twiddles + ((SIZE_T)j << 1));
1129
21.7M
      w_5 = *(twiddles + ((SIZE_T)j << 1) + 257);
1130
21.7M
      w_3 = *(twiddles + j + ((SIZE_T)j << 1));
1131
21.7M
      w_6 = *(twiddles + j + ((SIZE_T)j << 1) + 257);
1132
1133
82.6M
      for (k = in_loop_cnt; k != 0; k--) {
1134
60.8M
        FLOAT32 tmp;
1135
        /*x0 is loaded later to avoid register crunch*/
1136
1137
60.8M
        data += ((SIZE_T)del << 1);
1138
1139
60.8M
        x1r = *data;
1140
60.8M
        x1i = *(data + 1);
1141
60.8M
        data += ((SIZE_T)del << 1);
1142
1143
60.8M
        x2r = *data;
1144
60.8M
        x2i = *(data + 1);
1145
60.8M
        data += ((SIZE_T)del << 1);
1146
1147
60.8M
        x3r = *data;
1148
60.8M
        x3i = *(data + 1);
1149
60.8M
        data -= 3 * (del << 1);
1150
1151
60.8M
        tmp = ia_sub_flt(ia_mul_flt(x1r, w_1), ia_mul_flt(x1i, w_4));
1152
60.8M
        x1i = ia_mac_flt(ia_mul_flt(x1r, w_4), x1i, w_1);
1153
60.8M
        x1r = tmp;
1154
1155
60.8M
        tmp = ia_sub_flt(ia_mul_flt(x2r, w_2), ia_mul_flt(x2i, w_5));
1156
60.8M
        x2i = ia_mac_flt(ia_mul_flt(x2r, w_5), x2i, w_2);
1157
60.8M
        x2r = tmp;
1158
1159
60.8M
        tmp = ia_sub_flt(ia_mul_flt(x3r, w_3), ia_mul_flt(x3i, w_6));
1160
60.8M
        x3i = ia_mac_flt(ia_mul_flt(x3r, w_6), x3i, w_3);
1161
60.8M
        x3r = tmp;
1162
1163
60.8M
        x0r = (*data);
1164
60.8M
        x0i = (*(data + 1));
1165
1166
60.8M
        x0r = ia_add_flt(x0r, (x2r));
1167
60.8M
        x0i = ia_add_flt(x0i, (x2i));
1168
60.8M
        x2r = ia_msu_flt(x0r, x2r, 2);
1169
60.8M
        x2i = ia_msu_flt(x0i, x2i, 2);
1170
60.8M
        x1r = ia_add_flt(x1r, x3r);
1171
60.8M
        x1i = ia_add_flt(x1i, x3i);
1172
60.8M
        x3r = ia_msu_flt(x1r, x3r, 2);
1173
60.8M
        x3i = ia_msu_flt(x1i, x3i, 2);
1174
1175
60.8M
        x0r = ia_add_flt(x0r, (x1r));
1176
60.8M
        x0i = ia_add_flt(x0i, (x1i));
1177
60.8M
        x1r = ia_msu_flt(x0r, x1r, 2);
1178
60.8M
        x1i = ia_msu_flt(x0i, x1i, 2);
1179
60.8M
        x2r = ia_add_flt(x2r, (x3i));
1180
60.8M
        x2i = ia_sub_flt(x2i, (x3r));
1181
60.8M
        x3i = ia_msu_flt(x2r, x3i, 2);
1182
60.8M
        x3r = ia_mac_flt(x2i, x3r, 2);
1183
1184
60.8M
        *data = x0r;
1185
60.8M
        *(data + 1) = x0i;
1186
60.8M
        data += ((SIZE_T)del << 1);
1187
1188
60.8M
        *data = x2r;
1189
60.8M
        *(data + 1) = x2i;
1190
60.8M
        data += ((SIZE_T)del << 1);
1191
1192
60.8M
        *data = x1r;
1193
60.8M
        *(data + 1) = x1i;
1194
60.8M
        data += ((SIZE_T)del << 1);
1195
1196
60.8M
        *data = x3i;
1197
60.8M
        *(data + 1) = x3r;
1198
60.8M
        data += ((SIZE_T)del << 1);
1199
60.8M
      }
1200
21.7M
      data -= 2 * n_points;
1201
21.7M
      data += 2;
1202
21.7M
    }
1203
12.0M
    for (; j <= (nodespacing * del) >> 1; j += nodespacing) {
1204
11.2M
      w_1 = *(twiddles + j);
1205
11.2M
      w_4 = *(twiddles + j + 257);
1206
11.2M
      w_2 = *(twiddles + ((SIZE_T)j << 1));
1207
11.2M
      w_5 = *(twiddles + ((SIZE_T)j << 1) + 257);
1208
11.2M
      w_3 = *(twiddles + j + ((SIZE_T)j << 1) - 256);
1209
11.2M
      w_6 = *(twiddles + j + ((SIZE_T)j << 1) + 1);
1210
1211
49.9M
      for (k = in_loop_cnt; k != 0; k--) {
1212
38.7M
        FLOAT32 tmp;
1213
        /*x0 is loaded later to avoid register crunch*/
1214
1215
38.7M
        data += ((SIZE_T)del << 1);
1216
1217
38.7M
        x1r = *data;
1218
38.7M
        x1i = *(data + 1);
1219
38.7M
        data += ((SIZE_T)del << 1);
1220
1221
38.7M
        x2r = *data;
1222
38.7M
        x2i = *(data + 1);
1223
38.7M
        data += ((SIZE_T)del << 1);
1224
1225
38.7M
        x3r = *data;
1226
38.7M
        x3i = *(data + 1);
1227
38.7M
        data -= 3 * (del << 1);
1228
1229
38.7M
        tmp = ia_sub_flt(ia_mul_flt(x1r, w_1), ia_mul_flt(x1i, w_4));
1230
38.7M
        x1i = ia_mac_flt(ia_mul_flt(x1r, w_4), x1i, w_1);
1231
38.7M
        x1r = tmp;
1232
1233
38.7M
        tmp = ia_sub_flt(ia_mul_flt(x2r, w_2), ia_mul_flt(x2i, w_5));
1234
38.7M
        x2i = ia_mac_flt(ia_mul_flt(x2r, w_5), x2i, w_2);
1235
38.7M
        x2r = tmp;
1236
1237
38.7M
        tmp = ia_add_flt(ia_mul_flt(x3r, w_6), ia_mul_flt(x3i, w_3));
1238
38.7M
        x3i = ia_add_flt(ia_negate_flt(ia_mul_flt(x3r, w_3)), ia_mul_flt(x3i, w_6));
1239
38.7M
        x3r = tmp;
1240
1241
38.7M
        x0r = (*data);
1242
38.7M
        x0i = (*(data + 1));
1243
1244
38.7M
        x0r = ia_add_flt(x0r, (x2r));
1245
38.7M
        x0i = ia_add_flt(x0i, (x2i));
1246
38.7M
        x2r = ia_msu_flt(x0r, x2r, 2);
1247
38.7M
        x2i = ia_msu_flt(x0i, x2i, 2);
1248
38.7M
        x1r = ia_add_flt(x1r, x3r);
1249
38.7M
        x1i = ia_add_flt(x1i, x3i);
1250
38.7M
        x3r = ia_msu_flt(x1r, x3r, 2);
1251
38.7M
        x3i = ia_msu_flt(x1i, x3i, 2);
1252
1253
38.7M
        x0r = ia_add_flt(x0r, (x1r));
1254
38.7M
        x0i = ia_add_flt(x0i, (x1i));
1255
38.7M
        x1r = ia_msu_flt(x0r, x1r, 2);
1256
38.7M
        x1i = ia_msu_flt(x0i, x1i, 2);
1257
38.7M
        x2r = ia_add_flt(x2r, (x3i));
1258
38.7M
        x2i = ia_sub_flt(x2i, (x3r));
1259
38.7M
        x3i = ia_msu_flt(x2r, x3i, 2);
1260
38.7M
        x3r = ia_mac_flt(x2i, x3r, 2);
1261
1262
38.7M
        *data = x0r;
1263
38.7M
        *(data + 1) = x0i;
1264
38.7M
        data += ((SIZE_T)del << 1);
1265
1266
38.7M
        *data = x2r;
1267
38.7M
        *(data + 1) = x2i;
1268
38.7M
        data += ((SIZE_T)del << 1);
1269
1270
38.7M
        *data = x1r;
1271
38.7M
        *(data + 1) = x1i;
1272
38.7M
        data += ((SIZE_T)del << 1);
1273
1274
38.7M
        *data = x3i;
1275
38.7M
        *(data + 1) = x3r;
1276
38.7M
        data += ((SIZE_T)del << 1);
1277
38.7M
      }
1278
11.2M
      data -= 2 * n_points;
1279
11.2M
      data += 2;
1280
11.2M
    }
1281
11.2M
    for (; j <= sec_loop_cnt * 2; j += nodespacing) {
1282
10.5M
      w_1 = *(twiddles + j);
1283
10.5M
      w_4 = *(twiddles + j + 257);
1284
10.5M
      w_2 = *(twiddles + ((SIZE_T)j << 1) - 256);
1285
10.5M
      w_5 = *(twiddles + ((SIZE_T)j << 1) + 1);
1286
10.5M
      w_3 = *(twiddles + j + ((SIZE_T)j << 1) - 256);
1287
10.5M
      w_6 = *(twiddles + j + ((SIZE_T)j << 1) + 1);
1288
1289
32.6M
      for (k = in_loop_cnt; k != 0; k--) {
1290
22.1M
        FLOAT32 tmp;
1291
        /*x0 is loaded later to avoid register crunch*/
1292
1293
22.1M
        data += ((SIZE_T)del << 1);
1294
1295
22.1M
        x1r = *data;
1296
22.1M
        x1i = *(data + 1);
1297
22.1M
        data += ((SIZE_T)del << 1);
1298
1299
22.1M
        x2r = *data;
1300
22.1M
        x2i = *(data + 1);
1301
22.1M
        data += ((SIZE_T)del << 1);
1302
1303
22.1M
        x3r = *data;
1304
22.1M
        x3i = *(data + 1);
1305
22.1M
        data -= 3 * (del << 1);
1306
1307
22.1M
        tmp = ia_sub_flt(ia_mul_flt(x1r, w_1), ia_mul_flt(x1i, w_4));
1308
22.1M
        x1i = ia_mac_flt(ia_mul_flt(x1r, w_4), x1i, w_1);
1309
22.1M
        x1r = tmp;
1310
1311
22.1M
        tmp = ia_add_flt(ia_mul_flt(x2r, w_5), ia_mul_flt(x2i, w_2));
1312
22.1M
        x2i = ia_add_flt(ia_negate_flt(ia_mul_flt(x2r, w_2)), ia_mul_flt(x2i, w_5));
1313
22.1M
        x2r = tmp;
1314
1315
22.1M
        tmp = ia_add_flt(ia_mul_flt(x3r, w_6), ia_mul_flt(x3i, w_3));
1316
22.1M
        x3i = ia_add_flt(ia_negate_flt(ia_mul_flt(x3r, w_3)), ia_mul_flt(x3i, w_6));
1317
22.1M
        x3r = tmp;
1318
1319
22.1M
        x0r = (*data);
1320
22.1M
        x0i = (*(data + 1));
1321
1322
22.1M
        x0r = ia_add_flt(x0r, (x2r));
1323
22.1M
        x0i = ia_add_flt(x0i, (x2i));
1324
22.1M
        x2r = ia_msu_flt(x0r, x2r, 2);
1325
22.1M
        x2i = ia_msu_flt(x0i, x2i, 2);
1326
22.1M
        x1r = ia_add_flt(x1r, x3r);
1327
22.1M
        x1i = ia_add_flt(x1i, x3i);
1328
22.1M
        x3r = ia_msu_flt(x1r, x3r, 2);
1329
22.1M
        x3i = ia_msu_flt(x1i, x3i, 2);
1330
1331
22.1M
        x0r = ia_add_flt(x0r, (x1r));
1332
22.1M
        x0i = ia_add_flt(x0i, (x1i));
1333
22.1M
        x1r = ia_msu_flt(x0r, x1r, 2);
1334
22.1M
        x1i = ia_msu_flt(x0i, x1i, 2);
1335
22.1M
        x2r = ia_add_flt(x2r, (x3i));
1336
22.1M
        x2i = ia_sub_flt(x2i, (x3r));
1337
22.1M
        x3i = ia_msu_flt(x2r, x3i, 2);
1338
22.1M
        x3r = ia_mac_flt(x2i, x3r, 2);
1339
1340
22.1M
        *data = x0r;
1341
22.1M
        *(data + 1) = x0i;
1342
22.1M
        data += ((SIZE_T)del << 1);
1343
1344
22.1M
        *data = x2r;
1345
22.1M
        *(data + 1) = x2i;
1346
22.1M
        data += ((SIZE_T)del << 1);
1347
1348
22.1M
        *data = x1r;
1349
22.1M
        *(data + 1) = x1i;
1350
22.1M
        data += ((SIZE_T)del << 1);
1351
1352
22.1M
        *data = x3i;
1353
22.1M
        *(data + 1) = x3r;
1354
22.1M
        data += ((SIZE_T)del << 1);
1355
22.1M
      }
1356
10.5M
      data -= 2 * n_points;
1357
10.5M
      data += 2;
1358
10.5M
    }
1359
22.5M
    for (; j < nodespacing * del; j += nodespacing) {
1360
21.7M
      w_1 = *(twiddles + j);
1361
21.7M
      w_4 = *(twiddles + j + 257);
1362
21.7M
      w_2 = *(twiddles + ((SIZE_T)j << 1) - 256);
1363
21.7M
      w_5 = *(twiddles + ((SIZE_T)j << 1) + 1);
1364
21.7M
      w_3 = *(twiddles + j + ((SIZE_T)j << 1) - 512);
1365
21.7M
      w_6 = *(twiddles + j + ((SIZE_T)j << 1) - 512 + 257);
1366
1367
82.6M
      for (k = in_loop_cnt; k != 0; k--) {
1368
60.8M
        FLOAT32 tmp;
1369
        /*x0 is loaded later to avoid register crunch*/
1370
1371
60.8M
        data += ((SIZE_T)del << 1);
1372
1373
60.8M
        x1r = *data;
1374
60.8M
        x1i = *(data + 1);
1375
60.8M
        data += ((SIZE_T)del << 1);
1376
1377
60.8M
        x2r = *data;
1378
60.8M
        x2i = *(data + 1);
1379
60.8M
        data += ((SIZE_T)del << 1);
1380
1381
60.8M
        x3r = *data;
1382
60.8M
        x3i = *(data + 1);
1383
60.8M
        data -= 3 * (del << 1);
1384
1385
60.8M
        tmp = ia_sub_flt(ia_mul_flt(x1r, w_1), ia_mul_flt(x1i, w_4));
1386
60.8M
        x1i = ia_mac_flt(ia_mul_flt(x1r, w_4), x1i, w_1);
1387
60.8M
        x1r = tmp;
1388
1389
60.8M
        tmp = ia_add_flt(ia_mul_flt(x2r, w_5), ia_mul_flt(x2i, w_2));
1390
60.8M
        x2i = ia_add_flt(ia_negate_flt(ia_mul_flt(x2r, w_2)), ia_mul_flt(x2i, w_5));
1391
60.8M
        x2r = tmp;
1392
1393
60.8M
        tmp = ia_add_flt(ia_negate_flt(ia_mul_flt(x3r, w_3)), ia_mul_flt(x3i, w_6));
1394
60.8M
        x3i = ia_mac_flt(ia_mul_flt(x3r, w_6), x3i, w_3);
1395
60.8M
        x3r = tmp;
1396
1397
60.8M
        x0r = (*data);
1398
60.8M
        x0i = (*(data + 1));
1399
1400
60.8M
        x0r = ia_add_flt(x0r, (x2r));
1401
60.8M
        x0i = ia_add_flt(x0i, (x2i));
1402
60.8M
        x2r = ia_msu_flt(x0r, x2r, 2);
1403
60.8M
        x2i = ia_msu_flt(x0i, x2i, 2);
1404
60.8M
        x1r = ia_add_flt(x1r, x3r);
1405
60.8M
        x1i = ia_sub_flt(x1i, x3i);
1406
60.8M
        x3r = ia_msu_flt(x1r, x3r, 2);
1407
60.8M
        x3i = ia_mac_flt(x1i, x3i, 2);
1408
1409
60.8M
        x0r = ia_add_flt(x0r, (x1r));
1410
60.8M
        x0i = ia_add_flt(x0i, (x1i));
1411
60.8M
        x1r = ia_msu_flt(x0r, x1r, 2);
1412
60.8M
        x1i = ia_msu_flt(x0i, x1i, 2);
1413
60.8M
        x2r = ia_add_flt(x2r, (x3i));
1414
60.8M
        x2i = ia_sub_flt(x2i, (x3r));
1415
60.8M
        x3i = ia_msu_flt(x2r, x3i, 2);
1416
60.8M
        x3r = ia_mac_flt(x2i, x3r, 2);
1417
1418
60.8M
        *data = x0r;
1419
60.8M
        *(data + 1) = x0i;
1420
60.8M
        data += ((SIZE_T)del << 1);
1421
1422
60.8M
        *data = x2r;
1423
60.8M
        *(data + 1) = x2i;
1424
60.8M
        data += ((SIZE_T)del << 1);
1425
1426
60.8M
        *data = x1r;
1427
60.8M
        *(data + 1) = x1i;
1428
60.8M
        data += ((SIZE_T)del << 1);
1429
1430
60.8M
        *data = x3i;
1431
60.8M
        *(data + 1) = x3r;
1432
60.8M
        data += ((SIZE_T)del << 1);
1433
60.8M
      }
1434
21.7M
      data -= 2 * n_points;
1435
21.7M
      data += 2;
1436
21.7M
    }
1437
778k
    nodespacing >>= 2;
1438
778k
    del <<= 2;
1439
778k
    in_loop_cnt >>= 2;
1440
778k
  }
1441
194k
  if (not_power_4) {
1442
0
    const FLOAT32 *twiddles = ptr_w;
1443
0
    nodespacing <<= 1;
1444
1445
0
    for (j = del / 2; j != 0; j--) {
1446
0
      FLOAT32 w_1 = *twiddles;
1447
0
      FLOAT32 w_4 = *(twiddles + 257);
1448
0
      FLOAT32 tmp;
1449
0
      twiddles += nodespacing;
1450
1451
0
      x0r = *ptr_y;
1452
0
      x0i = *(ptr_y + 1);
1453
0
      ptr_y += ((SIZE_T)del << 1);
1454
1455
0
      x1r = *ptr_y;
1456
0
      x1i = *(ptr_y + 1);
1457
1458
0
      tmp = ia_sub_flt(ia_mul_flt(x1r, w_1), ia_mul_flt(x1i, w_4));
1459
0
      x1i = (FLOAT32)ia_mac_flt(ia_mul_flt(x1r, w_4), x1i, w_1);
1460
0
      x1r = tmp;
1461
1462
0
      *ptr_y = ia_sub_flt((x0r), (x1r));
1463
0
      *(ptr_y + 1) = ia_sub_flt((x0i), (x1i));
1464
0
      ptr_y -= ((SIZE_T)del << 1);
1465
1466
0
      *ptr_y = ia_add_flt((x0r), (x1r));
1467
0
      *(ptr_y + 1) = ia_add_flt((x0i), (x1i));
1468
0
      ptr_y += 2;
1469
0
    }
1470
0
    twiddles = ptr_w;
1471
0
    for (j = del / 2; j != 0; j--) {
1472
0
      FLOAT32 w_1 = *twiddles;
1473
0
      FLOAT32 w_4 = *(twiddles + 257);
1474
0
      FLOAT32 tmp;
1475
0
      twiddles += nodespacing;
1476
1477
0
      x0r = *ptr_y;
1478
0
      x0i = *(ptr_y + 1);
1479
0
      ptr_y += ((SIZE_T)del << 1);
1480
1481
0
      x1r = *ptr_y;
1482
0
      x1i = *(ptr_y + 1);
1483
1484
0
      tmp = ia_add_flt(ia_mul_flt(x1r, w_4), ia_mul_flt(x1i, w_1));
1485
0
      x1i = ia_add_flt(ia_negate_flt(ia_mul_flt(x1r, w_1)), ia_mul_flt(x1i, w_4));
1486
0
      x1r = tmp;
1487
1488
0
      *ptr_y = ia_sub_flt((x0r), (x1r));
1489
0
      *(ptr_y + 1) = ia_sub_flt((x0i), (x1i));
1490
0
      ptr_y -= ((SIZE_T)del << 1);
1491
1492
0
      *ptr_y = ia_add_flt((x0r), (x1r));
1493
0
      *(ptr_y + 1) = ia_add_flt((x0i), (x1i));
1494
0
      ptr_y += 2;
1495
0
    }
1496
0
  }
1497
1498
199M
  for (i = 0; i < n_points; i++) {
1499
199M
    ptr_real[i] = y[2 * i];
1500
199M
    ptr_imag[i] = y[2 * i + 1];
1501
199M
  }
1502
194k
}
1503
49.8M
static VOID ixheaace_cplx_fft_4(FLOAT32 *x_r, FLOAT32 *x_i) {
1504
49.8M
  FLOAT32 x_0, x_1, x_2, x_3;
1505
49.8M
  FLOAT32 x_4, x_5, x_6, x_7;
1506
49.8M
  FLOAT32 x0r, x1r, x2r, x3r;
1507
49.8M
  FLOAT32 x0i, x1i, x2i, x3i;
1508
1509
  // 4 Point FFT
1510
49.8M
  x_0 = x_r[0];
1511
49.8M
  x_1 = x_i[0];
1512
49.8M
  x_2 = x_r[1];
1513
49.8M
  x_3 = x_i[1];
1514
49.8M
  x_4 = x_r[2];
1515
49.8M
  x_5 = x_i[2];
1516
49.8M
  x_6 = x_r[3];
1517
49.8M
  x_7 = x_i[3];
1518
1519
49.8M
  x0r = ia_add_flt(x_0, x_4);
1520
49.8M
  x0i = ia_add_flt(x_1, x_5);
1521
49.8M
  x2r = ia_sub_flt(x_0, x_4);
1522
49.8M
  x2i = ia_sub_flt(x_1, x_5);
1523
49.8M
  x1r = ia_add_flt(x_2, x_6);
1524
49.8M
  x1i = ia_add_flt(x_3, x_7);
1525
49.8M
  x3r = ia_sub_flt(x_2, x_6);
1526
49.8M
  x3i = ia_sub_flt(x_3, x_7);
1527
1528
49.8M
  x_r[0] = ia_add_flt(x0r, x1r);
1529
49.8M
  x_i[0] = ia_add_flt(x0i, x1i);
1530
49.8M
  x_r[2] = ia_sub_flt(x0r, x1r);
1531
49.8M
  x_i[2] = ia_sub_flt(x0i, x1i);
1532
49.8M
  x_r[1] = ia_add_flt(x2r, x3i);
1533
49.8M
  x_i[1] = ia_sub_flt(x2i, x3r);
1534
49.8M
  x_r[3] = ia_sub_flt(x2r, x3i);
1535
49.8M
  x_i[3] = ia_add_flt(x2i, x3r);
1536
49.8M
  return;
1537
49.8M
}
1538
48.6k
VOID iusace_complex_fft_4096(FLOAT32 *ptr_x_r, FLOAT32 *ptr_x_i, FLOAT32 *ptr_scratch_buf) {
1539
48.6k
  FLOAT32 *ptr_data_r;
1540
48.6k
  FLOAT32 *ptr_data_i;
1541
48.6k
  WORD32 fft_len = 4096;
1542
48.6k
  FLOAT32 *ptr_fft_interim_buf = &ptr_scratch_buf[2 * fft_len];
1543
48.6k
  WORD32 i, j;
1544
48.6k
  WORD32 dim2 = fft_len >> 10;
1545
48.6k
  WORD32 dim1 = fft_len / dim2;
1546
48.6k
  WORD32 fac = 4;
1547
1548
243k
  for (i = 0; i < dim2; i++) {
1549
194k
    ptr_data_r = &ptr_scratch_buf[(2 * i + 0) * dim1];
1550
194k
    ptr_data_i = &ptr_scratch_buf[(2 * i + 1) * dim1];
1551
199M
    for (j = 0; j < dim1; j++) {
1552
199M
      ptr_data_r[j] = ptr_x_r[(dim2 * j + i)];
1553
199M
      ptr_data_i[j] = 0;
1554
199M
    }
1555
194k
    ixheaace_rad2_cplx_fft(ptr_data_r, ptr_data_i, dim1, ptr_fft_interim_buf);
1556
194k
  }
1557
48.6k
  ptr_data_r = &ptr_scratch_buf[0];
1558
48.6k
  ptr_data_i = &ptr_scratch_buf[0];
1559
49.8M
  for (i = 0; i < dim1; i++) {
1560
49.8M
    FLOAT32 *ptr_cos_val = (FLOAT32 *)&ia_mixed_rad_twiddle_cos[i * dim2 * fac];
1561
49.8M
    FLOAT32 *ptr_sin_val = (FLOAT32 *)&ia_mixed_rad_twiddle_sin[i * dim2 * fac];
1562
249M
    for (j = 0; j < dim2; j++) {
1563
199M
      FLOAT32 real = ptr_data_r[(2 * j + 0) * dim1 + i];
1564
199M
      FLOAT32 imag = ptr_data_i[(2 * j + 1) * dim1 + i];
1565
199M
      FLOAT32 cos_val = ptr_cos_val[j * fac];
1566
199M
      FLOAT32 sin_val = ptr_sin_val[j * fac];
1567
199M
      FLOAT32 temp_real = (FLOAT32)(real * cos_val + imag * sin_val);
1568
199M
      FLOAT32 temp_imag = (FLOAT32)(imag * cos_val - real * sin_val);
1569
199M
      ptr_fft_interim_buf[(2 * i + 0) * dim2 + j] = temp_real;
1570
199M
      ptr_fft_interim_buf[(2 * i + 1) * dim2 + j] = temp_imag;
1571
199M
    }
1572
49.8M
  }
1573
49.8M
  for (i = 0; i < dim1; i++) {
1574
49.8M
    ptr_data_r = &ptr_fft_interim_buf[(2 * i + 0) * dim2];
1575
49.8M
    ptr_data_i = &ptr_fft_interim_buf[(2 * i + 1) * dim2];
1576
49.8M
    ixheaace_cplx_fft_4(ptr_data_r, ptr_data_i);
1577
49.8M
  }
1578
48.6k
  ptr_data_r = &ptr_fft_interim_buf[0];
1579
48.6k
  ptr_data_i = &ptr_fft_interim_buf[0];
1580
49.8M
  for (i = 0; i < dim1; i++) {
1581
249M
    for (j = 0; j < dim2; j++) {
1582
199M
      ptr_x_r[(j * dim1 + i)] = ptr_data_r[(2 * i + 0) * dim2 + j];
1583
199M
      ptr_x_i[(j * dim1 + i)] = ptr_data_i[(2 * i + 1) * dim2 + j];
1584
199M
    }
1585
49.8M
  }
1586
48.6k
}