Coverage Report

Created: 2025-08-28 07:12

/src/libvpx/vpx_dsp/x86/inv_txfm_avx2.c
Line
Count
Source
1
/*
2
 *  Copyright (c) 2023 The WebM project authors. All Rights Reserved.
3
 *
4
 *  Use of this source code is governed by a BSD-style license
5
 *  that can be found in the LICENSE file in the root of the source
6
 *  tree. An additional intellectual property rights grant can be found
7
 *  in the file PATENTS.  All contributing project authors may
8
 *  be found in the AUTHORS file in the root of the source tree.
9
 */
10
11
#include <immintrin.h>  // AVX2
12
13
#include "./vpx_dsp_rtcd.h"
14
#include "vpx_dsp/txfm_common.h"
15
16
#define PAIR256_SET_EPI16(a, b)                                            \
17
955M
  _mm256_set_epi16((int16_t)(b), (int16_t)(a), (int16_t)(b), (int16_t)(a), \
18
955M
                   (int16_t)(b), (int16_t)(a), (int16_t)(b), (int16_t)(a), \
19
955M
                   (int16_t)(b), (int16_t)(a), (int16_t)(b), (int16_t)(a), \
20
955M
                   (int16_t)(b), (int16_t)(a), (int16_t)(b), (int16_t)(a))
21
22
static INLINE void idct_load16x16(const tran_low_t *input, __m256i *in,
23
15.3M
                                  int stride) {
24
15.3M
  int i;
25
  // Load 16x16 values
26
260M
  for (i = 0; i < 16; i++) {
27
245M
#if CONFIG_VP9_HIGHBITDEPTH
28
245M
    const __m128i in0 = _mm_loadu_si128((const __m128i *)(input + i * stride));
29
245M
    const __m128i in1 =
30
245M
        _mm_loadu_si128((const __m128i *)((input + i * stride) + 4));
31
245M
    const __m128i in2 =
32
245M
        _mm_loadu_si128((const __m128i *)((input + i * stride) + 8));
33
245M
    const __m128i in3 =
34
245M
        _mm_loadu_si128((const __m128i *)((input + i * stride) + 12));
35
245M
    const __m128i ls = _mm_packs_epi32(in0, in1);
36
245M
    const __m128i rs = _mm_packs_epi32(in2, in3);
37
245M
    in[i] = _mm256_inserti128_si256(_mm256_castsi128_si256(ls), rs, 1);
38
#else
39
    in[i] = _mm256_load_si256((const __m256i *)(input + i * stride));
40
#endif
41
245M
  }
42
15.3M
}
43
44
1.91G
static INLINE __m256i dct_round_shift_avx2(__m256i in) {
45
1.91G
  const __m256i t = _mm256_add_epi32(in, _mm256_set1_epi32(DCT_CONST_ROUNDING));
46
1.91G
  return _mm256_srai_epi32(t, DCT_CONST_BITS);
47
1.91G
}
48
49
1.91G
static INLINE __m256i idct_madd_round_shift_avx2(__m256i *in, __m256i *cospi) {
50
1.91G
  const __m256i t = _mm256_madd_epi16(*in, *cospi);
51
1.91G
  return dct_round_shift_avx2(t);
52
1.91G
}
53
54
// Calculate the dot product between in0/1 and x and wrap to short.
55
static INLINE __m256i idct_calc_wraplow_avx2(__m256i *in0, __m256i *in1,
56
955M
                                             __m256i *x) {
57
955M
  const __m256i t0 = idct_madd_round_shift_avx2(in0, x);
58
955M
  const __m256i t1 = idct_madd_round_shift_avx2(in1, x);
59
955M
  return _mm256_packs_epi32(t0, t1);
60
955M
}
61
62
// Multiply elements by constants and add them together.
63
static INLINE void butterfly16(__m256i in0, __m256i in1, int c0, int c1,
64
477M
                               __m256i *out0, __m256i *out1) {
65
477M
  __m256i cst0 = PAIR256_SET_EPI16(c0, -c1);
66
477M
  __m256i cst1 = PAIR256_SET_EPI16(c1, c0);
67
477M
  __m256i lo = _mm256_unpacklo_epi16(in0, in1);
68
477M
  __m256i hi = _mm256_unpackhi_epi16(in0, in1);
69
477M
  *out0 = idct_calc_wraplow_avx2(&lo, &hi, &cst0);
70
477M
  *out1 = idct_calc_wraplow_avx2(&lo, &hi, &cst1);
71
477M
}
72
73
9.68M
static INLINE void idct16_16col(__m256i *in, __m256i *out) {
74
9.68M
  __m256i step1[16], step2[16];
75
76
  // stage 2
77
9.68M
  butterfly16(in[1], in[15], cospi_30_64, cospi_2_64, &step2[8], &step2[15]);
78
9.68M
  butterfly16(in[9], in[7], cospi_14_64, cospi_18_64, &step2[9], &step2[14]);
79
9.68M
  butterfly16(in[5], in[11], cospi_22_64, cospi_10_64, &step2[10], &step2[13]);
80
9.68M
  butterfly16(in[13], in[3], cospi_6_64, cospi_26_64, &step2[11], &step2[12]);
81
82
  // stage 3
83
9.68M
  butterfly16(in[2], in[14], cospi_28_64, cospi_4_64, &step1[4], &step1[7]);
84
9.68M
  butterfly16(in[10], in[6], cospi_12_64, cospi_20_64, &step1[5], &step1[6]);
85
9.68M
  step1[8] = _mm256_add_epi16(step2[8], step2[9]);
86
9.68M
  step1[9] = _mm256_sub_epi16(step2[8], step2[9]);
87
9.68M
  step1[10] = _mm256_sub_epi16(step2[11], step2[10]);
88
9.68M
  step1[11] = _mm256_add_epi16(step2[10], step2[11]);
89
9.68M
  step1[12] = _mm256_add_epi16(step2[12], step2[13]);
90
9.68M
  step1[13] = _mm256_sub_epi16(step2[12], step2[13]);
91
9.68M
  step1[14] = _mm256_sub_epi16(step2[15], step2[14]);
92
9.68M
  step1[15] = _mm256_add_epi16(step2[14], step2[15]);
93
94
  // stage 4
95
9.68M
  butterfly16(in[0], in[8], cospi_16_64, cospi_16_64, &step2[1], &step2[0]);
96
9.68M
  butterfly16(in[4], in[12], cospi_24_64, cospi_8_64, &step2[2], &step2[3]);
97
9.68M
  butterfly16(step1[14], step1[9], cospi_24_64, cospi_8_64, &step2[9],
98
9.68M
              &step2[14]);
99
9.68M
  butterfly16(step1[10], step1[13], -cospi_8_64, -cospi_24_64, &step2[13],
100
9.68M
              &step2[10]);
101
9.68M
  step2[5] = _mm256_sub_epi16(step1[4], step1[5]);
102
9.68M
  step1[4] = _mm256_add_epi16(step1[4], step1[5]);
103
9.68M
  step2[6] = _mm256_sub_epi16(step1[7], step1[6]);
104
9.68M
  step1[7] = _mm256_add_epi16(step1[6], step1[7]);
105
9.68M
  step2[8] = step1[8];
106
9.68M
  step2[11] = step1[11];
107
9.68M
  step2[12] = step1[12];
108
9.68M
  step2[15] = step1[15];
109
110
  // stage 5
111
9.68M
  step1[0] = _mm256_add_epi16(step2[0], step2[3]);
112
9.68M
  step1[1] = _mm256_add_epi16(step2[1], step2[2]);
113
9.68M
  step1[2] = _mm256_sub_epi16(step2[1], step2[2]);
114
9.68M
  step1[3] = _mm256_sub_epi16(step2[0], step2[3]);
115
9.68M
  butterfly16(step2[6], step2[5], cospi_16_64, cospi_16_64, &step1[5],
116
9.68M
              &step1[6]);
117
9.68M
  step1[8] = _mm256_add_epi16(step2[8], step2[11]);
118
9.68M
  step1[9] = _mm256_add_epi16(step2[9], step2[10]);
119
9.68M
  step1[10] = _mm256_sub_epi16(step2[9], step2[10]);
120
9.68M
  step1[11] = _mm256_sub_epi16(step2[8], step2[11]);
121
9.68M
  step1[12] = _mm256_sub_epi16(step2[15], step2[12]);
122
9.68M
  step1[13] = _mm256_sub_epi16(step2[14], step2[13]);
123
9.68M
  step1[14] = _mm256_add_epi16(step2[14], step2[13]);
124
9.68M
  step1[15] = _mm256_add_epi16(step2[15], step2[12]);
125
126
  // stage 6
127
9.68M
  step2[0] = _mm256_add_epi16(step1[0], step1[7]);
128
9.68M
  step2[1] = _mm256_add_epi16(step1[1], step1[6]);
129
9.68M
  step2[2] = _mm256_add_epi16(step1[2], step1[5]);
130
9.68M
  step2[3] = _mm256_add_epi16(step1[3], step1[4]);
131
9.68M
  step2[4] = _mm256_sub_epi16(step1[3], step1[4]);
132
9.68M
  step2[5] = _mm256_sub_epi16(step1[2], step1[5]);
133
9.68M
  step2[6] = _mm256_sub_epi16(step1[1], step1[6]);
134
9.68M
  step2[7] = _mm256_sub_epi16(step1[0], step1[7]);
135
9.68M
  butterfly16(step1[13], step1[10], cospi_16_64, cospi_16_64, &step2[10],
136
9.68M
              &step2[13]);
137
9.68M
  butterfly16(step1[12], step1[11], cospi_16_64, cospi_16_64, &step2[11],
138
9.68M
              &step2[12]);
139
140
  // stage 7
141
9.68M
  out[0] = _mm256_add_epi16(step2[0], step1[15]);
142
9.68M
  out[1] = _mm256_add_epi16(step2[1], step1[14]);
143
9.68M
  out[2] = _mm256_add_epi16(step2[2], step2[13]);
144
9.68M
  out[3] = _mm256_add_epi16(step2[3], step2[12]);
145
9.68M
  out[4] = _mm256_add_epi16(step2[4], step2[11]);
146
9.68M
  out[5] = _mm256_add_epi16(step2[5], step2[10]);
147
9.68M
  out[6] = _mm256_add_epi16(step2[6], step1[9]);
148
9.68M
  out[7] = _mm256_add_epi16(step2[7], step1[8]);
149
9.68M
  out[8] = _mm256_sub_epi16(step2[7], step1[8]);
150
9.68M
  out[9] = _mm256_sub_epi16(step2[6], step1[9]);
151
9.68M
  out[10] = _mm256_sub_epi16(step2[5], step2[10]);
152
9.68M
  out[11] = _mm256_sub_epi16(step2[4], step2[11]);
153
9.68M
  out[12] = _mm256_sub_epi16(step2[3], step2[12]);
154
9.68M
  out[13] = _mm256_sub_epi16(step2[2], step2[13]);
155
9.68M
  out[14] = _mm256_sub_epi16(step2[1], step1[14]);
156
9.68M
  out[15] = _mm256_sub_epi16(step2[0], step1[15]);
157
9.68M
}
158
159
249M
static INLINE void recon_and_store16(uint8_t *dest, __m256i in_x) {
160
249M
  const __m256i zero = _mm256_setzero_si256();
161
249M
  __m256i d0 = _mm256_castsi128_si256(_mm_loadu_si128((__m128i *)(dest)));
162
249M
  d0 = _mm256_permute4x64_epi64(d0, 0xd8);
163
249M
  d0 = _mm256_unpacklo_epi8(d0, zero);
164
249M
  d0 = _mm256_add_epi16(in_x, d0);
165
249M
  d0 = _mm256_packus_epi16(
166
249M
      d0, _mm256_castsi128_si256(_mm256_extractf128_si256(d0, 1)));
167
168
249M
  _mm_storeu_si128((__m128i *)dest, _mm256_castsi256_si128(d0));
169
249M
}
170
171
77.4M
static INLINE void write_buffer_16x1(uint8_t *dest, __m256i in) {
172
77.4M
  const __m256i final_rounding = _mm256_set1_epi16(1 << 5);
173
77.4M
  __m256i out;
174
77.4M
  out = _mm256_adds_epi16(in, final_rounding);
175
77.4M
  out = _mm256_srai_epi16(out, 6);
176
77.4M
  recon_and_store16(dest, out);
177
77.4M
}
178
179
5.37M
static INLINE void store_buffer_16x32(__m256i *in, uint8_t *dst, int stride) {
180
5.37M
  const __m256i final_rounding = _mm256_set1_epi16(1 << 5);
181
5.37M
  int j = 0;
182
91.4M
  while (j < 32) {
183
86.0M
    in[j] = _mm256_adds_epi16(in[j], final_rounding);
184
86.0M
    in[j + 1] = _mm256_adds_epi16(in[j + 1], final_rounding);
185
186
86.0M
    in[j] = _mm256_srai_epi16(in[j], 6);
187
86.0M
    in[j + 1] = _mm256_srai_epi16(in[j + 1], 6);
188
189
86.0M
    recon_and_store16(dst, in[j]);
190
86.0M
    dst += stride;
191
86.0M
    recon_and_store16(dst, in[j + 1]);
192
86.0M
    dst += stride;
193
86.0M
    j += 2;
194
86.0M
  }
195
5.37M
}
196
197
61.4M
static INLINE void transpose2_8x8_avx2(__m256i *in, __m256i *out) {
198
61.4M
  int i;
199
61.4M
  __m256i t[16], u[16];
200
  // (1st, 2nd) ==> (lo, hi)
201
  //   (0, 1)   ==>  (0, 1)
202
  //   (2, 3)   ==>  (2, 3)
203
  //   (4, 5)   ==>  (4, 5)
204
  //   (6, 7)   ==>  (6, 7)
205
307M
  for (i = 0; i < 4; i++) {
206
245M
    t[2 * i] = _mm256_unpacklo_epi16(in[2 * i], in[2 * i + 1]);
207
245M
    t[2 * i + 1] = _mm256_unpackhi_epi16(in[2 * i], in[2 * i + 1]);
208
245M
  }
209
210
  // (1st, 2nd) ==> (lo, hi)
211
  //   (0, 2)   ==>  (0, 2)
212
  //   (1, 3)   ==>  (1, 3)
213
  //   (4, 6)   ==>  (4, 6)
214
  //   (5, 7)   ==>  (5, 7)
215
184M
  for (i = 0; i < 2; i++) {
216
122M
    u[i] = _mm256_unpacklo_epi32(t[i], t[i + 2]);
217
122M
    u[i + 2] = _mm256_unpackhi_epi32(t[i], t[i + 2]);
218
219
122M
    u[i + 4] = _mm256_unpacklo_epi32(t[i + 4], t[i + 6]);
220
122M
    u[i + 6] = _mm256_unpackhi_epi32(t[i + 4], t[i + 6]);
221
122M
  }
222
223
  // (1st, 2nd) ==> (lo, hi)
224
  //   (0, 4)   ==>  (0, 1)
225
  //   (1, 5)   ==>  (4, 5)
226
  //   (2, 6)   ==>  (2, 3)
227
  //   (3, 7)   ==>  (6, 7)
228
184M
  for (i = 0; i < 2; i++) {
229
122M
    out[2 * i] = _mm256_unpacklo_epi64(u[2 * i], u[2 * i + 4]);
230
122M
    out[2 * i + 1] = _mm256_unpackhi_epi64(u[2 * i], u[2 * i + 4]);
231
232
122M
    out[2 * i + 4] = _mm256_unpacklo_epi64(u[2 * i + 1], u[2 * i + 5]);
233
122M
    out[2 * i + 5] = _mm256_unpackhi_epi64(u[2 * i + 1], u[2 * i + 5]);
234
122M
  }
235
61.4M
}
236
237
30.7M
static INLINE void transpose_16bit_16x16_avx2(__m256i *in, __m256i *out) {
238
30.7M
  __m256i t[16];
239
240
30.7M
#define LOADL(idx)                                                            \
241
245M
  t[idx] = _mm256_castsi128_si256(_mm_load_si128((__m128i const *)&in[idx])); \
242
245M
  t[idx] = _mm256_inserti128_si256(                                           \
243
245M
      t[idx], _mm_load_si128((__m128i const *)&in[(idx) + 8]), 1);
244
245
30.7M
#define LOADR(idx)                                                           \
246
245M
  t[8 + (idx)] =                                                             \
247
245M
      _mm256_castsi128_si256(_mm_load_si128((__m128i const *)&in[idx] + 1)); \
248
245M
  t[8 + (idx)] = _mm256_inserti128_si256(                                    \
249
245M
      t[8 + (idx)], _mm_load_si128((__m128i const *)&in[(idx) + 8] + 1), 1);
250
251
  // load left 8x16
252
30.7M
  LOADL(0)
253
30.7M
  LOADL(1)
254
30.7M
  LOADL(2)
255
30.7M
  LOADL(3)
256
30.7M
  LOADL(4)
257
30.7M
  LOADL(5)
258
30.7M
  LOADL(6)
259
30.7M
  LOADL(7)
260
261
  // load right 8x16
262
30.7M
  LOADR(0)
263
30.7M
  LOADR(1)
264
30.7M
  LOADR(2)
265
30.7M
  LOADR(3)
266
30.7M
  LOADR(4)
267
30.7M
  LOADR(5)
268
30.7M
  LOADR(6)
269
30.7M
  LOADR(7)
270
271
  // get the top 16x8 result
272
30.7M
  transpose2_8x8_avx2(t, out);
273
  // get the bottom 16x8 result
274
30.7M
  transpose2_8x8_avx2(&t[8], &out[8]);
275
30.7M
}
276
277
void vpx_idct16x16_256_add_avx2(const tran_low_t *input, uint8_t *dest,
278
4.84M
                                int stride) {
279
4.84M
  int i;
280
4.84M
  __m256i in[16];
281
282
  // Load 16x16 values
283
4.84M
  idct_load16x16(input, in, 16);
284
285
4.84M
  transpose_16bit_16x16_avx2(in, in);
286
4.84M
  idct16_16col(in, in);
287
288
4.84M
  transpose_16bit_16x16_avx2(in, in);
289
4.84M
  idct16_16col(in, in);
290
291
82.2M
  for (i = 0; i < 16; ++i) {
292
77.4M
    write_buffer_16x1(dest + i * stride, in[i]);
293
77.4M
  }
294
4.84M
}
295
296
// Only do addition and subtraction butterfly, size = 16, 32
297
21.3M
static INLINE void add_sub_butterfly_avx2(__m256i *in, __m256i *out, int size) {
298
21.3M
  int i = 0;
299
21.3M
  const int num = size >> 1;
300
21.3M
  const int bound = size - 1;
301
277M
  while (i < num) {
302
256M
    out[i] = _mm256_add_epi16(in[i], in[bound - i]);
303
256M
    out[bound - i] = _mm256_sub_epi16(in[i], in[bound - i]);
304
256M
    i++;
305
256M
  }
306
21.3M
}
307
308
// For each 16x32 block __m256i in[32],
309
// Input with index, 0, 4, 8, 12, 16, 20, 24, 28
310
// output pixels: 0-7 in __m256i out[32]
311
10.6M
static INLINE void idct32_1024_16x32_quarter_1(__m256i *in, __m256i *out) {
312
10.6M
  __m256i step1[8], step2[8];
313
314
  // stage 3
315
10.6M
  butterfly16(in[4], in[28], cospi_28_64, cospi_4_64, &step1[4], &step1[7]);
316
10.6M
  butterfly16(in[20], in[12], cospi_12_64, cospi_20_64, &step1[5], &step1[6]);
317
318
  // stage 4
319
10.6M
  butterfly16(in[0], in[16], cospi_16_64, cospi_16_64, &step2[1], &step2[0]);
320
10.6M
  butterfly16(in[8], in[24], cospi_24_64, cospi_8_64, &step2[2], &step2[3]);
321
10.6M
  step2[4] = _mm256_add_epi16(step1[4], step1[5]);
322
10.6M
  step2[5] = _mm256_sub_epi16(step1[4], step1[5]);
323
10.6M
  step2[6] = _mm256_sub_epi16(step1[7], step1[6]);
324
10.6M
  step2[7] = _mm256_add_epi16(step1[7], step1[6]);
325
326
  // stage 5
327
10.6M
  step1[0] = _mm256_add_epi16(step2[0], step2[3]);
328
10.6M
  step1[1] = _mm256_add_epi16(step2[1], step2[2]);
329
10.6M
  step1[2] = _mm256_sub_epi16(step2[1], step2[2]);
330
10.6M
  step1[3] = _mm256_sub_epi16(step2[0], step2[3]);
331
10.6M
  step1[4] = step2[4];
332
10.6M
  butterfly16(step2[6], step2[5], cospi_16_64, cospi_16_64, &step1[5],
333
10.6M
              &step1[6]);
334
10.6M
  step1[7] = step2[7];
335
336
  // stage 6
337
10.6M
  out[0] = _mm256_add_epi16(step1[0], step1[7]);
338
10.6M
  out[1] = _mm256_add_epi16(step1[1], step1[6]);
339
10.6M
  out[2] = _mm256_add_epi16(step1[2], step1[5]);
340
10.6M
  out[3] = _mm256_add_epi16(step1[3], step1[4]);
341
10.6M
  out[4] = _mm256_sub_epi16(step1[3], step1[4]);
342
10.6M
  out[5] = _mm256_sub_epi16(step1[2], step1[5]);
343
10.6M
  out[6] = _mm256_sub_epi16(step1[1], step1[6]);
344
10.6M
  out[7] = _mm256_sub_epi16(step1[0], step1[7]);
345
10.6M
}
346
347
static INLINE void idct32_16x32_quarter_2_stage_4_to_6(__m256i *step1,
348
10.6M
                                                       __m256i *out) {
349
10.6M
  __m256i step2[32];
350
351
  // stage 4
352
10.6M
  step2[8] = step1[8];
353
10.6M
  step2[15] = step1[15];
354
10.6M
  butterfly16(step1[14], step1[9], cospi_24_64, cospi_8_64, &step2[9],
355
10.6M
              &step2[14]);
356
10.6M
  butterfly16(step1[13], step1[10], -cospi_8_64, cospi_24_64, &step2[10],
357
10.6M
              &step2[13]);
358
10.6M
  step2[11] = step1[11];
359
10.6M
  step2[12] = step1[12];
360
361
  // stage 5
362
10.6M
  step1[8] = _mm256_add_epi16(step2[8], step2[11]);
363
10.6M
  step1[9] = _mm256_add_epi16(step2[9], step2[10]);
364
10.6M
  step1[10] = _mm256_sub_epi16(step2[9], step2[10]);
365
10.6M
  step1[11] = _mm256_sub_epi16(step2[8], step2[11]);
366
10.6M
  step1[12] = _mm256_sub_epi16(step2[15], step2[12]);
367
10.6M
  step1[13] = _mm256_sub_epi16(step2[14], step2[13]);
368
10.6M
  step1[14] = _mm256_add_epi16(step2[14], step2[13]);
369
10.6M
  step1[15] = _mm256_add_epi16(step2[15], step2[12]);
370
371
  // stage 6
372
10.6M
  out[8] = step1[8];
373
10.6M
  out[9] = step1[9];
374
10.6M
  butterfly16(step1[13], step1[10], cospi_16_64, cospi_16_64, &out[10],
375
10.6M
              &out[13]);
376
10.6M
  butterfly16(step1[12], step1[11], cospi_16_64, cospi_16_64, &out[11],
377
10.6M
              &out[12]);
378
10.6M
  out[14] = step1[14];
379
10.6M
  out[15] = step1[15];
380
10.6M
}
381
382
// For each 16x32 block __m256i in[32],
383
// Input with index, 2, 6, 10, 14, 18, 22, 26, 30
384
// output pixels: 8-15 in __m256i out[32]
385
10.6M
static INLINE void idct32_1024_16x32_quarter_2(__m256i *in, __m256i *out) {
386
10.6M
  __m256i step1[16], step2[16];
387
388
  // stage 2
389
10.6M
  butterfly16(in[2], in[30], cospi_30_64, cospi_2_64, &step2[8], &step2[15]);
390
10.6M
  butterfly16(in[18], in[14], cospi_14_64, cospi_18_64, &step2[9], &step2[14]);
391
10.6M
  butterfly16(in[10], in[22], cospi_22_64, cospi_10_64, &step2[10], &step2[13]);
392
10.6M
  butterfly16(in[26], in[6], cospi_6_64, cospi_26_64, &step2[11], &step2[12]);
393
394
  // stage 3
395
10.6M
  step1[8] = _mm256_add_epi16(step2[8], step2[9]);
396
10.6M
  step1[9] = _mm256_sub_epi16(step2[8], step2[9]);
397
10.6M
  step1[10] = _mm256_sub_epi16(step2[11], step2[10]);
398
10.6M
  step1[11] = _mm256_add_epi16(step2[11], step2[10]);
399
10.6M
  step1[12] = _mm256_add_epi16(step2[12], step2[13]);
400
10.6M
  step1[13] = _mm256_sub_epi16(step2[12], step2[13]);
401
10.6M
  step1[14] = _mm256_sub_epi16(step2[15], step2[14]);
402
10.6M
  step1[15] = _mm256_add_epi16(step2[15], step2[14]);
403
404
10.6M
  idct32_16x32_quarter_2_stage_4_to_6(step1, out);
405
10.6M
}
406
407
static INLINE void idct32_16x32_quarter_3_4_stage_4_to_7(__m256i *step1,
408
10.6M
                                                         __m256i *out) {
409
10.6M
  __m256i step2[32];
410
411
  // stage 4
412
10.6M
  step2[16] = _mm256_add_epi16(step1[16], step1[19]);
413
10.6M
  step2[17] = _mm256_add_epi16(step1[17], step1[18]);
414
10.6M
  step2[18] = _mm256_sub_epi16(step1[17], step1[18]);
415
10.6M
  step2[19] = _mm256_sub_epi16(step1[16], step1[19]);
416
10.6M
  step2[20] = _mm256_sub_epi16(step1[23], step1[20]);
417
10.6M
  step2[21] = _mm256_sub_epi16(step1[22], step1[21]);
418
10.6M
  step2[22] = _mm256_add_epi16(step1[22], step1[21]);
419
10.6M
  step2[23] = _mm256_add_epi16(step1[23], step1[20]);
420
421
10.6M
  step2[24] = _mm256_add_epi16(step1[24], step1[27]);
422
10.6M
  step2[25] = _mm256_add_epi16(step1[25], step1[26]);
423
10.6M
  step2[26] = _mm256_sub_epi16(step1[25], step1[26]);
424
10.6M
  step2[27] = _mm256_sub_epi16(step1[24], step1[27]);
425
10.6M
  step2[28] = _mm256_sub_epi16(step1[31], step1[28]);
426
10.6M
  step2[29] = _mm256_sub_epi16(step1[30], step1[29]);
427
10.6M
  step2[30] = _mm256_add_epi16(step1[29], step1[30]);
428
10.6M
  step2[31] = _mm256_add_epi16(step1[28], step1[31]);
429
430
  // stage 5
431
10.6M
  step1[16] = step2[16];
432
10.6M
  step1[17] = step2[17];
433
10.6M
  butterfly16(step2[29], step2[18], cospi_24_64, cospi_8_64, &step1[18],
434
10.6M
              &step1[29]);
435
10.6M
  butterfly16(step2[28], step2[19], cospi_24_64, cospi_8_64, &step1[19],
436
10.6M
              &step1[28]);
437
10.6M
  butterfly16(step2[27], step2[20], -cospi_8_64, cospi_24_64, &step1[20],
438
10.6M
              &step1[27]);
439
10.6M
  butterfly16(step2[26], step2[21], -cospi_8_64, cospi_24_64, &step1[21],
440
10.6M
              &step1[26]);
441
10.6M
  step1[22] = step2[22];
442
10.6M
  step1[23] = step2[23];
443
10.6M
  step1[24] = step2[24];
444
10.6M
  step1[25] = step2[25];
445
10.6M
  step1[30] = step2[30];
446
10.6M
  step1[31] = step2[31];
447
448
  // stage 6
449
10.6M
  out[16] = _mm256_add_epi16(step1[16], step1[23]);
450
10.6M
  out[17] = _mm256_add_epi16(step1[17], step1[22]);
451
10.6M
  out[18] = _mm256_add_epi16(step1[18], step1[21]);
452
10.6M
  out[19] = _mm256_add_epi16(step1[19], step1[20]);
453
10.6M
  step2[20] = _mm256_sub_epi16(step1[19], step1[20]);
454
10.6M
  step2[21] = _mm256_sub_epi16(step1[18], step1[21]);
455
10.6M
  step2[22] = _mm256_sub_epi16(step1[17], step1[22]);
456
10.6M
  step2[23] = _mm256_sub_epi16(step1[16], step1[23]);
457
458
10.6M
  step2[24] = _mm256_sub_epi16(step1[31], step1[24]);
459
10.6M
  step2[25] = _mm256_sub_epi16(step1[30], step1[25]);
460
10.6M
  step2[26] = _mm256_sub_epi16(step1[29], step1[26]);
461
10.6M
  step2[27] = _mm256_sub_epi16(step1[28], step1[27]);
462
10.6M
  out[28] = _mm256_add_epi16(step1[27], step1[28]);
463
10.6M
  out[29] = _mm256_add_epi16(step1[26], step1[29]);
464
10.6M
  out[30] = _mm256_add_epi16(step1[25], step1[30]);
465
10.6M
  out[31] = _mm256_add_epi16(step1[24], step1[31]);
466
467
  // stage 7
468
10.6M
  butterfly16(step2[27], step2[20], cospi_16_64, cospi_16_64, &out[20],
469
10.6M
              &out[27]);
470
10.6M
  butterfly16(step2[26], step2[21], cospi_16_64, cospi_16_64, &out[21],
471
10.6M
              &out[26]);
472
10.6M
  butterfly16(step2[25], step2[22], cospi_16_64, cospi_16_64, &out[22],
473
10.6M
              &out[25]);
474
10.6M
  butterfly16(step2[24], step2[23], cospi_16_64, cospi_16_64, &out[23],
475
10.6M
              &out[24]);
476
10.6M
}
477
478
10.6M
static INLINE void idct32_1024_16x32_quarter_1_2(__m256i *in, __m256i *out) {
479
10.6M
  __m256i temp[16];
480
481
  // For each 16x32 block __m256i in[32],
482
  // Input with index, 0, 4, 8, 12, 16, 20, 24, 28
483
  // output pixels: 0-7 in __m256i out[32]
484
10.6M
  idct32_1024_16x32_quarter_1(in, temp);
485
486
  // Input with index, 2, 6, 10, 14, 18, 22, 26, 30
487
  // output pixels: 8-15 in __m256i out[32]
488
10.6M
  idct32_1024_16x32_quarter_2(in, temp);
489
490
  // stage 7
491
10.6M
  add_sub_butterfly_avx2(temp, out, 16);
492
10.6M
}
493
494
// For each 16x32 block __m256i in[32],
495
// Input with odd index,
496
// 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31
497
// output pixels: 16-23, 24-31 in __m256i out[32]
498
10.6M
static INLINE void idct32_1024_16x32_quarter_3_4(__m256i *in, __m256i *out) {
499
10.6M
  __m256i step1[32], step2[32];
500
501
  // stage 1
502
10.6M
  butterfly16(in[1], in[31], cospi_31_64, cospi_1_64, &step1[16], &step1[31]);
503
10.6M
  butterfly16(in[17], in[15], cospi_15_64, cospi_17_64, &step1[17], &step1[30]);
504
10.6M
  butterfly16(in[9], in[23], cospi_23_64, cospi_9_64, &step1[18], &step1[29]);
505
10.6M
  butterfly16(in[25], in[7], cospi_7_64, cospi_25_64, &step1[19], &step1[28]);
506
507
10.6M
  butterfly16(in[5], in[27], cospi_27_64, cospi_5_64, &step1[20], &step1[27]);
508
10.6M
  butterfly16(in[21], in[11], cospi_11_64, cospi_21_64, &step1[21], &step1[26]);
509
510
10.6M
  butterfly16(in[13], in[19], cospi_19_64, cospi_13_64, &step1[22], &step1[25]);
511
10.6M
  butterfly16(in[29], in[3], cospi_3_64, cospi_29_64, &step1[23], &step1[24]);
512
513
  // stage 2
514
10.6M
  step2[16] = _mm256_add_epi16(step1[16], step1[17]);
515
10.6M
  step2[17] = _mm256_sub_epi16(step1[16], step1[17]);
516
10.6M
  step2[18] = _mm256_sub_epi16(step1[19], step1[18]);
517
10.6M
  step2[19] = _mm256_add_epi16(step1[19], step1[18]);
518
10.6M
  step2[20] = _mm256_add_epi16(step1[20], step1[21]);
519
10.6M
  step2[21] = _mm256_sub_epi16(step1[20], step1[21]);
520
10.6M
  step2[22] = _mm256_sub_epi16(step1[23], step1[22]);
521
10.6M
  step2[23] = _mm256_add_epi16(step1[23], step1[22]);
522
523
10.6M
  step2[24] = _mm256_add_epi16(step1[24], step1[25]);
524
10.6M
  step2[25] = _mm256_sub_epi16(step1[24], step1[25]);
525
10.6M
  step2[26] = _mm256_sub_epi16(step1[27], step1[26]);
526
10.6M
  step2[27] = _mm256_add_epi16(step1[27], step1[26]);
527
10.6M
  step2[28] = _mm256_add_epi16(step1[28], step1[29]);
528
10.6M
  step2[29] = _mm256_sub_epi16(step1[28], step1[29]);
529
10.6M
  step2[30] = _mm256_sub_epi16(step1[31], step1[30]);
530
10.6M
  step2[31] = _mm256_add_epi16(step1[31], step1[30]);
531
532
  // stage 3
533
10.6M
  step1[16] = step2[16];
534
10.6M
  step1[31] = step2[31];
535
10.6M
  butterfly16(step2[30], step2[17], cospi_28_64, cospi_4_64, &step1[17],
536
10.6M
              &step1[30]);
537
10.6M
  butterfly16(step2[29], step2[18], -cospi_4_64, cospi_28_64, &step1[18],
538
10.6M
              &step1[29]);
539
10.6M
  step1[19] = step2[19];
540
10.6M
  step1[20] = step2[20];
541
10.6M
  butterfly16(step2[26], step2[21], cospi_12_64, cospi_20_64, &step1[21],
542
10.6M
              &step1[26]);
543
10.6M
  butterfly16(step2[25], step2[22], -cospi_20_64, cospi_12_64, &step1[22],
544
10.6M
              &step1[25]);
545
10.6M
  step1[23] = step2[23];
546
10.6M
  step1[24] = step2[24];
547
10.6M
  step1[27] = step2[27];
548
10.6M
  step1[28] = step2[28];
549
550
10.6M
  idct32_16x32_quarter_3_4_stage_4_to_7(step1, out);
551
10.6M
}
552
553
10.6M
static INLINE void idct32_1024_16x32(__m256i *in, __m256i *out) {
554
10.6M
  __m256i temp[32];
555
556
  // For each 16x32 block __m256i in[32],
557
  // Input with index, 0, 4, 8, 12, 16, 20, 24, 28
558
  // output pixels: 0-7 in __m256i out[32]
559
  // AND
560
  // Input with index, 2, 6, 10, 14, 18, 22, 26, 30
561
  // output pixels: 8-15 in __m256i out[32]
562
10.6M
  idct32_1024_16x32_quarter_1_2(in, temp);
563
564
  // For each 16x32 block __m256i in[32],
565
  // Input with odd index,
566
  // 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31
567
  // output pixels: 16-23, 24-31 in __m256i out[32]
568
10.6M
  idct32_1024_16x32_quarter_3_4(in, temp);
569
570
  // final stage
571
10.6M
  add_sub_butterfly_avx2(temp, out, 32);
572
10.6M
}
573
574
void vpx_idct32x32_1024_add_avx2(const tran_low_t *input, uint8_t *dest,
575
2.59M
                                 int stride) {
576
2.59M
  __m256i l[32], r[32], out[32], *in;
577
2.59M
  int i;
578
579
2.59M
  in = l;
580
581
7.79M
  for (i = 0; i < 2; i++) {
582
5.19M
    idct_load16x16(input, in, 32);
583
5.19M
    transpose_16bit_16x16_avx2(in, in);
584
585
5.19M
    idct_load16x16(input + 16, in + 16, 32);
586
5.19M
    transpose_16bit_16x16_avx2(in + 16, in + 16);
587
5.19M
    idct32_1024_16x32(in, in);
588
589
5.19M
    in = r;
590
5.19M
    input += 32 << 4;
591
5.19M
  }
592
593
7.79M
  for (i = 0; i < 32; i += 16) {
594
5.19M
    transpose_16bit_16x16_avx2(l + i, out);
595
5.19M
    transpose_16bit_16x16_avx2(r + i, out + 16);
596
5.19M
    idct32_1024_16x32(out, out);
597
598
5.19M
    store_buffer_16x32(out, dest, stride);
599
5.19M
    dest += 16;
600
5.19M
  }
601
2.59M
}
602
603
// Case when only upper-left 16x16 has non-zero coeff
604
void vpx_idct32x32_135_add_avx2(const tran_low_t *input, uint8_t *dest,
605
90.3k
                                int stride) {
606
90.3k
  __m256i in[32], io[32], out[32];
607
90.3k
  int i;
608
609
1.53M
  for (i = 16; i < 32; i++) {
610
1.44M
    in[i] = _mm256_setzero_si256();
611
1.44M
  }
612
613
  // rows
614
90.3k
  idct_load16x16(input, in, 32);
615
90.3k
  transpose_16bit_16x16_avx2(in, in);
616
90.3k
  idct32_1024_16x32(in, io);
617
618
  // columns
619
271k
  for (i = 0; i < 32; i += 16) {
620
180k
    transpose_16bit_16x16_avx2(io + i, in);
621
180k
    idct32_1024_16x32(in, out);
622
623
180k
    store_buffer_16x32(out, dest, stride);
624
180k
    dest += 16;
625
180k
  }
626
90.3k
}