Coverage Report

Created: 2025-09-08 07:52

/src/aom/av1/common/av1_inv_txfm2d.c
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Source (jump to first uncovered line)
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/*
2
 * Copyright (c) 2016, Alliance for Open Media. All rights reserved.
3
 *
4
 * This source code is subject to the terms of the BSD 2 Clause License and
5
 * the Alliance for Open Media Patent License 1.0. If the BSD 2 Clause License
6
 * was not distributed with this source code in the LICENSE file, you can
7
 * obtain it at www.aomedia.org/license/software. If the Alliance for Open
8
 * Media Patent License 1.0 was not distributed with this source code in the
9
 * PATENTS file, you can obtain it at www.aomedia.org/license/patent.
10
 */
11
12
#include "config/aom_dsp_rtcd.h"
13
#include "config/av1_rtcd.h"
14
15
#include "av1/common/enums.h"
16
#include "av1/common/av1_txfm.h"
17
#include "av1/common/av1_inv_txfm1d.h"
18
#include "av1/common/av1_inv_txfm1d_cfg.h"
19
20
void av1_highbd_iwht4x4_16_add_c(const tran_low_t *input, uint8_t *dest8,
21
1.16M
                                 int stride, int bd) {
22
  /* 4-point reversible, orthonormal inverse Walsh-Hadamard in 3.5 adds,
23
     0.5 shifts per pixel. */
24
1.16M
  int i;
25
1.16M
  tran_low_t output[16];
26
1.16M
  tran_low_t a1, b1, c1, d1, e1;
27
1.16M
  const tran_low_t *ip = input;
28
1.16M
  tran_low_t *op = output;
29
1.16M
  uint16_t *dest = CONVERT_TO_SHORTPTR(dest8);
30
31
5.80M
  for (i = 0; i < 4; i++) {
32
4.64M
    a1 = ip[4 * 0] >> UNIT_QUANT_SHIFT;
33
4.64M
    c1 = ip[4 * 1] >> UNIT_QUANT_SHIFT;
34
4.64M
    d1 = ip[4 * 2] >> UNIT_QUANT_SHIFT;
35
4.64M
    b1 = ip[4 * 3] >> UNIT_QUANT_SHIFT;
36
4.64M
    a1 += c1;
37
4.64M
    d1 -= b1;
38
4.64M
    e1 = (a1 - d1) >> 1;
39
4.64M
    b1 = e1 - b1;
40
4.64M
    c1 = e1 - c1;
41
4.64M
    a1 -= b1;
42
4.64M
    d1 += c1;
43
44
4.64M
    op[4 * 0] = a1;
45
4.64M
    op[4 * 1] = b1;
46
4.64M
    op[4 * 2] = c1;
47
4.64M
    op[4 * 3] = d1;
48
4.64M
    ip++;
49
4.64M
    op++;
50
4.64M
  }
51
52
1.16M
  ip = output;
53
5.80M
  for (i = 0; i < 4; i++) {
54
4.64M
    a1 = ip[0];
55
4.64M
    c1 = ip[1];
56
4.64M
    d1 = ip[2];
57
4.64M
    b1 = ip[3];
58
4.64M
    a1 += c1;
59
4.64M
    d1 -= b1;
60
4.64M
    e1 = (a1 - d1) >> 1;
61
4.64M
    b1 = e1 - b1;
62
4.64M
    c1 = e1 - c1;
63
4.64M
    a1 -= b1;
64
4.64M
    d1 += c1;
65
66
4.64M
    range_check_value(a1, bd + 1);
67
4.64M
    range_check_value(b1, bd + 1);
68
4.64M
    range_check_value(c1, bd + 1);
69
4.64M
    range_check_value(d1, bd + 1);
70
71
4.64M
    dest[stride * 0] = highbd_clip_pixel_add(dest[stride * 0], a1, bd);
72
4.64M
    dest[stride * 1] = highbd_clip_pixel_add(dest[stride * 1], b1, bd);
73
4.64M
    dest[stride * 2] = highbd_clip_pixel_add(dest[stride * 2], c1, bd);
74
4.64M
    dest[stride * 3] = highbd_clip_pixel_add(dest[stride * 3], d1, bd);
75
76
4.64M
    ip += 4;
77
4.64M
    dest++;
78
4.64M
  }
79
1.16M
}
80
81
void av1_highbd_iwht4x4_1_add_c(const tran_low_t *in, uint8_t *dest8,
82
1.44M
                                int dest_stride, int bd) {
83
1.44M
  int i;
84
1.44M
  tran_low_t a1, e1;
85
1.44M
  tran_low_t tmp[4];
86
1.44M
  const tran_low_t *ip = in;
87
1.44M
  tran_low_t *op = tmp;
88
1.44M
  uint16_t *dest = CONVERT_TO_SHORTPTR(dest8);
89
1.44M
  (void)bd;
90
91
1.44M
  a1 = ip[0 * 4] >> UNIT_QUANT_SHIFT;
92
1.44M
  e1 = a1 >> 1;
93
1.44M
  a1 -= e1;
94
1.44M
  op[0] = a1;
95
1.44M
  op[1] = op[2] = op[3] = e1;
96
97
1.44M
  ip = tmp;
98
7.24M
  for (i = 0; i < 4; i++) {
99
5.79M
    e1 = ip[0] >> 1;
100
5.79M
    a1 = ip[0] - e1;
101
5.79M
    dest[dest_stride * 0] =
102
5.79M
        highbd_clip_pixel_add(dest[dest_stride * 0], a1, bd);
103
5.79M
    dest[dest_stride * 1] =
104
5.79M
        highbd_clip_pixel_add(dest[dest_stride * 1], e1, bd);
105
5.79M
    dest[dest_stride * 2] =
106
5.79M
        highbd_clip_pixel_add(dest[dest_stride * 2], e1, bd);
107
5.79M
    dest[dest_stride * 3] =
108
5.79M
        highbd_clip_pixel_add(dest[dest_stride * 3], e1, bd);
109
5.79M
    ip++;
110
5.79M
    dest++;
111
5.79M
  }
112
1.44M
}
113
114
3.49M
static inline TxfmFunc inv_txfm_type_to_func(TXFM_TYPE txfm_type) {
115
3.49M
  switch (txfm_type) {
116
395k
    case TXFM_TYPE_DCT4: return av1_idct4;
117
781k
    case TXFM_TYPE_DCT8: return av1_idct8;
118
534k
    case TXFM_TYPE_DCT16: return av1_idct16;
119
321k
    case TXFM_TYPE_DCT32: return av1_idct32;
120
70.4k
    case TXFM_TYPE_DCT64: return av1_idct64;
121
313k
    case TXFM_TYPE_ADST4: return av1_iadst4;
122
470k
    case TXFM_TYPE_ADST8: return av1_iadst8;
123
342k
    case TXFM_TYPE_ADST16: return av1_iadst16;
124
89.6k
    case TXFM_TYPE_IDENTITY4: return av1_iidentity4_c;
125
117k
    case TXFM_TYPE_IDENTITY8: return av1_iidentity8_c;
126
51.4k
    case TXFM_TYPE_IDENTITY16: return av1_iidentity16_c;
127
2.86k
    case TXFM_TYPE_IDENTITY32: return av1_iidentity32_c;
128
0
    default: assert(0); return NULL;
129
3.49M
  }
130
3.49M
}
131
132
static const int8_t inv_shift_4x4[2] = { 0, -4 };
133
static const int8_t inv_shift_8x8[2] = { -1, -4 };
134
static const int8_t inv_shift_16x16[2] = { -2, -4 };
135
static const int8_t inv_shift_32x32[2] = { -2, -4 };
136
static const int8_t inv_shift_64x64[2] = { -2, -4 };
137
static const int8_t inv_shift_4x8[2] = { 0, -4 };
138
static const int8_t inv_shift_8x4[2] = { 0, -4 };
139
static const int8_t inv_shift_8x16[2] = { -1, -4 };
140
static const int8_t inv_shift_16x8[2] = { -1, -4 };
141
static const int8_t inv_shift_16x32[2] = { -1, -4 };
142
static const int8_t inv_shift_32x16[2] = { -1, -4 };
143
static const int8_t inv_shift_32x64[2] = { -1, -4 };
144
static const int8_t inv_shift_64x32[2] = { -1, -4 };
145
static const int8_t inv_shift_4x16[2] = { -1, -4 };
146
static const int8_t inv_shift_16x4[2] = { -1, -4 };
147
static const int8_t inv_shift_8x32[2] = { -2, -4 };
148
static const int8_t inv_shift_32x8[2] = { -2, -4 };
149
static const int8_t inv_shift_16x64[2] = { -2, -4 };
150
static const int8_t inv_shift_64x16[2] = { -2, -4 };
151
152
const int8_t *av1_inv_txfm_shift_ls[TX_SIZES_ALL] = {
153
  inv_shift_4x4,   inv_shift_8x8,   inv_shift_16x16, inv_shift_32x32,
154
  inv_shift_64x64, inv_shift_4x8,   inv_shift_8x4,   inv_shift_8x16,
155
  inv_shift_16x8,  inv_shift_16x32, inv_shift_32x16, inv_shift_32x64,
156
  inv_shift_64x32, inv_shift_4x16,  inv_shift_16x4,  inv_shift_8x32,
157
  inv_shift_32x8,  inv_shift_16x64, inv_shift_64x16,
158
};
159
160
static const int8_t iadst4_range[7] = { 0, 1, 0, 0, 0, 0, 0 };
161
162
void av1_get_inv_txfm_cfg(TX_TYPE tx_type, TX_SIZE tx_size,
163
1.74M
                          TXFM_2D_FLIP_CFG *cfg) {
164
1.74M
  assert(cfg != NULL);
165
1.74M
  cfg->tx_size = tx_size;
166
1.74M
  av1_zero(cfg->stage_range_col);
167
1.74M
  av1_zero(cfg->stage_range_row);
168
1.74M
  set_flip_cfg(tx_type, cfg);
169
1.74M
  const TX_TYPE_1D tx_type_1d_col = vtx_tab[tx_type];
170
1.74M
  const TX_TYPE_1D tx_type_1d_row = htx_tab[tx_type];
171
1.74M
  cfg->shift = av1_inv_txfm_shift_ls[tx_size];
172
1.74M
  const int txw_idx = get_txw_idx(tx_size);
173
1.74M
  const int txh_idx = get_txh_idx(tx_size);
174
1.74M
  cfg->cos_bit_col = INV_COS_BIT;
175
1.74M
  cfg->cos_bit_row = INV_COS_BIT;
176
1.74M
  cfg->txfm_type_col = av1_txfm_type_ls[txh_idx][tx_type_1d_col];
177
1.74M
  if (cfg->txfm_type_col == TXFM_TYPE_ADST4) {
178
169k
    memcpy(cfg->stage_range_col, iadst4_range, sizeof(iadst4_range));
179
169k
  }
180
1.74M
  cfg->txfm_type_row = av1_txfm_type_ls[txw_idx][tx_type_1d_row];
181
1.74M
  if (cfg->txfm_type_row == TXFM_TYPE_ADST4) {
182
143k
    memcpy(cfg->stage_range_row, iadst4_range, sizeof(iadst4_range));
183
143k
  }
184
1.74M
  cfg->stage_num_col = av1_txfm_stage_num_list[cfg->txfm_type_col];
185
1.74M
  cfg->stage_num_row = av1_txfm_stage_num_list[cfg->txfm_type_row];
186
1.74M
}
187
188
void av1_gen_inv_stage_range(int8_t *stage_range_col, int8_t *stage_range_row,
189
                             const TXFM_2D_FLIP_CFG *cfg, TX_SIZE tx_size,
190
1.74M
                             int bd) {
191
1.74M
  const int fwd_shift = inv_start_range[tx_size];
192
1.74M
  const int8_t *shift = cfg->shift;
193
1.74M
  int8_t opt_range_row, opt_range_col;
194
1.74M
  if (bd == 8) {
195
887k
    opt_range_row = 16;
196
887k
    opt_range_col = 16;
197
887k
  } else if (bd == 10) {
198
775k
    opt_range_row = 18;
199
775k
    opt_range_col = 16;
200
775k
  } else {
201
83.2k
    assert(bd == 12);
202
83.2k
    opt_range_row = 20;
203
83.2k
    opt_range_col = 18;
204
83.2k
  }
205
  // i < MAX_TXFM_STAGE_NUM will mute above array bounds warning
206
14.1M
  for (int i = 0; i < cfg->stage_num_row && i < MAX_TXFM_STAGE_NUM; ++i) {
207
12.4M
    int real_range_row = cfg->stage_range_row[i] + fwd_shift + bd + 1;
208
12.4M
    (void)real_range_row;
209
12.4M
    if (cfg->txfm_type_row == TXFM_TYPE_ADST4 && i == 1) {
210
      // the adst4 may use 1 extra bit on top of opt_range_row at stage 1
211
      // so opt_range_row >= real_range_row will not hold
212
143k
      stage_range_row[i] = opt_range_row;
213
12.3M
    } else {
214
12.3M
      assert(opt_range_row >= real_range_row);
215
12.3M
      stage_range_row[i] = opt_range_row;
216
12.3M
    }
217
12.4M
  }
218
  // i < MAX_TXFM_STAGE_NUM will mute above array bounds warning
219
13.5M
  for (int i = 0; i < cfg->stage_num_col && i < MAX_TXFM_STAGE_NUM; ++i) {
220
11.8M
    int real_range_col =
221
11.8M
        cfg->stage_range_col[i] + fwd_shift + shift[0] + bd + 1;
222
11.8M
    (void)real_range_col;
223
11.8M
    if (cfg->txfm_type_col == TXFM_TYPE_ADST4 && i == 1) {
224
      // the adst4 may use 1 extra bit on top of opt_range_col at stage 1
225
      // so opt_range_col >= real_range_col will not hold
226
169k
      stage_range_col[i] = opt_range_col;
227
11.6M
    } else {
228
11.6M
      assert(opt_range_col >= real_range_col);
229
11.6M
      stage_range_col[i] = opt_range_col;
230
11.6M
    }
231
11.8M
  }
232
1.74M
}
233
234
static inline void inv_txfm2d_add_c(const int32_t *input, uint16_t *output,
235
                                    int stride, TXFM_2D_FLIP_CFG *cfg,
236
                                    int32_t *txfm_buf, TX_SIZE tx_size,
237
1.74M
                                    int bd) {
238
  // Note when assigning txfm_size_col, we use the txfm_size from the
239
  // row configuration and vice versa. This is intentionally done to
240
  // accurately perform rectangular transforms. When the transform is
241
  // rectangular, the number of columns will be the same as the
242
  // txfm_size stored in the row cfg struct. It will make no difference
243
  // for square transforms.
244
1.74M
  const int txfm_size_col = tx_size_wide[cfg->tx_size];
245
1.74M
  const int txfm_size_row = tx_size_high[cfg->tx_size];
246
  // Take the shift from the larger dimension in the rectangular case.
247
1.74M
  const int8_t *shift = cfg->shift;
248
1.74M
  const int rect_type = get_rect_tx_log_ratio(txfm_size_col, txfm_size_row);
249
1.74M
  int8_t stage_range_row[MAX_TXFM_STAGE_NUM];
250
1.74M
  int8_t stage_range_col[MAX_TXFM_STAGE_NUM];
251
1.74M
  assert(cfg->stage_num_row <= MAX_TXFM_STAGE_NUM);
252
1.74M
  assert(cfg->stage_num_col <= MAX_TXFM_STAGE_NUM);
253
1.74M
  av1_gen_inv_stage_range(stage_range_col, stage_range_row, cfg, tx_size, bd);
254
255
1.74M
  const int8_t cos_bit_col = cfg->cos_bit_col;
256
1.74M
  const int8_t cos_bit_row = cfg->cos_bit_row;
257
1.74M
  const TxfmFunc txfm_func_col = inv_txfm_type_to_func(cfg->txfm_type_col);
258
1.74M
  const TxfmFunc txfm_func_row = inv_txfm_type_to_func(cfg->txfm_type_row);
259
260
  // txfm_buf's length is  txfm_size_row * txfm_size_col + 2 *
261
  // AOMMAX(txfm_size_row, txfm_size_col)
262
  // it is used for intermediate data buffering
263
1.74M
  const int buf_offset = AOMMAX(txfm_size_row, txfm_size_col);
264
1.74M
  int32_t *temp_in = txfm_buf;
265
1.74M
  int32_t *temp_out = temp_in + buf_offset;
266
1.74M
  int32_t *buf = temp_out + buf_offset;
267
1.74M
  int32_t *buf_ptr = buf;
268
1.74M
  int c, r;
269
270
  // Rows
271
22.9M
  for (r = 0; r < txfm_size_row; ++r) {
272
21.2M
    if (abs(rect_type) == 1) {
273
107M
      for (c = 0; c < txfm_size_col; ++c) {
274
101M
        temp_in[c] = round_shift(
275
101M
            (int64_t)input[c * txfm_size_row + r] * NewInvSqrt2, NewSqrt2Bits);
276
101M
      }
277
6.66M
      clamp_buf(temp_in, txfm_size_col, bd + 8);
278
6.66M
      txfm_func_row(temp_in, buf_ptr, cos_bit_row, stage_range_row);
279
14.5M
    } else {
280
312M
      for (c = 0; c < txfm_size_col; ++c) {
281
298M
        temp_in[c] = input[c * txfm_size_row + r];
282
298M
      }
283
14.5M
      clamp_buf(temp_in, txfm_size_col, bd + 8);
284
14.5M
      txfm_func_row(temp_in, buf_ptr, cos_bit_row, stage_range_row);
285
14.5M
    }
286
21.2M
    av1_round_shift_array(buf_ptr, txfm_size_col, -shift[0]);
287
21.2M
    buf_ptr += txfm_size_col;
288
21.2M
  }
289
290
  // Columns
291
24.4M
  for (c = 0; c < txfm_size_col; ++c) {
292
22.6M
    if (cfg->lr_flip == 0) {
293
421M
      for (r = 0; r < txfm_size_row; ++r)
294
398M
        temp_in[r] = buf[r * txfm_size_col + c];
295
22.6M
    } else {
296
      // flip left right
297
430k
      for (r = 0; r < txfm_size_row; ++r)
298
387k
        temp_in[r] = buf[r * txfm_size_col + (txfm_size_col - c - 1)];
299
42.6k
    }
300
22.6M
    clamp_buf(temp_in, txfm_size_row, AOMMAX(bd + 6, 16));
301
22.6M
    txfm_func_col(temp_in, temp_out, cos_bit_col, stage_range_col);
302
22.6M
    av1_round_shift_array(temp_out, txfm_size_row, -shift[1]);
303
22.6M
    if (cfg->ud_flip == 0) {
304
421M
      for (r = 0; r < txfm_size_row; ++r) {
305
398M
        output[r * stride + c] =
306
398M
            highbd_clip_pixel_add(output[r * stride + c], temp_out[r], bd);
307
398M
      }
308
22.6M
    } else {
309
      // flip upside down
310
525k
      for (r = 0; r < txfm_size_row; ++r) {
311
469k
        output[r * stride + c] = highbd_clip_pixel_add(
312
469k
            output[r * stride + c], temp_out[txfm_size_row - r - 1], bd);
313
469k
      }
314
55.8k
    }
315
22.6M
  }
316
1.74M
}
317
318
static inline void inv_txfm2d_add_facade(const int32_t *input, uint16_t *output,
319
                                         int stride, int32_t *txfm_buf,
320
                                         TX_TYPE tx_type, TX_SIZE tx_size,
321
1.74M
                                         int bd) {
322
1.74M
  TXFM_2D_FLIP_CFG cfg;
323
1.74M
  av1_get_inv_txfm_cfg(tx_type, tx_size, &cfg);
324
  // Forward shift sum uses larger square size, to be consistent with what
325
  // av1_gen_inv_stage_range() does for inverse shifts.
326
1.74M
  inv_txfm2d_add_c(input, output, stride, &cfg, txfm_buf, tx_size, bd);
327
1.74M
}
328
329
void av1_inv_txfm2d_add_4x8_c(const int32_t *input, uint16_t *output,
330
103k
                              int stride, TX_TYPE tx_type, int bd) {
331
103k
  DECLARE_ALIGNED(32, int, txfm_buf[4 * 8 + 8 + 8]);
332
103k
  inv_txfm2d_add_facade(input, output, stride, txfm_buf, tx_type, TX_4X8, bd);
333
103k
}
334
335
void av1_inv_txfm2d_add_8x4_c(const int32_t *input, uint16_t *output,
336
139k
                              int stride, TX_TYPE tx_type, int bd) {
337
139k
  DECLARE_ALIGNED(32, int, txfm_buf[8 * 4 + 8 + 8]);
338
139k
  inv_txfm2d_add_facade(input, output, stride, txfm_buf, tx_type, TX_8X4, bd);
339
139k
}
340
341
void av1_inv_txfm2d_add_8x16_c(const int32_t *input, uint16_t *output,
342
107k
                               int stride, TX_TYPE tx_type, int bd) {
343
107k
  DECLARE_ALIGNED(32, int, txfm_buf[8 * 16 + 16 + 16]);
344
107k
  inv_txfm2d_add_facade(input, output, stride, txfm_buf, tx_type, TX_8X16, bd);
345
107k
}
346
347
void av1_inv_txfm2d_add_16x8_c(const int32_t *input, uint16_t *output,
348
161k
                               int stride, TX_TYPE tx_type, int bd) {
349
161k
  DECLARE_ALIGNED(32, int, txfm_buf[16 * 8 + 16 + 16]);
350
161k
  inv_txfm2d_add_facade(input, output, stride, txfm_buf, tx_type, TX_16X8, bd);
351
161k
}
352
353
void av1_inv_txfm2d_add_16x32_c(const int32_t *input, uint16_t *output,
354
35.4k
                                int stride, TX_TYPE tx_type, int bd) {
355
35.4k
  DECLARE_ALIGNED(32, int, txfm_buf[16 * 32 + 32 + 32]);
356
35.4k
  inv_txfm2d_add_facade(input, output, stride, txfm_buf, tx_type, TX_16X32, bd);
357
35.4k
}
358
359
void av1_inv_txfm2d_add_32x16_c(const int32_t *input, uint16_t *output,
360
35.2k
                                int stride, TX_TYPE tx_type, int bd) {
361
35.2k
  DECLARE_ALIGNED(32, int, txfm_buf[32 * 16 + 32 + 32]);
362
35.2k
  inv_txfm2d_add_facade(input, output, stride, txfm_buf, tx_type, TX_32X16, bd);
363
35.2k
}
364
365
void av1_inv_txfm2d_add_4x4_c(const int32_t *input, uint16_t *output,
366
172k
                              int stride, TX_TYPE tx_type, int bd) {
367
172k
  DECLARE_ALIGNED(32, int, txfm_buf[4 * 4 + 4 + 4]);
368
172k
  inv_txfm2d_add_facade(input, output, stride, txfm_buf, tx_type, TX_4X4, bd);
369
172k
}
370
371
void av1_inv_txfm2d_add_8x8_c(const int32_t *input, uint16_t *output,
372
385k
                              int stride, TX_TYPE tx_type, int bd) {
373
385k
  DECLARE_ALIGNED(32, int, txfm_buf[8 * 8 + 8 + 8]);
374
385k
  inv_txfm2d_add_facade(input, output, stride, txfm_buf, tx_type, TX_8X8, bd);
375
385k
}
376
377
void av1_inv_txfm2d_add_16x16_c(const int32_t *input, uint16_t *output,
378
182k
                                int stride, TX_TYPE tx_type, int bd) {
379
182k
  DECLARE_ALIGNED(32, int, txfm_buf[16 * 16 + 16 + 16]);
380
182k
  inv_txfm2d_add_facade(input, output, stride, txfm_buf, tx_type, TX_16X16, bd);
381
182k
}
382
383
void av1_inv_txfm2d_add_32x32_c(const int32_t *input, uint16_t *output,
384
77.8k
                                int stride, TX_TYPE tx_type, int bd) {
385
77.8k
  DECLARE_ALIGNED(32, int, txfm_buf[32 * 32 + 32 + 32]);
386
77.8k
  inv_txfm2d_add_facade(input, output, stride, txfm_buf, tx_type, TX_32X32, bd);
387
77.8k
}
388
389
void av1_inv_txfm2d_add_64x64_c(const int32_t *input, uint16_t *output,
390
23.2k
                                int stride, TX_TYPE tx_type, int bd) {
391
  // TODO(urvang): Can the same array be reused, instead of using a new array?
392
  // Remap 32x32 input into a modified 64x64 by:
393
  // - Copying over these values in top-left 32x32 locations.
394
  // - Setting the rest of the locations to 0.
395
23.2k
  int32_t mod_input[64 * 64];
396
767k
  for (int col = 0; col < 32; ++col) {
397
744k
    memcpy(mod_input + col * 64, input + col * 32, 32 * sizeof(*mod_input));
398
744k
    memset(mod_input + col * 64 + 32, 0, 32 * sizeof(*mod_input));
399
744k
  }
400
23.2k
  memset(mod_input + 32 * 64, 0, 32 * 64 * sizeof(*mod_input));
401
23.2k
  DECLARE_ALIGNED(32, int, txfm_buf[64 * 64 + 64 + 64]);
402
23.2k
  inv_txfm2d_add_facade(mod_input, output, stride, txfm_buf, tx_type, TX_64X64,
403
23.2k
                        bd);
404
23.2k
}
405
406
void av1_inv_txfm2d_add_64x32_c(const int32_t *input, uint16_t *output,
407
4.25k
                                int stride, TX_TYPE tx_type, int bd) {
408
  // Remap 32x32 input into a modified 64x32 by:
409
  // - Copying over these values in top-left 32x32 locations.
410
  // - Setting the rest of the locations to 0.
411
4.25k
  int32_t mod_input[32 * 64];
412
4.25k
  memcpy(mod_input, input, 32 * 32 * sizeof(*mod_input));
413
4.25k
  memset(mod_input + 32 * 32, 0, 32 * 32 * sizeof(*mod_input));
414
4.25k
  DECLARE_ALIGNED(32, int, txfm_buf[64 * 32 + 64 + 64]);
415
4.25k
  inv_txfm2d_add_facade(mod_input, output, stride, txfm_buf, tx_type, TX_64X32,
416
4.25k
                        bd);
417
4.25k
}
418
419
void av1_inv_txfm2d_add_32x64_c(const int32_t *input, uint16_t *output,
420
6.78k
                                int stride, TX_TYPE tx_type, int bd) {
421
  // Remap 32x32 input into a modified 32x64 input by:
422
  // - Copying over these values in top-left 32x32 locations.
423
  // - Setting the rest of the locations to 0.
424
6.78k
  int32_t mod_input[64 * 32];
425
223k
  for (int col = 0; col < 32; ++col) {
426
217k
    memcpy(mod_input + col * 64, input + col * 32, 32 * sizeof(*mod_input));
427
217k
    memset(mod_input + col * 64 + 32, 0, 32 * sizeof(*mod_input));
428
217k
  }
429
6.78k
  DECLARE_ALIGNED(32, int, txfm_buf[64 * 32 + 64 + 64]);
430
6.78k
  inv_txfm2d_add_facade(mod_input, output, stride, txfm_buf, tx_type, TX_32X64,
431
6.78k
                        bd);
432
6.78k
}
433
434
void av1_inv_txfm2d_add_16x64_c(const int32_t *input, uint16_t *output,
435
6.75k
                                int stride, TX_TYPE tx_type, int bd) {
436
  // Remap 16x32 input into a modified 16x64 input by:
437
  // - Copying over these values in top-left 16x32 locations.
438
  // - Setting the rest of the locations to 0.
439
6.75k
  int32_t mod_input[64 * 16];
440
114k
  for (int col = 0; col < 16; ++col) {
441
108k
    memcpy(mod_input + col * 64, input + col * 32, 32 * sizeof(*mod_input));
442
108k
    memset(mod_input + col * 64 + 32, 0, 32 * sizeof(*mod_input));
443
108k
  }
444
6.75k
  DECLARE_ALIGNED(32, int, txfm_buf[16 * 64 + 64 + 64]);
445
6.75k
  inv_txfm2d_add_facade(mod_input, output, stride, txfm_buf, tx_type, TX_16X64,
446
6.75k
                        bd);
447
6.75k
}
448
449
void av1_inv_txfm2d_add_64x16_c(const int32_t *input, uint16_t *output,
450
6.16k
                                int stride, TX_TYPE tx_type, int bd) {
451
  // Remap 32x16 input into a modified 64x16 by:
452
  // - Copying over these values in top-left 32x16 locations.
453
  // - Setting the rest of the locations to 0.
454
6.16k
  int32_t mod_input[16 * 64];
455
6.16k
  memcpy(mod_input, input, 16 * 32 * sizeof(*mod_input));
456
6.16k
  memset(mod_input + 16 * 32, 0, 16 * 32 * sizeof(*mod_input));
457
6.16k
  DECLARE_ALIGNED(32, int, txfm_buf[16 * 64 + 64 + 64]);
458
6.16k
  inv_txfm2d_add_facade(mod_input, output, stride, txfm_buf, tx_type, TX_64X16,
459
6.16k
                        bd);
460
6.16k
}
461
462
void av1_inv_txfm2d_add_4x16_c(const int32_t *input, uint16_t *output,
463
76.8k
                               int stride, TX_TYPE tx_type, int bd) {
464
76.8k
  DECLARE_ALIGNED(32, int, txfm_buf[4 * 16 + 16 + 16]);
465
76.8k
  inv_txfm2d_add_facade(input, output, stride, txfm_buf, tx_type, TX_4X16, bd);
466
76.8k
}
467
468
void av1_inv_txfm2d_add_16x4_c(const int32_t *input, uint16_t *output,
469
134k
                               int stride, TX_TYPE tx_type, int bd) {
470
134k
  DECLARE_ALIGNED(32, int, txfm_buf[4 * 16 + 16 + 16]);
471
134k
  inv_txfm2d_add_facade(input, output, stride, txfm_buf, tx_type, TX_16X4, bd);
472
134k
}
473
474
void av1_inv_txfm2d_add_8x32_c(const int32_t *input, uint16_t *output,
475
37.8k
                               int stride, TX_TYPE tx_type, int bd) {
476
37.8k
  DECLARE_ALIGNED(32, int, txfm_buf[8 * 32 + 32 + 32]);
477
37.8k
  inv_txfm2d_add_facade(input, output, stride, txfm_buf, tx_type, TX_8X32, bd);
478
37.8k
}
479
480
void av1_inv_txfm2d_add_32x8_c(const int32_t *input, uint16_t *output,
481
49.3k
                               int stride, TX_TYPE tx_type, int bd) {
482
49.3k
  DECLARE_ALIGNED(32, int, txfm_buf[8 * 32 + 32 + 32]);
483
49.3k
  inv_txfm2d_add_facade(input, output, stride, txfm_buf, tx_type, TX_32X8, bd);
484
49.3k
}