1 /*
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 <math.h>
13 #include <stdlib.h>
14
15 #include "config/aom_dsp_rtcd.h"
16 #include "config/av1_rtcd.h"
17
18 #include "av1/common/cdef.h"
19 /*
20 This is Cdef_Directions (section 7.15.3) with 2 padding entries at the
21 beginning and end of the table. The cdef direction range is [0, 7] and the
22 first index is offset +/-2. This removes the need to constrain the first
23 index to the same range using e.g., & 7.
24 */
25 DECLARE_ALIGNED(16, static const int, cdef_directions_padded[12][2]) = {
26 /* Padding: cdef_directions[6] */
27 { 1 * CDEF_BSTRIDE + 0, 2 * CDEF_BSTRIDE + 0 },
28 /* Padding: cdef_directions[7] */
29 { 1 * CDEF_BSTRIDE + 0, 2 * CDEF_BSTRIDE - 1 },
30
31 /* Begin cdef_directions */
32 { -1 * CDEF_BSTRIDE + 1, -2 * CDEF_BSTRIDE + 2 },
33 { 0 * CDEF_BSTRIDE + 1, -1 * CDEF_BSTRIDE + 2 },
34 { 0 * CDEF_BSTRIDE + 1, 0 * CDEF_BSTRIDE + 2 },
35 { 0 * CDEF_BSTRIDE + 1, 1 * CDEF_BSTRIDE + 2 },
36 { 1 * CDEF_BSTRIDE + 1, 2 * CDEF_BSTRIDE + 2 },
37 { 1 * CDEF_BSTRIDE + 0, 2 * CDEF_BSTRIDE + 1 },
38 { 1 * CDEF_BSTRIDE + 0, 2 * CDEF_BSTRIDE + 0 },
39 { 1 * CDEF_BSTRIDE + 0, 2 * CDEF_BSTRIDE - 1 },
40 /* End cdef_directions */
41
42 /* Padding: cdef_directions[0] */
43 { -1 * CDEF_BSTRIDE + 1, -2 * CDEF_BSTRIDE + 2 },
44 /* Padding: cdef_directions[1] */
45 { 0 * CDEF_BSTRIDE + 1, -1 * CDEF_BSTRIDE + 2 },
46 };
47
48 const int (*const cdef_directions)[2] = cdef_directions_padded + 2;
49
50 /* Detect direction. 0 means 45-degree up-right, 2 is horizontal, and so on.
51 The search minimizes the weighted variance along all the lines in a
52 particular direction, i.e. the squared error between the input and a
53 "predicted" block where each pixel is replaced by the average along a line
54 in a particular direction. Since each direction have the same sum(x^2) term,
55 that term is never computed. See Section 2, step 2, of:
56 http://jmvalin.ca/notes/intra_paint.pdf */
cdef_find_dir_c(const uint16_t * img,int stride,int32_t * var,int coeff_shift)57 int cdef_find_dir_c(const uint16_t *img, int stride, int32_t *var,
58 int coeff_shift) {
59 int i;
60 int32_t cost[8] = { 0 };
61 int partial[8][15] = { { 0 } };
62 int32_t best_cost = 0;
63 int best_dir = 0;
64 /* Instead of dividing by n between 2 and 8, we multiply by 3*5*7*8/n.
65 The output is then 840 times larger, but we don't care for finding
66 the max. */
67 static const int div_table[] = { 0, 840, 420, 280, 210, 168, 140, 120, 105 };
68 for (i = 0; i < 8; i++) {
69 int j;
70 for (j = 0; j < 8; j++) {
71 int x;
72 /* We subtract 128 here to reduce the maximum range of the squared
73 partial sums. */
74 x = (img[i * stride + j] >> coeff_shift) - 128;
75 partial[0][i + j] += x;
76 partial[1][i + j / 2] += x;
77 partial[2][i] += x;
78 partial[3][3 + i - j / 2] += x;
79 partial[4][7 + i - j] += x;
80 partial[5][3 - i / 2 + j] += x;
81 partial[6][j] += x;
82 partial[7][i / 2 + j] += x;
83 }
84 }
85 for (i = 0; i < 8; i++) {
86 cost[2] += partial[2][i] * partial[2][i];
87 cost[6] += partial[6][i] * partial[6][i];
88 }
89 cost[2] *= div_table[8];
90 cost[6] *= div_table[8];
91 for (i = 0; i < 7; i++) {
92 cost[0] += (partial[0][i] * partial[0][i] +
93 partial[0][14 - i] * partial[0][14 - i]) *
94 div_table[i + 1];
95 cost[4] += (partial[4][i] * partial[4][i] +
96 partial[4][14 - i] * partial[4][14 - i]) *
97 div_table[i + 1];
98 }
99 cost[0] += partial[0][7] * partial[0][7] * div_table[8];
100 cost[4] += partial[4][7] * partial[4][7] * div_table[8];
101 for (i = 1; i < 8; i += 2) {
102 int j;
103 for (j = 0; j < 4 + 1; j++) {
104 cost[i] += partial[i][3 + j] * partial[i][3 + j];
105 }
106 cost[i] *= div_table[8];
107 for (j = 0; j < 4 - 1; j++) {
108 cost[i] += (partial[i][j] * partial[i][j] +
109 partial[i][10 - j] * partial[i][10 - j]) *
110 div_table[2 * j + 2];
111 }
112 }
113 for (i = 0; i < 8; i++) {
114 if (cost[i] > best_cost) {
115 best_cost = cost[i];
116 best_dir = i;
117 }
118 }
119 /* Difference between the optimal variance and the variance along the
120 orthogonal direction. Again, the sum(x^2) terms cancel out. */
121 *var = best_cost - cost[(best_dir + 4) & 7];
122 /* We'd normally divide by 840, but dividing by 1024 is close enough
123 for what we're going to do with this. */
124 *var >>= 10;
125 return best_dir;
126 }
127
cdef_find_dir_dual_c(const uint16_t * img1,const uint16_t * img2,int stride,int32_t * var1,int32_t * var2,int coeff_shift,int * out1,int * out2)128 void cdef_find_dir_dual_c(const uint16_t *img1, const uint16_t *img2,
129 int stride, int32_t *var1, int32_t *var2,
130 int coeff_shift, int *out1, int *out2) {
131 *out1 = cdef_find_dir_c(img1, stride, var1, coeff_shift);
132 *out2 = cdef_find_dir_c(img2, stride, var2, coeff_shift);
133 }
134
135 const int cdef_pri_taps[2][2] = { { 4, 2 }, { 3, 3 } };
136 const int cdef_sec_taps[2] = { 2, 1 };
137
138 /* Smooth in the direction detected. */
cdef_filter_block_internal(uint8_t * dst8,uint16_t * dst16,int dstride,const uint16_t * in,int pri_strength,int sec_strength,int dir,int pri_damping,int sec_damping,int coeff_shift,int block_width,int block_height,int enable_primary,int enable_secondary)139 static void cdef_filter_block_internal(
140 uint8_t *dst8, uint16_t *dst16, int dstride, const uint16_t *in,
141 int pri_strength, int sec_strength, int dir, int pri_damping,
142 int sec_damping, int coeff_shift, int block_width, int block_height,
143 int enable_primary, int enable_secondary) {
144 const int clipping_required = (enable_primary && enable_secondary);
145 int i, j, k;
146 const int s = CDEF_BSTRIDE;
147 const int *pri_taps = cdef_pri_taps[(pri_strength >> coeff_shift) & 1];
148 const int *sec_taps = cdef_sec_taps;
149 for (i = 0; i < block_height; i++) {
150 for (j = 0; j < block_width; j++) {
151 int16_t sum = 0;
152 int16_t y;
153 int16_t x = in[i * s + j];
154 int max = x;
155 int min = x;
156 for (k = 0; k < 2; k++) {
157 if (enable_primary) {
158 int16_t p0 = in[i * s + j + cdef_directions[dir][k]];
159 int16_t p1 = in[i * s + j - cdef_directions[dir][k]];
160 sum += pri_taps[k] * constrain(p0 - x, pri_strength, pri_damping);
161 sum += pri_taps[k] * constrain(p1 - x, pri_strength, pri_damping);
162 if (clipping_required) {
163 if (p0 != CDEF_VERY_LARGE) max = AOMMAX(p0, max);
164 if (p1 != CDEF_VERY_LARGE) max = AOMMAX(p1, max);
165 min = AOMMIN(p0, min);
166 min = AOMMIN(p1, min);
167 }
168 }
169 if (enable_secondary) {
170 int16_t s0 = in[i * s + j + cdef_directions[dir + 2][k]];
171 int16_t s1 = in[i * s + j - cdef_directions[dir + 2][k]];
172 int16_t s2 = in[i * s + j + cdef_directions[dir - 2][k]];
173 int16_t s3 = in[i * s + j - cdef_directions[dir - 2][k]];
174 if (clipping_required) {
175 if (s0 != CDEF_VERY_LARGE) max = AOMMAX(s0, max);
176 if (s1 != CDEF_VERY_LARGE) max = AOMMAX(s1, max);
177 if (s2 != CDEF_VERY_LARGE) max = AOMMAX(s2, max);
178 if (s3 != CDEF_VERY_LARGE) max = AOMMAX(s3, max);
179 min = AOMMIN(s0, min);
180 min = AOMMIN(s1, min);
181 min = AOMMIN(s2, min);
182 min = AOMMIN(s3, min);
183 }
184 sum += sec_taps[k] * constrain(s0 - x, sec_strength, sec_damping);
185 sum += sec_taps[k] * constrain(s1 - x, sec_strength, sec_damping);
186 sum += sec_taps[k] * constrain(s2 - x, sec_strength, sec_damping);
187 sum += sec_taps[k] * constrain(s3 - x, sec_strength, sec_damping);
188 }
189 }
190 y = ((int16_t)x + ((8 + sum - (sum < 0)) >> 4));
191 if (clipping_required) {
192 y = clamp(y, min, max);
193 }
194
195 if (dst8)
196 dst8[i * dstride + j] = (uint8_t)y;
197 else
198 dst16[i * dstride + j] = (uint16_t)y;
199 }
200 }
201 }
202
cdef_filter_8_0_c(void * dst8,int dstride,const uint16_t * in,int pri_strength,int sec_strength,int dir,int pri_damping,int sec_damping,int coeff_shift,int block_width,int block_height)203 void cdef_filter_8_0_c(void *dst8, int dstride, const uint16_t *in,
204 int pri_strength, int sec_strength, int dir,
205 int pri_damping, int sec_damping, int coeff_shift,
206 int block_width, int block_height) {
207 cdef_filter_block_internal((uint8_t *)dst8, NULL, dstride, in, pri_strength,
208 sec_strength, dir, pri_damping, sec_damping,
209 coeff_shift, block_width, block_height,
210 /*enable_primary=*/1, /*enable_secondary=*/1);
211 }
212
cdef_filter_8_1_c(void * dst8,int dstride,const uint16_t * in,int pri_strength,int sec_strength,int dir,int pri_damping,int sec_damping,int coeff_shift,int block_width,int block_height)213 void cdef_filter_8_1_c(void *dst8, int dstride, const uint16_t *in,
214 int pri_strength, int sec_strength, int dir,
215 int pri_damping, int sec_damping, int coeff_shift,
216 int block_width, int block_height) {
217 cdef_filter_block_internal((uint8_t *)dst8, NULL, dstride, in, pri_strength,
218 sec_strength, dir, pri_damping, sec_damping,
219 coeff_shift, block_width, block_height,
220 /*enable_primary=*/1, /*enable_secondary=*/0);
221 }
222
cdef_filter_8_2_c(void * dst8,int dstride,const uint16_t * in,int pri_strength,int sec_strength,int dir,int pri_damping,int sec_damping,int coeff_shift,int block_width,int block_height)223 void cdef_filter_8_2_c(void *dst8, int dstride, const uint16_t *in,
224 int pri_strength, int sec_strength, int dir,
225 int pri_damping, int sec_damping, int coeff_shift,
226 int block_width, int block_height) {
227 cdef_filter_block_internal((uint8_t *)dst8, NULL, dstride, in, pri_strength,
228 sec_strength, dir, pri_damping, sec_damping,
229 coeff_shift, block_width, block_height,
230 /*enable_primary=*/0, /*enable_secondary=*/1);
231 }
232
cdef_filter_8_3_c(void * dst8,int dstride,const uint16_t * in,int pri_strength,int sec_strength,int dir,int pri_damping,int sec_damping,int coeff_shift,int block_width,int block_height)233 void cdef_filter_8_3_c(void *dst8, int dstride, const uint16_t *in,
234 int pri_strength, int sec_strength, int dir,
235 int pri_damping, int sec_damping, int coeff_shift,
236 int block_width, int block_height) {
237 cdef_filter_block_internal((uint8_t *)dst8, NULL, dstride, in, pri_strength,
238 sec_strength, dir, pri_damping, sec_damping,
239 coeff_shift, block_width, block_height,
240 /*enable_primary=*/0, /*enable_secondary=*/0);
241 }
242
cdef_filter_16_0_c(void * dst16,int dstride,const uint16_t * in,int pri_strength,int sec_strength,int dir,int pri_damping,int sec_damping,int coeff_shift,int block_width,int block_height)243 void cdef_filter_16_0_c(void *dst16, int dstride, const uint16_t *in,
244 int pri_strength, int sec_strength, int dir,
245 int pri_damping, int sec_damping, int coeff_shift,
246 int block_width, int block_height) {
247 cdef_filter_block_internal(NULL, (uint16_t *)dst16, dstride, in, pri_strength,
248 sec_strength, dir, pri_damping, sec_damping,
249 coeff_shift, block_width, block_height,
250 /*enable_primary=*/1, /*enable_secondary=*/1);
251 }
252
cdef_filter_16_1_c(void * dst16,int dstride,const uint16_t * in,int pri_strength,int sec_strength,int dir,int pri_damping,int sec_damping,int coeff_shift,int block_width,int block_height)253 void cdef_filter_16_1_c(void *dst16, int dstride, const uint16_t *in,
254 int pri_strength, int sec_strength, int dir,
255 int pri_damping, int sec_damping, int coeff_shift,
256 int block_width, int block_height) {
257 cdef_filter_block_internal(NULL, (uint16_t *)dst16, dstride, in, pri_strength,
258 sec_strength, dir, pri_damping, sec_damping,
259 coeff_shift, block_width, block_height,
260 /*enable_primary=*/1, /*enable_secondary=*/0);
261 }
262
cdef_filter_16_2_c(void * dst16,int dstride,const uint16_t * in,int pri_strength,int sec_strength,int dir,int pri_damping,int sec_damping,int coeff_shift,int block_width,int block_height)263 void cdef_filter_16_2_c(void *dst16, int dstride, const uint16_t *in,
264 int pri_strength, int sec_strength, int dir,
265 int pri_damping, int sec_damping, int coeff_shift,
266 int block_width, int block_height) {
267 cdef_filter_block_internal(NULL, (uint16_t *)dst16, dstride, in, pri_strength,
268 sec_strength, dir, pri_damping, sec_damping,
269 coeff_shift, block_width, block_height,
270 /*enable_primary=*/0, /*enable_secondary=*/1);
271 }
272
cdef_filter_16_3_c(void * dst16,int dstride,const uint16_t * in,int pri_strength,int sec_strength,int dir,int pri_damping,int sec_damping,int coeff_shift,int block_width,int block_height)273 void cdef_filter_16_3_c(void *dst16, int dstride, const uint16_t *in,
274 int pri_strength, int sec_strength, int dir,
275 int pri_damping, int sec_damping, int coeff_shift,
276 int block_width, int block_height) {
277 cdef_filter_block_internal(NULL, (uint16_t *)dst16, dstride, in, pri_strength,
278 sec_strength, dir, pri_damping, sec_damping,
279 coeff_shift, block_width, block_height,
280 /*enable_primary=*/0, /*enable_secondary=*/0);
281 }
282
283 /* Compute the primary filter strength for an 8x8 block based on the
284 directional variance difference. A high variance difference means
285 that we have a highly directional pattern (e.g. a high contrast
286 edge), so we can apply more deringing. A low variance means that we
287 either have a low contrast edge, or a non-directional texture, so
288 we want to be careful not to blur. */
adjust_strength(int strength,int32_t var)289 static inline int adjust_strength(int strength, int32_t var) {
290 const int i = var >> 6 ? AOMMIN(get_msb(var >> 6), 12) : 0;
291 /* We use the variance of 8x8 blocks to adjust the strength. */
292 return var ? (strength * (4 + i) + 8) >> 4 : 0;
293 }
294
aom_cdef_find_dir(const uint16_t * in,cdef_list * dlist,int var[CDEF_NBLOCKS][CDEF_NBLOCKS],int cdef_count,int coeff_shift,int dir[CDEF_NBLOCKS][CDEF_NBLOCKS])295 static inline void aom_cdef_find_dir(const uint16_t *in, cdef_list *dlist,
296 int var[CDEF_NBLOCKS][CDEF_NBLOCKS],
297 int cdef_count, int coeff_shift,
298 int dir[CDEF_NBLOCKS][CDEF_NBLOCKS]) {
299 int bi;
300
301 // Find direction of two 8x8 blocks together.
302 for (bi = 0; bi < cdef_count - 1; bi += 2) {
303 const int by = dlist[bi].by;
304 const int bx = dlist[bi].bx;
305 const int by2 = dlist[bi + 1].by;
306 const int bx2 = dlist[bi + 1].bx;
307 const int pos1 = 8 * by * CDEF_BSTRIDE + 8 * bx;
308 const int pos2 = 8 * by2 * CDEF_BSTRIDE + 8 * bx2;
309 cdef_find_dir_dual(&in[pos1], &in[pos2], CDEF_BSTRIDE, &var[by][bx],
310 &var[by2][bx2], coeff_shift, &dir[by][bx],
311 &dir[by2][bx2]);
312 }
313
314 // Process remaining 8x8 blocks here. One 8x8 at a time.
315 if (cdef_count % 2) {
316 const int by = dlist[bi].by;
317 const int bx = dlist[bi].bx;
318 dir[by][bx] = cdef_find_dir(&in[8 * by * CDEF_BSTRIDE + 8 * bx],
319 CDEF_BSTRIDE, &var[by][bx], coeff_shift);
320 }
321 }
322
av1_cdef_filter_fb(uint8_t * dst8,uint16_t * dst16,int dstride,const uint16_t * in,int xdec,int ydec,int dir[CDEF_NBLOCKS][CDEF_NBLOCKS],int * dirinit,int var[CDEF_NBLOCKS][CDEF_NBLOCKS],int pli,cdef_list * dlist,int cdef_count,int level,int sec_strength,int damping,int coeff_shift)323 void av1_cdef_filter_fb(uint8_t *dst8, uint16_t *dst16, int dstride,
324 const uint16_t *in, int xdec, int ydec,
325 int dir[CDEF_NBLOCKS][CDEF_NBLOCKS], int *dirinit,
326 int var[CDEF_NBLOCKS][CDEF_NBLOCKS], int pli,
327 cdef_list *dlist, int cdef_count, int level,
328 int sec_strength, int damping, int coeff_shift) {
329 int bi;
330 int bx;
331 int by;
332 const int pri_strength = level << coeff_shift;
333 sec_strength <<= coeff_shift;
334 damping += coeff_shift - (pli != AOM_PLANE_Y);
335 const int bw_log2 = 3 - xdec;
336 const int bh_log2 = 3 - ydec;
337 if (dirinit && pri_strength == 0 && sec_strength == 0) {
338 // If we're here, both primary and secondary strengths are 0, and
339 // we still haven't written anything to y[] yet, so we just copy
340 // the input to y[]. This is necessary only for av1_cdef_search()
341 // and only av1_cdef_search() sets dirinit.
342 for (bi = 0; bi < cdef_count; bi++) {
343 by = dlist[bi].by;
344 bx = dlist[bi].bx;
345 // TODO(stemidts/jmvalin): SIMD optimisations
346 for (int iy = 0; iy < 1 << bh_log2; iy++) {
347 memcpy(&dst16[(bi << (bw_log2 + bh_log2)) + (iy << bw_log2)],
348 &in[((by << bh_log2) + iy) * CDEF_BSTRIDE + (bx << bw_log2)],
349 ((size_t)1 << bw_log2) * sizeof(*dst16));
350 }
351 }
352 return;
353 }
354
355 if (pli == 0) {
356 if (!dirinit || !*dirinit) {
357 aom_cdef_find_dir(in, dlist, var, cdef_count, coeff_shift, dir);
358 if (dirinit) *dirinit = 1;
359 }
360 }
361 if (pli == 1 && xdec != ydec) {
362 for (bi = 0; bi < cdef_count; bi++) {
363 static const int conv422[8] = { 7, 0, 2, 4, 5, 6, 6, 6 };
364 static const int conv440[8] = { 1, 2, 2, 2, 3, 4, 6, 0 };
365 by = dlist[bi].by;
366 bx = dlist[bi].bx;
367 dir[by][bx] = (xdec ? conv422 : conv440)[dir[by][bx]];
368 }
369 }
370
371 if (dst8) {
372 const int block_width = 8 >> xdec;
373 const int block_height = 8 >> ydec;
374 /*
375 * strength_index == 0 : enable_primary = 1, enable_secondary = 1
376 * strength_index == 1 : enable_primary = 1, enable_secondary = 0
377 * strength_index == 2 : enable_primary = 0, enable_secondary = 1
378 * strength_index == 3 : enable_primary = 0, enable_secondary = 0
379 */
380 const cdef_filter_block_func cdef_filter_fn[4] = {
381 cdef_filter_8_0, cdef_filter_8_1, cdef_filter_8_2, cdef_filter_8_3
382 };
383
384 for (bi = 0; bi < cdef_count; bi++) {
385 by = dlist[bi].by;
386 bx = dlist[bi].bx;
387 const int t =
388 (pli ? pri_strength : adjust_strength(pri_strength, var[by][bx]));
389 const int strength_index = (sec_strength == 0) | ((t == 0) << 1);
390
391 cdef_filter_fn[strength_index](
392 &dst8[(by << bh_log2) * dstride + (bx << bw_log2)], dstride,
393 &in[(by * CDEF_BSTRIDE << bh_log2) + (bx << bw_log2)], t,
394 sec_strength, pri_strength ? dir[by][bx] : 0, damping, damping,
395 coeff_shift, block_width, block_height);
396 }
397 } else {
398 const int block_width = 8 >> xdec;
399 const int block_height = 8 >> ydec;
400 /*
401 * strength_index == 0 : enable_primary = 1, enable_secondary = 1
402 * strength_index == 1 : enable_primary = 1, enable_secondary = 0
403 * strength_index == 2 : enable_primary = 0, enable_secondary = 1
404 * strength_index == 3 : enable_primary = 0, enable_secondary = 0
405 */
406 const cdef_filter_block_func cdef_filter_fn[4] = {
407 cdef_filter_16_0, cdef_filter_16_1, cdef_filter_16_2, cdef_filter_16_3
408 };
409
410 for (bi = 0; bi < cdef_count; bi++) {
411 by = dlist[bi].by;
412 bx = dlist[bi].bx;
413 const int t =
414 (pli ? pri_strength : adjust_strength(pri_strength, var[by][bx]));
415 const int strength_index = (sec_strength == 0) | ((t == 0) << 1);
416
417 cdef_filter_fn[strength_index](
418 &dst16[dirinit ? bi << (bw_log2 + bh_log2)
419 : (by << bh_log2) * dstride + (bx << bw_log2)],
420 dirinit ? 1 << bw_log2 : dstride,
421 &in[(by * CDEF_BSTRIDE << bh_log2) + (bx << bw_log2)], t,
422 sec_strength, pri_strength ? dir[by][bx] : 0, damping, damping,
423 coeff_shift, block_width, block_height);
424 }
425 }
426 }
427