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 <assert.h>
13 #include <limits.h>
14
15 #include "config/aom_scale_rtcd.h"
16
17 #include "aom_dsp/aom_dsp_common.h"
18 #include "aom_dsp/psnr.h"
19 #include "aom_mem/aom_mem.h"
20 #include "aom_ports/mem.h"
21
22 #include "av1/common/av1_common_int.h"
23 #include "av1/common/av1_loopfilter.h"
24 #include "av1/common/quant_common.h"
25
26 #include "av1/encoder/av1_quantize.h"
27 #include "av1/encoder/encoder.h"
28 #include "av1/encoder/picklpf.h"
29
30 // AV1 loop filter applies to the whole frame according to mi_rows and mi_cols,
31 // which are calculated based on aligned width and aligned height,
32 // In addition, if super res is enabled, it copies the whole frame
33 // according to the aligned width and height (av1_superres_upscale()).
34 // So we need to copy the whole filtered region, instead of the cropped region.
35 // For example, input image size is: 160x90.
36 // Then src->y_crop_width = 160, src->y_crop_height = 90.
37 // The aligned frame size is: src->y_width = 160, src->y_height = 96.
38 // AV1 aligns frame size to a multiple of 8, if there is
39 // chroma subsampling, it is able to ensure the chroma is also
40 // an integer number of mi units. mi unit is 4x4, 8 = 4 * 2, and 2 luma mi
41 // units correspond to 1 chroma mi unit if there is subsampling.
42 // See: aom_realloc_frame_buffer() in yv12config.c.
yv12_copy_plane(const YV12_BUFFER_CONFIG * src_bc,YV12_BUFFER_CONFIG * dst_bc,int plane)43 static void yv12_copy_plane(const YV12_BUFFER_CONFIG *src_bc,
44 YV12_BUFFER_CONFIG *dst_bc, int plane) {
45 switch (plane) {
46 case 0: aom_yv12_copy_y(src_bc, dst_bc, 0); break;
47 case 1: aom_yv12_copy_u(src_bc, dst_bc, 0); break;
48 case 2: aom_yv12_copy_v(src_bc, dst_bc, 0); break;
49 default: assert(plane >= 0 && plane <= 2); break;
50 }
51 }
52
av1_get_max_filter_level(const AV1_COMP * cpi)53 int av1_get_max_filter_level(const AV1_COMP *cpi) {
54 if (is_stat_consumption_stage_twopass(cpi)) {
55 return cpi->ppi->twopass.section_intra_rating > 8 ? MAX_LOOP_FILTER * 3 / 4
56 : MAX_LOOP_FILTER;
57 } else {
58 return MAX_LOOP_FILTER;
59 }
60 }
61
try_filter_frame(const YV12_BUFFER_CONFIG * sd,AV1_COMP * const cpi,int filt_level,int partial_frame,int plane,int dir)62 static int64_t try_filter_frame(const YV12_BUFFER_CONFIG *sd,
63 AV1_COMP *const cpi, int filt_level,
64 int partial_frame, int plane, int dir) {
65 MultiThreadInfo *const mt_info = &cpi->mt_info;
66 int num_workers = mt_info->num_mod_workers[MOD_LPF];
67 AV1_COMMON *const cm = &cpi->common;
68 int64_t filt_err;
69
70 assert(plane >= 0 && plane <= 2);
71 int filter_level[2] = { filt_level, filt_level };
72 if (plane == 0 && dir == 0) filter_level[1] = cm->lf.filter_level[1];
73 if (plane == 0 && dir == 1) filter_level[0] = cm->lf.filter_level[0];
74
75 // set base filters for use of av1_get_filter_level when in DELTA_LF mode
76 switch (plane) {
77 case 0:
78 cm->lf.filter_level[0] = filter_level[0];
79 cm->lf.filter_level[1] = filter_level[1];
80 break;
81 case 1: cm->lf.filter_level_u = filter_level[0]; break;
82 case 2: cm->lf.filter_level_v = filter_level[0]; break;
83 }
84
85 // lpf_opt_level = 1 : Enables dual/quad loop-filtering.
86 int lpf_opt_level = is_inter_tx_size_search_level_one(&cpi->sf.tx_sf);
87
88 av1_loop_filter_frame_mt(&cm->cur_frame->buf, cm, &cpi->td.mb.e_mbd, plane,
89 plane + 1, partial_frame, mt_info->workers,
90 num_workers, &mt_info->lf_row_sync, lpf_opt_level);
91
92 filt_err = aom_get_sse_plane(sd, &cm->cur_frame->buf, plane,
93 cm->seq_params->use_highbitdepth);
94
95 // Re-instate the unfiltered frame
96 yv12_copy_plane(&cpi->last_frame_uf, &cm->cur_frame->buf, plane);
97
98 return filt_err;
99 }
100
search_filter_level(const YV12_BUFFER_CONFIG * sd,AV1_COMP * cpi,int partial_frame,const int * last_frame_filter_level,int plane,int dir)101 static int search_filter_level(const YV12_BUFFER_CONFIG *sd, AV1_COMP *cpi,
102 int partial_frame,
103 const int *last_frame_filter_level, int plane,
104 int dir) {
105 const AV1_COMMON *const cm = &cpi->common;
106 const int min_filter_level = 0;
107 const int max_filter_level = av1_get_max_filter_level(cpi);
108 int filt_direction = 0;
109 int64_t best_err;
110 int filt_best;
111
112 // Start the search at the previous frame filter level unless it is now out of
113 // range.
114 int lvl;
115 switch (plane) {
116 case 0:
117 switch (dir) {
118 case 2:
119 lvl = (last_frame_filter_level[0] + last_frame_filter_level[1] + 1) >>
120 1;
121 break;
122 case 0:
123 case 1: lvl = last_frame_filter_level[dir]; break;
124 default: assert(dir >= 0 && dir <= 2); return 0;
125 }
126 break;
127 case 1: lvl = last_frame_filter_level[2]; break;
128 case 2: lvl = last_frame_filter_level[3]; break;
129 default: assert(plane >= 0 && plane <= 2); return 0;
130 }
131 int filt_mid = clamp(lvl, min_filter_level, max_filter_level);
132 int filter_step = filt_mid < 16 ? 4 : filt_mid / 4;
133 // Sum squared error at each filter level
134 int64_t ss_err[MAX_LOOP_FILTER + 1];
135
136 const int use_coarse_search = cpi->sf.lpf_sf.use_coarse_filter_level_search;
137 assert(use_coarse_search <= 1);
138 static const int min_filter_step_lookup[2] = { 0, 2 };
139 // min_filter_step_thesh determines the stopping criteria for the search.
140 // The search is terminated when filter_step equals min_filter_step_thesh.
141 const int min_filter_step_thesh = min_filter_step_lookup[use_coarse_search];
142
143 // Set each entry to -1
144 memset(ss_err, 0xFF, sizeof(ss_err));
145 yv12_copy_plane(&cm->cur_frame->buf, &cpi->last_frame_uf, plane);
146 best_err = try_filter_frame(sd, cpi, filt_mid, partial_frame, plane, dir);
147 filt_best = filt_mid;
148 ss_err[filt_mid] = best_err;
149
150 while (filter_step > min_filter_step_thesh) {
151 const int filt_high = AOMMIN(filt_mid + filter_step, max_filter_level);
152 const int filt_low = AOMMAX(filt_mid - filter_step, min_filter_level);
153
154 // Bias against raising loop filter in favor of lowering it.
155 int64_t bias = (best_err >> (15 - (filt_mid / 8))) * filter_step;
156
157 if ((is_stat_consumption_stage_twopass(cpi)) &&
158 (cpi->ppi->twopass.section_intra_rating < 20))
159 bias = (bias * cpi->ppi->twopass.section_intra_rating) / 20;
160
161 // yx, bias less for large block size
162 if (cm->features.tx_mode != ONLY_4X4) bias >>= 1;
163
164 if (filt_direction <= 0 && filt_low != filt_mid) {
165 // Get Low filter error score
166 if (ss_err[filt_low] < 0) {
167 ss_err[filt_low] =
168 try_filter_frame(sd, cpi, filt_low, partial_frame, plane, dir);
169 }
170 // If value is close to the best so far then bias towards a lower loop
171 // filter value.
172 if (ss_err[filt_low] < (best_err + bias)) {
173 // Was it actually better than the previous best?
174 if (ss_err[filt_low] < best_err) {
175 best_err = ss_err[filt_low];
176 }
177 filt_best = filt_low;
178 }
179 }
180
181 // Now look at filt_high
182 if (filt_direction >= 0 && filt_high != filt_mid) {
183 if (ss_err[filt_high] < 0) {
184 ss_err[filt_high] =
185 try_filter_frame(sd, cpi, filt_high, partial_frame, plane, dir);
186 }
187 // If value is significantly better than previous best, bias added against
188 // raising filter value
189 if (ss_err[filt_high] < (best_err - bias)) {
190 best_err = ss_err[filt_high];
191 filt_best = filt_high;
192 }
193 }
194
195 // Half the step distance if the best filter value was the same as last time
196 if (filt_best == filt_mid) {
197 filter_step /= 2;
198 filt_direction = 0;
199 } else {
200 filt_direction = (filt_best < filt_mid) ? -1 : 1;
201 filt_mid = filt_best;
202 }
203 }
204
205 return filt_best;
206 }
207
av1_pick_filter_level(const YV12_BUFFER_CONFIG * sd,AV1_COMP * cpi,LPF_PICK_METHOD method)208 void av1_pick_filter_level(const YV12_BUFFER_CONFIG *sd, AV1_COMP *cpi,
209 LPF_PICK_METHOD method) {
210 AV1_COMMON *const cm = &cpi->common;
211 const SequenceHeader *const seq_params = cm->seq_params;
212 const int num_planes = av1_num_planes(cm);
213 struct loopfilter *const lf = &cm->lf;
214 int disable_filter_rt_screen = 0;
215 (void)sd;
216
217 lf->sharpness_level = 0;
218
219 if (cpi->oxcf.tune_cfg.content == AOM_CONTENT_SCREEN &&
220 cpi->oxcf.q_cfg.aq_mode == CYCLIC_REFRESH_AQ &&
221 cpi->sf.rt_sf.skip_lf_screen)
222 disable_filter_rt_screen = av1_cyclic_refresh_disable_lf_cdef(cpi);
223
224 if (disable_filter_rt_screen ||
225 cpi->oxcf.algo_cfg.loopfilter_control == LOOPFILTER_NONE ||
226 (cpi->oxcf.algo_cfg.loopfilter_control == LOOPFILTER_REFERENCE &&
227 cpi->ppi->rtc_ref.non_reference_frame)) {
228 lf->filter_level[0] = 0;
229 lf->filter_level[1] = 0;
230 return;
231 }
232
233 if (method == LPF_PICK_MINIMAL_LPF) {
234 lf->filter_level[0] = 0;
235 lf->filter_level[1] = 0;
236 } else if (method >= LPF_PICK_FROM_Q) {
237 const int min_filter_level = 0;
238 const int max_filter_level = av1_get_max_filter_level(cpi);
239 const int q = av1_ac_quant_QTX(cm->quant_params.base_qindex, 0,
240 seq_params->bit_depth);
241 // based on tests result for rtc test set
242 // 0.04590 boosted or 0.02295 non-booseted in 18-bit fixed point
243 const int strength_boost_q_treshold = 0;
244 int inter_frame_multiplier =
245 (q > strength_boost_q_treshold ||
246 (cpi->sf.rt_sf.use_nonrd_pick_mode &&
247 cpi->common.width * cpi->common.height > 352 * 288))
248 ? 12034
249 : 6017;
250 // Increase strength on base TL0 for temporal layers, for low-resoln,
251 // based on frame source_sad.
252 if (cpi->svc.number_temporal_layers > 1 &&
253 cpi->svc.temporal_layer_id == 0 &&
254 cpi->common.width * cpi->common.height <= 352 * 288 &&
255 cpi->sf.rt_sf.use_nonrd_pick_mode) {
256 if (cpi->rc.frame_source_sad > 100000)
257 inter_frame_multiplier = inter_frame_multiplier << 1;
258 else if (cpi->rc.frame_source_sad > 50000)
259 inter_frame_multiplier = 3 * (inter_frame_multiplier >> 1);
260 } else if (cpi->sf.rt_sf.use_fast_fixed_part) {
261 inter_frame_multiplier = inter_frame_multiplier << 1;
262 }
263 // These values were determined by linear fitting the result of the
264 // searched level for 8 bit depth:
265 // Keyframes: filt_guess = q * 0.06699 - 1.60817
266 // Other frames: filt_guess = q * inter_frame_multiplier + 2.48225
267 //
268 // And high bit depth separately:
269 // filt_guess = q * 0.316206 + 3.87252
270 int filt_guess;
271 switch (seq_params->bit_depth) {
272 case AOM_BITS_8:
273 filt_guess =
274 (cm->current_frame.frame_type == KEY_FRAME)
275 ? ROUND_POWER_OF_TWO(q * 17563 - 421574, 18)
276 : ROUND_POWER_OF_TWO(q * inter_frame_multiplier + 650707, 18);
277 break;
278 case AOM_BITS_10:
279 filt_guess = ROUND_POWER_OF_TWO(q * 20723 + 4060632, 20);
280 break;
281 case AOM_BITS_12:
282 filt_guess = ROUND_POWER_OF_TWO(q * 20723 + 16242526, 22);
283 break;
284 default:
285 assert(0 &&
286 "bit_depth should be AOM_BITS_8, AOM_BITS_10 "
287 "or AOM_BITS_12");
288 return;
289 }
290 if (seq_params->bit_depth != AOM_BITS_8 &&
291 cm->current_frame.frame_type == KEY_FRAME)
292 filt_guess -= 4;
293 // TODO(chengchen): retrain the model for Y, U, V filter levels
294 lf->filter_level[0] = clamp(filt_guess, min_filter_level, max_filter_level);
295 lf->filter_level[1] = clamp(filt_guess, min_filter_level, max_filter_level);
296 lf->filter_level_u = clamp(filt_guess, min_filter_level, max_filter_level);
297 lf->filter_level_v = clamp(filt_guess, min_filter_level, max_filter_level);
298 if (cpi->oxcf.algo_cfg.loopfilter_control == LOOPFILTER_SELECTIVELY &&
299 !frame_is_intra_only(cm) && !cpi->rc.high_source_sad) {
300 if (cpi->oxcf.tune_cfg.content == AOM_CONTENT_SCREEN) {
301 lf->filter_level[0] = 0;
302 lf->filter_level[1] = 0;
303 } else {
304 const int num4x4 = (cm->width >> 2) * (cm->height >> 2);
305 const int newmv_thresh = 7;
306 const int distance_since_key_thresh = 5;
307 if ((cpi->td.rd_counts.newmv_or_intra_blocks * 100 / num4x4) <
308 newmv_thresh &&
309 cpi->rc.frames_since_key > distance_since_key_thresh) {
310 lf->filter_level[0] = 0;
311 lf->filter_level[1] = 0;
312 }
313 }
314 }
315 } else {
316 int last_frame_filter_level[4] = { 0 };
317 if (!frame_is_intra_only(cm)) {
318 last_frame_filter_level[0] = cpi->ppi->filter_level[0];
319 last_frame_filter_level[1] = cpi->ppi->filter_level[1];
320 last_frame_filter_level[2] = cpi->ppi->filter_level_u;
321 last_frame_filter_level[3] = cpi->ppi->filter_level_v;
322 }
323 // The frame buffer last_frame_uf is used to store the non-loop filtered
324 // reconstructed frame in search_filter_level().
325 if (aom_realloc_frame_buffer(
326 &cpi->last_frame_uf, cm->width, cm->height,
327 seq_params->subsampling_x, seq_params->subsampling_y,
328 seq_params->use_highbitdepth, cpi->oxcf.border_in_pixels,
329 cm->features.byte_alignment, NULL, NULL, NULL, false, 0))
330 aom_internal_error(cm->error, AOM_CODEC_MEM_ERROR,
331 "Failed to allocate last frame buffer");
332
333 lf->filter_level[0] = lf->filter_level[1] =
334 search_filter_level(sd, cpi, method == LPF_PICK_FROM_SUBIMAGE,
335 last_frame_filter_level, 0, 2);
336 if (method != LPF_PICK_FROM_FULL_IMAGE_NON_DUAL) {
337 lf->filter_level[0] =
338 search_filter_level(sd, cpi, method == LPF_PICK_FROM_SUBIMAGE,
339 last_frame_filter_level, 0, 0);
340 lf->filter_level[1] =
341 search_filter_level(sd, cpi, method == LPF_PICK_FROM_SUBIMAGE,
342 last_frame_filter_level, 0, 1);
343 }
344
345 if (num_planes > 1) {
346 lf->filter_level_u =
347 search_filter_level(sd, cpi, method == LPF_PICK_FROM_SUBIMAGE,
348 last_frame_filter_level, 1, 0);
349 lf->filter_level_v =
350 search_filter_level(sd, cpi, method == LPF_PICK_FROM_SUBIMAGE,
351 last_frame_filter_level, 2, 0);
352 }
353 }
354 }
355