/src/libvpx/vp9/encoder/vp9_pickmode.c
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1 | | /* |
2 | | * Copyright (c) 2014 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 <assert.h> |
12 | | #include <limits.h> |
13 | | #include <math.h> |
14 | | #include <stdio.h> |
15 | | |
16 | | #include "./vp9_rtcd.h" |
17 | | #include "./vpx_dsp_rtcd.h" |
18 | | |
19 | | #include "vpx/vpx_codec.h" |
20 | | #include "vpx_dsp/vpx_dsp_common.h" |
21 | | #include "vpx_mem/vpx_mem.h" |
22 | | #include "vpx_ports/compiler_attributes.h" |
23 | | |
24 | | #include "vp9/common/vp9_blockd.h" |
25 | | #include "vp9/common/vp9_common.h" |
26 | | #include "vp9/common/vp9_mvref_common.h" |
27 | | #include "vp9/common/vp9_pred_common.h" |
28 | | #include "vp9/common/vp9_reconinter.h" |
29 | | #include "vp9/common/vp9_reconintra.h" |
30 | | #include "vp9/common/vp9_scan.h" |
31 | | |
32 | | #include "vp9/encoder/vp9_cost.h" |
33 | | #include "vp9/encoder/vp9_encoder.h" |
34 | | #include "vp9/encoder/vp9_pickmode.h" |
35 | | #include "vp9/encoder/vp9_ratectrl.h" |
36 | | #include "vp9/encoder/vp9_rd.h" |
37 | | |
38 | | typedef struct { |
39 | | uint8_t *data; |
40 | | int stride; |
41 | | int in_use; |
42 | | } PRED_BUFFER; |
43 | | |
44 | | typedef struct { |
45 | | PRED_BUFFER *best_pred; |
46 | | PREDICTION_MODE best_mode; |
47 | | TX_SIZE best_tx_size; |
48 | | TX_SIZE best_intra_tx_size; |
49 | | MV_REFERENCE_FRAME best_ref_frame; |
50 | | MV_REFERENCE_FRAME best_second_ref_frame; |
51 | | uint8_t best_mode_skip_txfm; |
52 | | INTERP_FILTER best_pred_filter; |
53 | | } BEST_PICKMODE; |
54 | | |
55 | | static const int pos_shift_16x16[4][4] = { |
56 | | { 9, 10, 13, 14 }, { 11, 12, 15, 16 }, { 17, 18, 21, 22 }, { 19, 20, 23, 24 } |
57 | | }; |
58 | | |
59 | | static int mv_refs_rt(VP9_COMP *cpi, const VP9_COMMON *cm, const MACROBLOCK *x, |
60 | | const MACROBLOCKD *xd, const TileInfo *const tile, |
61 | | MODE_INFO *mi, MV_REFERENCE_FRAME ref_frame, |
62 | | int_mv *mv_ref_list, int_mv *base_mv, int mi_row, |
63 | 0 | int mi_col, int use_base_mv) { |
64 | 0 | const int *ref_sign_bias = cm->ref_frame_sign_bias; |
65 | 0 | int i, refmv_count = 0; |
66 | |
|
67 | 0 | const POSITION *const mv_ref_search = mv_ref_blocks[mi->sb_type]; |
68 | |
|
69 | 0 | int different_ref_found = 0; |
70 | 0 | int context_counter = 0; |
71 | 0 | int const_motion = 0; |
72 | | |
73 | | // Blank the reference vector list |
74 | 0 | memset(mv_ref_list, 0, sizeof(*mv_ref_list) * MAX_MV_REF_CANDIDATES); |
75 | | |
76 | | // The nearest 2 blocks are treated differently |
77 | | // if the size < 8x8 we get the mv from the bmi substructure, |
78 | | // and we also need to keep a mode count. |
79 | 0 | for (i = 0; i < 2; ++i) { |
80 | 0 | const POSITION *const mv_ref = &mv_ref_search[i]; |
81 | 0 | if (is_inside(tile, mi_col, mi_row, cm->mi_rows, mv_ref)) { |
82 | 0 | const MODE_INFO *const candidate_mi = |
83 | 0 | xd->mi[mv_ref->col + mv_ref->row * xd->mi_stride]; |
84 | | // Keep counts for entropy encoding. |
85 | 0 | context_counter += mode_2_counter[candidate_mi->mode]; |
86 | 0 | different_ref_found = 1; |
87 | |
|
88 | 0 | if (candidate_mi->ref_frame[0] == ref_frame) |
89 | 0 | ADD_MV_REF_LIST(get_sub_block_mv(candidate_mi, 0, mv_ref->col, -1), |
90 | 0 | refmv_count, mv_ref_list, Done); |
91 | 0 | } |
92 | 0 | } |
93 | | |
94 | 0 | const_motion = 1; |
95 | | |
96 | | // Check the rest of the neighbors in much the same way |
97 | | // as before except we don't need to keep track of sub blocks or |
98 | | // mode counts. |
99 | 0 | for (; i < MVREF_NEIGHBOURS && !refmv_count; ++i) { |
100 | 0 | const POSITION *const mv_ref = &mv_ref_search[i]; |
101 | 0 | if (is_inside(tile, mi_col, mi_row, cm->mi_rows, mv_ref)) { |
102 | 0 | const MODE_INFO *const candidate_mi = |
103 | 0 | xd->mi[mv_ref->col + mv_ref->row * xd->mi_stride]; |
104 | 0 | different_ref_found = 1; |
105 | |
|
106 | 0 | if (candidate_mi->ref_frame[0] == ref_frame) |
107 | 0 | ADD_MV_REF_LIST(candidate_mi->mv[0], refmv_count, mv_ref_list, Done); |
108 | 0 | } |
109 | 0 | } |
110 | | |
111 | | // Since we couldn't find 2 mvs from the same reference frame |
112 | | // go back through the neighbors and find motion vectors from |
113 | | // different reference frames. |
114 | 0 | if (different_ref_found && !refmv_count) { |
115 | 0 | for (i = 0; i < MVREF_NEIGHBOURS; ++i) { |
116 | 0 | const POSITION *mv_ref = &mv_ref_search[i]; |
117 | 0 | if (is_inside(tile, mi_col, mi_row, cm->mi_rows, mv_ref)) { |
118 | 0 | const MODE_INFO *const candidate_mi = |
119 | 0 | xd->mi[mv_ref->col + mv_ref->row * xd->mi_stride]; |
120 | | |
121 | | // If the candidate is INTRA we don't want to consider its mv. |
122 | 0 | IF_DIFF_REF_FRAME_ADD_MV(candidate_mi, ref_frame, ref_sign_bias, |
123 | 0 | refmv_count, mv_ref_list, Done); |
124 | 0 | } |
125 | 0 | } |
126 | 0 | } |
127 | 0 | if (use_base_mv && |
128 | 0 | !cpi->svc.layer_context[cpi->svc.temporal_layer_id].is_key_frame && |
129 | 0 | ref_frame == LAST_FRAME) { |
130 | | // Get base layer mv. |
131 | 0 | MV_REF *candidate = |
132 | 0 | &cm->prev_frame |
133 | 0 | ->mvs[(mi_col >> 1) + (mi_row >> 1) * (cm->mi_cols >> 1)]; |
134 | 0 | if (candidate->mv[0].as_int != INVALID_MV) { |
135 | 0 | base_mv->as_mv.row = (candidate->mv[0].as_mv.row * 2); |
136 | 0 | base_mv->as_mv.col = (candidate->mv[0].as_mv.col * 2); |
137 | 0 | clamp_mv_ref(&base_mv->as_mv, xd); |
138 | 0 | } else { |
139 | 0 | base_mv->as_int = INVALID_MV; |
140 | 0 | } |
141 | 0 | } |
142 | |
|
143 | 0 | Done: |
144 | |
|
145 | 0 | x->mbmi_ext->mode_context[ref_frame] = counter_to_context[context_counter]; |
146 | | |
147 | | // Clamp vectors |
148 | 0 | for (i = 0; i < MAX_MV_REF_CANDIDATES; ++i) |
149 | 0 | clamp_mv_ref(&mv_ref_list[i].as_mv, xd); |
150 | |
|
151 | 0 | return const_motion; |
152 | 0 | } |
153 | | |
154 | | static int combined_motion_search(VP9_COMP *cpi, MACROBLOCK *x, |
155 | | BLOCK_SIZE bsize, int mi_row, int mi_col, |
156 | | int_mv *tmp_mv, int *rate_mv, |
157 | 0 | int64_t best_rd_sofar, int use_base_mv) { |
158 | 0 | MACROBLOCKD *xd = &x->e_mbd; |
159 | 0 | MODE_INFO *mi = xd->mi[0]; |
160 | 0 | struct buf_2d backup_yv12[MAX_MB_PLANE] = { { 0, 0 } }; |
161 | 0 | const int step_param = cpi->sf.mv.fullpel_search_step_param; |
162 | 0 | const int sadpb = x->sadperbit16; |
163 | 0 | MV mvp_full; |
164 | 0 | const int ref = mi->ref_frame[0]; |
165 | 0 | const MV ref_mv = x->mbmi_ext->ref_mvs[ref][0].as_mv; |
166 | 0 | MV center_mv; |
167 | 0 | uint32_t dis; |
168 | 0 | int rate_mode; |
169 | 0 | const MvLimits tmp_mv_limits = x->mv_limits; |
170 | 0 | int rv = 0; |
171 | 0 | int cost_list[5]; |
172 | 0 | int search_subpel = 1; |
173 | 0 | const YV12_BUFFER_CONFIG *scaled_ref_frame = |
174 | 0 | vp9_get_scaled_ref_frame(cpi, ref); |
175 | 0 | if (scaled_ref_frame) { |
176 | 0 | int i; |
177 | | // Swap out the reference frame for a version that's been scaled to |
178 | | // match the resolution of the current frame, allowing the existing |
179 | | // motion search code to be used without additional modifications. |
180 | 0 | for (i = 0; i < MAX_MB_PLANE; i++) backup_yv12[i] = xd->plane[i].pre[0]; |
181 | 0 | vp9_setup_pre_planes(xd, 0, scaled_ref_frame, mi_row, mi_col, NULL); |
182 | 0 | } |
183 | 0 | vp9_set_mv_search_range(&x->mv_limits, &ref_mv); |
184 | | |
185 | | // Limit motion vector for large lightning change. |
186 | 0 | if (cpi->oxcf.speed > 5 && x->lowvar_highsumdiff) { |
187 | 0 | x->mv_limits.col_min = VPXMAX(x->mv_limits.col_min, -10); |
188 | 0 | x->mv_limits.row_min = VPXMAX(x->mv_limits.row_min, -10); |
189 | 0 | x->mv_limits.col_max = VPXMIN(x->mv_limits.col_max, 10); |
190 | 0 | x->mv_limits.row_max = VPXMIN(x->mv_limits.row_max, 10); |
191 | 0 | } |
192 | |
|
193 | 0 | assert(x->mv_best_ref_index[ref] <= 2); |
194 | 0 | if (x->mv_best_ref_index[ref] < 2) |
195 | 0 | mvp_full = x->mbmi_ext->ref_mvs[ref][x->mv_best_ref_index[ref]].as_mv; |
196 | 0 | else |
197 | 0 | mvp_full = x->pred_mv[ref]; |
198 | |
|
199 | 0 | mvp_full.col >>= 3; |
200 | 0 | mvp_full.row >>= 3; |
201 | |
|
202 | 0 | if (!use_base_mv) |
203 | 0 | center_mv = ref_mv; |
204 | 0 | else |
205 | 0 | center_mv = tmp_mv->as_mv; |
206 | |
|
207 | 0 | if (x->sb_use_mv_part) { |
208 | 0 | tmp_mv->as_mv.row = x->sb_mvrow_part >> 3; |
209 | 0 | tmp_mv->as_mv.col = x->sb_mvcol_part >> 3; |
210 | 0 | } else { |
211 | 0 | vp9_full_pixel_search( |
212 | 0 | cpi, x, bsize, &mvp_full, step_param, cpi->sf.mv.search_method, sadpb, |
213 | 0 | cond_cost_list(cpi, cost_list), ¢er_mv, &tmp_mv->as_mv, INT_MAX, 0); |
214 | 0 | } |
215 | |
|
216 | 0 | x->mv_limits = tmp_mv_limits; |
217 | | |
218 | | // calculate the bit cost on motion vector |
219 | 0 | mvp_full.row = tmp_mv->as_mv.row * 8; |
220 | 0 | mvp_full.col = tmp_mv->as_mv.col * 8; |
221 | |
|
222 | 0 | *rate_mv = vp9_mv_bit_cost(&mvp_full, &ref_mv, x->nmvjointcost, x->mvcost, |
223 | 0 | MV_COST_WEIGHT); |
224 | |
|
225 | 0 | rate_mode = |
226 | 0 | cpi->inter_mode_cost[x->mbmi_ext->mode_context[ref]][INTER_OFFSET(NEWMV)]; |
227 | 0 | rv = |
228 | 0 | !(RDCOST(x->rdmult, x->rddiv, (*rate_mv + rate_mode), 0) > best_rd_sofar); |
229 | | |
230 | | // For SVC on non-reference frame, avoid subpel for (0, 0) motion. |
231 | 0 | if (cpi->use_svc && cpi->svc.non_reference_frame) { |
232 | 0 | if (mvp_full.row == 0 && mvp_full.col == 0) search_subpel = 0; |
233 | 0 | } |
234 | |
|
235 | 0 | if (rv && search_subpel) { |
236 | 0 | SUBPEL_FORCE_STOP subpel_force_stop = cpi->sf.mv.subpel_force_stop; |
237 | 0 | if (use_base_mv && cpi->sf.base_mv_aggressive) subpel_force_stop = HALF_PEL; |
238 | 0 | if (cpi->sf.mv.enable_adaptive_subpel_force_stop) { |
239 | 0 | const int mv_thresh = cpi->sf.mv.adapt_subpel_force_stop.mv_thresh; |
240 | 0 | if (abs(tmp_mv->as_mv.row) >= mv_thresh || |
241 | 0 | abs(tmp_mv->as_mv.col) >= mv_thresh) |
242 | 0 | subpel_force_stop = cpi->sf.mv.adapt_subpel_force_stop.force_stop_above; |
243 | 0 | else |
244 | 0 | subpel_force_stop = cpi->sf.mv.adapt_subpel_force_stop.force_stop_below; |
245 | 0 | } |
246 | 0 | cpi->find_fractional_mv_step( |
247 | 0 | x, &tmp_mv->as_mv, &ref_mv, cpi->common.allow_high_precision_mv, |
248 | 0 | x->errorperbit, &cpi->fn_ptr[bsize], subpel_force_stop, |
249 | 0 | cpi->sf.mv.subpel_search_level, cond_cost_list(cpi, cost_list), |
250 | 0 | x->nmvjointcost, x->mvcost, &dis, &x->pred_sse[ref], NULL, 0, 0, |
251 | 0 | cpi->sf.use_accurate_subpel_search); |
252 | 0 | *rate_mv = vp9_mv_bit_cost(&tmp_mv->as_mv, &ref_mv, x->nmvjointcost, |
253 | 0 | x->mvcost, MV_COST_WEIGHT); |
254 | 0 | } |
255 | |
|
256 | 0 | if (scaled_ref_frame) { |
257 | 0 | int i; |
258 | 0 | for (i = 0; i < MAX_MB_PLANE; i++) xd->plane[i].pre[0] = backup_yv12[i]; |
259 | 0 | } |
260 | 0 | return rv; |
261 | 0 | } |
262 | | |
263 | | static void block_variance(const uint8_t *src, int src_stride, |
264 | | const uint8_t *ref, int ref_stride, int w, int h, |
265 | | unsigned int *sse, int *sum, int block_size, |
266 | | #if CONFIG_VP9_HIGHBITDEPTH |
267 | | int use_highbitdepth, vpx_bit_depth_t bd, |
268 | | #endif |
269 | 0 | uint32_t *sse8x8, int *sum8x8, uint32_t *var8x8) { |
270 | 0 | int i, j, k = 0; |
271 | 0 | uint32_t k_sqr = 0; |
272 | |
|
273 | 0 | *sse = 0; |
274 | 0 | *sum = 0; |
275 | |
|
276 | 0 | for (i = 0; i < h; i += block_size) { |
277 | 0 | for (j = 0; j < w; j += block_size) { |
278 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
279 | 0 | if (use_highbitdepth) { |
280 | 0 | switch (bd) { |
281 | 0 | case VPX_BITS_8: |
282 | 0 | vpx_highbd_8_get8x8var(src + src_stride * i + j, src_stride, |
283 | 0 | ref + ref_stride * i + j, ref_stride, |
284 | 0 | &sse8x8[k], &sum8x8[k]); |
285 | 0 | break; |
286 | 0 | case VPX_BITS_10: |
287 | 0 | vpx_highbd_10_get8x8var(src + src_stride * i + j, src_stride, |
288 | 0 | ref + ref_stride * i + j, ref_stride, |
289 | 0 | &sse8x8[k], &sum8x8[k]); |
290 | 0 | break; |
291 | 0 | case VPX_BITS_12: |
292 | 0 | vpx_highbd_12_get8x8var(src + src_stride * i + j, src_stride, |
293 | 0 | ref + ref_stride * i + j, ref_stride, |
294 | 0 | &sse8x8[k], &sum8x8[k]); |
295 | 0 | break; |
296 | 0 | } |
297 | 0 | } else { |
298 | 0 | vpx_get8x8var(src + src_stride * i + j, src_stride, |
299 | 0 | ref + ref_stride * i + j, ref_stride, &sse8x8[k], |
300 | 0 | &sum8x8[k]); |
301 | 0 | } |
302 | | #else |
303 | | vpx_get8x8var(src + src_stride * i + j, src_stride, |
304 | | ref + ref_stride * i + j, ref_stride, &sse8x8[k], |
305 | | &sum8x8[k]); |
306 | | #endif |
307 | 0 | *sse += sse8x8[k]; |
308 | 0 | *sum += sum8x8[k]; |
309 | 0 | k_sqr = (uint32_t)(((int64_t)sum8x8[k] * sum8x8[k]) >> 6); |
310 | 0 | var8x8[k] = sse8x8[k] > k_sqr ? sse8x8[k] - k_sqr : k_sqr - sse8x8[k]; |
311 | 0 | k++; |
312 | 0 | } |
313 | 0 | } |
314 | 0 | } |
315 | | |
316 | | static void calculate_variance(int bw, int bh, TX_SIZE tx_size, |
317 | | unsigned int *sse_i, int *sum_i, |
318 | | unsigned int *var_o, unsigned int *sse_o, |
319 | 0 | int *sum_o) { |
320 | 0 | const BLOCK_SIZE unit_size = txsize_to_bsize[tx_size]; |
321 | 0 | const int nw = 1 << (bw - b_width_log2_lookup[unit_size]); |
322 | 0 | const int nh = 1 << (bh - b_height_log2_lookup[unit_size]); |
323 | 0 | int i, j, k = 0; |
324 | 0 | uint32_t k_sqr = 0; |
325 | |
|
326 | 0 | for (i = 0; i < nh; i += 2) { |
327 | 0 | for (j = 0; j < nw; j += 2) { |
328 | 0 | sse_o[k] = sse_i[i * nw + j] + sse_i[i * nw + j + 1] + |
329 | 0 | sse_i[(i + 1) * nw + j] + sse_i[(i + 1) * nw + j + 1]; |
330 | 0 | sum_o[k] = sum_i[i * nw + j] + sum_i[i * nw + j + 1] + |
331 | 0 | sum_i[(i + 1) * nw + j] + sum_i[(i + 1) * nw + j + 1]; |
332 | 0 | k_sqr = (uint32_t)(((int64_t)sum_o[k] * sum_o[k]) >> |
333 | 0 | (b_width_log2_lookup[unit_size] + |
334 | 0 | b_height_log2_lookup[unit_size] + 6)); |
335 | 0 | var_o[k] = sse_o[k] > k_sqr ? sse_o[k] - k_sqr : k_sqr - sse_o[k]; |
336 | 0 | k++; |
337 | 0 | } |
338 | 0 | } |
339 | 0 | } |
340 | | |
341 | | // Adjust the ac_thr according to speed, width, height and normalized sum |
342 | | static int ac_thr_factor(const int speed, const int width, const int height, |
343 | 0 | const int norm_sum) { |
344 | 0 | if (speed >= 8 && norm_sum < 5) { |
345 | 0 | if (width <= 640 && height <= 480) |
346 | 0 | return 4; |
347 | 0 | else |
348 | 0 | return 2; |
349 | 0 | } |
350 | 0 | return 1; |
351 | 0 | } |
352 | | |
353 | | static TX_SIZE calculate_tx_size(VP9_COMP *const cpi, BLOCK_SIZE bsize, |
354 | | MACROBLOCKD *const xd, unsigned int var, |
355 | | unsigned int sse, int64_t ac_thr, |
356 | 0 | unsigned int source_variance, int is_intra) { |
357 | | // TODO(marpan): Tune selection for intra-modes, screen content, etc. |
358 | 0 | TX_SIZE tx_size; |
359 | 0 | unsigned int var_thresh = is_intra ? (unsigned int)ac_thr : 1; |
360 | 0 | int limit_tx = 1; |
361 | 0 | if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ && |
362 | 0 | (source_variance == 0 || var < var_thresh)) |
363 | 0 | limit_tx = 0; |
364 | 0 | if (cpi->common.tx_mode == TX_MODE_SELECT) { |
365 | 0 | if (sse > (var << 2)) |
366 | 0 | tx_size = VPXMIN(max_txsize_lookup[bsize], |
367 | 0 | tx_mode_to_biggest_tx_size[cpi->common.tx_mode]); |
368 | 0 | else |
369 | 0 | tx_size = TX_8X8; |
370 | 0 | if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ && limit_tx && |
371 | 0 | cyclic_refresh_segment_id_boosted(xd->mi[0]->segment_id)) |
372 | 0 | tx_size = TX_8X8; |
373 | 0 | else if (tx_size > TX_16X16 && limit_tx) |
374 | 0 | tx_size = TX_16X16; |
375 | | // For screen-content force 4X4 tx_size over 8X8, for large variance. |
376 | 0 | if (cpi->oxcf.content == VP9E_CONTENT_SCREEN && tx_size == TX_8X8 && |
377 | 0 | bsize <= BLOCK_16X16 && ((var >> 5) > (unsigned int)ac_thr)) |
378 | 0 | tx_size = TX_4X4; |
379 | 0 | } else { |
380 | 0 | tx_size = VPXMIN(max_txsize_lookup[bsize], |
381 | 0 | tx_mode_to_biggest_tx_size[cpi->common.tx_mode]); |
382 | 0 | } |
383 | 0 | return tx_size; |
384 | 0 | } |
385 | | |
386 | | static void compute_intra_yprediction(PREDICTION_MODE mode, BLOCK_SIZE bsize, |
387 | 0 | MACROBLOCK *x, MACROBLOCKD *xd) { |
388 | 0 | struct macroblockd_plane *const pd = &xd->plane[0]; |
389 | 0 | struct macroblock_plane *const p = &x->plane[0]; |
390 | 0 | uint8_t *const src_buf_base = p->src.buf; |
391 | 0 | uint8_t *const dst_buf_base = pd->dst.buf; |
392 | 0 | const int src_stride = p->src.stride; |
393 | 0 | const int dst_stride = pd->dst.stride; |
394 | | // block and transform sizes, in number of 4x4 blocks log 2 ("*_b") |
395 | | // 4x4=0, 8x8=2, 16x16=4, 32x32=6, 64x64=8 |
396 | 0 | const TX_SIZE tx_size = max_txsize_lookup[bsize]; |
397 | 0 | const int num_4x4_w = num_4x4_blocks_wide_lookup[bsize]; |
398 | 0 | const int num_4x4_h = num_4x4_blocks_high_lookup[bsize]; |
399 | 0 | int row, col; |
400 | | // If mb_to_right_edge is < 0 we are in a situation in which |
401 | | // the current block size extends into the UMV and we won't |
402 | | // visit the sub blocks that are wholly within the UMV. |
403 | 0 | const int max_blocks_wide = |
404 | 0 | num_4x4_w + (xd->mb_to_right_edge >= 0 |
405 | 0 | ? 0 |
406 | 0 | : xd->mb_to_right_edge >> (5 + pd->subsampling_x)); |
407 | 0 | const int max_blocks_high = |
408 | 0 | num_4x4_h + (xd->mb_to_bottom_edge >= 0 |
409 | 0 | ? 0 |
410 | 0 | : xd->mb_to_bottom_edge >> (5 + pd->subsampling_y)); |
411 | | |
412 | | // Keep track of the row and column of the blocks we use so that we know |
413 | | // if we are in the unrestricted motion border. |
414 | 0 | for (row = 0; row < max_blocks_high; row += (1 << tx_size)) { |
415 | | // Skip visiting the sub blocks that are wholly within the UMV. |
416 | 0 | for (col = 0; col < max_blocks_wide; col += (1 << tx_size)) { |
417 | 0 | p->src.buf = &src_buf_base[4 * (row * (int64_t)src_stride + col)]; |
418 | 0 | pd->dst.buf = &dst_buf_base[4 * (row * (int64_t)dst_stride + col)]; |
419 | 0 | vp9_predict_intra_block(xd, b_width_log2_lookup[bsize], tx_size, mode, |
420 | 0 | x->skip_encode ? p->src.buf : pd->dst.buf, |
421 | 0 | x->skip_encode ? src_stride : dst_stride, |
422 | 0 | pd->dst.buf, dst_stride, col, row, 0); |
423 | 0 | } |
424 | 0 | } |
425 | 0 | p->src.buf = src_buf_base; |
426 | 0 | pd->dst.buf = dst_buf_base; |
427 | 0 | } |
428 | | |
429 | | static void model_rd_for_sb_y_large(VP9_COMP *cpi, BLOCK_SIZE bsize, |
430 | | MACROBLOCK *x, MACROBLOCKD *xd, |
431 | | int *out_rate_sum, int64_t *out_dist_sum, |
432 | | unsigned int *var_y, unsigned int *sse_y, |
433 | | int mi_row, int mi_col, int *early_term, |
434 | 0 | int *flag_preduv_computed) { |
435 | | // Note our transform coeffs are 8 times an orthogonal transform. |
436 | | // Hence quantizer step is also 8 times. To get effective quantizer |
437 | | // we need to divide by 8 before sending to modeling function. |
438 | 0 | unsigned int sse; |
439 | 0 | int rate; |
440 | 0 | int64_t dist; |
441 | 0 | struct macroblock_plane *const p = &x->plane[0]; |
442 | 0 | struct macroblockd_plane *const pd = &xd->plane[0]; |
443 | 0 | const uint32_t dc_quant = pd->dequant[0]; |
444 | 0 | const uint32_t ac_quant = pd->dequant[1]; |
445 | 0 | int64_t dc_thr = dc_quant * dc_quant >> 6; |
446 | 0 | int64_t ac_thr = ac_quant * ac_quant >> 6; |
447 | 0 | unsigned int var; |
448 | 0 | int sum; |
449 | 0 | int skip_dc = 0; |
450 | |
|
451 | 0 | const int bw = b_width_log2_lookup[bsize]; |
452 | 0 | const int bh = b_height_log2_lookup[bsize]; |
453 | 0 | const int num8x8 = 1 << (bw + bh - 2); |
454 | 0 | unsigned int sse8x8[64] = { 0 }; |
455 | 0 | int sum8x8[64] = { 0 }; |
456 | 0 | unsigned int var8x8[64] = { 0 }; |
457 | 0 | TX_SIZE tx_size; |
458 | 0 | int i, k; |
459 | 0 | uint32_t sum_sqr; |
460 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
461 | 0 | const vpx_bit_depth_t bd = cpi->common.bit_depth; |
462 | 0 | #endif |
463 | | // Calculate variance for whole partition, and also save 8x8 blocks' variance |
464 | | // to be used in following transform skipping test. |
465 | 0 | block_variance(p->src.buf, p->src.stride, pd->dst.buf, pd->dst.stride, |
466 | 0 | 4 << bw, 4 << bh, &sse, &sum, 8, |
467 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
468 | 0 | cpi->common.use_highbitdepth, bd, |
469 | 0 | #endif |
470 | 0 | sse8x8, sum8x8, var8x8); |
471 | 0 | sum_sqr = (uint32_t)((int64_t)sum * sum) >> (bw + bh + 4); |
472 | 0 | var = sse > sum_sqr ? sse - sum_sqr : sum_sqr - sse; |
473 | |
|
474 | 0 | *var_y = var; |
475 | 0 | *sse_y = sse; |
476 | |
|
477 | | #if CONFIG_VP9_TEMPORAL_DENOISING |
478 | | if (cpi->oxcf.noise_sensitivity > 0 && denoise_svc(cpi) && |
479 | | cpi->oxcf.speed > 5) |
480 | | ac_thr = vp9_scale_acskip_thresh(ac_thr, cpi->denoiser.denoising_level, |
481 | | (abs(sum) >> (bw + bh)), |
482 | | cpi->svc.temporal_layer_id); |
483 | | else |
484 | | ac_thr *= ac_thr_factor(cpi->oxcf.speed, cpi->common.width, |
485 | | cpi->common.height, abs(sum) >> (bw + bh)); |
486 | | #else |
487 | 0 | ac_thr *= ac_thr_factor(cpi->oxcf.speed, cpi->common.width, |
488 | 0 | cpi->common.height, abs(sum) >> (bw + bh)); |
489 | 0 | #endif |
490 | |
|
491 | 0 | tx_size = calculate_tx_size(cpi, bsize, xd, var, sse, ac_thr, |
492 | 0 | x->source_variance, 0); |
493 | | // The code below for setting skip flag assumes tranform size of at least 8x8, |
494 | | // so force this lower limit on transform. |
495 | 0 | if (tx_size < TX_8X8) tx_size = TX_8X8; |
496 | 0 | xd->mi[0]->tx_size = tx_size; |
497 | |
|
498 | 0 | if (cpi->oxcf.content == VP9E_CONTENT_SCREEN && x->zero_temp_sad_source && |
499 | 0 | x->source_variance == 0) |
500 | 0 | dc_thr = dc_thr << 1; |
501 | | |
502 | | // Evaluate if the partition block is a skippable block in Y plane. |
503 | 0 | { |
504 | 0 | unsigned int sse16x16[16] = { 0 }; |
505 | 0 | int sum16x16[16] = { 0 }; |
506 | 0 | unsigned int var16x16[16] = { 0 }; |
507 | 0 | const int num16x16 = num8x8 >> 2; |
508 | |
|
509 | 0 | unsigned int sse32x32[4] = { 0 }; |
510 | 0 | int sum32x32[4] = { 0 }; |
511 | 0 | unsigned int var32x32[4] = { 0 }; |
512 | 0 | const int num32x32 = num8x8 >> 4; |
513 | |
|
514 | 0 | int ac_test = 1; |
515 | 0 | int dc_test = 1; |
516 | 0 | const int num = (tx_size == TX_8X8) |
517 | 0 | ? num8x8 |
518 | 0 | : ((tx_size == TX_16X16) ? num16x16 : num32x32); |
519 | 0 | const unsigned int *sse_tx = |
520 | 0 | (tx_size == TX_8X8) ? sse8x8 |
521 | 0 | : ((tx_size == TX_16X16) ? sse16x16 : sse32x32); |
522 | 0 | const unsigned int *var_tx = |
523 | 0 | (tx_size == TX_8X8) ? var8x8 |
524 | 0 | : ((tx_size == TX_16X16) ? var16x16 : var32x32); |
525 | | |
526 | | // Calculate variance if tx_size > TX_8X8 |
527 | 0 | if (tx_size >= TX_16X16) |
528 | 0 | calculate_variance(bw, bh, TX_8X8, sse8x8, sum8x8, var16x16, sse16x16, |
529 | 0 | sum16x16); |
530 | 0 | if (tx_size == TX_32X32) |
531 | 0 | calculate_variance(bw, bh, TX_16X16, sse16x16, sum16x16, var32x32, |
532 | 0 | sse32x32, sum32x32); |
533 | | |
534 | | // Skipping test |
535 | 0 | x->skip_txfm[0] = SKIP_TXFM_NONE; |
536 | 0 | for (k = 0; k < num; k++) |
537 | | // Check if all ac coefficients can be quantized to zero. |
538 | 0 | if (!(var_tx[k] < ac_thr || var == 0)) { |
539 | 0 | ac_test = 0; |
540 | 0 | break; |
541 | 0 | } |
542 | |
|
543 | 0 | for (k = 0; k < num; k++) |
544 | | // Check if dc coefficient can be quantized to zero. |
545 | 0 | if (!(sse_tx[k] - var_tx[k] < dc_thr || sse == var)) { |
546 | 0 | dc_test = 0; |
547 | 0 | break; |
548 | 0 | } |
549 | |
|
550 | 0 | if (ac_test) { |
551 | 0 | x->skip_txfm[0] = SKIP_TXFM_AC_ONLY; |
552 | |
|
553 | 0 | if (dc_test) x->skip_txfm[0] = SKIP_TXFM_AC_DC; |
554 | 0 | } else if (dc_test) { |
555 | 0 | skip_dc = 1; |
556 | 0 | } |
557 | 0 | } |
558 | |
|
559 | 0 | if (x->skip_txfm[0] == SKIP_TXFM_AC_DC) { |
560 | 0 | int skip_uv[2] = { 0 }; |
561 | 0 | unsigned int var_uv[2]; |
562 | 0 | unsigned int sse_uv[2]; |
563 | |
|
564 | 0 | *out_rate_sum = 0; |
565 | 0 | *out_dist_sum = sse << 4; |
566 | | |
567 | | // Transform skipping test in UV planes. |
568 | 0 | for (i = 1; i <= 2; i++) { |
569 | 0 | struct macroblock_plane *const p_uv = &x->plane[i]; |
570 | 0 | struct macroblockd_plane *const pd_uv = &xd->plane[i]; |
571 | 0 | const TX_SIZE uv_tx_size = get_uv_tx_size(xd->mi[0], pd_uv); |
572 | 0 | const BLOCK_SIZE unit_size = txsize_to_bsize[uv_tx_size]; |
573 | 0 | const BLOCK_SIZE uv_bsize = get_plane_block_size(bsize, pd_uv); |
574 | 0 | const int uv_bw = b_width_log2_lookup[uv_bsize]; |
575 | 0 | const int uv_bh = b_height_log2_lookup[uv_bsize]; |
576 | 0 | const int sf = (uv_bw - b_width_log2_lookup[unit_size]) + |
577 | 0 | (uv_bh - b_height_log2_lookup[unit_size]); |
578 | 0 | const uint32_t uv_dc_thr = |
579 | 0 | pd_uv->dequant[0] * pd_uv->dequant[0] >> (6 - sf); |
580 | 0 | const uint32_t uv_ac_thr = |
581 | 0 | pd_uv->dequant[1] * pd_uv->dequant[1] >> (6 - sf); |
582 | 0 | int j = i - 1; |
583 | |
|
584 | 0 | vp9_build_inter_predictors_sbp(xd, mi_row, mi_col, bsize, i); |
585 | 0 | flag_preduv_computed[i - 1] = 1; |
586 | 0 | var_uv[j] = cpi->fn_ptr[uv_bsize].vf(p_uv->src.buf, p_uv->src.stride, |
587 | 0 | pd_uv->dst.buf, pd_uv->dst.stride, |
588 | 0 | &sse_uv[j]); |
589 | |
|
590 | 0 | if ((var_uv[j] < uv_ac_thr || var_uv[j] == 0) && |
591 | 0 | (sse_uv[j] - var_uv[j] < uv_dc_thr || sse_uv[j] == var_uv[j])) |
592 | 0 | skip_uv[j] = 1; |
593 | 0 | else |
594 | 0 | break; |
595 | 0 | } |
596 | | |
597 | | // If the transform in YUV planes are skippable, the mode search checks |
598 | | // fewer inter modes and doesn't check intra modes. |
599 | 0 | if (skip_uv[0] & skip_uv[1]) { |
600 | 0 | *early_term = 1; |
601 | 0 | } |
602 | 0 | return; |
603 | 0 | } |
604 | | |
605 | 0 | if (!skip_dc) { |
606 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
607 | 0 | vp9_model_rd_from_var_lapndz(sse - var, num_pels_log2_lookup[bsize], |
608 | 0 | dc_quant >> (xd->bd - 5), &rate, &dist); |
609 | | #else |
610 | | vp9_model_rd_from_var_lapndz(sse - var, num_pels_log2_lookup[bsize], |
611 | | dc_quant >> 3, &rate, &dist); |
612 | | #endif // CONFIG_VP9_HIGHBITDEPTH |
613 | 0 | } |
614 | |
|
615 | 0 | if (!skip_dc) { |
616 | 0 | *out_rate_sum = rate >> 1; |
617 | 0 | *out_dist_sum = dist << 3; |
618 | 0 | } else { |
619 | 0 | *out_rate_sum = 0; |
620 | 0 | *out_dist_sum = (sse - var) << 4; |
621 | 0 | } |
622 | |
|
623 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
624 | 0 | vp9_model_rd_from_var_lapndz(var, num_pels_log2_lookup[bsize], |
625 | 0 | ac_quant >> (xd->bd - 5), &rate, &dist); |
626 | | #else |
627 | | vp9_model_rd_from_var_lapndz(var, num_pels_log2_lookup[bsize], ac_quant >> 3, |
628 | | &rate, &dist); |
629 | | #endif // CONFIG_VP9_HIGHBITDEPTH |
630 | |
|
631 | 0 | *out_rate_sum += rate; |
632 | 0 | *out_dist_sum += dist << 4; |
633 | 0 | } |
634 | | |
635 | | static void model_rd_for_sb_y(VP9_COMP *cpi, BLOCK_SIZE bsize, MACROBLOCK *x, |
636 | | MACROBLOCKD *xd, int *out_rate_sum, |
637 | | int64_t *out_dist_sum, unsigned int *var_y, |
638 | 0 | unsigned int *sse_y, int is_intra) { |
639 | | // Note our transform coeffs are 8 times an orthogonal transform. |
640 | | // Hence quantizer step is also 8 times. To get effective quantizer |
641 | | // we need to divide by 8 before sending to modeling function. |
642 | 0 | unsigned int sse; |
643 | 0 | int rate; |
644 | 0 | int64_t dist; |
645 | 0 | struct macroblock_plane *const p = &x->plane[0]; |
646 | 0 | struct macroblockd_plane *const pd = &xd->plane[0]; |
647 | 0 | const int64_t dc_thr = p->quant_thred[0] >> 6; |
648 | 0 | const int64_t ac_thr = p->quant_thred[1] >> 6; |
649 | 0 | const uint32_t dc_quant = pd->dequant[0]; |
650 | 0 | const uint32_t ac_quant = pd->dequant[1]; |
651 | 0 | unsigned int var = cpi->fn_ptr[bsize].vf(p->src.buf, p->src.stride, |
652 | 0 | pd->dst.buf, pd->dst.stride, &sse); |
653 | 0 | int skip_dc = 0; |
654 | |
|
655 | 0 | *var_y = var; |
656 | 0 | *sse_y = sse; |
657 | |
|
658 | 0 | xd->mi[0]->tx_size = calculate_tx_size(cpi, bsize, xd, var, sse, ac_thr, |
659 | 0 | x->source_variance, is_intra); |
660 | | |
661 | | // Evaluate if the partition block is a skippable block in Y plane. |
662 | 0 | { |
663 | 0 | const BLOCK_SIZE unit_size = txsize_to_bsize[xd->mi[0]->tx_size]; |
664 | 0 | const unsigned int num_blk_log2 = |
665 | 0 | (b_width_log2_lookup[bsize] - b_width_log2_lookup[unit_size]) + |
666 | 0 | (b_height_log2_lookup[bsize] - b_height_log2_lookup[unit_size]); |
667 | 0 | const unsigned int sse_tx = sse >> num_blk_log2; |
668 | 0 | const unsigned int var_tx = var >> num_blk_log2; |
669 | |
|
670 | 0 | x->skip_txfm[0] = SKIP_TXFM_NONE; |
671 | | // Check if all ac coefficients can be quantized to zero. |
672 | 0 | if (var_tx < ac_thr || var == 0) { |
673 | 0 | x->skip_txfm[0] = SKIP_TXFM_AC_ONLY; |
674 | | // Check if dc coefficient can be quantized to zero. |
675 | 0 | if (sse_tx - var_tx < dc_thr || sse == var) |
676 | 0 | x->skip_txfm[0] = SKIP_TXFM_AC_DC; |
677 | 0 | } else { |
678 | 0 | if (sse_tx - var_tx < dc_thr || sse == var) skip_dc = 1; |
679 | 0 | } |
680 | 0 | } |
681 | |
|
682 | 0 | if (x->skip_txfm[0] == SKIP_TXFM_AC_DC) { |
683 | 0 | *out_rate_sum = 0; |
684 | 0 | *out_dist_sum = sse << 4; |
685 | 0 | return; |
686 | 0 | } |
687 | | |
688 | 0 | if (!skip_dc) { |
689 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
690 | 0 | vp9_model_rd_from_var_lapndz(sse - var, num_pels_log2_lookup[bsize], |
691 | 0 | dc_quant >> (xd->bd - 5), &rate, &dist); |
692 | | #else |
693 | | vp9_model_rd_from_var_lapndz(sse - var, num_pels_log2_lookup[bsize], |
694 | | dc_quant >> 3, &rate, &dist); |
695 | | #endif // CONFIG_VP9_HIGHBITDEPTH |
696 | 0 | } |
697 | |
|
698 | 0 | if (!skip_dc) { |
699 | 0 | *out_rate_sum = rate >> 1; |
700 | 0 | *out_dist_sum = dist << 3; |
701 | 0 | } else { |
702 | 0 | *out_rate_sum = 0; |
703 | 0 | *out_dist_sum = (sse - var) << 4; |
704 | 0 | } |
705 | |
|
706 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
707 | 0 | vp9_model_rd_from_var_lapndz(var, num_pels_log2_lookup[bsize], |
708 | 0 | ac_quant >> (xd->bd - 5), &rate, &dist); |
709 | | #else |
710 | | vp9_model_rd_from_var_lapndz(var, num_pels_log2_lookup[bsize], ac_quant >> 3, |
711 | | &rate, &dist); |
712 | | #endif // CONFIG_VP9_HIGHBITDEPTH |
713 | |
|
714 | 0 | *out_rate_sum += rate; |
715 | 0 | *out_dist_sum += dist << 4; |
716 | 0 | } |
717 | | |
718 | | static void block_yrd(VP9_COMP *cpi, MACROBLOCK *x, RD_COST *this_rdc, |
719 | | int *skippable, int64_t *sse, BLOCK_SIZE bsize, |
720 | 0 | TX_SIZE tx_size, int rd_computed, int is_intra) { |
721 | 0 | MACROBLOCKD *xd = &x->e_mbd; |
722 | 0 | const struct macroblockd_plane *pd = &xd->plane[0]; |
723 | 0 | struct macroblock_plane *const p = &x->plane[0]; |
724 | 0 | const int num_4x4_w = num_4x4_blocks_wide_lookup[bsize]; |
725 | 0 | const int num_4x4_h = num_4x4_blocks_high_lookup[bsize]; |
726 | 0 | const int step = 1 << (tx_size << 1); |
727 | 0 | const int block_step = (1 << tx_size); |
728 | 0 | int block = 0, r, c; |
729 | 0 | const int max_blocks_wide = |
730 | 0 | num_4x4_w + (xd->mb_to_right_edge >= 0 ? 0 : xd->mb_to_right_edge >> 5); |
731 | 0 | const int max_blocks_high = |
732 | 0 | num_4x4_h + (xd->mb_to_bottom_edge >= 0 ? 0 : xd->mb_to_bottom_edge >> 5); |
733 | 0 | int eob_cost = 0; |
734 | 0 | const int bw = 4 * num_4x4_w; |
735 | 0 | const int bh = 4 * num_4x4_h; |
736 | |
|
737 | 0 | if (cpi->sf.use_simple_block_yrd && cpi->common.frame_type != KEY_FRAME && |
738 | 0 | (bsize < BLOCK_32X32 || |
739 | 0 | (cpi->use_svc && |
740 | 0 | (bsize < BLOCK_32X32 || cpi->svc.temporal_layer_id > 0)))) { |
741 | 0 | unsigned int var_y, sse_y; |
742 | 0 | (void)tx_size; |
743 | 0 | if (!rd_computed) |
744 | 0 | model_rd_for_sb_y(cpi, bsize, x, xd, &this_rdc->rate, &this_rdc->dist, |
745 | 0 | &var_y, &sse_y, is_intra); |
746 | 0 | *sse = INT_MAX; |
747 | 0 | *skippable = 0; |
748 | 0 | return; |
749 | 0 | } |
750 | | |
751 | 0 | (void)cpi; |
752 | | |
753 | | // The max tx_size passed in is TX_16X16. |
754 | 0 | assert(tx_size != TX_32X32); |
755 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
756 | 0 | if (xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH) { |
757 | 0 | vpx_highbd_subtract_block(bh, bw, p->src_diff, bw, p->src.buf, |
758 | 0 | p->src.stride, pd->dst.buf, pd->dst.stride, |
759 | 0 | x->e_mbd.bd); |
760 | 0 | } else { |
761 | 0 | vpx_subtract_block(bh, bw, p->src_diff, bw, p->src.buf, p->src.stride, |
762 | 0 | pd->dst.buf, pd->dst.stride); |
763 | 0 | } |
764 | | #else |
765 | | vpx_subtract_block(bh, bw, p->src_diff, bw, p->src.buf, p->src.stride, |
766 | | pd->dst.buf, pd->dst.stride); |
767 | | #endif |
768 | 0 | *skippable = 1; |
769 | | // Keep track of the row and column of the blocks we use so that we know |
770 | | // if we are in the unrestricted motion border. |
771 | 0 | for (r = 0; r < max_blocks_high; r += block_step) { |
772 | 0 | for (c = 0; c < num_4x4_w; c += block_step) { |
773 | 0 | if (c < max_blocks_wide) { |
774 | 0 | const ScanOrder *const scan_order = &vp9_default_scan_orders[tx_size]; |
775 | 0 | tran_low_t *const coeff = BLOCK_OFFSET(p->coeff, block); |
776 | 0 | tran_low_t *const qcoeff = BLOCK_OFFSET(p->qcoeff, block); |
777 | 0 | tran_low_t *const dqcoeff = BLOCK_OFFSET(pd->dqcoeff, block); |
778 | 0 | uint16_t *const eob = &p->eobs[block]; |
779 | 0 | const int diff_stride = bw; |
780 | 0 | const int16_t *src_diff; |
781 | 0 | src_diff = &p->src_diff[(r * diff_stride + c) << 2]; |
782 | | |
783 | | // skip block condition should be handled before this is called. |
784 | 0 | assert(!x->skip_block); |
785 | |
|
786 | 0 | switch (tx_size) { |
787 | 0 | case TX_16X16: |
788 | 0 | vpx_hadamard_16x16(src_diff, diff_stride, coeff); |
789 | 0 | vp9_quantize_fp(coeff, 256, p, qcoeff, dqcoeff, pd->dequant, eob, |
790 | 0 | scan_order); |
791 | 0 | break; |
792 | 0 | case TX_8X8: |
793 | 0 | vpx_hadamard_8x8(src_diff, diff_stride, coeff); |
794 | 0 | vp9_quantize_fp(coeff, 64, p, qcoeff, dqcoeff, pd->dequant, eob, |
795 | 0 | scan_order); |
796 | 0 | break; |
797 | 0 | default: |
798 | 0 | assert(tx_size == TX_4X4); |
799 | 0 | x->fwd_txfm4x4(src_diff, coeff, diff_stride); |
800 | 0 | vp9_quantize_fp(coeff, 16, p, qcoeff, dqcoeff, pd->dequant, eob, |
801 | 0 | scan_order); |
802 | 0 | break; |
803 | 0 | } |
804 | 0 | *skippable &= (*eob == 0); |
805 | 0 | eob_cost += 1; |
806 | 0 | } |
807 | 0 | block += step; |
808 | 0 | } |
809 | 0 | } |
810 | | |
811 | 0 | this_rdc->rate = 0; |
812 | 0 | if (*sse < INT64_MAX) { |
813 | 0 | *sse = (*sse << 6) >> 2; |
814 | 0 | if (*skippable) { |
815 | 0 | this_rdc->dist = *sse; |
816 | 0 | return; |
817 | 0 | } |
818 | 0 | } |
819 | | |
820 | 0 | block = 0; |
821 | 0 | this_rdc->dist = 0; |
822 | 0 | for (r = 0; r < max_blocks_high; r += block_step) { |
823 | 0 | for (c = 0; c < num_4x4_w; c += block_step) { |
824 | 0 | if (c < max_blocks_wide) { |
825 | 0 | tran_low_t *const coeff = BLOCK_OFFSET(p->coeff, block); |
826 | 0 | tran_low_t *const qcoeff = BLOCK_OFFSET(p->qcoeff, block); |
827 | 0 | tran_low_t *const dqcoeff = BLOCK_OFFSET(pd->dqcoeff, block); |
828 | 0 | uint16_t *const eob = &p->eobs[block]; |
829 | |
|
830 | 0 | if (*eob == 1) |
831 | 0 | this_rdc->rate += (int)abs(qcoeff[0]); |
832 | 0 | else if (*eob > 1) |
833 | 0 | this_rdc->rate += vpx_satd(qcoeff, step << 4); |
834 | |
|
835 | 0 | this_rdc->dist += vp9_block_error_fp(coeff, dqcoeff, step << 4) >> 2; |
836 | 0 | } |
837 | 0 | block += step; |
838 | 0 | } |
839 | 0 | } |
840 | | |
841 | | // If skippable is set, rate gets clobbered later. |
842 | 0 | this_rdc->rate <<= (2 + VP9_PROB_COST_SHIFT); |
843 | 0 | this_rdc->rate += (eob_cost << VP9_PROB_COST_SHIFT); |
844 | 0 | } |
845 | | |
846 | | static void model_rd_for_sb_uv(VP9_COMP *cpi, BLOCK_SIZE plane_bsize, |
847 | | MACROBLOCK *x, MACROBLOCKD *xd, |
848 | | RD_COST *this_rdc, unsigned int *var_y, |
849 | | unsigned int *sse_y, int start_plane, |
850 | 0 | int stop_plane) { |
851 | | // Note our transform coeffs are 8 times an orthogonal transform. |
852 | | // Hence quantizer step is also 8 times. To get effective quantizer |
853 | | // we need to divide by 8 before sending to modeling function. |
854 | 0 | unsigned int sse; |
855 | 0 | int rate; |
856 | 0 | int64_t dist; |
857 | 0 | int i; |
858 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
859 | 0 | uint64_t tot_var = *var_y; |
860 | 0 | uint64_t tot_sse = *sse_y; |
861 | | #else |
862 | | uint32_t tot_var = *var_y; |
863 | | uint32_t tot_sse = *sse_y; |
864 | | #endif |
865 | |
|
866 | 0 | this_rdc->rate = 0; |
867 | 0 | this_rdc->dist = 0; |
868 | |
|
869 | 0 | for (i = start_plane; i <= stop_plane; ++i) { |
870 | 0 | struct macroblock_plane *const p = &x->plane[i]; |
871 | 0 | struct macroblockd_plane *const pd = &xd->plane[i]; |
872 | 0 | const uint32_t dc_quant = pd->dequant[0]; |
873 | 0 | const uint32_t ac_quant = pd->dequant[1]; |
874 | 0 | const BLOCK_SIZE bs = plane_bsize; |
875 | 0 | unsigned int var; |
876 | 0 | if (!x->color_sensitivity[i - 1]) continue; |
877 | | |
878 | 0 | var = cpi->fn_ptr[bs].vf(p->src.buf, p->src.stride, pd->dst.buf, |
879 | 0 | pd->dst.stride, &sse); |
880 | 0 | assert(sse >= var); |
881 | 0 | tot_var += var; |
882 | 0 | tot_sse += sse; |
883 | |
|
884 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
885 | 0 | vp9_model_rd_from_var_lapndz(sse - var, num_pels_log2_lookup[bs], |
886 | 0 | dc_quant >> (xd->bd - 5), &rate, &dist); |
887 | | #else |
888 | | vp9_model_rd_from_var_lapndz(sse - var, num_pels_log2_lookup[bs], |
889 | | dc_quant >> 3, &rate, &dist); |
890 | | #endif // CONFIG_VP9_HIGHBITDEPTH |
891 | |
|
892 | 0 | this_rdc->rate += rate >> 1; |
893 | 0 | this_rdc->dist += dist << 3; |
894 | |
|
895 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
896 | 0 | vp9_model_rd_from_var_lapndz(var, num_pels_log2_lookup[bs], |
897 | 0 | ac_quant >> (xd->bd - 5), &rate, &dist); |
898 | | #else |
899 | | vp9_model_rd_from_var_lapndz(var, num_pels_log2_lookup[bs], ac_quant >> 3, |
900 | | &rate, &dist); |
901 | | #endif // CONFIG_VP9_HIGHBITDEPTH |
902 | |
|
903 | 0 | this_rdc->rate += rate; |
904 | 0 | this_rdc->dist += dist << 4; |
905 | 0 | } |
906 | |
|
907 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
908 | 0 | *var_y = tot_var > UINT32_MAX ? UINT32_MAX : (uint32_t)tot_var; |
909 | 0 | *sse_y = tot_sse > UINT32_MAX ? UINT32_MAX : (uint32_t)tot_sse; |
910 | | #else |
911 | | *var_y = tot_var; |
912 | | *sse_y = tot_sse; |
913 | | #endif |
914 | 0 | } |
915 | | |
916 | 0 | static int get_pred_buffer(PRED_BUFFER *p, int len) { |
917 | 0 | int i; |
918 | |
|
919 | 0 | for (i = 0; i < len; i++) { |
920 | 0 | if (!p[i].in_use) { |
921 | 0 | p[i].in_use = 1; |
922 | 0 | return i; |
923 | 0 | } |
924 | 0 | } |
925 | 0 | return -1; |
926 | 0 | } |
927 | | |
928 | 0 | static void free_pred_buffer(PRED_BUFFER *p) { |
929 | 0 | if (p != NULL) p->in_use = 0; |
930 | 0 | } |
931 | | |
932 | | static void encode_breakout_test( |
933 | | VP9_COMP *cpi, MACROBLOCK *x, BLOCK_SIZE bsize, int mi_row, int mi_col, |
934 | | MV_REFERENCE_FRAME ref_frame, PREDICTION_MODE this_mode, unsigned int var_y, |
935 | | unsigned int sse_y, struct buf_2d yv12_mb[][MAX_MB_PLANE], int *rate, |
936 | 0 | int64_t *dist, int *flag_preduv_computed) { |
937 | 0 | MACROBLOCKD *xd = &x->e_mbd; |
938 | 0 | MODE_INFO *const mi = xd->mi[0]; |
939 | 0 | const BLOCK_SIZE uv_size = get_plane_block_size(bsize, &xd->plane[1]); |
940 | 0 | unsigned int var = var_y, sse = sse_y; |
941 | | // Skipping threshold for ac. |
942 | 0 | unsigned int thresh_ac; |
943 | | // Skipping threshold for dc. |
944 | 0 | unsigned int thresh_dc; |
945 | 0 | int motion_low = 1; |
946 | |
|
947 | 0 | if (cpi->use_svc && ref_frame == GOLDEN_FRAME) return; |
948 | 0 | if (mi->mv[0].as_mv.row > 64 || mi->mv[0].as_mv.row < -64 || |
949 | 0 | mi->mv[0].as_mv.col > 64 || mi->mv[0].as_mv.col < -64) |
950 | 0 | motion_low = 0; |
951 | 0 | if (x->encode_breakout > 0 && motion_low == 1) { |
952 | | // Set a maximum for threshold to avoid big PSNR loss in low bit rate |
953 | | // case. Use extreme low threshold for static frames to limit |
954 | | // skipping. |
955 | 0 | const unsigned int max_thresh = 36000; |
956 | | // The encode_breakout input |
957 | 0 | const unsigned int min_thresh = |
958 | 0 | VPXMIN(((unsigned int)x->encode_breakout << 4), max_thresh); |
959 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
960 | 0 | const int shift = (xd->bd << 1) - 16; |
961 | 0 | #endif |
962 | | |
963 | | // Calculate threshold according to dequant value. |
964 | 0 | thresh_ac = (xd->plane[0].dequant[1] * xd->plane[0].dequant[1]) >> 3; |
965 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
966 | 0 | if ((xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH) && shift > 0) { |
967 | 0 | thresh_ac = ROUND_POWER_OF_TWO(thresh_ac, shift); |
968 | 0 | } |
969 | 0 | #endif // CONFIG_VP9_HIGHBITDEPTH |
970 | 0 | thresh_ac = clamp(thresh_ac, min_thresh, max_thresh); |
971 | | |
972 | | // Adjust ac threshold according to partition size. |
973 | 0 | thresh_ac >>= |
974 | 0 | 8 - (b_width_log2_lookup[bsize] + b_height_log2_lookup[bsize]); |
975 | |
|
976 | 0 | thresh_dc = (xd->plane[0].dequant[0] * xd->plane[0].dequant[0] >> 6); |
977 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
978 | 0 | if ((xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH) && shift > 0) { |
979 | 0 | thresh_dc = ROUND_POWER_OF_TWO(thresh_dc, shift); |
980 | 0 | } |
981 | 0 | #endif // CONFIG_VP9_HIGHBITDEPTH |
982 | 0 | } else { |
983 | 0 | thresh_ac = 0; |
984 | 0 | thresh_dc = 0; |
985 | 0 | } |
986 | | |
987 | | // Y skipping condition checking for ac and dc. |
988 | 0 | if (var <= thresh_ac && (sse - var) <= thresh_dc) { |
989 | 0 | unsigned int sse_u, sse_v; |
990 | 0 | unsigned int var_u, var_v; |
991 | 0 | unsigned int thresh_ac_uv = thresh_ac; |
992 | 0 | unsigned int thresh_dc_uv = thresh_dc; |
993 | 0 | if (x->sb_is_skin) { |
994 | 0 | thresh_ac_uv = 0; |
995 | 0 | thresh_dc_uv = 0; |
996 | 0 | } |
997 | |
|
998 | 0 | if (!flag_preduv_computed[0] || !flag_preduv_computed[1]) { |
999 | 0 | xd->plane[1].pre[0] = yv12_mb[ref_frame][1]; |
1000 | 0 | xd->plane[2].pre[0] = yv12_mb[ref_frame][2]; |
1001 | 0 | vp9_build_inter_predictors_sbuv(xd, mi_row, mi_col, bsize); |
1002 | 0 | } |
1003 | |
|
1004 | 0 | var_u = cpi->fn_ptr[uv_size].vf(x->plane[1].src.buf, x->plane[1].src.stride, |
1005 | 0 | xd->plane[1].dst.buf, |
1006 | 0 | xd->plane[1].dst.stride, &sse_u); |
1007 | | |
1008 | | // U skipping condition checking |
1009 | 0 | if (((var_u << 2) <= thresh_ac_uv) && (sse_u - var_u <= thresh_dc_uv)) { |
1010 | 0 | var_v = cpi->fn_ptr[uv_size].vf( |
1011 | 0 | x->plane[2].src.buf, x->plane[2].src.stride, xd->plane[2].dst.buf, |
1012 | 0 | xd->plane[2].dst.stride, &sse_v); |
1013 | | |
1014 | | // V skipping condition checking |
1015 | 0 | if (((var_v << 2) <= thresh_ac_uv) && (sse_v - var_v <= thresh_dc_uv)) { |
1016 | 0 | x->skip = 1; |
1017 | | |
1018 | | // The cost of skip bit needs to be added. |
1019 | 0 | *rate = cpi->inter_mode_cost[x->mbmi_ext->mode_context[ref_frame]] |
1020 | 0 | [INTER_OFFSET(this_mode)]; |
1021 | | |
1022 | | // More on this part of rate |
1023 | | // rate += vp9_cost_bit(vp9_get_skip_prob(cm, xd), 1); |
1024 | | |
1025 | | // Scaling factor for SSE from spatial domain to frequency |
1026 | | // domain is 16. Adjust distortion accordingly. |
1027 | | // TODO(yunqingwang): In this function, only y-plane dist is |
1028 | | // calculated. |
1029 | 0 | *dist = (sse << 4); // + ((sse_u + sse_v) << 4); |
1030 | | |
1031 | | // *disable_skip = 1; |
1032 | 0 | } |
1033 | 0 | } |
1034 | 0 | } |
1035 | 0 | } |
1036 | | |
1037 | | struct estimate_block_intra_args { |
1038 | | VP9_COMP *cpi; |
1039 | | MACROBLOCK *x; |
1040 | | PREDICTION_MODE mode; |
1041 | | int skippable; |
1042 | | RD_COST *rdc; |
1043 | | }; |
1044 | | |
1045 | | static void estimate_block_intra(int plane, int block, int row, int col, |
1046 | | BLOCK_SIZE plane_bsize, TX_SIZE tx_size, |
1047 | 0 | void *arg) { |
1048 | 0 | struct estimate_block_intra_args *const args = arg; |
1049 | 0 | VP9_COMP *const cpi = args->cpi; |
1050 | 0 | MACROBLOCK *const x = args->x; |
1051 | 0 | MACROBLOCKD *const xd = &x->e_mbd; |
1052 | 0 | struct macroblock_plane *const p = &x->plane[plane]; |
1053 | 0 | struct macroblockd_plane *const pd = &xd->plane[plane]; |
1054 | 0 | const BLOCK_SIZE bsize_tx = txsize_to_bsize[tx_size]; |
1055 | 0 | uint8_t *const src_buf_base = p->src.buf; |
1056 | 0 | uint8_t *const dst_buf_base = pd->dst.buf; |
1057 | 0 | const int src_stride = p->src.stride; |
1058 | 0 | const int dst_stride = pd->dst.stride; |
1059 | 0 | RD_COST this_rdc; |
1060 | |
|
1061 | 0 | (void)block; |
1062 | |
|
1063 | 0 | p->src.buf = &src_buf_base[4 * (row * (int64_t)src_stride + col)]; |
1064 | 0 | pd->dst.buf = &dst_buf_base[4 * (row * (int64_t)dst_stride + col)]; |
1065 | | // Use source buffer as an approximation for the fully reconstructed buffer. |
1066 | 0 | vp9_predict_intra_block(xd, b_width_log2_lookup[plane_bsize], tx_size, |
1067 | 0 | args->mode, x->skip_encode ? p->src.buf : pd->dst.buf, |
1068 | 0 | x->skip_encode ? src_stride : dst_stride, pd->dst.buf, |
1069 | 0 | dst_stride, col, row, plane); |
1070 | |
|
1071 | 0 | if (plane == 0) { |
1072 | 0 | int64_t this_sse = INT64_MAX; |
1073 | 0 | block_yrd(cpi, x, &this_rdc, &args->skippable, &this_sse, bsize_tx, |
1074 | 0 | VPXMIN(tx_size, TX_16X16), 0, 1); |
1075 | 0 | } else { |
1076 | 0 | unsigned int var = 0; |
1077 | 0 | unsigned int sse = 0; |
1078 | 0 | model_rd_for_sb_uv(cpi, bsize_tx, x, xd, &this_rdc, &var, &sse, plane, |
1079 | 0 | plane); |
1080 | 0 | } |
1081 | |
|
1082 | 0 | p->src.buf = src_buf_base; |
1083 | 0 | pd->dst.buf = dst_buf_base; |
1084 | 0 | args->rdc->rate += this_rdc.rate; |
1085 | 0 | args->rdc->dist += this_rdc.dist; |
1086 | 0 | } |
1087 | | |
1088 | | static const THR_MODES mode_idx[MAX_REF_FRAMES][4] = { |
1089 | | { THR_DC, THR_V_PRED, THR_H_PRED, THR_TM }, |
1090 | | { THR_NEARESTMV, THR_NEARMV, THR_ZEROMV, THR_NEWMV }, |
1091 | | { THR_NEARESTG, THR_NEARG, THR_ZEROG, THR_NEWG }, |
1092 | | { THR_NEARESTA, THR_NEARA, THR_ZEROA, THR_NEWA }, |
1093 | | }; |
1094 | | |
1095 | | static const PREDICTION_MODE intra_mode_list[] = { DC_PRED, V_PRED, H_PRED, |
1096 | | TM_PRED }; |
1097 | | |
1098 | 0 | static int mode_offset(const PREDICTION_MODE mode) { |
1099 | 0 | if (mode >= NEARESTMV) { |
1100 | 0 | return INTER_OFFSET(mode); |
1101 | 0 | } else { |
1102 | 0 | switch (mode) { |
1103 | 0 | case DC_PRED: return 0; |
1104 | 0 | case V_PRED: return 1; |
1105 | 0 | case H_PRED: return 2; |
1106 | 0 | case TM_PRED: return 3; |
1107 | 0 | default: return -1; |
1108 | 0 | } |
1109 | 0 | } |
1110 | 0 | } |
1111 | | |
1112 | | static INLINE int rd_less_than_thresh_row_mt(int64_t best_rd, int thresh, |
1113 | 0 | const int *const thresh_fact) { |
1114 | 0 | int is_rd_less_than_thresh; |
1115 | 0 | is_rd_less_than_thresh = |
1116 | 0 | best_rd < ((int64_t)thresh * (*thresh_fact) >> 5) || thresh == INT_MAX; |
1117 | 0 | return is_rd_less_than_thresh; |
1118 | 0 | } |
1119 | | |
1120 | | static INLINE void update_thresh_freq_fact_row_mt( |
1121 | | VP9_COMP *cpi, TileDataEnc *tile_data, unsigned int source_variance, |
1122 | | int thresh_freq_fact_idx, MV_REFERENCE_FRAME ref_frame, |
1123 | 0 | THR_MODES best_mode_idx, PREDICTION_MODE mode) { |
1124 | 0 | THR_MODES thr_mode_idx = mode_idx[ref_frame][mode_offset(mode)]; |
1125 | 0 | int freq_fact_idx = thresh_freq_fact_idx + thr_mode_idx; |
1126 | 0 | int *freq_fact = &tile_data->row_base_thresh_freq_fact[freq_fact_idx]; |
1127 | 0 | if (thr_mode_idx == best_mode_idx) |
1128 | 0 | *freq_fact -= (*freq_fact >> 4); |
1129 | 0 | else if (cpi->sf.limit_newmv_early_exit && mode == NEWMV && |
1130 | 0 | ref_frame == LAST_FRAME && source_variance < 5) { |
1131 | 0 | *freq_fact = VPXMIN(*freq_fact + RD_THRESH_INC, 32); |
1132 | 0 | } else { |
1133 | 0 | *freq_fact = VPXMIN(*freq_fact + RD_THRESH_INC, |
1134 | 0 | cpi->sf.adaptive_rd_thresh * RD_THRESH_MAX_FACT); |
1135 | 0 | } |
1136 | 0 | } |
1137 | | |
1138 | | static INLINE void update_thresh_freq_fact( |
1139 | | VP9_COMP *cpi, TileDataEnc *tile_data, unsigned int source_variance, |
1140 | | BLOCK_SIZE bsize, MV_REFERENCE_FRAME ref_frame, THR_MODES best_mode_idx, |
1141 | 0 | PREDICTION_MODE mode) { |
1142 | 0 | THR_MODES thr_mode_idx = mode_idx[ref_frame][mode_offset(mode)]; |
1143 | 0 | int *freq_fact = &tile_data->thresh_freq_fact[bsize][thr_mode_idx]; |
1144 | 0 | if (thr_mode_idx == best_mode_idx) |
1145 | 0 | *freq_fact -= (*freq_fact >> 4); |
1146 | 0 | else if (cpi->sf.limit_newmv_early_exit && mode == NEWMV && |
1147 | 0 | ref_frame == LAST_FRAME && source_variance < 5) { |
1148 | 0 | *freq_fact = VPXMIN(*freq_fact + RD_THRESH_INC, 32); |
1149 | 0 | } else { |
1150 | 0 | *freq_fact = VPXMIN(*freq_fact + RD_THRESH_INC, |
1151 | 0 | cpi->sf.adaptive_rd_thresh * RD_THRESH_MAX_FACT); |
1152 | 0 | } |
1153 | 0 | } |
1154 | | |
1155 | | void vp9_pick_intra_mode(VP9_COMP *cpi, MACROBLOCK *x, RD_COST *rd_cost, |
1156 | 0 | BLOCK_SIZE bsize, PICK_MODE_CONTEXT *ctx) { |
1157 | 0 | MACROBLOCKD *const xd = &x->e_mbd; |
1158 | 0 | MODE_INFO *const mi = xd->mi[0]; |
1159 | 0 | RD_COST this_rdc, best_rdc; |
1160 | 0 | PREDICTION_MODE this_mode; |
1161 | 0 | struct estimate_block_intra_args args = { cpi, x, DC_PRED, 1, 0 }; |
1162 | 0 | const TX_SIZE intra_tx_size = |
1163 | 0 | VPXMIN(max_txsize_lookup[bsize], |
1164 | 0 | tx_mode_to_biggest_tx_size[cpi->common.tx_mode]); |
1165 | 0 | MODE_INFO *const mic = xd->mi[0]; |
1166 | 0 | int *bmode_costs; |
1167 | 0 | const MODE_INFO *above_mi = xd->above_mi; |
1168 | 0 | const MODE_INFO *left_mi = xd->left_mi; |
1169 | 0 | const PREDICTION_MODE A = vp9_above_block_mode(mic, above_mi, 0); |
1170 | 0 | const PREDICTION_MODE L = vp9_left_block_mode(mic, left_mi, 0); |
1171 | 0 | bmode_costs = cpi->y_mode_costs[A][L]; |
1172 | |
|
1173 | 0 | (void)ctx; |
1174 | 0 | vp9_rd_cost_reset(&best_rdc); |
1175 | 0 | vp9_rd_cost_reset(&this_rdc); |
1176 | |
|
1177 | 0 | mi->ref_frame[0] = INTRA_FRAME; |
1178 | | // Initialize interp_filter here so we do not have to check for inter block |
1179 | | // modes in get_pred_context_switchable_interp() |
1180 | 0 | mi->interp_filter = SWITCHABLE_FILTERS; |
1181 | |
|
1182 | 0 | mi->mv[0].as_int = INVALID_MV; |
1183 | 0 | mi->uv_mode = DC_PRED; |
1184 | 0 | memset(x->skip_txfm, 0, sizeof(x->skip_txfm)); |
1185 | | |
1186 | | // Change the limit of this loop to add other intra prediction |
1187 | | // mode tests. |
1188 | 0 | for (this_mode = DC_PRED; this_mode <= H_PRED; ++this_mode) { |
1189 | 0 | this_rdc.dist = this_rdc.rate = 0; |
1190 | 0 | args.mode = this_mode; |
1191 | 0 | args.skippable = 1; |
1192 | 0 | args.rdc = &this_rdc; |
1193 | 0 | mi->tx_size = intra_tx_size; |
1194 | 0 | vp9_foreach_transformed_block_in_plane(xd, bsize, 0, estimate_block_intra, |
1195 | 0 | &args); |
1196 | 0 | if (args.skippable) { |
1197 | 0 | x->skip_txfm[0] = SKIP_TXFM_AC_DC; |
1198 | 0 | this_rdc.rate = vp9_cost_bit(vp9_get_skip_prob(&cpi->common, xd), 1); |
1199 | 0 | } else { |
1200 | 0 | x->skip_txfm[0] = SKIP_TXFM_NONE; |
1201 | 0 | this_rdc.rate += vp9_cost_bit(vp9_get_skip_prob(&cpi->common, xd), 0); |
1202 | 0 | } |
1203 | 0 | this_rdc.rate += bmode_costs[this_mode]; |
1204 | 0 | this_rdc.rdcost = RDCOST(x->rdmult, x->rddiv, this_rdc.rate, this_rdc.dist); |
1205 | |
|
1206 | 0 | if (this_rdc.rdcost < best_rdc.rdcost) { |
1207 | 0 | best_rdc = this_rdc; |
1208 | 0 | mi->mode = this_mode; |
1209 | 0 | } |
1210 | 0 | } |
1211 | |
|
1212 | 0 | *rd_cost = best_rdc; |
1213 | 0 | } |
1214 | | |
1215 | | static void init_ref_frame_cost(VP9_COMMON *const cm, MACROBLOCKD *const xd, |
1216 | 0 | int ref_frame_cost[MAX_REF_FRAMES]) { |
1217 | 0 | vpx_prob intra_inter_p = vp9_get_intra_inter_prob(cm, xd); |
1218 | 0 | vpx_prob ref_single_p1 = vp9_get_pred_prob_single_ref_p1(cm, xd); |
1219 | 0 | vpx_prob ref_single_p2 = vp9_get_pred_prob_single_ref_p2(cm, xd); |
1220 | |
|
1221 | 0 | ref_frame_cost[INTRA_FRAME] = vp9_cost_bit(intra_inter_p, 0); |
1222 | 0 | ref_frame_cost[LAST_FRAME] = ref_frame_cost[GOLDEN_FRAME] = |
1223 | 0 | ref_frame_cost[ALTREF_FRAME] = vp9_cost_bit(intra_inter_p, 1); |
1224 | |
|
1225 | 0 | ref_frame_cost[LAST_FRAME] += vp9_cost_bit(ref_single_p1, 0); |
1226 | 0 | ref_frame_cost[GOLDEN_FRAME] += vp9_cost_bit(ref_single_p1, 1); |
1227 | 0 | ref_frame_cost[ALTREF_FRAME] += vp9_cost_bit(ref_single_p1, 1); |
1228 | 0 | ref_frame_cost[GOLDEN_FRAME] += vp9_cost_bit(ref_single_p2, 0); |
1229 | 0 | ref_frame_cost[ALTREF_FRAME] += vp9_cost_bit(ref_single_p2, 1); |
1230 | 0 | } |
1231 | | |
1232 | | typedef struct { |
1233 | | MV_REFERENCE_FRAME ref_frame; |
1234 | | PREDICTION_MODE pred_mode; |
1235 | | } REF_MODE; |
1236 | | |
1237 | 0 | #define RT_INTER_MODES 12 |
1238 | | static const REF_MODE ref_mode_set[RT_INTER_MODES] = { |
1239 | | { LAST_FRAME, ZEROMV }, { LAST_FRAME, NEARESTMV }, |
1240 | | { GOLDEN_FRAME, ZEROMV }, { LAST_FRAME, NEARMV }, |
1241 | | { LAST_FRAME, NEWMV }, { GOLDEN_FRAME, NEARESTMV }, |
1242 | | { GOLDEN_FRAME, NEARMV }, { GOLDEN_FRAME, NEWMV }, |
1243 | | { ALTREF_FRAME, ZEROMV }, { ALTREF_FRAME, NEARESTMV }, |
1244 | | { ALTREF_FRAME, NEARMV }, { ALTREF_FRAME, NEWMV } |
1245 | | }; |
1246 | | |
1247 | 0 | #define RT_INTER_MODES_SVC 8 |
1248 | | static const REF_MODE ref_mode_set_svc[RT_INTER_MODES_SVC] = { |
1249 | | { LAST_FRAME, ZEROMV }, { LAST_FRAME, NEARESTMV }, |
1250 | | { LAST_FRAME, NEARMV }, { GOLDEN_FRAME, ZEROMV }, |
1251 | | { GOLDEN_FRAME, NEARESTMV }, { GOLDEN_FRAME, NEARMV }, |
1252 | | { LAST_FRAME, NEWMV }, { GOLDEN_FRAME, NEWMV } |
1253 | | }; |
1254 | | |
1255 | | static INLINE void find_predictors( |
1256 | | VP9_COMP *cpi, MACROBLOCK *x, MV_REFERENCE_FRAME ref_frame, |
1257 | | int_mv frame_mv[MB_MODE_COUNT][MAX_REF_FRAMES], |
1258 | | int const_motion[MAX_REF_FRAMES], int *ref_frame_skip_mask, |
1259 | | TileDataEnc *tile_data, int mi_row, int mi_col, |
1260 | | struct buf_2d yv12_mb[4][MAX_MB_PLANE], BLOCK_SIZE bsize, |
1261 | 0 | int force_skip_low_temp_var, int comp_pred_allowed) { |
1262 | 0 | VP9_COMMON *const cm = &cpi->common; |
1263 | 0 | MACROBLOCKD *const xd = &x->e_mbd; |
1264 | 0 | const YV12_BUFFER_CONFIG *yv12 = get_ref_frame_buffer(cpi, ref_frame); |
1265 | 0 | TileInfo *const tile_info = &tile_data->tile_info; |
1266 | | // TODO(jingning) placeholder for inter-frame non-RD mode decision. |
1267 | 0 | x->pred_mv_sad[ref_frame] = INT_MAX; |
1268 | 0 | frame_mv[NEWMV][ref_frame].as_int = INVALID_MV; |
1269 | 0 | frame_mv[ZEROMV][ref_frame].as_int = 0; |
1270 | | // this needs various further optimizations. to be continued.. |
1271 | 0 | if ((cpi->ref_frame_flags & ref_frame_to_flag(ref_frame)) && (yv12 != NULL)) { |
1272 | 0 | int_mv *const candidates = x->mbmi_ext->ref_mvs[ref_frame]; |
1273 | 0 | const struct scale_factors *const sf = &cm->frame_refs[ref_frame - 1].sf; |
1274 | 0 | vp9_setup_pred_block(xd, yv12_mb[ref_frame], yv12, mi_row, mi_col, sf, sf); |
1275 | 0 | if (cm->use_prev_frame_mvs || comp_pred_allowed) { |
1276 | 0 | vp9_find_mv_refs(cm, xd, xd->mi[0], ref_frame, candidates, mi_row, mi_col, |
1277 | 0 | x->mbmi_ext->mode_context); |
1278 | 0 | } else { |
1279 | 0 | const_motion[ref_frame] = |
1280 | 0 | mv_refs_rt(cpi, cm, x, xd, tile_info, xd->mi[0], ref_frame, |
1281 | 0 | candidates, &frame_mv[NEWMV][ref_frame], mi_row, mi_col, |
1282 | 0 | (int)(cpi->svc.use_base_mv && cpi->svc.spatial_layer_id)); |
1283 | 0 | } |
1284 | 0 | vp9_find_best_ref_mvs(xd, cm->allow_high_precision_mv, candidates, |
1285 | 0 | &frame_mv[NEARESTMV][ref_frame], |
1286 | 0 | &frame_mv[NEARMV][ref_frame]); |
1287 | | // Early exit for golden frame if force_skip_low_temp_var is set. |
1288 | 0 | if (!vp9_is_scaled(sf) && bsize >= BLOCK_8X8 && |
1289 | 0 | !(force_skip_low_temp_var && ref_frame == GOLDEN_FRAME)) { |
1290 | 0 | vp9_mv_pred(cpi, x, yv12_mb[ref_frame][0].buf, yv12->y_stride, ref_frame, |
1291 | 0 | bsize); |
1292 | 0 | } |
1293 | 0 | } else { |
1294 | 0 | *ref_frame_skip_mask |= (1 << ref_frame); |
1295 | 0 | } |
1296 | 0 | } |
1297 | | |
1298 | | static void vp9_NEWMV_diff_bias(const NOISE_ESTIMATE *ne, MACROBLOCKD *xd, |
1299 | | PREDICTION_MODE this_mode, RD_COST *this_rdc, |
1300 | | BLOCK_SIZE bsize, int mv_row, int mv_col, |
1301 | | int is_last_frame, int lowvar_highsumdiff, |
1302 | 0 | int is_skin) { |
1303 | | // Bias against MVs associated with NEWMV mode that are very different from |
1304 | | // top/left neighbors. |
1305 | 0 | if (this_mode == NEWMV) { |
1306 | 0 | int al_mv_average_row; |
1307 | 0 | int al_mv_average_col; |
1308 | 0 | int left_row, left_col; |
1309 | 0 | int row_diff, col_diff; |
1310 | 0 | int above_mv_valid = 0; |
1311 | 0 | int left_mv_valid = 0; |
1312 | 0 | int above_row = 0; |
1313 | 0 | int above_col = 0; |
1314 | |
|
1315 | 0 | if (xd->above_mi) { |
1316 | 0 | above_mv_valid = xd->above_mi->mv[0].as_int != INVALID_MV; |
1317 | 0 | above_row = xd->above_mi->mv[0].as_mv.row; |
1318 | 0 | above_col = xd->above_mi->mv[0].as_mv.col; |
1319 | 0 | } |
1320 | 0 | if (xd->left_mi) { |
1321 | 0 | left_mv_valid = xd->left_mi->mv[0].as_int != INVALID_MV; |
1322 | 0 | left_row = xd->left_mi->mv[0].as_mv.row; |
1323 | 0 | left_col = xd->left_mi->mv[0].as_mv.col; |
1324 | 0 | } |
1325 | 0 | if (above_mv_valid && left_mv_valid) { |
1326 | 0 | al_mv_average_row = (above_row + left_row + 1) >> 1; |
1327 | 0 | al_mv_average_col = (above_col + left_col + 1) >> 1; |
1328 | 0 | } else if (above_mv_valid) { |
1329 | 0 | al_mv_average_row = above_row; |
1330 | 0 | al_mv_average_col = above_col; |
1331 | 0 | } else if (left_mv_valid) { |
1332 | 0 | al_mv_average_row = left_row; |
1333 | 0 | al_mv_average_col = left_col; |
1334 | 0 | } else { |
1335 | 0 | al_mv_average_row = al_mv_average_col = 0; |
1336 | 0 | } |
1337 | 0 | row_diff = (al_mv_average_row - mv_row); |
1338 | 0 | col_diff = (al_mv_average_col - mv_col); |
1339 | 0 | if (row_diff > 48 || row_diff < -48 || col_diff > 48 || col_diff < -48) { |
1340 | 0 | if (bsize > BLOCK_32X32) |
1341 | 0 | this_rdc->rdcost = this_rdc->rdcost << 1; |
1342 | 0 | else |
1343 | 0 | this_rdc->rdcost = 3 * this_rdc->rdcost >> 1; |
1344 | 0 | } |
1345 | 0 | } |
1346 | | // If noise estimation is enabled, and estimated level is above threshold, |
1347 | | // add a bias to LAST reference with small motion, for large blocks. |
1348 | 0 | if (ne->enabled && ne->level >= kMedium && bsize >= BLOCK_32X32 && |
1349 | 0 | is_last_frame && mv_row < 8 && mv_row > -8 && mv_col < 8 && mv_col > -8) |
1350 | 0 | this_rdc->rdcost = 7 * (this_rdc->rdcost >> 3); |
1351 | 0 | else if (lowvar_highsumdiff && !is_skin && bsize >= BLOCK_16X16 && |
1352 | 0 | is_last_frame && mv_row < 16 && mv_row > -16 && mv_col < 16 && |
1353 | 0 | mv_col > -16) |
1354 | 0 | this_rdc->rdcost = 7 * (this_rdc->rdcost >> 3); |
1355 | 0 | } |
1356 | | |
1357 | | #if CONFIG_VP9_TEMPORAL_DENOISING |
1358 | | static void vp9_pickmode_ctx_den_update( |
1359 | | VP9_PICKMODE_CTX_DEN *ctx_den, int64_t zero_last_cost_orig, |
1360 | | int ref_frame_cost[MAX_REF_FRAMES], |
1361 | | int_mv frame_mv[MB_MODE_COUNT][MAX_REF_FRAMES], int reuse_inter_pred, |
1362 | | BEST_PICKMODE *bp) { |
1363 | | ctx_den->zero_last_cost_orig = zero_last_cost_orig; |
1364 | | ctx_den->ref_frame_cost = ref_frame_cost; |
1365 | | ctx_den->frame_mv = frame_mv; |
1366 | | ctx_den->reuse_inter_pred = reuse_inter_pred; |
1367 | | ctx_den->best_tx_size = bp->best_tx_size; |
1368 | | ctx_den->best_mode = bp->best_mode; |
1369 | | ctx_den->best_ref_frame = bp->best_ref_frame; |
1370 | | ctx_den->best_pred_filter = bp->best_pred_filter; |
1371 | | ctx_den->best_mode_skip_txfm = bp->best_mode_skip_txfm; |
1372 | | } |
1373 | | |
1374 | | static void recheck_zeromv_after_denoising( |
1375 | | VP9_COMP *cpi, MODE_INFO *const mi, MACROBLOCK *x, MACROBLOCKD *const xd, |
1376 | | VP9_DENOISER_DECISION decision, VP9_PICKMODE_CTX_DEN *ctx_den, |
1377 | | struct buf_2d yv12_mb[4][MAX_MB_PLANE], RD_COST *best_rdc, BLOCK_SIZE bsize, |
1378 | | int mi_row, int mi_col) { |
1379 | | // If INTRA or GOLDEN reference was selected, re-evaluate ZEROMV on |
1380 | | // denoised result. Only do this under noise conditions, and if rdcost of |
1381 | | // ZEROMV onoriginal source is not significantly higher than rdcost of best |
1382 | | // mode. |
1383 | | if (cpi->noise_estimate.enabled && cpi->noise_estimate.level > kLow && |
1384 | | ctx_den->zero_last_cost_orig < (best_rdc->rdcost << 3) && |
1385 | | ((ctx_den->best_ref_frame == INTRA_FRAME && decision >= FILTER_BLOCK) || |
1386 | | (ctx_den->best_ref_frame == GOLDEN_FRAME && |
1387 | | cpi->svc.number_spatial_layers == 1 && |
1388 | | decision == FILTER_ZEROMV_BLOCK))) { |
1389 | | // Check if we should pick ZEROMV on denoised signal. |
1390 | | VP9_COMMON *const cm = &cpi->common; |
1391 | | int rate = 0; |
1392 | | int64_t dist = 0; |
1393 | | uint32_t var_y = UINT_MAX; |
1394 | | uint32_t sse_y = UINT_MAX; |
1395 | | RD_COST this_rdc; |
1396 | | mi->mode = ZEROMV; |
1397 | | mi->ref_frame[0] = LAST_FRAME; |
1398 | | mi->ref_frame[1] = NO_REF_FRAME; |
1399 | | set_ref_ptrs(cm, xd, mi->ref_frame[0], NO_REF_FRAME); |
1400 | | mi->mv[0].as_int = 0; |
1401 | | mi->interp_filter = EIGHTTAP; |
1402 | | if (cpi->sf.default_interp_filter == BILINEAR) mi->interp_filter = BILINEAR; |
1403 | | xd->plane[0].pre[0] = yv12_mb[LAST_FRAME][0]; |
1404 | | vp9_build_inter_predictors_sby(xd, mi_row, mi_col, bsize); |
1405 | | model_rd_for_sb_y(cpi, bsize, x, xd, &rate, &dist, &var_y, &sse_y, 0); |
1406 | | this_rdc.rate = rate + ctx_den->ref_frame_cost[LAST_FRAME] + |
1407 | | cpi->inter_mode_cost[x->mbmi_ext->mode_context[LAST_FRAME]] |
1408 | | [INTER_OFFSET(ZEROMV)]; |
1409 | | this_rdc.dist = dist; |
1410 | | this_rdc.rdcost = RDCOST(x->rdmult, x->rddiv, rate, dist); |
1411 | | // Don't switch to ZEROMV if the rdcost for ZEROMV on denoised source |
1412 | | // is higher than best_ref mode (on original source). |
1413 | | if (this_rdc.rdcost > best_rdc->rdcost) { |
1414 | | this_rdc = *best_rdc; |
1415 | | mi->mode = ctx_den->best_mode; |
1416 | | mi->ref_frame[0] = ctx_den->best_ref_frame; |
1417 | | set_ref_ptrs(cm, xd, mi->ref_frame[0], NO_REF_FRAME); |
1418 | | mi->interp_filter = ctx_den->best_pred_filter; |
1419 | | if (ctx_den->best_ref_frame == INTRA_FRAME) { |
1420 | | mi->mv[0].as_int = INVALID_MV; |
1421 | | mi->interp_filter = SWITCHABLE_FILTERS; |
1422 | | } else if (ctx_den->best_ref_frame == GOLDEN_FRAME) { |
1423 | | mi->mv[0].as_int = |
1424 | | ctx_den->frame_mv[ctx_den->best_mode][ctx_den->best_ref_frame] |
1425 | | .as_int; |
1426 | | if (ctx_den->reuse_inter_pred) { |
1427 | | xd->plane[0].pre[0] = yv12_mb[GOLDEN_FRAME][0]; |
1428 | | vp9_build_inter_predictors_sby(xd, mi_row, mi_col, bsize); |
1429 | | } |
1430 | | } |
1431 | | mi->tx_size = ctx_den->best_tx_size; |
1432 | | x->skip_txfm[0] = ctx_den->best_mode_skip_txfm; |
1433 | | } else { |
1434 | | ctx_den->best_ref_frame = LAST_FRAME; |
1435 | | *best_rdc = this_rdc; |
1436 | | } |
1437 | | } |
1438 | | } |
1439 | | #endif // CONFIG_VP9_TEMPORAL_DENOISING |
1440 | | |
1441 | | static INLINE int get_force_skip_low_temp_var(uint8_t *variance_low, int mi_row, |
1442 | 0 | int mi_col, BLOCK_SIZE bsize) { |
1443 | 0 | const int i = (mi_row & 0x7) >> 1; |
1444 | 0 | const int j = (mi_col & 0x7) >> 1; |
1445 | 0 | int force_skip_low_temp_var = 0; |
1446 | | // Set force_skip_low_temp_var based on the block size and block offset. |
1447 | 0 | if (bsize == BLOCK_64X64) { |
1448 | 0 | force_skip_low_temp_var = variance_low[0]; |
1449 | 0 | } else if (bsize == BLOCK_64X32) { |
1450 | 0 | if (!(mi_col & 0x7) && !(mi_row & 0x7)) { |
1451 | 0 | force_skip_low_temp_var = variance_low[1]; |
1452 | 0 | } else if (!(mi_col & 0x7) && (mi_row & 0x7)) { |
1453 | 0 | force_skip_low_temp_var = variance_low[2]; |
1454 | 0 | } |
1455 | 0 | } else if (bsize == BLOCK_32X64) { |
1456 | 0 | if (!(mi_col & 0x7) && !(mi_row & 0x7)) { |
1457 | 0 | force_skip_low_temp_var = variance_low[3]; |
1458 | 0 | } else if ((mi_col & 0x7) && !(mi_row & 0x7)) { |
1459 | 0 | force_skip_low_temp_var = variance_low[4]; |
1460 | 0 | } |
1461 | 0 | } else if (bsize == BLOCK_32X32) { |
1462 | 0 | if (!(mi_col & 0x7) && !(mi_row & 0x7)) { |
1463 | 0 | force_skip_low_temp_var = variance_low[5]; |
1464 | 0 | } else if ((mi_col & 0x7) && !(mi_row & 0x7)) { |
1465 | 0 | force_skip_low_temp_var = variance_low[6]; |
1466 | 0 | } else if (!(mi_col & 0x7) && (mi_row & 0x7)) { |
1467 | 0 | force_skip_low_temp_var = variance_low[7]; |
1468 | 0 | } else if ((mi_col & 0x7) && (mi_row & 0x7)) { |
1469 | 0 | force_skip_low_temp_var = variance_low[8]; |
1470 | 0 | } |
1471 | 0 | } else if (bsize == BLOCK_16X16) { |
1472 | 0 | force_skip_low_temp_var = variance_low[pos_shift_16x16[i][j]]; |
1473 | 0 | } else if (bsize == BLOCK_32X16) { |
1474 | | // The col shift index for the second 16x16 block. |
1475 | 0 | const int j2 = ((mi_col + 2) & 0x7) >> 1; |
1476 | | // Only if each 16x16 block inside has low temporal variance. |
1477 | 0 | force_skip_low_temp_var = variance_low[pos_shift_16x16[i][j]] && |
1478 | 0 | variance_low[pos_shift_16x16[i][j2]]; |
1479 | 0 | } else if (bsize == BLOCK_16X32) { |
1480 | | // The row shift index for the second 16x16 block. |
1481 | 0 | const int i2 = ((mi_row + 2) & 0x7) >> 1; |
1482 | 0 | force_skip_low_temp_var = variance_low[pos_shift_16x16[i][j]] && |
1483 | 0 | variance_low[pos_shift_16x16[i2][j]]; |
1484 | 0 | } |
1485 | 0 | return force_skip_low_temp_var; |
1486 | 0 | } |
1487 | | |
1488 | | static void search_filter_ref(VP9_COMP *cpi, MACROBLOCK *x, RD_COST *this_rdc, |
1489 | | int mi_row, int mi_col, PRED_BUFFER *tmp, |
1490 | | BLOCK_SIZE bsize, int reuse_inter_pred, |
1491 | | PRED_BUFFER **this_mode_pred, unsigned int *var_y, |
1492 | | unsigned int *sse_y, int force_smooth_filter, |
1493 | | int *this_early_term, int *flag_preduv_computed, |
1494 | 0 | int use_model_yrd_large) { |
1495 | 0 | MACROBLOCKD *const xd = &x->e_mbd; |
1496 | 0 | MODE_INFO *const mi = xd->mi[0]; |
1497 | 0 | struct macroblockd_plane *const pd = &xd->plane[0]; |
1498 | 0 | const int bw = num_4x4_blocks_wide_lookup[bsize] << 2; |
1499 | |
|
1500 | 0 | int pf_rate[3] = { 0 }; |
1501 | 0 | int64_t pf_dist[3] = { 0 }; |
1502 | 0 | int curr_rate[3] = { 0 }; |
1503 | 0 | unsigned int pf_var[3] = { 0 }; |
1504 | 0 | unsigned int pf_sse[3] = { 0 }; |
1505 | 0 | TX_SIZE pf_tx_size[3] = { 0 }; |
1506 | 0 | int64_t best_cost = INT64_MAX; |
1507 | 0 | INTERP_FILTER best_filter = SWITCHABLE, filter; |
1508 | 0 | PRED_BUFFER *current_pred = *this_mode_pred; |
1509 | 0 | uint8_t skip_txfm = SKIP_TXFM_NONE; |
1510 | 0 | int best_early_term = 0; |
1511 | 0 | int best_flag_preduv_computed[2] = { 0 }; |
1512 | 0 | INTERP_FILTER filter_start = force_smooth_filter ? EIGHTTAP_SMOOTH : EIGHTTAP; |
1513 | 0 | INTERP_FILTER filter_end = EIGHTTAP_SMOOTH; |
1514 | 0 | for (filter = filter_start; filter <= filter_end; ++filter) { |
1515 | 0 | int64_t cost; |
1516 | 0 | mi->interp_filter = filter; |
1517 | 0 | vp9_build_inter_predictors_sby(xd, mi_row, mi_col, bsize); |
1518 | | // For large partition blocks, extra testing is done. |
1519 | 0 | if (use_model_yrd_large) |
1520 | 0 | model_rd_for_sb_y_large(cpi, bsize, x, xd, &pf_rate[filter], |
1521 | 0 | &pf_dist[filter], &pf_var[filter], |
1522 | 0 | &pf_sse[filter], mi_row, mi_col, this_early_term, |
1523 | 0 | flag_preduv_computed); |
1524 | 0 | else |
1525 | 0 | model_rd_for_sb_y(cpi, bsize, x, xd, &pf_rate[filter], &pf_dist[filter], |
1526 | 0 | &pf_var[filter], &pf_sse[filter], 0); |
1527 | 0 | curr_rate[filter] = pf_rate[filter]; |
1528 | 0 | pf_rate[filter] += vp9_get_switchable_rate(cpi, xd); |
1529 | 0 | cost = RDCOST(x->rdmult, x->rddiv, pf_rate[filter], pf_dist[filter]); |
1530 | 0 | pf_tx_size[filter] = mi->tx_size; |
1531 | 0 | if (cost < best_cost) { |
1532 | 0 | best_filter = filter; |
1533 | 0 | best_cost = cost; |
1534 | 0 | skip_txfm = x->skip_txfm[0]; |
1535 | 0 | best_early_term = *this_early_term; |
1536 | 0 | best_flag_preduv_computed[0] = flag_preduv_computed[0]; |
1537 | 0 | best_flag_preduv_computed[1] = flag_preduv_computed[1]; |
1538 | |
|
1539 | 0 | if (reuse_inter_pred) { |
1540 | 0 | if (*this_mode_pred != current_pred) { |
1541 | 0 | free_pred_buffer(*this_mode_pred); |
1542 | 0 | *this_mode_pred = current_pred; |
1543 | 0 | } |
1544 | 0 | if (filter != filter_end) { |
1545 | 0 | current_pred = &tmp[get_pred_buffer(tmp, 3)]; |
1546 | 0 | pd->dst.buf = current_pred->data; |
1547 | 0 | pd->dst.stride = bw; |
1548 | 0 | } |
1549 | 0 | } |
1550 | 0 | } |
1551 | 0 | } |
1552 | |
|
1553 | 0 | if (reuse_inter_pred && *this_mode_pred != current_pred) |
1554 | 0 | free_pred_buffer(current_pred); |
1555 | |
|
1556 | 0 | mi->interp_filter = best_filter; |
1557 | 0 | mi->tx_size = pf_tx_size[best_filter]; |
1558 | 0 | this_rdc->rate = curr_rate[best_filter]; |
1559 | 0 | this_rdc->dist = pf_dist[best_filter]; |
1560 | 0 | *var_y = pf_var[best_filter]; |
1561 | 0 | *sse_y = pf_sse[best_filter]; |
1562 | 0 | x->skip_txfm[0] = skip_txfm; |
1563 | 0 | *this_early_term = best_early_term; |
1564 | 0 | flag_preduv_computed[0] = best_flag_preduv_computed[0]; |
1565 | 0 | flag_preduv_computed[1] = best_flag_preduv_computed[1]; |
1566 | 0 | if (reuse_inter_pred) { |
1567 | 0 | pd->dst.buf = (*this_mode_pred)->data; |
1568 | 0 | pd->dst.stride = (*this_mode_pred)->stride; |
1569 | 0 | } else if (best_filter < filter_end) { |
1570 | 0 | mi->interp_filter = best_filter; |
1571 | 0 | vp9_build_inter_predictors_sby(xd, mi_row, mi_col, bsize); |
1572 | 0 | } |
1573 | 0 | } |
1574 | | |
1575 | | static int search_new_mv(VP9_COMP *cpi, MACROBLOCK *x, |
1576 | | int_mv frame_mv[][MAX_REF_FRAMES], |
1577 | | MV_REFERENCE_FRAME ref_frame, int gf_temporal_ref, |
1578 | | BLOCK_SIZE bsize, int mi_row, int mi_col, |
1579 | | int best_pred_sad, int *rate_mv, |
1580 | 0 | unsigned int best_sse_sofar, RD_COST *best_rdc) { |
1581 | 0 | SVC *const svc = &cpi->svc; |
1582 | 0 | MACROBLOCKD *const xd = &x->e_mbd; |
1583 | 0 | MODE_INFO *const mi = xd->mi[0]; |
1584 | 0 | SPEED_FEATURES *const sf = &cpi->sf; |
1585 | |
|
1586 | 0 | if (ref_frame > LAST_FRAME && gf_temporal_ref && |
1587 | 0 | cpi->oxcf.rc_mode == VPX_CBR) { |
1588 | 0 | int tmp_sad; |
1589 | 0 | uint32_t dis; |
1590 | 0 | int cost_list[5] = { INT_MAX, INT_MAX, INT_MAX, INT_MAX, INT_MAX }; |
1591 | |
|
1592 | 0 | if (bsize < BLOCK_16X16) return -1; |
1593 | | |
1594 | 0 | tmp_sad = vp9_int_pro_motion_estimation( |
1595 | 0 | cpi, x, bsize, mi_row, mi_col, |
1596 | 0 | &x->mbmi_ext->ref_mvs[ref_frame][0].as_mv); |
1597 | |
|
1598 | 0 | if (tmp_sad > x->pred_mv_sad[LAST_FRAME]) return -1; |
1599 | 0 | if (tmp_sad + (num_pels_log2_lookup[bsize] << 4) > best_pred_sad) return -1; |
1600 | | |
1601 | 0 | frame_mv[NEWMV][ref_frame].as_int = mi->mv[0].as_int; |
1602 | 0 | *rate_mv = vp9_mv_bit_cost(&frame_mv[NEWMV][ref_frame].as_mv, |
1603 | 0 | &x->mbmi_ext->ref_mvs[ref_frame][0].as_mv, |
1604 | 0 | x->nmvjointcost, x->mvcost, MV_COST_WEIGHT); |
1605 | 0 | frame_mv[NEWMV][ref_frame].as_mv.row >>= 3; |
1606 | 0 | frame_mv[NEWMV][ref_frame].as_mv.col >>= 3; |
1607 | |
|
1608 | 0 | cpi->find_fractional_mv_step( |
1609 | 0 | x, &frame_mv[NEWMV][ref_frame].as_mv, |
1610 | 0 | &x->mbmi_ext->ref_mvs[ref_frame][0].as_mv, |
1611 | 0 | cpi->common.allow_high_precision_mv, x->errorperbit, |
1612 | 0 | &cpi->fn_ptr[bsize], cpi->sf.mv.subpel_force_stop, |
1613 | 0 | cpi->sf.mv.subpel_search_level, cond_cost_list(cpi, cost_list), |
1614 | 0 | x->nmvjointcost, x->mvcost, &dis, &x->pred_sse[ref_frame], NULL, 0, 0, |
1615 | 0 | cpi->sf.use_accurate_subpel_search); |
1616 | 0 | } else if (svc->use_base_mv && svc->spatial_layer_id) { |
1617 | 0 | if (frame_mv[NEWMV][ref_frame].as_int != INVALID_MV) { |
1618 | 0 | const int pre_stride = xd->plane[0].pre[0].stride; |
1619 | 0 | unsigned int base_mv_sse = UINT_MAX; |
1620 | 0 | int scale = (cpi->rc.avg_frame_low_motion > 60) ? 2 : 4; |
1621 | 0 | const uint8_t *const pre_buf = |
1622 | 0 | xd->plane[0].pre[0].buf + |
1623 | 0 | (frame_mv[NEWMV][ref_frame].as_mv.row >> 3) * pre_stride + |
1624 | 0 | (frame_mv[NEWMV][ref_frame].as_mv.col >> 3); |
1625 | 0 | cpi->fn_ptr[bsize].vf(x->plane[0].src.buf, x->plane[0].src.stride, |
1626 | 0 | pre_buf, pre_stride, &base_mv_sse); |
1627 | | |
1628 | | // Exit NEWMV search if base_mv is (0,0) && bsize < BLOCK_16x16, |
1629 | | // for SVC encoding. |
1630 | 0 | if (cpi->use_svc && svc->use_base_mv && bsize < BLOCK_16X16 && |
1631 | 0 | frame_mv[NEWMV][ref_frame].as_mv.row == 0 && |
1632 | 0 | frame_mv[NEWMV][ref_frame].as_mv.col == 0) |
1633 | 0 | return -1; |
1634 | | |
1635 | | // Exit NEWMV search if base_mv_sse is large. |
1636 | 0 | if (sf->base_mv_aggressive && (base_mv_sse >> scale) > best_sse_sofar) |
1637 | 0 | return -1; |
1638 | 0 | if ((base_mv_sse >> 1) < best_sse_sofar) { |
1639 | | // Base layer mv is good. |
1640 | | // Exit NEWMV search if the base_mv is (0, 0) and sse is low, since |
1641 | | // (0, 0) mode is already tested. |
1642 | 0 | unsigned int base_mv_sse_normalized = |
1643 | 0 | base_mv_sse >> |
1644 | 0 | (b_width_log2_lookup[bsize] + b_height_log2_lookup[bsize]); |
1645 | 0 | if (sf->base_mv_aggressive && base_mv_sse <= best_sse_sofar && |
1646 | 0 | base_mv_sse_normalized < 400 && |
1647 | 0 | frame_mv[NEWMV][ref_frame].as_mv.row == 0 && |
1648 | 0 | frame_mv[NEWMV][ref_frame].as_mv.col == 0) |
1649 | 0 | return -1; |
1650 | 0 | if (!combined_motion_search(cpi, x, bsize, mi_row, mi_col, |
1651 | 0 | &frame_mv[NEWMV][ref_frame], rate_mv, |
1652 | 0 | best_rdc->rdcost, 1)) { |
1653 | 0 | return -1; |
1654 | 0 | } |
1655 | 0 | } else if (!combined_motion_search(cpi, x, bsize, mi_row, mi_col, |
1656 | 0 | &frame_mv[NEWMV][ref_frame], rate_mv, |
1657 | 0 | best_rdc->rdcost, 0)) { |
1658 | 0 | return -1; |
1659 | 0 | } |
1660 | 0 | } else if (!combined_motion_search(cpi, x, bsize, mi_row, mi_col, |
1661 | 0 | &frame_mv[NEWMV][ref_frame], rate_mv, |
1662 | 0 | best_rdc->rdcost, 0)) { |
1663 | 0 | return -1; |
1664 | 0 | } |
1665 | 0 | } else if (!combined_motion_search(cpi, x, bsize, mi_row, mi_col, |
1666 | 0 | &frame_mv[NEWMV][ref_frame], rate_mv, |
1667 | 0 | best_rdc->rdcost, 0)) { |
1668 | 0 | return -1; |
1669 | 0 | } |
1670 | | |
1671 | 0 | return 0; |
1672 | 0 | } |
1673 | | |
1674 | 0 | static INLINE void init_best_pickmode(BEST_PICKMODE *bp) { |
1675 | 0 | bp->best_mode = ZEROMV; |
1676 | 0 | bp->best_ref_frame = LAST_FRAME; |
1677 | 0 | bp->best_tx_size = TX_SIZES; |
1678 | 0 | bp->best_intra_tx_size = TX_SIZES; |
1679 | 0 | bp->best_pred_filter = EIGHTTAP; |
1680 | 0 | bp->best_mode_skip_txfm = SKIP_TXFM_NONE; |
1681 | 0 | bp->best_second_ref_frame = NO_REF_FRAME; |
1682 | 0 | bp->best_pred = NULL; |
1683 | 0 | } |
1684 | | |
1685 | | void vp9_pick_inter_mode(VP9_COMP *cpi, MACROBLOCK *x, TileDataEnc *tile_data, |
1686 | | int mi_row, int mi_col, RD_COST *rd_cost, |
1687 | 0 | BLOCK_SIZE bsize, PICK_MODE_CONTEXT *ctx) { |
1688 | 0 | VP9_COMMON *const cm = &cpi->common; |
1689 | 0 | SPEED_FEATURES *const sf = &cpi->sf; |
1690 | 0 | SVC *const svc = &cpi->svc; |
1691 | 0 | MACROBLOCKD *const xd = &x->e_mbd; |
1692 | 0 | MODE_INFO *const mi = xd->mi[0]; |
1693 | 0 | struct macroblockd_plane *const pd = &xd->plane[0]; |
1694 | |
|
1695 | 0 | BEST_PICKMODE best_pickmode; |
1696 | |
|
1697 | 0 | MV_REFERENCE_FRAME ref_frame; |
1698 | 0 | MV_REFERENCE_FRAME usable_ref_frame, second_ref_frame; |
1699 | 0 | int_mv frame_mv[MB_MODE_COUNT][MAX_REF_FRAMES]; |
1700 | 0 | uint8_t mode_checked[MB_MODE_COUNT][MAX_REF_FRAMES]; |
1701 | 0 | struct buf_2d yv12_mb[4][MAX_MB_PLANE] = { 0 }; |
1702 | 0 | RD_COST this_rdc, best_rdc; |
1703 | | // var_y and sse_y are saved to be used in skipping checking |
1704 | 0 | unsigned int var_y = UINT_MAX; |
1705 | 0 | unsigned int sse_y = UINT_MAX; |
1706 | 0 | const int intra_cost_penalty = |
1707 | 0 | vp9_get_intra_cost_penalty(cpi, bsize, cm->base_qindex, cm->y_dc_delta_q); |
1708 | 0 | int64_t inter_mode_thresh = |
1709 | 0 | RDCOST(x->rdmult, x->rddiv, intra_cost_penalty, 0); |
1710 | 0 | const int *const rd_threshes = cpi->rd.threshes[mi->segment_id][bsize]; |
1711 | 0 | const int sb_row = mi_row >> MI_BLOCK_SIZE_LOG2; |
1712 | 0 | int thresh_freq_fact_idx = (sb_row * BLOCK_SIZES + bsize) * MAX_MODES; |
1713 | 0 | const int *const rd_thresh_freq_fact = |
1714 | 0 | (cpi->sf.adaptive_rd_thresh_row_mt) |
1715 | 0 | ? &(tile_data->row_base_thresh_freq_fact[thresh_freq_fact_idx]) |
1716 | 0 | : tile_data->thresh_freq_fact[bsize]; |
1717 | | #if CONFIG_VP9_TEMPORAL_DENOISING |
1718 | | const int denoise_recheck_zeromv = 1; |
1719 | | #endif |
1720 | 0 | INTERP_FILTER filter_ref; |
1721 | 0 | int pred_filter_search = cm->interp_filter == SWITCHABLE; |
1722 | 0 | int const_motion[MAX_REF_FRAMES] = { 0 }; |
1723 | 0 | const int bh = num_4x4_blocks_high_lookup[bsize] << 2; |
1724 | 0 | const int bw = num_4x4_blocks_wide_lookup[bsize] << 2; |
1725 | | // For speed 6, the result of interp filter is reused later in actual encoding |
1726 | | // process. |
1727 | | // tmp[3] points to dst buffer, and the other 3 point to allocated buffers. |
1728 | 0 | PRED_BUFFER tmp[4]; |
1729 | 0 | DECLARE_ALIGNED(16, uint8_t, pred_buf[3 * 64 * 64] VPX_UNINITIALIZED); |
1730 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
1731 | 0 | DECLARE_ALIGNED(16, uint16_t, pred_buf_16[3 * 64 * 64] VPX_UNINITIALIZED); |
1732 | 0 | #endif |
1733 | 0 | struct buf_2d orig_dst = pd->dst; |
1734 | 0 | PRED_BUFFER *this_mode_pred = NULL; |
1735 | 0 | const int pixels_in_block = bh * bw; |
1736 | 0 | int reuse_inter_pred = cpi->sf.reuse_inter_pred_sby && ctx->pred_pixel_ready; |
1737 | 0 | int ref_frame_skip_mask = 0; |
1738 | 0 | int idx; |
1739 | 0 | int best_pred_sad = INT_MAX; |
1740 | 0 | int best_early_term = 0; |
1741 | 0 | int ref_frame_cost[MAX_REF_FRAMES]; |
1742 | 0 | int svc_force_zero_mode[3] = { 0 }; |
1743 | 0 | int perform_intra_pred = 1; |
1744 | 0 | int use_golden_nonzeromv = 1; |
1745 | 0 | int force_skip_low_temp_var = 0; |
1746 | 0 | int skip_ref_find_pred[4] = { 0 }; |
1747 | 0 | unsigned int sse_zeromv_normalized = UINT_MAX; |
1748 | 0 | unsigned int best_sse_sofar = UINT_MAX; |
1749 | 0 | int gf_temporal_ref = 0; |
1750 | 0 | int force_test_gf_zeromv = 0; |
1751 | | #if CONFIG_VP9_TEMPORAL_DENOISING |
1752 | | VP9_PICKMODE_CTX_DEN ctx_den; |
1753 | | int64_t zero_last_cost_orig = INT64_MAX; |
1754 | | int denoise_svc_pickmode = 1; |
1755 | | #endif |
1756 | 0 | INTERP_FILTER filter_gf_svc = EIGHTTAP; |
1757 | 0 | MV_REFERENCE_FRAME inter_layer_ref = GOLDEN_FRAME; |
1758 | 0 | const struct segmentation *const seg = &cm->seg; |
1759 | 0 | int comp_modes = 0; |
1760 | 0 | int num_inter_modes = (cpi->use_svc) ? RT_INTER_MODES_SVC : RT_INTER_MODES; |
1761 | 0 | int flag_svc_subpel = 0; |
1762 | 0 | int svc_mv_col = 0; |
1763 | 0 | int svc_mv_row = 0; |
1764 | 0 | int no_scaling = 0; |
1765 | 0 | int large_block = 0; |
1766 | 0 | int use_model_yrd_large = 0; |
1767 | 0 | unsigned int thresh_svc_skip_golden = 500; |
1768 | 0 | unsigned int thresh_skip_golden = 500; |
1769 | 0 | int force_smooth_filter = cpi->sf.force_smooth_interpol; |
1770 | 0 | int scene_change_detected = |
1771 | 0 | cpi->rc.high_source_sad || |
1772 | 0 | (cpi->use_svc && cpi->svc.high_source_sad_superframe); |
1773 | |
|
1774 | 0 | init_best_pickmode(&best_pickmode); |
1775 | |
|
1776 | 0 | x->encode_breakout = seg->enabled |
1777 | 0 | ? cpi->segment_encode_breakout[mi->segment_id] |
1778 | 0 | : cpi->encode_breakout; |
1779 | |
|
1780 | 0 | x->source_variance = UINT_MAX; |
1781 | 0 | if (cpi->sf.default_interp_filter == BILINEAR) { |
1782 | 0 | best_pickmode.best_pred_filter = BILINEAR; |
1783 | 0 | filter_gf_svc = BILINEAR; |
1784 | 0 | } |
1785 | 0 | if (cpi->use_svc && svc->spatial_layer_id > 0) { |
1786 | 0 | int layer = |
1787 | 0 | LAYER_IDS_TO_IDX(svc->spatial_layer_id - 1, svc->temporal_layer_id, |
1788 | 0 | svc->number_temporal_layers); |
1789 | 0 | LAYER_CONTEXT *const lc = &svc->layer_context[layer]; |
1790 | 0 | if (lc->scaling_factor_num == lc->scaling_factor_den) no_scaling = 1; |
1791 | 0 | } |
1792 | 0 | if (svc->spatial_layer_id > 0 && |
1793 | 0 | (svc->high_source_sad_superframe || no_scaling)) |
1794 | 0 | thresh_svc_skip_golden = 0; |
1795 | | // Lower the skip threshold if lower spatial layer is better quality relative |
1796 | | // to current layer. |
1797 | 0 | else if (svc->spatial_layer_id > 0 && cm->base_qindex > 150 && |
1798 | 0 | cm->base_qindex > svc->lower_layer_qindex + 15) |
1799 | 0 | thresh_svc_skip_golden = 100; |
1800 | | // Increase skip threshold if lower spatial layer is lower quality relative |
1801 | | // to current layer. |
1802 | 0 | else if (svc->spatial_layer_id > 0 && cm->base_qindex < 140 && |
1803 | 0 | cm->base_qindex < svc->lower_layer_qindex - 20) |
1804 | 0 | thresh_svc_skip_golden = 1000; |
1805 | |
|
1806 | 0 | if (!cpi->use_svc || |
1807 | 0 | (svc->use_gf_temporal_ref_current_layer && |
1808 | 0 | !svc->layer_context[svc->temporal_layer_id].is_key_frame)) { |
1809 | 0 | struct scale_factors *const sf_last = &cm->frame_refs[LAST_FRAME - 1].sf; |
1810 | 0 | struct scale_factors *const sf_golden = |
1811 | 0 | &cm->frame_refs[GOLDEN_FRAME - 1].sf; |
1812 | 0 | gf_temporal_ref = 1; |
1813 | | // For temporal long term prediction, check that the golden reference |
1814 | | // is same scale as last reference, otherwise disable. |
1815 | 0 | if ((sf_last->x_scale_fp != sf_golden->x_scale_fp) || |
1816 | 0 | (sf_last->y_scale_fp != sf_golden->y_scale_fp)) { |
1817 | 0 | gf_temporal_ref = 0; |
1818 | 0 | } else { |
1819 | 0 | if (cpi->rc.avg_frame_low_motion > 70) |
1820 | 0 | thresh_svc_skip_golden = 500; |
1821 | 0 | else |
1822 | 0 | thresh_svc_skip_golden = 0; |
1823 | 0 | } |
1824 | 0 | } |
1825 | |
|
1826 | 0 | init_ref_frame_cost(cm, xd, ref_frame_cost); |
1827 | 0 | memset(&mode_checked[0][0], 0, MB_MODE_COUNT * MAX_REF_FRAMES); |
1828 | |
|
1829 | 0 | if (reuse_inter_pred) { |
1830 | 0 | int i; |
1831 | 0 | for (i = 0; i < 3; i++) { |
1832 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
1833 | 0 | if (cm->use_highbitdepth) |
1834 | 0 | tmp[i].data = CONVERT_TO_BYTEPTR(&pred_buf_16[pixels_in_block * i]); |
1835 | 0 | else |
1836 | 0 | tmp[i].data = &pred_buf[pixels_in_block * i]; |
1837 | | #else |
1838 | | tmp[i].data = &pred_buf[pixels_in_block * i]; |
1839 | | #endif // CONFIG_VP9_HIGHBITDEPTH |
1840 | 0 | tmp[i].stride = bw; |
1841 | 0 | tmp[i].in_use = 0; |
1842 | 0 | } |
1843 | 0 | tmp[3].data = pd->dst.buf; |
1844 | 0 | tmp[3].stride = pd->dst.stride; |
1845 | 0 | tmp[3].in_use = 0; |
1846 | 0 | } |
1847 | |
|
1848 | 0 | x->skip_encode = cpi->sf.skip_encode_frame && x->q_index < QIDX_SKIP_THRESH; |
1849 | 0 | x->skip = 0; |
1850 | |
|
1851 | 0 | if (cpi->sf.cb_pred_filter_search) { |
1852 | 0 | const int bsl = mi_width_log2_lookup[bsize]; |
1853 | 0 | pred_filter_search = cm->interp_filter == SWITCHABLE |
1854 | 0 | ? (((mi_row + mi_col) >> bsl) + |
1855 | 0 | get_chessboard_index(cm->current_video_frame)) & |
1856 | 0 | 0x1 |
1857 | 0 | : 0; |
1858 | 0 | } |
1859 | | // Instead of using vp9_get_pred_context_switchable_interp(xd) to assign |
1860 | | // filter_ref, we use a less strict condition on assigning filter_ref. |
1861 | | // This is to reduce the probabily of entering the flow of not assigning |
1862 | | // filter_ref and then skip filter search. |
1863 | 0 | filter_ref = cm->interp_filter; |
1864 | 0 | if (cpi->sf.default_interp_filter != BILINEAR) { |
1865 | 0 | if (xd->above_mi && is_inter_block(xd->above_mi)) |
1866 | 0 | filter_ref = xd->above_mi->interp_filter; |
1867 | 0 | else if (xd->left_mi && is_inter_block(xd->left_mi)) |
1868 | 0 | filter_ref = xd->left_mi->interp_filter; |
1869 | 0 | } |
1870 | | |
1871 | | // initialize mode decisions |
1872 | 0 | vp9_rd_cost_reset(&best_rdc); |
1873 | 0 | vp9_rd_cost_reset(rd_cost); |
1874 | 0 | mi->sb_type = bsize; |
1875 | 0 | mi->ref_frame[0] = NO_REF_FRAME; |
1876 | 0 | mi->ref_frame[1] = NO_REF_FRAME; |
1877 | |
|
1878 | 0 | mi->tx_size = |
1879 | 0 | VPXMIN(max_txsize_lookup[bsize], tx_mode_to_biggest_tx_size[cm->tx_mode]); |
1880 | |
|
1881 | 0 | if (sf->short_circuit_flat_blocks || sf->limit_newmv_early_exit) { |
1882 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
1883 | 0 | if (xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH) |
1884 | 0 | x->source_variance = vp9_high_get_sby_perpixel_variance( |
1885 | 0 | cpi, &x->plane[0].src, bsize, xd->bd); |
1886 | 0 | else |
1887 | 0 | #endif // CONFIG_VP9_HIGHBITDEPTH |
1888 | 0 | x->source_variance = |
1889 | 0 | vp9_get_sby_perpixel_variance(cpi, &x->plane[0].src, bsize); |
1890 | |
|
1891 | 0 | if (cpi->oxcf.content == VP9E_CONTENT_SCREEN && |
1892 | 0 | cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ && mi->segment_id > 0 && |
1893 | 0 | x->zero_temp_sad_source && x->source_variance == 0) { |
1894 | 0 | mi->segment_id = 0; |
1895 | 0 | vp9_init_plane_quantizers(cpi, x); |
1896 | 0 | } |
1897 | 0 | } |
1898 | |
|
1899 | | #if CONFIG_VP9_TEMPORAL_DENOISING |
1900 | | if (cpi->oxcf.noise_sensitivity > 0) { |
1901 | | if (cpi->use_svc) denoise_svc_pickmode = vp9_denoise_svc_non_key(cpi); |
1902 | | if (cpi->denoiser.denoising_level > kDenLowLow && denoise_svc_pickmode) |
1903 | | vp9_denoiser_reset_frame_stats(ctx); |
1904 | | } |
1905 | | #endif |
1906 | |
|
1907 | 0 | if (cpi->rc.frames_since_golden == 0 && gf_temporal_ref && |
1908 | 0 | !cpi->rc.alt_ref_gf_group && !cpi->rc.last_frame_is_src_altref) { |
1909 | 0 | usable_ref_frame = LAST_FRAME; |
1910 | 0 | } else { |
1911 | 0 | usable_ref_frame = GOLDEN_FRAME; |
1912 | 0 | } |
1913 | |
|
1914 | 0 | if (cpi->oxcf.lag_in_frames > 0 && cpi->oxcf.rc_mode == VPX_VBR) { |
1915 | 0 | if (cpi->rc.alt_ref_gf_group || cpi->rc.is_src_frame_alt_ref) |
1916 | 0 | usable_ref_frame = ALTREF_FRAME; |
1917 | |
|
1918 | 0 | if (cpi->rc.is_src_frame_alt_ref) { |
1919 | 0 | skip_ref_find_pred[LAST_FRAME] = 1; |
1920 | 0 | skip_ref_find_pred[GOLDEN_FRAME] = 1; |
1921 | 0 | } |
1922 | 0 | if (!cm->show_frame) { |
1923 | 0 | if (cpi->rc.frames_since_key == 1) { |
1924 | 0 | usable_ref_frame = LAST_FRAME; |
1925 | 0 | skip_ref_find_pred[GOLDEN_FRAME] = 1; |
1926 | 0 | skip_ref_find_pred[ALTREF_FRAME] = 1; |
1927 | 0 | } |
1928 | 0 | } |
1929 | 0 | } |
1930 | | |
1931 | | // For svc mode, on spatial_layer_id > 0: if the reference has different scale |
1932 | | // constrain the inter mode to only test zero motion. |
1933 | 0 | if (cpi->use_svc && svc->force_zero_mode_spatial_ref && |
1934 | 0 | svc->spatial_layer_id > 0 && !gf_temporal_ref) { |
1935 | 0 | if (cpi->ref_frame_flags & VP9_LAST_FLAG) { |
1936 | 0 | struct scale_factors *const ref_sf = &cm->frame_refs[LAST_FRAME - 1].sf; |
1937 | 0 | if (vp9_is_scaled(ref_sf)) { |
1938 | 0 | svc_force_zero_mode[LAST_FRAME - 1] = 1; |
1939 | 0 | inter_layer_ref = LAST_FRAME; |
1940 | 0 | } |
1941 | 0 | } |
1942 | 0 | if (cpi->ref_frame_flags & VP9_GOLD_FLAG) { |
1943 | 0 | struct scale_factors *const ref_sf = &cm->frame_refs[GOLDEN_FRAME - 1].sf; |
1944 | 0 | if (vp9_is_scaled(ref_sf)) { |
1945 | 0 | svc_force_zero_mode[GOLDEN_FRAME - 1] = 1; |
1946 | 0 | inter_layer_ref = GOLDEN_FRAME; |
1947 | 0 | } |
1948 | 0 | } |
1949 | 0 | } |
1950 | |
|
1951 | 0 | if (cpi->sf.short_circuit_low_temp_var) { |
1952 | 0 | force_skip_low_temp_var = |
1953 | 0 | get_force_skip_low_temp_var(&x->variance_low[0], mi_row, mi_col, bsize); |
1954 | | // If force_skip_low_temp_var is set, and for short circuit mode = 1 and 3, |
1955 | | // skip golden reference. |
1956 | 0 | if ((cpi->sf.short_circuit_low_temp_var == 1 || |
1957 | 0 | cpi->sf.short_circuit_low_temp_var == 3) && |
1958 | 0 | force_skip_low_temp_var) { |
1959 | 0 | usable_ref_frame = LAST_FRAME; |
1960 | 0 | } |
1961 | 0 | } |
1962 | |
|
1963 | 0 | if (sf->disable_golden_ref && (x->content_state_sb != kVeryHighSad || |
1964 | 0 | cpi->rc.avg_frame_low_motion < 60)) |
1965 | 0 | usable_ref_frame = LAST_FRAME; |
1966 | |
|
1967 | 0 | if (!((cpi->ref_frame_flags & VP9_GOLD_FLAG) && |
1968 | 0 | !svc_force_zero_mode[GOLDEN_FRAME - 1] && !force_skip_low_temp_var)) |
1969 | 0 | use_golden_nonzeromv = 0; |
1970 | |
|
1971 | 0 | if (cpi->oxcf.speed >= 8 && !cpi->use_svc && |
1972 | 0 | ((cpi->rc.frames_since_golden + 1) < x->last_sb_high_content || |
1973 | 0 | x->last_sb_high_content > 40 || cpi->rc.frames_since_golden > 120)) |
1974 | 0 | usable_ref_frame = LAST_FRAME; |
1975 | | |
1976 | | // Compound prediction modes: (0,0) on LAST/GOLDEN and ARF. |
1977 | 0 | if (cm->reference_mode == REFERENCE_MODE_SELECT && |
1978 | 0 | cpi->sf.use_compound_nonrd_pickmode && usable_ref_frame == ALTREF_FRAME) |
1979 | 0 | comp_modes = 2; |
1980 | | |
1981 | | // If the segment reference frame feature is enabled and it's set to GOLDEN |
1982 | | // reference, then make sure we don't skip checking GOLDEN, this is to |
1983 | | // prevent possibility of not picking any mode. |
1984 | 0 | if (segfeature_active(seg, mi->segment_id, SEG_LVL_REF_FRAME) && |
1985 | 0 | get_segdata(seg, mi->segment_id, SEG_LVL_REF_FRAME) == GOLDEN_FRAME) { |
1986 | 0 | usable_ref_frame = GOLDEN_FRAME; |
1987 | 0 | skip_ref_find_pred[GOLDEN_FRAME] = 0; |
1988 | 0 | thresh_svc_skip_golden = 0; |
1989 | 0 | } |
1990 | |
|
1991 | 0 | for (ref_frame = LAST_FRAME; ref_frame <= usable_ref_frame; ++ref_frame) { |
1992 | | // Skip find_predictor if the reference frame is not in the |
1993 | | // ref_frame_flags (i.e., not used as a reference for this frame). |
1994 | 0 | skip_ref_find_pred[ref_frame] = |
1995 | 0 | !(cpi->ref_frame_flags & ref_frame_to_flag(ref_frame)); |
1996 | 0 | if (!skip_ref_find_pred[ref_frame]) { |
1997 | 0 | find_predictors(cpi, x, ref_frame, frame_mv, const_motion, |
1998 | 0 | &ref_frame_skip_mask, tile_data, mi_row, mi_col, yv12_mb, |
1999 | 0 | bsize, force_skip_low_temp_var, comp_modes > 0); |
2000 | 0 | } |
2001 | 0 | } |
2002 | |
|
2003 | 0 | if (cpi->use_svc || cpi->oxcf.speed <= 7 || bsize < BLOCK_32X32) |
2004 | 0 | x->sb_use_mv_part = 0; |
2005 | | |
2006 | | // Set the flag_svc_subpel to 1 for SVC if the lower spatial layer used |
2007 | | // an averaging filter for downsampling (phase = 8). If so, we will test |
2008 | | // a nonzero motion mode on the spatial reference. |
2009 | | // The nonzero motion is half pixel shifted to left and top (-4, -4). |
2010 | 0 | if (cpi->use_svc && svc->spatial_layer_id > 0 && |
2011 | 0 | svc_force_zero_mode[inter_layer_ref - 1] && |
2012 | 0 | svc->downsample_filter_phase[svc->spatial_layer_id - 1] == 8 && |
2013 | 0 | !gf_temporal_ref) { |
2014 | 0 | svc_mv_col = -4; |
2015 | 0 | svc_mv_row = -4; |
2016 | 0 | flag_svc_subpel = 1; |
2017 | 0 | } |
2018 | | |
2019 | | // For SVC with quality layers, when QP of lower layer is lower |
2020 | | // than current layer: force check of GF-ZEROMV before early exit |
2021 | | // due to skip flag. |
2022 | 0 | if (svc->spatial_layer_id > 0 && no_scaling && |
2023 | 0 | (cpi->ref_frame_flags & VP9_GOLD_FLAG) && |
2024 | 0 | cm->base_qindex > svc->lower_layer_qindex + 10) |
2025 | 0 | force_test_gf_zeromv = 1; |
2026 | | |
2027 | | // For low motion content use x->sb_is_skin in addition to VeryHighSad |
2028 | | // for setting large_block. |
2029 | 0 | large_block = (x->content_state_sb == kVeryHighSad || |
2030 | 0 | (x->sb_is_skin && cpi->rc.avg_frame_low_motion > 70) || |
2031 | 0 | cpi->oxcf.speed < 7) |
2032 | 0 | ? bsize > BLOCK_32X32 |
2033 | 0 | : bsize >= BLOCK_32X32; |
2034 | 0 | use_model_yrd_large = |
2035 | 0 | cpi->oxcf.rc_mode == VPX_CBR && large_block && |
2036 | 0 | !cyclic_refresh_segment_id_boosted(xd->mi[0]->segment_id) && |
2037 | 0 | cm->base_qindex; |
2038 | |
|
2039 | 0 | for (idx = 0; idx < num_inter_modes + comp_modes; ++idx) { |
2040 | 0 | int rate_mv = 0; |
2041 | 0 | int mode_rd_thresh; |
2042 | 0 | int mode_index; |
2043 | 0 | int i; |
2044 | 0 | int64_t this_sse; |
2045 | 0 | int is_skippable; |
2046 | 0 | int this_early_term = 0; |
2047 | 0 | int rd_computed = 0; |
2048 | 0 | int flag_preduv_computed[2] = { 0 }; |
2049 | 0 | int inter_mv_mode = 0; |
2050 | 0 | int skip_this_mv = 0; |
2051 | 0 | int comp_pred = 0; |
2052 | 0 | int force_mv_inter_layer = 0; |
2053 | 0 | PREDICTION_MODE this_mode; |
2054 | 0 | second_ref_frame = NO_REF_FRAME; |
2055 | |
|
2056 | 0 | if (idx < num_inter_modes) { |
2057 | 0 | this_mode = ref_mode_set[idx].pred_mode; |
2058 | 0 | ref_frame = ref_mode_set[idx].ref_frame; |
2059 | |
|
2060 | 0 | if (cpi->use_svc) { |
2061 | 0 | this_mode = ref_mode_set_svc[idx].pred_mode; |
2062 | 0 | ref_frame = ref_mode_set_svc[idx].ref_frame; |
2063 | 0 | } |
2064 | 0 | } else { |
2065 | | // Add (0,0) compound modes. |
2066 | 0 | this_mode = ZEROMV; |
2067 | 0 | ref_frame = LAST_FRAME; |
2068 | 0 | if (idx == num_inter_modes + comp_modes - 1) ref_frame = GOLDEN_FRAME; |
2069 | 0 | second_ref_frame = ALTREF_FRAME; |
2070 | 0 | comp_pred = 1; |
2071 | 0 | } |
2072 | |
|
2073 | 0 | if (ref_frame > usable_ref_frame) continue; |
2074 | 0 | if (skip_ref_find_pred[ref_frame]) continue; |
2075 | | |
2076 | 0 | if (svc->previous_frame_is_intra_only) { |
2077 | 0 | if (ref_frame != LAST_FRAME || frame_mv[this_mode][ref_frame].as_int != 0) |
2078 | 0 | continue; |
2079 | 0 | } |
2080 | | |
2081 | | // If the segment reference frame feature is enabled then do nothing if the |
2082 | | // current ref frame is not allowed. |
2083 | 0 | if (segfeature_active(seg, mi->segment_id, SEG_LVL_REF_FRAME) && |
2084 | 0 | get_segdata(seg, mi->segment_id, SEG_LVL_REF_FRAME) != (int)ref_frame) |
2085 | 0 | continue; |
2086 | | |
2087 | 0 | if (flag_svc_subpel && ref_frame == inter_layer_ref) { |
2088 | 0 | force_mv_inter_layer = 1; |
2089 | | // Only test mode if NEARESTMV/NEARMV is (svc_mv_col, svc_mv_row), |
2090 | | // otherwise set NEWMV to (svc_mv_col, svc_mv_row). |
2091 | 0 | if (this_mode == NEWMV) { |
2092 | 0 | frame_mv[this_mode][ref_frame].as_mv.col = svc_mv_col; |
2093 | 0 | frame_mv[this_mode][ref_frame].as_mv.row = svc_mv_row; |
2094 | 0 | } else if (frame_mv[this_mode][ref_frame].as_mv.col != svc_mv_col || |
2095 | 0 | frame_mv[this_mode][ref_frame].as_mv.row != svc_mv_row) { |
2096 | 0 | continue; |
2097 | 0 | } |
2098 | 0 | } |
2099 | | |
2100 | 0 | if (comp_pred) { |
2101 | 0 | if (!cpi->allow_comp_inter_inter) continue; |
2102 | | // Skip compound inter modes if ARF is not available. |
2103 | 0 | if (!(cpi->ref_frame_flags & ref_frame_to_flag(second_ref_frame))) |
2104 | 0 | continue; |
2105 | | // Do not allow compound prediction if the segment level reference frame |
2106 | | // feature is in use as in this case there can only be one reference. |
2107 | 0 | if (segfeature_active(seg, mi->segment_id, SEG_LVL_REF_FRAME)) continue; |
2108 | 0 | } |
2109 | | |
2110 | | // For CBR mode: skip the golden reference search if sse of zeromv_last is |
2111 | | // below threshold. |
2112 | 0 | if (ref_frame == GOLDEN_FRAME && cpi->oxcf.rc_mode == VPX_CBR && |
2113 | 0 | ((cpi->use_svc && sse_zeromv_normalized < thresh_svc_skip_golden) || |
2114 | 0 | (!cpi->use_svc && sse_zeromv_normalized < thresh_skip_golden))) |
2115 | 0 | continue; |
2116 | | |
2117 | 0 | if (!(cpi->ref_frame_flags & ref_frame_to_flag(ref_frame))) continue; |
2118 | | |
2119 | | // For screen content. If zero_temp_sad source is computed: skip |
2120 | | // non-zero motion check for stationary blocks. If the superblock is |
2121 | | // non-stationary then for flat blocks skip the zero last check (keep golden |
2122 | | // as it may be inter-layer reference). Otherwise (if zero_temp_sad_source |
2123 | | // is not computed) skip non-zero motion check for flat blocks. |
2124 | | // TODO(marpan): Compute zero_temp_sad_source per coding block. |
2125 | 0 | if (cpi->oxcf.content == VP9E_CONTENT_SCREEN) { |
2126 | 0 | if (cpi->compute_source_sad_onepass && cpi->sf.use_source_sad) { |
2127 | 0 | if ((frame_mv[this_mode][ref_frame].as_int != 0 && |
2128 | 0 | x->zero_temp_sad_source) || |
2129 | 0 | (frame_mv[this_mode][ref_frame].as_int == 0 && |
2130 | 0 | x->source_variance == 0 && ref_frame == LAST_FRAME && |
2131 | 0 | !x->zero_temp_sad_source)) |
2132 | 0 | continue; |
2133 | 0 | } else if (frame_mv[this_mode][ref_frame].as_int != 0 && |
2134 | 0 | x->source_variance == 0) { |
2135 | 0 | continue; |
2136 | 0 | } |
2137 | 0 | } |
2138 | | |
2139 | 0 | if (!(cpi->sf.inter_mode_mask[bsize] & (1 << this_mode))) continue; |
2140 | | |
2141 | 0 | if (cpi->oxcf.lag_in_frames > 0 && cpi->oxcf.rc_mode == VPX_VBR) { |
2142 | 0 | if (cpi->rc.is_src_frame_alt_ref && |
2143 | 0 | (ref_frame != ALTREF_FRAME || |
2144 | 0 | frame_mv[this_mode][ref_frame].as_int != 0)) |
2145 | 0 | continue; |
2146 | | |
2147 | 0 | if (!cm->show_frame && ref_frame == ALTREF_FRAME && |
2148 | 0 | frame_mv[this_mode][ref_frame].as_int != 0) |
2149 | 0 | continue; |
2150 | | |
2151 | 0 | if (cpi->rc.alt_ref_gf_group && cm->show_frame && |
2152 | 0 | cpi->rc.frames_since_golden > (cpi->rc.baseline_gf_interval >> 1) && |
2153 | 0 | ref_frame == GOLDEN_FRAME && |
2154 | 0 | frame_mv[this_mode][ref_frame].as_int != 0) |
2155 | 0 | continue; |
2156 | | |
2157 | 0 | if (cpi->rc.alt_ref_gf_group && cm->show_frame && |
2158 | 0 | cpi->rc.frames_since_golden > 0 && |
2159 | 0 | cpi->rc.frames_since_golden < (cpi->rc.baseline_gf_interval >> 1) && |
2160 | 0 | ref_frame == ALTREF_FRAME && |
2161 | 0 | frame_mv[this_mode][ref_frame].as_int != 0) |
2162 | 0 | continue; |
2163 | 0 | } |
2164 | | |
2165 | 0 | if (const_motion[ref_frame] && this_mode == NEARMV) continue; |
2166 | | |
2167 | | // Skip non-zeromv mode search for golden frame if force_skip_low_temp_var |
2168 | | // is set. If nearestmv for golden frame is 0, zeromv mode will be skipped |
2169 | | // later. |
2170 | 0 | if (!force_mv_inter_layer && force_skip_low_temp_var && |
2171 | 0 | ref_frame == GOLDEN_FRAME && |
2172 | 0 | frame_mv[this_mode][ref_frame].as_int != 0) { |
2173 | 0 | continue; |
2174 | 0 | } |
2175 | | |
2176 | 0 | if (x->content_state_sb != kVeryHighSad && |
2177 | 0 | (cpi->sf.short_circuit_low_temp_var >= 2 || |
2178 | 0 | (cpi->sf.short_circuit_low_temp_var == 1 && bsize == BLOCK_64X64)) && |
2179 | 0 | force_skip_low_temp_var && ref_frame == LAST_FRAME && |
2180 | 0 | this_mode == NEWMV) { |
2181 | 0 | continue; |
2182 | 0 | } |
2183 | | |
2184 | 0 | if (cpi->use_svc) { |
2185 | 0 | if (!force_mv_inter_layer && svc_force_zero_mode[ref_frame - 1] && |
2186 | 0 | frame_mv[this_mode][ref_frame].as_int != 0) |
2187 | 0 | continue; |
2188 | 0 | } |
2189 | | |
2190 | | // Disable this drop out case if the ref frame segment level feature is |
2191 | | // enabled for this segment. This is to prevent the possibility that we end |
2192 | | // up unable to pick any mode. |
2193 | 0 | if (!segfeature_active(seg, mi->segment_id, SEG_LVL_REF_FRAME)) { |
2194 | 0 | if (sf->reference_masking && |
2195 | 0 | !(frame_mv[this_mode][ref_frame].as_int == 0 && |
2196 | 0 | ref_frame == LAST_FRAME)) { |
2197 | 0 | if (usable_ref_frame < ALTREF_FRAME) { |
2198 | 0 | if (!force_skip_low_temp_var && usable_ref_frame > LAST_FRAME) { |
2199 | 0 | i = (ref_frame == LAST_FRAME) ? GOLDEN_FRAME : LAST_FRAME; |
2200 | 0 | if ((cpi->ref_frame_flags & ref_frame_to_flag(i))) |
2201 | 0 | if (x->pred_mv_sad[ref_frame] > (x->pred_mv_sad[i] << 1)) |
2202 | 0 | ref_frame_skip_mask |= (1 << ref_frame); |
2203 | 0 | } |
2204 | 0 | } else if (!cpi->rc.is_src_frame_alt_ref && |
2205 | 0 | !(frame_mv[this_mode][ref_frame].as_int == 0 && |
2206 | 0 | ref_frame == ALTREF_FRAME)) { |
2207 | 0 | int ref1 = (ref_frame == GOLDEN_FRAME) ? LAST_FRAME : GOLDEN_FRAME; |
2208 | 0 | int ref2 = (ref_frame == ALTREF_FRAME) ? LAST_FRAME : ALTREF_FRAME; |
2209 | 0 | if (((cpi->ref_frame_flags & ref_frame_to_flag(ref1)) && |
2210 | 0 | (x->pred_mv_sad[ref_frame] > (x->pred_mv_sad[ref1] << 1))) || |
2211 | 0 | ((cpi->ref_frame_flags & ref_frame_to_flag(ref2)) && |
2212 | 0 | (x->pred_mv_sad[ref_frame] > (x->pred_mv_sad[ref2] << 1)))) |
2213 | 0 | ref_frame_skip_mask |= (1 << ref_frame); |
2214 | 0 | } |
2215 | 0 | } |
2216 | 0 | if (ref_frame_skip_mask & (1 << ref_frame)) continue; |
2217 | 0 | } |
2218 | | |
2219 | | // Select prediction reference frames. |
2220 | 0 | for (i = 0; i < MAX_MB_PLANE; i++) { |
2221 | 0 | xd->plane[i].pre[0] = yv12_mb[ref_frame][i]; |
2222 | 0 | if (comp_pred) xd->plane[i].pre[1] = yv12_mb[second_ref_frame][i]; |
2223 | 0 | } |
2224 | |
|
2225 | 0 | mi->ref_frame[0] = ref_frame; |
2226 | 0 | mi->ref_frame[1] = second_ref_frame; |
2227 | 0 | set_ref_ptrs(cm, xd, ref_frame, second_ref_frame); |
2228 | |
|
2229 | 0 | mode_index = mode_idx[ref_frame][INTER_OFFSET(this_mode)]; |
2230 | 0 | mode_rd_thresh = best_pickmode.best_mode_skip_txfm |
2231 | 0 | ? rd_threshes[mode_index] << 1 |
2232 | 0 | : rd_threshes[mode_index]; |
2233 | | |
2234 | | // Increase mode_rd_thresh value for GOLDEN_FRAME for improved encoding |
2235 | | // speed with little/no subjective quality loss. |
2236 | 0 | if (cpi->sf.bias_golden && ref_frame == GOLDEN_FRAME && |
2237 | 0 | cpi->rc.frames_since_golden > 4) |
2238 | 0 | mode_rd_thresh = mode_rd_thresh << 3; |
2239 | |
|
2240 | 0 | if ((cpi->sf.adaptive_rd_thresh_row_mt && |
2241 | 0 | rd_less_than_thresh_row_mt(best_rdc.rdcost, mode_rd_thresh, |
2242 | 0 | &rd_thresh_freq_fact[mode_index])) || |
2243 | 0 | (!cpi->sf.adaptive_rd_thresh_row_mt && |
2244 | 0 | rd_less_than_thresh(best_rdc.rdcost, mode_rd_thresh, |
2245 | 0 | &rd_thresh_freq_fact[mode_index]))) |
2246 | 0 | if (frame_mv[this_mode][ref_frame].as_int != 0) continue; |
2247 | | |
2248 | 0 | if (this_mode == NEWMV && !force_mv_inter_layer) { |
2249 | 0 | if (search_new_mv(cpi, x, frame_mv, ref_frame, gf_temporal_ref, bsize, |
2250 | 0 | mi_row, mi_col, best_pred_sad, &rate_mv, best_sse_sofar, |
2251 | 0 | &best_rdc)) |
2252 | 0 | continue; |
2253 | 0 | } |
2254 | | |
2255 | | // TODO(jianj): Skipping the testing of (duplicate) non-zero motion vector |
2256 | | // causes some regression, leave it for duplicate zero-mv for now, until |
2257 | | // regression issue is resolved. |
2258 | 0 | for (inter_mv_mode = NEARESTMV; inter_mv_mode <= NEWMV; inter_mv_mode++) { |
2259 | 0 | if (inter_mv_mode == this_mode || comp_pred) continue; |
2260 | 0 | if (mode_checked[inter_mv_mode][ref_frame] && |
2261 | 0 | frame_mv[this_mode][ref_frame].as_int == |
2262 | 0 | frame_mv[inter_mv_mode][ref_frame].as_int && |
2263 | 0 | frame_mv[inter_mv_mode][ref_frame].as_int == 0) { |
2264 | 0 | skip_this_mv = 1; |
2265 | 0 | break; |
2266 | 0 | } |
2267 | 0 | } |
2268 | |
|
2269 | 0 | if (skip_this_mv) continue; |
2270 | | |
2271 | | // If use_golden_nonzeromv is false, NEWMV mode is skipped for golden, no |
2272 | | // need to compute best_pred_sad which is only used to skip golden NEWMV. |
2273 | 0 | if (use_golden_nonzeromv && this_mode == NEWMV && ref_frame == LAST_FRAME && |
2274 | 0 | frame_mv[NEWMV][LAST_FRAME].as_int != INVALID_MV) { |
2275 | 0 | const int pre_stride = xd->plane[0].pre[0].stride; |
2276 | 0 | const uint8_t *const pre_buf = |
2277 | 0 | xd->plane[0].pre[0].buf + |
2278 | 0 | (frame_mv[NEWMV][LAST_FRAME].as_mv.row >> 3) * pre_stride + |
2279 | 0 | (frame_mv[NEWMV][LAST_FRAME].as_mv.col >> 3); |
2280 | 0 | best_pred_sad = cpi->fn_ptr[bsize].sdf( |
2281 | 0 | x->plane[0].src.buf, x->plane[0].src.stride, pre_buf, pre_stride); |
2282 | 0 | x->pred_mv_sad[LAST_FRAME] = best_pred_sad; |
2283 | 0 | } |
2284 | |
|
2285 | 0 | if (this_mode != NEARESTMV && !comp_pred && |
2286 | 0 | frame_mv[this_mode][ref_frame].as_int == |
2287 | 0 | frame_mv[NEARESTMV][ref_frame].as_int) |
2288 | 0 | continue; |
2289 | | |
2290 | 0 | mi->mode = this_mode; |
2291 | 0 | mi->mv[0].as_int = frame_mv[this_mode][ref_frame].as_int; |
2292 | 0 | mi->mv[1].as_int = 0; |
2293 | | |
2294 | | // Search for the best prediction filter type, when the resulting |
2295 | | // motion vector is at sub-pixel accuracy level for luma component, i.e., |
2296 | | // the last three bits are all zeros. |
2297 | 0 | if (reuse_inter_pred) { |
2298 | 0 | if (!this_mode_pred) { |
2299 | 0 | this_mode_pred = &tmp[3]; |
2300 | 0 | } else { |
2301 | 0 | this_mode_pred = &tmp[get_pred_buffer(tmp, 3)]; |
2302 | 0 | pd->dst.buf = this_mode_pred->data; |
2303 | 0 | pd->dst.stride = bw; |
2304 | 0 | } |
2305 | 0 | } |
2306 | |
|
2307 | 0 | if ((this_mode == NEWMV || filter_ref == SWITCHABLE) && |
2308 | 0 | pred_filter_search && |
2309 | 0 | (ref_frame == LAST_FRAME || |
2310 | 0 | (ref_frame == GOLDEN_FRAME && !force_mv_inter_layer && |
2311 | 0 | (cpi->use_svc || cpi->oxcf.rc_mode == VPX_VBR))) && |
2312 | 0 | (((mi->mv[0].as_mv.row | mi->mv[0].as_mv.col) & 0x07) != 0)) { |
2313 | 0 | rd_computed = 1; |
2314 | 0 | search_filter_ref(cpi, x, &this_rdc, mi_row, mi_col, tmp, bsize, |
2315 | 0 | reuse_inter_pred, &this_mode_pred, &var_y, &sse_y, |
2316 | 0 | force_smooth_filter, &this_early_term, |
2317 | 0 | flag_preduv_computed, use_model_yrd_large); |
2318 | 0 | } else { |
2319 | 0 | mi->interp_filter = (filter_ref == SWITCHABLE) ? EIGHTTAP : filter_ref; |
2320 | |
|
2321 | 0 | if (cpi->use_svc && ref_frame == GOLDEN_FRAME && |
2322 | 0 | svc_force_zero_mode[ref_frame - 1]) |
2323 | 0 | mi->interp_filter = filter_gf_svc; |
2324 | |
|
2325 | 0 | vp9_build_inter_predictors_sby(xd, mi_row, mi_col, bsize); |
2326 | | |
2327 | | // For large partition blocks, extra testing is done. |
2328 | 0 | if (use_model_yrd_large) { |
2329 | 0 | rd_computed = 1; |
2330 | 0 | model_rd_for_sb_y_large(cpi, bsize, x, xd, &this_rdc.rate, |
2331 | 0 | &this_rdc.dist, &var_y, &sse_y, mi_row, mi_col, |
2332 | 0 | &this_early_term, flag_preduv_computed); |
2333 | 0 | } else { |
2334 | 0 | rd_computed = 1; |
2335 | 0 | model_rd_for_sb_y(cpi, bsize, x, xd, &this_rdc.rate, &this_rdc.dist, |
2336 | 0 | &var_y, &sse_y, 0); |
2337 | 0 | } |
2338 | | // Save normalized sse (between current and last frame) for (0, 0) motion. |
2339 | 0 | if (ref_frame == LAST_FRAME && |
2340 | 0 | frame_mv[this_mode][ref_frame].as_int == 0) { |
2341 | 0 | sse_zeromv_normalized = |
2342 | 0 | sse_y >> (b_width_log2_lookup[bsize] + b_height_log2_lookup[bsize]); |
2343 | 0 | } |
2344 | 0 | if (sse_y < best_sse_sofar) best_sse_sofar = sse_y; |
2345 | 0 | } |
2346 | |
|
2347 | 0 | if (!this_early_term) { |
2348 | 0 | this_sse = (int64_t)sse_y; |
2349 | 0 | block_yrd(cpi, x, &this_rdc, &is_skippable, &this_sse, bsize, |
2350 | 0 | VPXMIN(mi->tx_size, TX_16X16), rd_computed, 0); |
2351 | 0 | x->skip_txfm[0] = is_skippable; |
2352 | 0 | if (is_skippable) { |
2353 | 0 | this_rdc.rate = vp9_cost_bit(vp9_get_skip_prob(cm, xd), 1); |
2354 | 0 | } else { |
2355 | 0 | if (RDCOST(x->rdmult, x->rddiv, this_rdc.rate, this_rdc.dist) < |
2356 | 0 | RDCOST(x->rdmult, x->rddiv, 0, this_sse)) { |
2357 | 0 | this_rdc.rate += vp9_cost_bit(vp9_get_skip_prob(cm, xd), 0); |
2358 | 0 | } else { |
2359 | 0 | this_rdc.rate = vp9_cost_bit(vp9_get_skip_prob(cm, xd), 1); |
2360 | 0 | this_rdc.dist = this_sse; |
2361 | 0 | x->skip_txfm[0] = SKIP_TXFM_AC_DC; |
2362 | 0 | } |
2363 | 0 | } |
2364 | |
|
2365 | 0 | if (cm->interp_filter == SWITCHABLE) { |
2366 | 0 | if ((mi->mv[0].as_mv.row | mi->mv[0].as_mv.col) & 0x07) |
2367 | 0 | this_rdc.rate += vp9_get_switchable_rate(cpi, xd); |
2368 | 0 | } |
2369 | 0 | } else { |
2370 | 0 | if (cm->interp_filter == SWITCHABLE) { |
2371 | 0 | if ((mi->mv[0].as_mv.row | mi->mv[0].as_mv.col) & 0x07) |
2372 | 0 | this_rdc.rate += vp9_get_switchable_rate(cpi, xd); |
2373 | 0 | } |
2374 | 0 | this_rdc.rate += vp9_cost_bit(vp9_get_skip_prob(cm, xd), 1); |
2375 | 0 | } |
2376 | |
|
2377 | 0 | if (!this_early_term && |
2378 | 0 | (x->color_sensitivity[0] || x->color_sensitivity[1])) { |
2379 | 0 | RD_COST rdc_uv; |
2380 | 0 | const BLOCK_SIZE uv_bsize = get_plane_block_size(bsize, &xd->plane[1]); |
2381 | 0 | if (x->color_sensitivity[0] && !flag_preduv_computed[0]) { |
2382 | 0 | vp9_build_inter_predictors_sbp(xd, mi_row, mi_col, bsize, 1); |
2383 | 0 | flag_preduv_computed[0] = 1; |
2384 | 0 | } |
2385 | 0 | if (x->color_sensitivity[1] && !flag_preduv_computed[1]) { |
2386 | 0 | vp9_build_inter_predictors_sbp(xd, mi_row, mi_col, bsize, 2); |
2387 | 0 | flag_preduv_computed[1] = 1; |
2388 | 0 | } |
2389 | 0 | model_rd_for_sb_uv(cpi, uv_bsize, x, xd, &rdc_uv, &var_y, &sse_y, 1, 2); |
2390 | 0 | this_rdc.rate += rdc_uv.rate; |
2391 | 0 | this_rdc.dist += rdc_uv.dist; |
2392 | 0 | } |
2393 | |
|
2394 | 0 | this_rdc.rate += rate_mv; |
2395 | 0 | this_rdc.rate += cpi->inter_mode_cost[x->mbmi_ext->mode_context[ref_frame]] |
2396 | 0 | [INTER_OFFSET(this_mode)]; |
2397 | | // TODO(marpan): Add costing for compound mode. |
2398 | 0 | this_rdc.rate += ref_frame_cost[ref_frame]; |
2399 | 0 | this_rdc.rdcost = RDCOST(x->rdmult, x->rddiv, this_rdc.rate, this_rdc.dist); |
2400 | | |
2401 | | // Bias against NEWMV that is very different from its neighbors, and bias |
2402 | | // to small motion-lastref for noisy input. |
2403 | 0 | if (cpi->oxcf.rc_mode == VPX_CBR && cpi->oxcf.speed >= 5 && |
2404 | 0 | cpi->oxcf.content != VP9E_CONTENT_SCREEN) { |
2405 | 0 | vp9_NEWMV_diff_bias(&cpi->noise_estimate, xd, this_mode, &this_rdc, bsize, |
2406 | 0 | frame_mv[this_mode][ref_frame].as_mv.row, |
2407 | 0 | frame_mv[this_mode][ref_frame].as_mv.col, |
2408 | 0 | ref_frame == LAST_FRAME, x->lowvar_highsumdiff, |
2409 | 0 | x->sb_is_skin); |
2410 | 0 | } |
2411 | | |
2412 | | // Skipping checking: test to see if this block can be reconstructed by |
2413 | | // prediction only. |
2414 | 0 | if (cpi->allow_encode_breakout && !xd->lossless && !scene_change_detected && |
2415 | 0 | !svc->high_num_blocks_with_motion) { |
2416 | 0 | encode_breakout_test(cpi, x, bsize, mi_row, mi_col, ref_frame, this_mode, |
2417 | 0 | var_y, sse_y, yv12_mb, &this_rdc.rate, |
2418 | 0 | &this_rdc.dist, flag_preduv_computed); |
2419 | 0 | if (x->skip) { |
2420 | 0 | this_rdc.rate += rate_mv; |
2421 | 0 | this_rdc.rdcost = |
2422 | 0 | RDCOST(x->rdmult, x->rddiv, this_rdc.rate, this_rdc.dist); |
2423 | 0 | } |
2424 | 0 | } |
2425 | | |
2426 | | // On spatially flat blocks for screne content: bias against zero-last |
2427 | | // if the sse_y is non-zero. Only on scene change or high motion frames. |
2428 | 0 | if (cpi->oxcf.content == VP9E_CONTENT_SCREEN && |
2429 | 0 | (scene_change_detected || svc->high_num_blocks_with_motion) && |
2430 | 0 | ref_frame == LAST_FRAME && frame_mv[this_mode][ref_frame].as_int == 0 && |
2431 | 0 | svc->spatial_layer_id == 0 && x->source_variance == 0 && sse_y > 0) { |
2432 | 0 | this_rdc.rdcost = this_rdc.rdcost << 2; |
2433 | 0 | } |
2434 | |
|
2435 | | #if CONFIG_VP9_TEMPORAL_DENOISING |
2436 | | if (cpi->oxcf.noise_sensitivity > 0 && denoise_svc_pickmode && |
2437 | | cpi->denoiser.denoising_level > kDenLowLow) { |
2438 | | vp9_denoiser_update_frame_stats(mi, sse_y, this_mode, ctx); |
2439 | | // Keep track of zero_last cost. |
2440 | | if (ref_frame == LAST_FRAME && frame_mv[this_mode][ref_frame].as_int == 0) |
2441 | | zero_last_cost_orig = this_rdc.rdcost; |
2442 | | } |
2443 | | #else |
2444 | 0 | (void)ctx; |
2445 | 0 | #endif |
2446 | |
|
2447 | 0 | mode_checked[this_mode][ref_frame] = 1; |
2448 | |
|
2449 | 0 | if (this_rdc.rdcost < best_rdc.rdcost || x->skip) { |
2450 | 0 | best_rdc = this_rdc; |
2451 | 0 | best_early_term = this_early_term; |
2452 | 0 | best_pickmode.best_mode = this_mode; |
2453 | 0 | best_pickmode.best_pred_filter = mi->interp_filter; |
2454 | 0 | best_pickmode.best_tx_size = mi->tx_size; |
2455 | 0 | best_pickmode.best_ref_frame = ref_frame; |
2456 | 0 | best_pickmode.best_mode_skip_txfm = x->skip_txfm[0]; |
2457 | 0 | best_pickmode.best_second_ref_frame = second_ref_frame; |
2458 | |
|
2459 | 0 | if (reuse_inter_pred) { |
2460 | 0 | free_pred_buffer(best_pickmode.best_pred); |
2461 | 0 | best_pickmode.best_pred = this_mode_pred; |
2462 | 0 | } |
2463 | 0 | } else { |
2464 | 0 | if (reuse_inter_pred) free_pred_buffer(this_mode_pred); |
2465 | 0 | } |
2466 | |
|
2467 | 0 | if (x->skip && |
2468 | 0 | (!force_test_gf_zeromv || mode_checked[ZEROMV][GOLDEN_FRAME])) |
2469 | 0 | break; |
2470 | | |
2471 | | // If early termination flag is 1 and at least 2 modes are checked, |
2472 | | // the mode search is terminated. |
2473 | 0 | if (best_early_term && idx > 0 && !scene_change_detected && |
2474 | 0 | (!force_test_gf_zeromv || mode_checked[ZEROMV][GOLDEN_FRAME])) { |
2475 | 0 | x->skip = 1; |
2476 | 0 | break; |
2477 | 0 | } |
2478 | 0 | } |
2479 | |
|
2480 | 0 | mi->mode = best_pickmode.best_mode; |
2481 | 0 | mi->interp_filter = best_pickmode.best_pred_filter; |
2482 | 0 | mi->tx_size = best_pickmode.best_tx_size; |
2483 | 0 | mi->ref_frame[0] = best_pickmode.best_ref_frame; |
2484 | 0 | mi->mv[0].as_int = |
2485 | 0 | frame_mv[best_pickmode.best_mode][best_pickmode.best_ref_frame].as_int; |
2486 | 0 | xd->mi[0]->bmi[0].as_mv[0].as_int = mi->mv[0].as_int; |
2487 | 0 | x->skip_txfm[0] = best_pickmode.best_mode_skip_txfm; |
2488 | 0 | mi->ref_frame[1] = best_pickmode.best_second_ref_frame; |
2489 | | |
2490 | | // For spatial enhancemanent layer: perform intra prediction only if base |
2491 | | // layer is chosen as the reference. Always perform intra prediction if |
2492 | | // LAST is the only reference, or is_key_frame is set, or on base |
2493 | | // temporal layer. |
2494 | 0 | if (svc->spatial_layer_id && !gf_temporal_ref) { |
2495 | 0 | perform_intra_pred = |
2496 | 0 | svc->temporal_layer_id == 0 || |
2497 | 0 | svc->layer_context[svc->temporal_layer_id].is_key_frame || |
2498 | 0 | !(cpi->ref_frame_flags & VP9_GOLD_FLAG) || |
2499 | 0 | (!svc->layer_context[svc->temporal_layer_id].is_key_frame && |
2500 | 0 | svc_force_zero_mode[best_pickmode.best_ref_frame - 1]); |
2501 | 0 | inter_mode_thresh = (inter_mode_thresh << 1) + inter_mode_thresh; |
2502 | 0 | } |
2503 | 0 | if ((cpi->oxcf.lag_in_frames > 0 && cpi->oxcf.rc_mode == VPX_VBR && |
2504 | 0 | cpi->rc.is_src_frame_alt_ref) || |
2505 | 0 | svc->previous_frame_is_intra_only) |
2506 | 0 | perform_intra_pred = 0; |
2507 | | |
2508 | | // If the segment reference frame feature is enabled and set then |
2509 | | // skip the intra prediction. |
2510 | 0 | if (segfeature_active(seg, mi->segment_id, SEG_LVL_REF_FRAME) && |
2511 | 0 | get_segdata(seg, mi->segment_id, SEG_LVL_REF_FRAME) > 0) |
2512 | 0 | perform_intra_pred = 0; |
2513 | | |
2514 | | // Perform intra prediction search, if the best SAD is above a certain |
2515 | | // threshold. |
2516 | 0 | if (best_rdc.rdcost == INT64_MAX || |
2517 | 0 | (cpi->oxcf.content == VP9E_CONTENT_SCREEN && x->source_variance == 0) || |
2518 | 0 | (scene_change_detected && perform_intra_pred) || |
2519 | 0 | ((!force_skip_low_temp_var || bsize < BLOCK_32X32 || |
2520 | 0 | x->content_state_sb == kVeryHighSad) && |
2521 | 0 | perform_intra_pred && !x->skip && best_rdc.rdcost > inter_mode_thresh && |
2522 | 0 | bsize <= cpi->sf.max_intra_bsize && !x->skip_low_source_sad && |
2523 | 0 | !x->lowvar_highsumdiff)) { |
2524 | 0 | struct estimate_block_intra_args args = { cpi, x, DC_PRED, 1, 0 }; |
2525 | 0 | int64_t this_sse = INT64_MAX; |
2526 | 0 | int i; |
2527 | 0 | PRED_BUFFER *const best_pred = best_pickmode.best_pred; |
2528 | 0 | TX_SIZE intra_tx_size = |
2529 | 0 | VPXMIN(max_txsize_lookup[bsize], |
2530 | 0 | tx_mode_to_biggest_tx_size[cpi->common.tx_mode]); |
2531 | |
|
2532 | 0 | if (reuse_inter_pred && best_pred != NULL) { |
2533 | 0 | if (best_pred->data == orig_dst.buf) { |
2534 | 0 | this_mode_pred = &tmp[get_pred_buffer(tmp, 3)]; |
2535 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
2536 | 0 | if (cm->use_highbitdepth) |
2537 | 0 | vpx_highbd_convolve_copy( |
2538 | 0 | CONVERT_TO_SHORTPTR(best_pred->data), best_pred->stride, |
2539 | 0 | CONVERT_TO_SHORTPTR(this_mode_pred->data), this_mode_pred->stride, |
2540 | 0 | NULL, 0, 0, 0, 0, bw, bh, xd->bd); |
2541 | 0 | else |
2542 | 0 | vpx_convolve_copy(best_pred->data, best_pred->stride, |
2543 | 0 | this_mode_pred->data, this_mode_pred->stride, NULL, |
2544 | 0 | 0, 0, 0, 0, bw, bh); |
2545 | | #else |
2546 | | vpx_convolve_copy(best_pred->data, best_pred->stride, |
2547 | | this_mode_pred->data, this_mode_pred->stride, NULL, 0, |
2548 | | 0, 0, 0, bw, bh); |
2549 | | #endif // CONFIG_VP9_HIGHBITDEPTH |
2550 | 0 | best_pickmode.best_pred = this_mode_pred; |
2551 | 0 | } |
2552 | 0 | } |
2553 | 0 | pd->dst = orig_dst; |
2554 | |
|
2555 | 0 | for (i = 0; i < 4; ++i) { |
2556 | 0 | const PREDICTION_MODE this_mode = intra_mode_list[i]; |
2557 | 0 | THR_MODES mode_index = mode_idx[INTRA_FRAME][mode_offset(this_mode)]; |
2558 | 0 | int mode_rd_thresh = rd_threshes[mode_index]; |
2559 | | // For spatially flat blocks, under short_circuit_flat_blocks flag: |
2560 | | // only check DC mode for stationary blocks, otherwise also check |
2561 | | // H and V mode. |
2562 | 0 | if (sf->short_circuit_flat_blocks && x->source_variance == 0 && |
2563 | 0 | ((x->zero_temp_sad_source && this_mode != DC_PRED) || i > 2)) { |
2564 | 0 | continue; |
2565 | 0 | } |
2566 | | |
2567 | 0 | if (!((1 << this_mode) & cpi->sf.intra_y_mode_bsize_mask[bsize])) |
2568 | 0 | continue; |
2569 | | |
2570 | 0 | if (cpi->sf.rt_intra_dc_only_low_content && this_mode != DC_PRED && |
2571 | 0 | x->content_state_sb != kVeryHighSad) |
2572 | 0 | continue; |
2573 | | |
2574 | 0 | if ((cpi->sf.adaptive_rd_thresh_row_mt && |
2575 | 0 | rd_less_than_thresh_row_mt(best_rdc.rdcost, mode_rd_thresh, |
2576 | 0 | &rd_thresh_freq_fact[mode_index])) || |
2577 | 0 | (!cpi->sf.adaptive_rd_thresh_row_mt && |
2578 | 0 | rd_less_than_thresh(best_rdc.rdcost, mode_rd_thresh, |
2579 | 0 | &rd_thresh_freq_fact[mode_index]))) { |
2580 | | // Avoid this early exit for screen on base layer, for scene |
2581 | | // changes or high motion frames. |
2582 | 0 | if (cpi->oxcf.content != VP9E_CONTENT_SCREEN || |
2583 | 0 | svc->spatial_layer_id > 0 || |
2584 | 0 | (!scene_change_detected && !svc->high_num_blocks_with_motion)) |
2585 | 0 | continue; |
2586 | 0 | } |
2587 | | |
2588 | 0 | mi->mode = this_mode; |
2589 | 0 | mi->ref_frame[0] = INTRA_FRAME; |
2590 | 0 | this_rdc.dist = this_rdc.rate = 0; |
2591 | 0 | args.mode = this_mode; |
2592 | 0 | args.skippable = 1; |
2593 | 0 | args.rdc = &this_rdc; |
2594 | 0 | mi->tx_size = intra_tx_size; |
2595 | |
|
2596 | 0 | compute_intra_yprediction(this_mode, bsize, x, xd); |
2597 | 0 | model_rd_for_sb_y(cpi, bsize, x, xd, &this_rdc.rate, &this_rdc.dist, |
2598 | 0 | &var_y, &sse_y, 1); |
2599 | 0 | block_yrd(cpi, x, &this_rdc, &args.skippable, &this_sse, bsize, |
2600 | 0 | VPXMIN(mi->tx_size, TX_16X16), 1, 1); |
2601 | | |
2602 | | // Check skip cost here since skippable is not set for for uv, this |
2603 | | // mirrors the behavior used by inter |
2604 | 0 | if (args.skippable) { |
2605 | 0 | x->skip_txfm[0] = SKIP_TXFM_AC_DC; |
2606 | 0 | this_rdc.rate = vp9_cost_bit(vp9_get_skip_prob(&cpi->common, xd), 1); |
2607 | 0 | } else { |
2608 | 0 | x->skip_txfm[0] = SKIP_TXFM_NONE; |
2609 | 0 | this_rdc.rate += vp9_cost_bit(vp9_get_skip_prob(&cpi->common, xd), 0); |
2610 | 0 | } |
2611 | | // Inter and intra RD will mismatch in scale for non-screen content. |
2612 | 0 | if (cpi->oxcf.content == VP9E_CONTENT_SCREEN) { |
2613 | 0 | if (x->color_sensitivity[0]) |
2614 | 0 | vp9_foreach_transformed_block_in_plane(xd, bsize, 1, |
2615 | 0 | estimate_block_intra, &args); |
2616 | 0 | if (x->color_sensitivity[1]) |
2617 | 0 | vp9_foreach_transformed_block_in_plane(xd, bsize, 2, |
2618 | 0 | estimate_block_intra, &args); |
2619 | 0 | } |
2620 | 0 | this_rdc.rate += cpi->mbmode_cost[this_mode]; |
2621 | 0 | this_rdc.rate += ref_frame_cost[INTRA_FRAME]; |
2622 | 0 | this_rdc.rate += intra_cost_penalty; |
2623 | 0 | this_rdc.rdcost = |
2624 | 0 | RDCOST(x->rdmult, x->rddiv, this_rdc.rate, this_rdc.dist); |
2625 | |
|
2626 | 0 | if (this_rdc.rdcost < best_rdc.rdcost) { |
2627 | 0 | best_rdc = this_rdc; |
2628 | 0 | best_pickmode.best_mode = this_mode; |
2629 | 0 | best_pickmode.best_intra_tx_size = mi->tx_size; |
2630 | 0 | best_pickmode.best_ref_frame = INTRA_FRAME; |
2631 | 0 | best_pickmode.best_second_ref_frame = NO_REF_FRAME; |
2632 | 0 | mi->uv_mode = this_mode; |
2633 | 0 | mi->mv[0].as_int = INVALID_MV; |
2634 | 0 | mi->mv[1].as_int = INVALID_MV; |
2635 | 0 | best_pickmode.best_mode_skip_txfm = x->skip_txfm[0]; |
2636 | 0 | } |
2637 | 0 | } |
2638 | | |
2639 | | // Reset mb_mode_info to the best inter mode. |
2640 | 0 | if (best_pickmode.best_ref_frame != INTRA_FRAME) { |
2641 | 0 | mi->tx_size = best_pickmode.best_tx_size; |
2642 | 0 | } else { |
2643 | 0 | mi->tx_size = best_pickmode.best_intra_tx_size; |
2644 | 0 | } |
2645 | 0 | } |
2646 | |
|
2647 | 0 | pd->dst = orig_dst; |
2648 | 0 | mi->mode = best_pickmode.best_mode; |
2649 | 0 | mi->ref_frame[0] = best_pickmode.best_ref_frame; |
2650 | 0 | mi->ref_frame[1] = best_pickmode.best_second_ref_frame; |
2651 | 0 | x->skip_txfm[0] = best_pickmode.best_mode_skip_txfm; |
2652 | |
|
2653 | 0 | if (!is_inter_block(mi)) { |
2654 | 0 | mi->interp_filter = SWITCHABLE_FILTERS; |
2655 | 0 | } |
2656 | |
|
2657 | 0 | if (reuse_inter_pred && best_pickmode.best_pred != NULL) { |
2658 | 0 | PRED_BUFFER *const best_pred = best_pickmode.best_pred; |
2659 | 0 | if (best_pred->data != orig_dst.buf && is_inter_mode(mi->mode)) { |
2660 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
2661 | 0 | if (cm->use_highbitdepth) |
2662 | 0 | vpx_highbd_convolve_copy( |
2663 | 0 | CONVERT_TO_SHORTPTR(best_pred->data), best_pred->stride, |
2664 | 0 | CONVERT_TO_SHORTPTR(pd->dst.buf), pd->dst.stride, NULL, 0, 0, 0, 0, |
2665 | 0 | bw, bh, xd->bd); |
2666 | 0 | else |
2667 | 0 | vpx_convolve_copy(best_pred->data, best_pred->stride, pd->dst.buf, |
2668 | 0 | pd->dst.stride, NULL, 0, 0, 0, 0, bw, bh); |
2669 | | #else |
2670 | | vpx_convolve_copy(best_pred->data, best_pred->stride, pd->dst.buf, |
2671 | | pd->dst.stride, NULL, 0, 0, 0, 0, bw, bh); |
2672 | | #endif // CONFIG_VP9_HIGHBITDEPTH |
2673 | 0 | } |
2674 | 0 | } |
2675 | |
|
2676 | | #if CONFIG_VP9_TEMPORAL_DENOISING |
2677 | | if (cpi->oxcf.noise_sensitivity > 0 && cpi->resize_pending == 0 && |
2678 | | denoise_svc_pickmode && cpi->denoiser.denoising_level > kDenLowLow && |
2679 | | cpi->denoiser.reset == 0) { |
2680 | | VP9_DENOISER_DECISION decision = COPY_BLOCK; |
2681 | | ctx->sb_skip_denoising = 0; |
2682 | | // TODO(marpan): There is an issue with denoising when the |
2683 | | // superblock partitioning scheme is based on the pickmode. |
2684 | | // Remove this condition when the issue is resolved. |
2685 | | if (x->sb_pickmode_part) ctx->sb_skip_denoising = 1; |
2686 | | vp9_pickmode_ctx_den_update(&ctx_den, zero_last_cost_orig, ref_frame_cost, |
2687 | | frame_mv, reuse_inter_pred, &best_pickmode); |
2688 | | vp9_denoiser_denoise(cpi, x, mi_row, mi_col, bsize, ctx, &decision, |
2689 | | gf_temporal_ref); |
2690 | | if (denoise_recheck_zeromv) |
2691 | | recheck_zeromv_after_denoising(cpi, mi, x, xd, decision, &ctx_den, |
2692 | | yv12_mb, &best_rdc, bsize, mi_row, mi_col); |
2693 | | best_pickmode.best_ref_frame = ctx_den.best_ref_frame; |
2694 | | } |
2695 | | #endif |
2696 | |
|
2697 | 0 | if (best_pickmode.best_ref_frame == ALTREF_FRAME || |
2698 | 0 | best_pickmode.best_second_ref_frame == ALTREF_FRAME) |
2699 | 0 | x->arf_frame_usage++; |
2700 | 0 | else if (best_pickmode.best_ref_frame != INTRA_FRAME) |
2701 | 0 | x->lastgolden_frame_usage++; |
2702 | |
|
2703 | 0 | if (cpi->sf.adaptive_rd_thresh) { |
2704 | 0 | THR_MODES best_mode_idx = |
2705 | 0 | mode_idx[best_pickmode.best_ref_frame][mode_offset(mi->mode)]; |
2706 | |
|
2707 | 0 | if (best_pickmode.best_ref_frame == INTRA_FRAME) { |
2708 | | // Only consider the modes that are included in the intra_mode_list. |
2709 | 0 | int intra_modes = sizeof(intra_mode_list) / sizeof(PREDICTION_MODE); |
2710 | 0 | int i; |
2711 | | |
2712 | | // TODO(yunqingwang): Check intra mode mask and only update freq_fact |
2713 | | // for those valid modes. |
2714 | 0 | for (i = 0; i < intra_modes; i++) { |
2715 | 0 | if (cpi->sf.adaptive_rd_thresh_row_mt) |
2716 | 0 | update_thresh_freq_fact_row_mt(cpi, tile_data, x->source_variance, |
2717 | 0 | thresh_freq_fact_idx, INTRA_FRAME, |
2718 | 0 | best_mode_idx, intra_mode_list[i]); |
2719 | 0 | else |
2720 | 0 | update_thresh_freq_fact(cpi, tile_data, x->source_variance, bsize, |
2721 | 0 | INTRA_FRAME, best_mode_idx, |
2722 | 0 | intra_mode_list[i]); |
2723 | 0 | } |
2724 | 0 | } else { |
2725 | 0 | for (ref_frame = LAST_FRAME; ref_frame <= GOLDEN_FRAME; ++ref_frame) { |
2726 | 0 | PREDICTION_MODE this_mode; |
2727 | 0 | if (best_pickmode.best_ref_frame != ref_frame) continue; |
2728 | 0 | for (this_mode = NEARESTMV; this_mode <= NEWMV; ++this_mode) { |
2729 | 0 | if (cpi->sf.adaptive_rd_thresh_row_mt) |
2730 | 0 | update_thresh_freq_fact_row_mt(cpi, tile_data, x->source_variance, |
2731 | 0 | thresh_freq_fact_idx, ref_frame, |
2732 | 0 | best_mode_idx, this_mode); |
2733 | 0 | else |
2734 | 0 | update_thresh_freq_fact(cpi, tile_data, x->source_variance, bsize, |
2735 | 0 | ref_frame, best_mode_idx, this_mode); |
2736 | 0 | } |
2737 | 0 | } |
2738 | 0 | } |
2739 | 0 | } |
2740 | |
|
2741 | 0 | *rd_cost = best_rdc; |
2742 | 0 | } |
2743 | | |
2744 | | void vp9_pick_inter_mode_sub8x8(VP9_COMP *cpi, MACROBLOCK *x, int mi_row, |
2745 | | int mi_col, RD_COST *rd_cost, BLOCK_SIZE bsize, |
2746 | 0 | PICK_MODE_CONTEXT *ctx) { |
2747 | 0 | VP9_COMMON *const cm = &cpi->common; |
2748 | 0 | SPEED_FEATURES *const sf = &cpi->sf; |
2749 | 0 | MACROBLOCKD *const xd = &x->e_mbd; |
2750 | 0 | MODE_INFO *const mi = xd->mi[0]; |
2751 | 0 | MB_MODE_INFO_EXT *const mbmi_ext = x->mbmi_ext; |
2752 | 0 | const struct segmentation *const seg = &cm->seg; |
2753 | 0 | MV_REFERENCE_FRAME ref_frame, second_ref_frame = NO_REF_FRAME; |
2754 | 0 | MV_REFERENCE_FRAME best_ref_frame = NO_REF_FRAME; |
2755 | 0 | unsigned char segment_id = mi->segment_id; |
2756 | 0 | struct buf_2d yv12_mb[4][MAX_MB_PLANE]; |
2757 | 0 | int64_t best_rd = INT64_MAX; |
2758 | 0 | b_mode_info bsi[MAX_REF_FRAMES][4]; |
2759 | 0 | int ref_frame_skip_mask = 0; |
2760 | 0 | const int num_4x4_blocks_wide = num_4x4_blocks_wide_lookup[bsize]; |
2761 | 0 | const int num_4x4_blocks_high = num_4x4_blocks_high_lookup[bsize]; |
2762 | 0 | int idx, idy; |
2763 | |
|
2764 | 0 | x->skip_encode = sf->skip_encode_frame && x->q_index < QIDX_SKIP_THRESH; |
2765 | 0 | ctx->pred_pixel_ready = 0; |
2766 | |
|
2767 | 0 | for (ref_frame = LAST_FRAME; ref_frame <= GOLDEN_FRAME; ++ref_frame) { |
2768 | 0 | const YV12_BUFFER_CONFIG *yv12 = get_ref_frame_buffer(cpi, ref_frame); |
2769 | 0 | int_mv dummy_mv[2]; |
2770 | 0 | x->pred_mv_sad[ref_frame] = INT_MAX; |
2771 | |
|
2772 | 0 | if ((cpi->ref_frame_flags & ref_frame_to_flag(ref_frame)) && |
2773 | 0 | (yv12 != NULL)) { |
2774 | 0 | int_mv *const candidates = mbmi_ext->ref_mvs[ref_frame]; |
2775 | 0 | const struct scale_factors *const ref_sf = |
2776 | 0 | &cm->frame_refs[ref_frame - 1].sf; |
2777 | 0 | vp9_setup_pred_block(xd, yv12_mb[ref_frame], yv12, mi_row, mi_col, ref_sf, |
2778 | 0 | ref_sf); |
2779 | 0 | vp9_find_mv_refs(cm, xd, xd->mi[0], ref_frame, candidates, mi_row, mi_col, |
2780 | 0 | mbmi_ext->mode_context); |
2781 | |
|
2782 | 0 | vp9_find_best_ref_mvs(xd, cm->allow_high_precision_mv, candidates, |
2783 | 0 | &dummy_mv[0], &dummy_mv[1]); |
2784 | 0 | } else { |
2785 | 0 | ref_frame_skip_mask |= (1 << ref_frame); |
2786 | 0 | } |
2787 | 0 | } |
2788 | |
|
2789 | 0 | mi->sb_type = bsize; |
2790 | 0 | mi->tx_size = TX_4X4; |
2791 | 0 | mi->uv_mode = DC_PRED; |
2792 | 0 | mi->ref_frame[0] = LAST_FRAME; |
2793 | 0 | mi->ref_frame[1] = NO_REF_FRAME; |
2794 | 0 | mi->interp_filter = |
2795 | 0 | cm->interp_filter == SWITCHABLE ? EIGHTTAP : cm->interp_filter; |
2796 | |
|
2797 | 0 | for (ref_frame = LAST_FRAME; ref_frame <= GOLDEN_FRAME; ++ref_frame) { |
2798 | 0 | int64_t this_rd = 0; |
2799 | 0 | int plane; |
2800 | |
|
2801 | 0 | if (ref_frame_skip_mask & (1 << ref_frame)) continue; |
2802 | | |
2803 | | #if CONFIG_BETTER_HW_COMPATIBILITY |
2804 | | if ((bsize == BLOCK_8X4 || bsize == BLOCK_4X8) && ref_frame > INTRA_FRAME && |
2805 | | vp9_is_scaled(&cm->frame_refs[ref_frame - 1].sf)) |
2806 | | continue; |
2807 | | #endif |
2808 | | |
2809 | | // TODO(jingning, agrange): Scaling reference frame not supported for |
2810 | | // sub8x8 blocks. Is this supported now? |
2811 | 0 | if (ref_frame > INTRA_FRAME && |
2812 | 0 | vp9_is_scaled(&cm->frame_refs[ref_frame - 1].sf)) |
2813 | 0 | continue; |
2814 | | |
2815 | | // If the segment reference frame feature is enabled.... |
2816 | | // then do nothing if the current ref frame is not allowed.. |
2817 | 0 | if (segfeature_active(seg, segment_id, SEG_LVL_REF_FRAME) && |
2818 | 0 | get_segdata(seg, segment_id, SEG_LVL_REF_FRAME) != (int)ref_frame) |
2819 | 0 | continue; |
2820 | | |
2821 | 0 | mi->ref_frame[0] = ref_frame; |
2822 | 0 | x->skip = 0; |
2823 | 0 | set_ref_ptrs(cm, xd, ref_frame, second_ref_frame); |
2824 | | |
2825 | | // Select prediction reference frames. |
2826 | 0 | for (plane = 0; plane < MAX_MB_PLANE; plane++) |
2827 | 0 | xd->plane[plane].pre[0] = yv12_mb[ref_frame][plane]; |
2828 | |
|
2829 | 0 | for (idy = 0; idy < 2; idy += num_4x4_blocks_high) { |
2830 | 0 | for (idx = 0; idx < 2; idx += num_4x4_blocks_wide) { |
2831 | 0 | int_mv b_mv[MB_MODE_COUNT]; |
2832 | 0 | int64_t b_best_rd = INT64_MAX; |
2833 | 0 | const int i = idy * 2 + idx; |
2834 | 0 | PREDICTION_MODE this_mode; |
2835 | 0 | RD_COST this_rdc; |
2836 | 0 | unsigned int var_y, sse_y; |
2837 | |
|
2838 | 0 | struct macroblock_plane *p = &x->plane[0]; |
2839 | 0 | struct macroblockd_plane *pd = &xd->plane[0]; |
2840 | |
|
2841 | 0 | const struct buf_2d orig_src = p->src; |
2842 | 0 | const struct buf_2d orig_dst = pd->dst; |
2843 | 0 | struct buf_2d orig_pre[2]; |
2844 | 0 | memcpy(orig_pre, xd->plane[0].pre, sizeof(orig_pre)); |
2845 | | |
2846 | | // set buffer pointers for sub8x8 motion search. |
2847 | 0 | p->src.buf = |
2848 | 0 | &p->src.buf[vp9_raster_block_offset(BLOCK_8X8, i, p->src.stride)]; |
2849 | 0 | pd->dst.buf = |
2850 | 0 | &pd->dst.buf[vp9_raster_block_offset(BLOCK_8X8, i, pd->dst.stride)]; |
2851 | 0 | pd->pre[0].buf = |
2852 | 0 | &pd->pre[0] |
2853 | 0 | .buf[vp9_raster_block_offset(BLOCK_8X8, i, pd->pre[0].stride)]; |
2854 | |
|
2855 | 0 | b_mv[ZEROMV].as_int = 0; |
2856 | 0 | b_mv[NEWMV].as_int = INVALID_MV; |
2857 | 0 | vp9_append_sub8x8_mvs_for_idx(cm, xd, i, 0, mi_row, mi_col, |
2858 | 0 | &b_mv[NEARESTMV], &b_mv[NEARMV], |
2859 | 0 | mbmi_ext->mode_context); |
2860 | |
|
2861 | 0 | for (this_mode = NEARESTMV; this_mode <= NEWMV; ++this_mode) { |
2862 | 0 | int b_rate = 0; |
2863 | 0 | xd->mi[0]->bmi[i].as_mv[0].as_int = b_mv[this_mode].as_int; |
2864 | |
|
2865 | 0 | if (this_mode == NEWMV) { |
2866 | 0 | const int step_param = cpi->sf.mv.fullpel_search_step_param; |
2867 | 0 | MV mvp_full; |
2868 | 0 | MV tmp_mv; |
2869 | 0 | int cost_list[5]; |
2870 | 0 | const MvLimits tmp_mv_limits = x->mv_limits; |
2871 | 0 | uint32_t dummy_dist; |
2872 | |
|
2873 | 0 | if (i == 0) { |
2874 | 0 | mvp_full.row = b_mv[NEARESTMV].as_mv.row >> 3; |
2875 | 0 | mvp_full.col = b_mv[NEARESTMV].as_mv.col >> 3; |
2876 | 0 | } else { |
2877 | 0 | mvp_full.row = xd->mi[0]->bmi[0].as_mv[0].as_mv.row >> 3; |
2878 | 0 | mvp_full.col = xd->mi[0]->bmi[0].as_mv[0].as_mv.col >> 3; |
2879 | 0 | } |
2880 | |
|
2881 | 0 | vp9_set_mv_search_range(&x->mv_limits, |
2882 | 0 | &mbmi_ext->ref_mvs[ref_frame][0].as_mv); |
2883 | |
|
2884 | 0 | vp9_full_pixel_search( |
2885 | 0 | cpi, x, bsize, &mvp_full, step_param, cpi->sf.mv.search_method, |
2886 | 0 | x->sadperbit4, cond_cost_list(cpi, cost_list), |
2887 | 0 | &mbmi_ext->ref_mvs[ref_frame][0].as_mv, &tmp_mv, INT_MAX, 0); |
2888 | |
|
2889 | 0 | x->mv_limits = tmp_mv_limits; |
2890 | | |
2891 | | // calculate the bit cost on motion vector |
2892 | 0 | mvp_full.row = tmp_mv.row * 8; |
2893 | 0 | mvp_full.col = tmp_mv.col * 8; |
2894 | |
|
2895 | 0 | b_rate += vp9_mv_bit_cost( |
2896 | 0 | &mvp_full, &mbmi_ext->ref_mvs[ref_frame][0].as_mv, |
2897 | 0 | x->nmvjointcost, x->mvcost, MV_COST_WEIGHT); |
2898 | |
|
2899 | 0 | b_rate += cpi->inter_mode_cost[x->mbmi_ext->mode_context[ref_frame]] |
2900 | 0 | [INTER_OFFSET(NEWMV)]; |
2901 | 0 | if (RDCOST(x->rdmult, x->rddiv, b_rate, 0) > b_best_rd) continue; |
2902 | | |
2903 | 0 | cpi->find_fractional_mv_step( |
2904 | 0 | x, &tmp_mv, &mbmi_ext->ref_mvs[ref_frame][0].as_mv, |
2905 | 0 | cpi->common.allow_high_precision_mv, x->errorperbit, |
2906 | 0 | &cpi->fn_ptr[bsize], cpi->sf.mv.subpel_force_stop, |
2907 | 0 | cpi->sf.mv.subpel_search_level, cond_cost_list(cpi, cost_list), |
2908 | 0 | x->nmvjointcost, x->mvcost, &dummy_dist, |
2909 | 0 | &x->pred_sse[ref_frame], NULL, 0, 0, |
2910 | 0 | cpi->sf.use_accurate_subpel_search); |
2911 | |
|
2912 | 0 | xd->mi[0]->bmi[i].as_mv[0].as_mv = tmp_mv; |
2913 | 0 | } else { |
2914 | 0 | b_rate += cpi->inter_mode_cost[x->mbmi_ext->mode_context[ref_frame]] |
2915 | 0 | [INTER_OFFSET(this_mode)]; |
2916 | 0 | } |
2917 | | |
2918 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
2919 | 0 | if (xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH) { |
2920 | 0 | vp9_highbd_build_inter_predictor( |
2921 | 0 | CONVERT_TO_SHORTPTR(pd->pre[0].buf), pd->pre[0].stride, |
2922 | 0 | CONVERT_TO_SHORTPTR(pd->dst.buf), pd->dst.stride, |
2923 | 0 | &xd->mi[0]->bmi[i].as_mv[0].as_mv, &xd->block_refs[0]->sf, |
2924 | 0 | 4 * num_4x4_blocks_wide, 4 * num_4x4_blocks_high, 0, |
2925 | 0 | vp9_filter_kernels[mi->interp_filter], MV_PRECISION_Q3, |
2926 | 0 | mi_col * MI_SIZE + 4 * (i & 0x01), |
2927 | 0 | mi_row * MI_SIZE + 4 * (i >> 1), xd->bd); |
2928 | 0 | } else { |
2929 | 0 | #endif |
2930 | 0 | vp9_build_inter_predictor( |
2931 | 0 | pd->pre[0].buf, pd->pre[0].stride, pd->dst.buf, pd->dst.stride, |
2932 | 0 | &xd->mi[0]->bmi[i].as_mv[0].as_mv, &xd->block_refs[0]->sf, |
2933 | 0 | 4 * num_4x4_blocks_wide, 4 * num_4x4_blocks_high, 0, |
2934 | 0 | vp9_filter_kernels[mi->interp_filter], MV_PRECISION_Q3, |
2935 | 0 | mi_col * MI_SIZE + 4 * (i & 0x01), |
2936 | 0 | mi_row * MI_SIZE + 4 * (i >> 1)); |
2937 | |
|
2938 | 0 | #if CONFIG_VP9_HIGHBITDEPTH |
2939 | 0 | } |
2940 | 0 | #endif |
2941 | |
|
2942 | 0 | model_rd_for_sb_y(cpi, bsize, x, xd, &this_rdc.rate, &this_rdc.dist, |
2943 | 0 | &var_y, &sse_y, 0); |
2944 | |
|
2945 | 0 | this_rdc.rate += b_rate; |
2946 | 0 | this_rdc.rdcost = |
2947 | 0 | RDCOST(x->rdmult, x->rddiv, this_rdc.rate, this_rdc.dist); |
2948 | 0 | if (this_rdc.rdcost < b_best_rd) { |
2949 | 0 | b_best_rd = this_rdc.rdcost; |
2950 | 0 | bsi[ref_frame][i].as_mode = this_mode; |
2951 | 0 | bsi[ref_frame][i].as_mv[0].as_mv = xd->mi[0]->bmi[i].as_mv[0].as_mv; |
2952 | 0 | } |
2953 | 0 | } // mode search |
2954 | | |
2955 | | // restore source and prediction buffer pointers. |
2956 | 0 | p->src = orig_src; |
2957 | 0 | pd->pre[0] = orig_pre[0]; |
2958 | 0 | pd->dst = orig_dst; |
2959 | 0 | this_rd += b_best_rd; |
2960 | |
|
2961 | 0 | xd->mi[0]->bmi[i] = bsi[ref_frame][i]; |
2962 | 0 | if (num_4x4_blocks_wide > 1) xd->mi[0]->bmi[i + 1] = xd->mi[0]->bmi[i]; |
2963 | 0 | if (num_4x4_blocks_high > 1) xd->mi[0]->bmi[i + 2] = xd->mi[0]->bmi[i]; |
2964 | 0 | } |
2965 | 0 | } // loop through sub8x8 blocks |
2966 | |
|
2967 | 0 | if (this_rd < best_rd) { |
2968 | 0 | best_rd = this_rd; |
2969 | 0 | best_ref_frame = ref_frame; |
2970 | 0 | } |
2971 | 0 | } // reference frames |
2972 | |
|
2973 | 0 | mi->tx_size = TX_4X4; |
2974 | 0 | mi->ref_frame[0] = best_ref_frame; |
2975 | 0 | for (idy = 0; idy < 2; idy += num_4x4_blocks_high) { |
2976 | 0 | for (idx = 0; idx < 2; idx += num_4x4_blocks_wide) { |
2977 | 0 | const int block = idy * 2 + idx; |
2978 | 0 | xd->mi[0]->bmi[block] = bsi[best_ref_frame][block]; |
2979 | 0 | if (num_4x4_blocks_wide > 1) |
2980 | 0 | xd->mi[0]->bmi[block + 1] = bsi[best_ref_frame][block]; |
2981 | 0 | if (num_4x4_blocks_high > 1) |
2982 | 0 | xd->mi[0]->bmi[block + 2] = bsi[best_ref_frame][block]; |
2983 | 0 | } |
2984 | 0 | } |
2985 | 0 | mi->mode = xd->mi[0]->bmi[3].as_mode; |
2986 | 0 | ctx->mic = *(xd->mi[0]); |
2987 | 0 | ctx->mbmi_ext = *x->mbmi_ext; |
2988 | 0 | ctx->skip_txfm[0] = SKIP_TXFM_NONE; |
2989 | 0 | ctx->skip = 0; |
2990 | | // Dummy assignment for speed -5. No effect in speed -6. |
2991 | 0 | rd_cost->rdcost = best_rd; |
2992 | 0 | } |