1 /*
2 * Copyright (c) 2010 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 #ifndef VPX_VP9_ENCODER_VP9_ENCODER_H_
12 #define VPX_VP9_ENCODER_VP9_ENCODER_H_
13
14 #include <stdio.h>
15
16 #include "./vpx_config.h"
17 #include "vpx/internal/vpx_codec_internal.h"
18 #include "vpx/vpx_ext_ratectrl.h"
19 #include "vpx/vp8cx.h"
20 #if CONFIG_INTERNAL_STATS
21 #include "vpx_dsp/ssim.h"
22 #endif
23 #include "vpx_dsp/variance.h"
24 #include "vpx_dsp/psnr.h"
25 #include "vpx_ports/system_state.h"
26 #include "vpx_util/vpx_thread.h"
27 #include "vpx_util/vpx_timestamp.h"
28
29 #include "vp9/common/vp9_alloccommon.h"
30 #include "vp9/common/vp9_ppflags.h"
31 #include "vp9/common/vp9_entropymode.h"
32 #include "vp9/common/vp9_thread_common.h"
33 #include "vp9/common/vp9_onyxc_int.h"
34
35 #if !CONFIG_REALTIME_ONLY
36 #include "vp9/encoder/vp9_alt_ref_aq.h"
37 #endif
38 #include "vp9/encoder/vp9_aq_cyclicrefresh.h"
39 #include "vp9/encoder/vp9_context_tree.h"
40 #include "vp9/encoder/vp9_encodemb.h"
41 #include "vp9/encoder/vp9_ethread.h"
42 #include "vp9/encoder/vp9_ext_ratectrl.h"
43 #include "vp9/encoder/vp9_firstpass.h"
44 #include "vp9/encoder/vp9_job_queue.h"
45 #include "vp9/encoder/vp9_lookahead.h"
46 #include "vp9/encoder/vp9_mbgraph.h"
47 #include "vp9/encoder/vp9_mcomp.h"
48 #include "vp9/encoder/vp9_noise_estimate.h"
49 #include "vp9/encoder/vp9_quantize.h"
50 #include "vp9/encoder/vp9_ratectrl.h"
51 #include "vp9/encoder/vp9_rd.h"
52 #include "vp9/encoder/vp9_speed_features.h"
53 #include "vp9/encoder/vp9_svc_layercontext.h"
54 #include "vp9/encoder/vp9_tokenize.h"
55
56 #if CONFIG_VP9_TEMPORAL_DENOISING
57 #include "vp9/encoder/vp9_denoiser.h"
58 #endif
59
60 #ifdef __cplusplus
61 extern "C" {
62 #endif
63
64 // vp9 uses 10,000,000 ticks/second as time stamp
65 #define TICKS_PER_SEC 10000000
66
67 typedef struct {
68 int nmvjointcost[MV_JOINTS];
69 int nmvcosts[2][MV_VALS];
70 int nmvcosts_hp[2][MV_VALS];
71
72 vpx_prob segment_pred_probs[PREDICTION_PROBS];
73
74 unsigned char *last_frame_seg_map_copy;
75
76 // 0 = Intra, Last, GF, ARF
77 signed char last_ref_lf_deltas[MAX_REF_LF_DELTAS];
78 // 0 = ZERO_MV, MV
79 signed char last_mode_lf_deltas[MAX_MODE_LF_DELTAS];
80
81 FRAME_CONTEXT fc;
82 } CODING_CONTEXT;
83
84 typedef enum {
85 // encode_breakout is disabled.
86 ENCODE_BREAKOUT_DISABLED = 0,
87 // encode_breakout is enabled.
88 ENCODE_BREAKOUT_ENABLED = 1,
89 // encode_breakout is enabled with small max_thresh limit.
90 ENCODE_BREAKOUT_LIMITED = 2
91 } ENCODE_BREAKOUT_TYPE;
92
93 typedef enum {
94 NORMAL = 0,
95 FOURFIVE = 1,
96 THREEFIVE = 2,
97 ONETWO = 3
98 } VPX_SCALING;
99
100 typedef enum {
101 // Good Quality Fast Encoding. The encoder balances quality with the amount of
102 // time it takes to encode the output. Speed setting controls how fast.
103 GOOD,
104
105 // The encoder places priority on the quality of the output over encoding
106 // speed. The output is compressed at the highest possible quality. This
107 // option takes the longest amount of time to encode. Speed setting ignored.
108 BEST,
109
110 // Realtime/Live Encoding. This mode is optimized for realtime encoding (for
111 // example, capturing a television signal or feed from a live camera). Speed
112 // setting controls how fast.
113 REALTIME
114 } MODE;
115
116 typedef enum {
117 FRAMEFLAGS_KEY = 1 << 0,
118 FRAMEFLAGS_GOLDEN = 1 << 1,
119 FRAMEFLAGS_ALTREF = 1 << 2,
120 } FRAMETYPE_FLAGS;
121
122 typedef enum {
123 NO_AQ = 0,
124 VARIANCE_AQ = 1,
125 COMPLEXITY_AQ = 2,
126 CYCLIC_REFRESH_AQ = 3,
127 EQUATOR360_AQ = 4,
128 PERCEPTUAL_AQ = 5,
129 PSNR_AQ = 6,
130 // AQ based on lookahead temporal
131 // variance (only valid for altref frames)
132 LOOKAHEAD_AQ = 7,
133 AQ_MODE_COUNT // This should always be the last member of the enum
134 } AQ_MODE;
135
136 typedef enum {
137 RESIZE_NONE = 0, // No frame resizing allowed (except for SVC).
138 RESIZE_FIXED = 1, // All frames are coded at the specified dimension.
139 RESIZE_DYNAMIC = 2 // Coded size of each frame is determined by the codec.
140 } RESIZE_TYPE;
141
142 typedef enum {
143 kInvalid = 0,
144 kLowSadLowSumdiff = 1,
145 kLowSadHighSumdiff = 2,
146 kHighSadLowSumdiff = 3,
147 kHighSadHighSumdiff = 4,
148 kLowVarHighSumdiff = 5,
149 kVeryHighSad = 6,
150 } CONTENT_STATE_SB;
151
152 typedef enum {
153 LOOPFILTER_ALL = 0,
154 LOOPFILTER_REFERENCE = 1, // Disable loopfilter on non reference frames.
155 NO_LOOPFILTER = 2, // Disable loopfilter on all frames.
156 } LOOPFILTER_CONTROL;
157
158 typedef struct VP9EncoderConfig {
159 BITSTREAM_PROFILE profile;
160 vpx_bit_depth_t bit_depth; // Codec bit-depth.
161 int width; // width of data passed to the compressor
162 int height; // height of data passed to the compressor
163 unsigned int input_bit_depth; // Input bit depth.
164 double init_framerate; // set to passed in framerate
165 vpx_rational_t g_timebase; // equivalent to g_timebase in vpx_codec_enc_cfg_t
166 vpx_rational64_t g_timebase_in_ts; // g_timebase * TICKS_PER_SEC
167
168 int64_t target_bandwidth; // bandwidth to be used in bits per second
169
170 int noise_sensitivity; // pre processing blur: recommendation 0
171 int sharpness; // sharpening output: recommendation 0:
172 int speed;
173 // maximum allowed bitrate for any intra frame in % of bitrate target.
174 unsigned int rc_max_intra_bitrate_pct;
175 // maximum allowed bitrate for any inter frame in % of bitrate target.
176 unsigned int rc_max_inter_bitrate_pct;
177 // percent of rate boost for golden frame in CBR mode.
178 unsigned int gf_cbr_boost_pct;
179
180 MODE mode;
181 int pass;
182
183 // Key Framing Operations
184 int auto_key; // autodetect cut scenes and set the keyframes
185 int key_freq; // maximum distance to key frame.
186
187 int lag_in_frames; // how many frames lag before we start encoding
188
189 // ----------------------------------------------------------------
190 // DATARATE CONTROL OPTIONS
191
192 // vbr, cbr, constrained quality or constant quality
193 enum vpx_rc_mode rc_mode;
194
195 // buffer targeting aggressiveness
196 int under_shoot_pct;
197 int over_shoot_pct;
198
199 // buffering parameters
200 int64_t starting_buffer_level_ms;
201 int64_t optimal_buffer_level_ms;
202 int64_t maximum_buffer_size_ms;
203
204 // Frame drop threshold.
205 int drop_frames_water_mark;
206
207 // controlling quality
208 int fixed_q;
209 int worst_allowed_q;
210 int best_allowed_q;
211 int cq_level;
212 AQ_MODE aq_mode; // Adaptive Quantization mode
213
214 // Special handling of Adaptive Quantization for AltRef frames
215 int alt_ref_aq;
216
217 // Internal frame size scaling.
218 RESIZE_TYPE resize_mode;
219 int scaled_frame_width;
220 int scaled_frame_height;
221
222 // Enable feature to reduce the frame quantization every x frames.
223 int frame_periodic_boost;
224
225 // two pass datarate control
226 int two_pass_vbrbias; // two pass datarate control tweaks
227 int two_pass_vbrmin_section;
228 int two_pass_vbrmax_section;
229 int vbr_corpus_complexity; // 0 indicates corpus vbr disabled
230 // END DATARATE CONTROL OPTIONS
231 // ----------------------------------------------------------------
232
233 // Spatial and temporal scalability.
234 int ss_number_layers; // Number of spatial layers.
235 int ts_number_layers; // Number of temporal layers.
236 // Bitrate allocation for spatial layers.
237 int layer_target_bitrate[VPX_MAX_LAYERS];
238 int ss_target_bitrate[VPX_SS_MAX_LAYERS];
239 int ss_enable_auto_arf[VPX_SS_MAX_LAYERS];
240 // Bitrate allocation (CBR mode) and framerate factor, for temporal layers.
241 int ts_rate_decimator[VPX_TS_MAX_LAYERS];
242
243 int enable_auto_arf;
244
245 int encode_breakout; // early breakout : for video conf recommend 800
246
247 /* Bitfield defining the error resiliency features to enable.
248 * Can provide decodable frames after losses in previous
249 * frames and decodable partitions after losses in the same frame.
250 */
251 unsigned int error_resilient_mode;
252
253 /* Bitfield defining the parallel decoding mode where the
254 * decoding in successive frames may be conducted in parallel
255 * just by decoding the frame headers.
256 */
257 unsigned int frame_parallel_decoding_mode;
258
259 int arnr_max_frames;
260 int arnr_strength;
261
262 int min_gf_interval;
263 int max_gf_interval;
264
265 int tile_columns;
266 int tile_rows;
267
268 int enable_tpl_model;
269
270 int max_threads;
271
272 unsigned int target_level;
273
274 vpx_fixed_buf_t two_pass_stats_in;
275
276 vp8e_tuning tuning;
277 vp9e_tune_content content;
278 #if CONFIG_VP9_HIGHBITDEPTH
279 int use_highbitdepth;
280 #endif
281 vpx_color_space_t color_space;
282 vpx_color_range_t color_range;
283 int render_width;
284 int render_height;
285 VP9E_TEMPORAL_LAYERING_MODE temporal_layering_mode;
286
287 int row_mt;
288 unsigned int motion_vector_unit_test;
289 int delta_q_uv;
290 int use_simple_encode_api; // Use SimpleEncode APIs or not
291 } VP9EncoderConfig;
292
is_lossless_requested(const VP9EncoderConfig * cfg)293 static INLINE int is_lossless_requested(const VP9EncoderConfig *cfg) {
294 return cfg->best_allowed_q == 0 && cfg->worst_allowed_q == 0;
295 }
296
297 typedef struct TplDepStats {
298 int64_t intra_cost;
299 int64_t inter_cost;
300 int64_t mc_flow;
301 int64_t mc_dep_cost;
302 int64_t mc_ref_cost;
303
304 int ref_frame_index;
305 int_mv mv;
306 } TplDepStats;
307
308 #if CONFIG_NON_GREEDY_MV
309
310 #define ZERO_MV_MODE 0
311 #define NEW_MV_MODE 1
312 #define NEAREST_MV_MODE 2
313 #define NEAR_MV_MODE 3
314 #define MAX_MV_MODE 4
315 #endif
316
317 typedef struct TplDepFrame {
318 uint8_t is_valid;
319 TplDepStats *tpl_stats_ptr;
320 int stride;
321 int width;
322 int height;
323 int mi_rows;
324 int mi_cols;
325 int base_qindex;
326 #if CONFIG_NON_GREEDY_MV
327 int lambda;
328 int *mv_mode_arr[3];
329 double *rd_diff_arr[3];
330 #endif
331 } TplDepFrame;
332
333 #define TPL_DEP_COST_SCALE_LOG2 4
334
335 // TODO(jingning) All spatially adaptive variables should go to TileDataEnc.
336 typedef struct TileDataEnc {
337 TileInfo tile_info;
338 int thresh_freq_fact[BLOCK_SIZES][MAX_MODES];
339 #if CONFIG_CONSISTENT_RECODE || CONFIG_RATE_CTRL
340 int thresh_freq_fact_prev[BLOCK_SIZES][MAX_MODES];
341 #endif // CONFIG_CONSISTENT_RECODE || CONFIG_RATE_CTRL
342 int8_t mode_map[BLOCK_SIZES][MAX_MODES];
343 FIRSTPASS_DATA fp_data;
344 VP9RowMTSync row_mt_sync;
345
346 // Used for adaptive_rd_thresh with row multithreading
347 int *row_base_thresh_freq_fact;
348 } TileDataEnc;
349
350 typedef struct RowMTInfo {
351 JobQueueHandle job_queue_hdl;
352 #if CONFIG_MULTITHREAD
353 pthread_mutex_t job_mutex;
354 #endif
355 } RowMTInfo;
356
357 typedef struct {
358 TOKENEXTRA *start;
359 TOKENEXTRA *stop;
360 unsigned int count;
361 } TOKENLIST;
362
363 typedef struct MultiThreadHandle {
364 int allocated_tile_rows;
365 int allocated_tile_cols;
366 int allocated_vert_unit_rows;
367
368 // Frame level params
369 int num_tile_vert_sbs[MAX_NUM_TILE_ROWS];
370
371 // Job Queue structure and handles
372 JobQueue *job_queue;
373
374 int jobs_per_tile_col;
375
376 RowMTInfo row_mt_info[MAX_NUM_TILE_COLS];
377 int thread_id_to_tile_id[MAX_NUM_THREADS]; // Mapping of threads to tiles
378 } MultiThreadHandle;
379
380 typedef struct RD_COUNTS {
381 vp9_coeff_count coef_counts[TX_SIZES][PLANE_TYPES];
382 int64_t comp_pred_diff[REFERENCE_MODES];
383 int64_t filter_diff[SWITCHABLE_FILTER_CONTEXTS];
384 } RD_COUNTS;
385
386 typedef struct ThreadData {
387 MACROBLOCK mb;
388 RD_COUNTS rd_counts;
389 FRAME_COUNTS *counts;
390
391 PICK_MODE_CONTEXT *leaf_tree;
392 PC_TREE *pc_tree;
393 PC_TREE *pc_root;
394 } ThreadData;
395
396 struct EncWorkerData;
397
398 typedef struct ActiveMap {
399 int enabled;
400 int update;
401 unsigned char *map;
402 } ActiveMap;
403
404 typedef enum { Y, U, V, ALL } STAT_TYPE;
405
406 typedef struct IMAGE_STAT {
407 double stat[ALL + 1];
408 double worst;
409 } ImageStat;
410
411 // Kf noise filtering currently disabled by default in build.
412 // #define ENABLE_KF_DENOISE 1
413
414 #define CPB_WINDOW_SIZE 4
415 #define FRAME_WINDOW_SIZE 128
416 #define SAMPLE_RATE_GRACE_P 0.015
417 #define VP9_LEVELS 14
418
419 typedef enum {
420 LEVEL_UNKNOWN = 0,
421 LEVEL_AUTO = 1,
422 LEVEL_1 = 10,
423 LEVEL_1_1 = 11,
424 LEVEL_2 = 20,
425 LEVEL_2_1 = 21,
426 LEVEL_3 = 30,
427 LEVEL_3_1 = 31,
428 LEVEL_4 = 40,
429 LEVEL_4_1 = 41,
430 LEVEL_5 = 50,
431 LEVEL_5_1 = 51,
432 LEVEL_5_2 = 52,
433 LEVEL_6 = 60,
434 LEVEL_6_1 = 61,
435 LEVEL_6_2 = 62,
436 LEVEL_MAX = 255
437 } VP9_LEVEL;
438
439 typedef struct {
440 VP9_LEVEL level;
441 uint64_t max_luma_sample_rate;
442 uint32_t max_luma_picture_size;
443 uint32_t max_luma_picture_breadth;
444 double average_bitrate; // in kilobits per second
445 double max_cpb_size; // in kilobits
446 double compression_ratio;
447 uint8_t max_col_tiles;
448 uint32_t min_altref_distance;
449 uint8_t max_ref_frame_buffers;
450 } Vp9LevelSpec;
451
452 extern const Vp9LevelSpec vp9_level_defs[VP9_LEVELS];
453
454 typedef struct {
455 int64_t ts; // timestamp
456 uint32_t luma_samples;
457 uint32_t size; // in bytes
458 } FrameRecord;
459
460 typedef struct {
461 FrameRecord buf[FRAME_WINDOW_SIZE];
462 uint8_t start;
463 uint8_t len;
464 } FrameWindowBuffer;
465
466 typedef struct {
467 uint8_t seen_first_altref;
468 uint32_t frames_since_last_altref;
469 uint64_t total_compressed_size;
470 uint64_t total_uncompressed_size;
471 double time_encoded; // in seconds
472 FrameWindowBuffer frame_window_buffer;
473 int ref_refresh_map;
474 } Vp9LevelStats;
475
476 typedef struct {
477 Vp9LevelStats level_stats;
478 Vp9LevelSpec level_spec;
479 } Vp9LevelInfo;
480
481 typedef enum {
482 BITRATE_TOO_LARGE = 0,
483 LUMA_PIC_SIZE_TOO_LARGE,
484 LUMA_PIC_BREADTH_TOO_LARGE,
485 LUMA_SAMPLE_RATE_TOO_LARGE,
486 CPB_TOO_LARGE,
487 COMPRESSION_RATIO_TOO_SMALL,
488 TOO_MANY_COLUMN_TILE,
489 ALTREF_DIST_TOO_SMALL,
490 TOO_MANY_REF_BUFFER,
491 TARGET_LEVEL_FAIL_IDS
492 } TARGET_LEVEL_FAIL_ID;
493
494 typedef struct {
495 int8_t level_index;
496 uint8_t fail_flag;
497 int max_frame_size; // in bits
498 double max_cpb_size; // in bits
499 } LevelConstraint;
500
501 typedef struct ARNRFilterData {
502 YV12_BUFFER_CONFIG *frames[MAX_LAG_BUFFERS];
503 int strength;
504 int frame_count;
505 int alt_ref_index;
506 struct scale_factors sf;
507 } ARNRFilterData;
508
509 typedef struct EncFrameBuf {
510 int mem_valid;
511 int released;
512 YV12_BUFFER_CONFIG frame;
513 } EncFrameBuf;
514
515 // Maximum operating frame buffer size needed for a GOP using ARF reference.
516 #define MAX_ARF_GOP_SIZE (2 * MAX_LAG_BUFFERS)
517 #define MAX_KMEANS_GROUPS 8
518
519 typedef struct KMEANS_DATA {
520 double value;
521 int pos;
522 int group_idx;
523 } KMEANS_DATA;
524
525 #if CONFIG_RATE_CTRL
526 typedef struct PARTITION_INFO {
527 int row; // row pixel offset of current 4x4 block
528 int column; // column pixel offset of current 4x4 block
529 int row_start; // row pixel offset of the start of the prediction block
530 int column_start; // column pixel offset of the start of the prediction block
531 int width; // prediction block width
532 int height; // prediction block height
533 } PARTITION_INFO;
534
535 typedef struct MOTION_VECTOR_INFO {
536 MV_REFERENCE_FRAME ref_frame[2];
537 int_mv mv[2];
538 } MOTION_VECTOR_INFO;
539
540 typedef struct GOP_COMMAND {
541 int use; // use this command to set gop or not. If not, use vp9's decision.
542 int show_frame_count;
543 int use_alt_ref;
544 } GOP_COMMAND;
545
gop_command_on(GOP_COMMAND * gop_command,int show_frame_count,int use_alt_ref)546 static INLINE void gop_command_on(GOP_COMMAND *gop_command,
547 int show_frame_count, int use_alt_ref) {
548 gop_command->use = 1;
549 gop_command->show_frame_count = show_frame_count;
550 gop_command->use_alt_ref = use_alt_ref;
551 }
552
gop_command_off(GOP_COMMAND * gop_command)553 static INLINE void gop_command_off(GOP_COMMAND *gop_command) {
554 gop_command->use = 0;
555 gop_command->show_frame_count = 0;
556 gop_command->use_alt_ref = 0;
557 }
558
gop_command_coding_frame_count(const GOP_COMMAND * gop_command)559 static INLINE int gop_command_coding_frame_count(
560 const GOP_COMMAND *gop_command) {
561 if (gop_command->use == 0) {
562 assert(0);
563 return -1;
564 }
565 return gop_command->show_frame_count + gop_command->use_alt_ref;
566 }
567
568 // TODO(angiebird): See if we can merge this one with FrameType in
569 // simple_encode.h
570 typedef enum ENCODE_FRAME_TYPE {
571 ENCODE_FRAME_TYPE_KEY,
572 ENCODE_FRAME_TYPE_INTER,
573 ENCODE_FRAME_TYPE_ALTREF,
574 ENCODE_FRAME_TYPE_OVERLAY,
575 ENCODE_FRAME_TYPE_GOLDEN,
576 ENCODE_FRAME_TYPES,
577 } ENCODE_FRAME_TYPE;
578
579 // TODO(angiebird): Merge this function with get_frame_type_from_update_type()
580 static INLINE ENCODE_FRAME_TYPE
get_encode_frame_type(FRAME_UPDATE_TYPE update_type)581 get_encode_frame_type(FRAME_UPDATE_TYPE update_type) {
582 switch (update_type) {
583 case KF_UPDATE: return ENCODE_FRAME_TYPE_KEY;
584 case ARF_UPDATE: return ENCODE_FRAME_TYPE_ALTREF;
585 case GF_UPDATE: return ENCODE_FRAME_TYPE_GOLDEN;
586 case OVERLAY_UPDATE: return ENCODE_FRAME_TYPE_OVERLAY;
587 case LF_UPDATE: return ENCODE_FRAME_TYPE_INTER;
588 default:
589 fprintf(stderr, "Unsupported update_type %d\n", update_type);
590 abort();
591 return ENCODE_FRAME_TYPE_INTER;
592 }
593 }
594
595 typedef struct RATE_QSTEP_MODEL {
596 // The rq model predicts the bit usage as follows.
597 // rate = bias - ratio * log2(q_step)
598 int ready;
599 double bias;
600 double ratio;
601 } RATE_QSTEP_MODEL;
602
603 typedef struct ENCODE_COMMAND {
604 int use_external_quantize_index;
605 int external_quantize_index;
606
607 int use_external_target_frame_bits;
608 int target_frame_bits;
609 double target_frame_bits_error_percent;
610
611 GOP_COMMAND gop_command;
612 } ENCODE_COMMAND;
613
encode_command_set_gop_command(ENCODE_COMMAND * encode_command,GOP_COMMAND gop_command)614 static INLINE void encode_command_set_gop_command(
615 ENCODE_COMMAND *encode_command, GOP_COMMAND gop_command) {
616 encode_command->gop_command = gop_command;
617 }
618
encode_command_set_external_quantize_index(ENCODE_COMMAND * encode_command,int quantize_index)619 static INLINE void encode_command_set_external_quantize_index(
620 ENCODE_COMMAND *encode_command, int quantize_index) {
621 encode_command->use_external_quantize_index = 1;
622 encode_command->external_quantize_index = quantize_index;
623 }
624
encode_command_reset_external_quantize_index(ENCODE_COMMAND * encode_command)625 static INLINE void encode_command_reset_external_quantize_index(
626 ENCODE_COMMAND *encode_command) {
627 encode_command->use_external_quantize_index = 0;
628 encode_command->external_quantize_index = -1;
629 }
630
encode_command_set_target_frame_bits(ENCODE_COMMAND * encode_command,int target_frame_bits,double target_frame_bits_error_percent)631 static INLINE void encode_command_set_target_frame_bits(
632 ENCODE_COMMAND *encode_command, int target_frame_bits,
633 double target_frame_bits_error_percent) {
634 encode_command->use_external_target_frame_bits = 1;
635 encode_command->target_frame_bits = target_frame_bits;
636 encode_command->target_frame_bits_error_percent =
637 target_frame_bits_error_percent;
638 }
639
encode_command_reset_target_frame_bits(ENCODE_COMMAND * encode_command)640 static INLINE void encode_command_reset_target_frame_bits(
641 ENCODE_COMMAND *encode_command) {
642 encode_command->use_external_target_frame_bits = 0;
643 encode_command->target_frame_bits = -1;
644 encode_command->target_frame_bits_error_percent = 0;
645 }
646
encode_command_init(ENCODE_COMMAND * encode_command)647 static INLINE void encode_command_init(ENCODE_COMMAND *encode_command) {
648 vp9_zero(*encode_command);
649 encode_command_reset_external_quantize_index(encode_command);
650 encode_command_reset_target_frame_bits(encode_command);
651 gop_command_off(&encode_command->gop_command);
652 }
653
654 // Returns number of units in size of 4, if not multiple not a multiple of 4,
655 // round it up. For example, size is 7, return 2.
get_num_unit_4x4(int size)656 static INLINE int get_num_unit_4x4(int size) { return (size + 3) >> 2; }
657 // Returns number of units in size of 16, if not multiple not a multiple of 16,
658 // round it up. For example, size is 17, return 2.
get_num_unit_16x16(int size)659 static INLINE int get_num_unit_16x16(int size) { return (size + 15) >> 4; }
660 #endif // CONFIG_RATE_CTRL
661
662 typedef struct VP9_COMP {
663 FRAME_INFO frame_info;
664 QUANTS quants;
665 ThreadData td;
666 MB_MODE_INFO_EXT *mbmi_ext_base;
667 DECLARE_ALIGNED(16, int16_t, y_dequant[QINDEX_RANGE][8]);
668 DECLARE_ALIGNED(16, int16_t, uv_dequant[QINDEX_RANGE][8]);
669 VP9_COMMON common;
670 VP9EncoderConfig oxcf;
671 struct lookahead_ctx *lookahead;
672 struct lookahead_entry *alt_ref_source;
673
674 YV12_BUFFER_CONFIG *Source;
675 YV12_BUFFER_CONFIG *Last_Source; // NULL for first frame and alt_ref frames
676 YV12_BUFFER_CONFIG *un_scaled_source;
677 YV12_BUFFER_CONFIG scaled_source;
678 YV12_BUFFER_CONFIG *unscaled_last_source;
679 YV12_BUFFER_CONFIG scaled_last_source;
680 #ifdef ENABLE_KF_DENOISE
681 YV12_BUFFER_CONFIG raw_unscaled_source;
682 YV12_BUFFER_CONFIG raw_scaled_source;
683 #endif
684 YV12_BUFFER_CONFIG *raw_source_frame;
685
686 BLOCK_SIZE tpl_bsize;
687 TplDepFrame tpl_stats[MAX_ARF_GOP_SIZE];
688 YV12_BUFFER_CONFIG *tpl_recon_frames[REF_FRAMES];
689 EncFrameBuf enc_frame_buf[REF_FRAMES];
690 #if CONFIG_MULTITHREAD
691 pthread_mutex_t kmeans_mutex;
692 #endif
693 int kmeans_data_arr_alloc;
694 KMEANS_DATA *kmeans_data_arr;
695 int kmeans_data_size;
696 int kmeans_data_stride;
697 double kmeans_ctr_ls[MAX_KMEANS_GROUPS];
698 double kmeans_boundary_ls[MAX_KMEANS_GROUPS];
699 int kmeans_count_ls[MAX_KMEANS_GROUPS];
700 int kmeans_ctr_num;
701 #if CONFIG_NON_GREEDY_MV
702 MotionFieldInfo motion_field_info;
703 int tpl_ready;
704 int_mv *select_mv_arr;
705 #endif
706
707 TileDataEnc *tile_data;
708 int allocated_tiles; // Keep track of memory allocated for tiles.
709
710 int scaled_ref_idx[REFS_PER_FRAME];
711 int lst_fb_idx;
712 int gld_fb_idx;
713 int alt_fb_idx;
714
715 int ref_fb_idx[REF_FRAMES];
716
717 int refresh_last_frame;
718 int refresh_golden_frame;
719 int refresh_alt_ref_frame;
720
721 int ext_refresh_frame_flags_pending;
722 int ext_refresh_last_frame;
723 int ext_refresh_golden_frame;
724 int ext_refresh_alt_ref_frame;
725
726 int ext_refresh_frame_context_pending;
727 int ext_refresh_frame_context;
728
729 int64_t norm_wiener_variance;
730 int64_t *mb_wiener_variance;
731 int mb_wiener_var_rows;
732 int mb_wiener_var_cols;
733 double *mi_ssim_rdmult_scaling_factors;
734
735 YV12_BUFFER_CONFIG last_frame_uf;
736
737 TOKENEXTRA *tile_tok[4][1 << 6];
738 TOKENLIST *tplist[4][1 << 6];
739
740 // Ambient reconstruction err target for force key frames
741 int64_t ambient_err;
742
743 RD_CONTROL rd_ctrl;
744 RD_OPT rd;
745
746 CODING_CONTEXT coding_context;
747
748 int *nmvcosts[2];
749 int *nmvcosts_hp[2];
750 int *nmvsadcosts[2];
751 int *nmvsadcosts_hp[2];
752
753 int64_t last_time_stamp_seen;
754 int64_t last_end_time_stamp_seen;
755 int64_t first_time_stamp_ever;
756
757 RATE_CONTROL rc;
758 double framerate;
759
760 int interp_filter_selected[REF_FRAMES][SWITCHABLE];
761
762 struct vpx_codec_pkt_list *output_pkt_list;
763
764 MBGRAPH_FRAME_STATS mbgraph_stats[MAX_LAG_BUFFERS];
765 int mbgraph_n_frames; // number of frames filled in the above
766 int static_mb_pct; // % forced skip mbs by segmentation
767 int ref_frame_flags;
768
769 SPEED_FEATURES sf;
770
771 uint32_t max_mv_magnitude;
772 int mv_step_param;
773
774 int allow_comp_inter_inter;
775
776 // Default value is 1. From first pass stats, encode_breakout may be disabled.
777 ENCODE_BREAKOUT_TYPE allow_encode_breakout;
778
779 // Get threshold from external input. A suggested threshold is 800 for HD
780 // clips, and 300 for < HD clips.
781 int encode_breakout;
782
783 uint8_t *segmentation_map;
784
785 uint8_t *skin_map;
786
787 // segment threashold for encode breakout
788 int segment_encode_breakout[MAX_SEGMENTS];
789
790 CYCLIC_REFRESH *cyclic_refresh;
791 ActiveMap active_map;
792
793 fractional_mv_step_fp *find_fractional_mv_step;
794 struct scale_factors me_sf;
795 vp9_diamond_search_fn_t diamond_search_sad;
796 vp9_variance_fn_ptr_t fn_ptr[BLOCK_SIZES];
797 uint64_t time_receive_data;
798 uint64_t time_compress_data;
799 uint64_t time_pick_lpf;
800 uint64_t time_encode_sb_row;
801
802 TWO_PASS twopass;
803
804 // Force recalculation of segment_ids for each mode info
805 uint8_t force_update_segmentation;
806
807 YV12_BUFFER_CONFIG alt_ref_buffer;
808
809 // class responsible for adaptive
810 // quantization of altref frames
811 struct ALT_REF_AQ *alt_ref_aq;
812
813 #if CONFIG_INTERNAL_STATS
814 unsigned int mode_chosen_counts[MAX_MODES];
815
816 int count;
817 uint64_t total_sq_error;
818 uint64_t total_samples;
819 ImageStat psnr;
820
821 uint64_t totalp_sq_error;
822 uint64_t totalp_samples;
823 ImageStat psnrp;
824
825 double total_blockiness;
826 double worst_blockiness;
827
828 int bytes;
829 double summed_quality;
830 double summed_weights;
831 double summedp_quality;
832 double summedp_weights;
833 unsigned int tot_recode_hits;
834 double worst_ssim;
835
836 ImageStat ssimg;
837 ImageStat fastssim;
838 ImageStat psnrhvs;
839
840 int b_calculate_ssimg;
841 int b_calculate_blockiness;
842
843 int b_calculate_consistency;
844
845 double total_inconsistency;
846 double worst_consistency;
847 Ssimv *ssim_vars;
848 Metrics metrics;
849 #endif
850 int b_calculate_psnr;
851
852 int droppable;
853
854 int initial_width;
855 int initial_height;
856 int initial_mbs; // Number of MBs in the full-size frame; to be used to
857 // normalize the firstpass stats. This will differ from the
858 // number of MBs in the current frame when the frame is
859 // scaled.
860
861 int use_svc;
862
863 SVC svc;
864
865 // Store frame variance info in SOURCE_VAR_BASED_PARTITION search type.
866 diff *source_diff_var;
867 // The threshold used in SOURCE_VAR_BASED_PARTITION search type.
868 unsigned int source_var_thresh;
869 int frames_till_next_var_check;
870
871 int frame_flags;
872
873 search_site_config ss_cfg;
874
875 int mbmode_cost[INTRA_MODES];
876 unsigned int inter_mode_cost[INTER_MODE_CONTEXTS][INTER_MODES];
877 int intra_uv_mode_cost[FRAME_TYPES][INTRA_MODES][INTRA_MODES];
878 int y_mode_costs[INTRA_MODES][INTRA_MODES][INTRA_MODES];
879 int switchable_interp_costs[SWITCHABLE_FILTER_CONTEXTS][SWITCHABLE_FILTERS];
880 int partition_cost[PARTITION_CONTEXTS][PARTITION_TYPES];
881 // Indices are: max_tx_size-1, tx_size_ctx, tx_size
882 int tx_size_cost[TX_SIZES - 1][TX_SIZE_CONTEXTS][TX_SIZES];
883
884 #if CONFIG_VP9_TEMPORAL_DENOISING
885 VP9_DENOISER denoiser;
886 #endif
887
888 int resize_pending;
889 RESIZE_STATE resize_state;
890 int external_resize;
891 int resize_scale_num;
892 int resize_scale_den;
893 int resize_avg_qp;
894 int resize_buffer_underflow;
895 int resize_count;
896
897 int use_skin_detection;
898
899 int target_level;
900
901 NOISE_ESTIMATE noise_estimate;
902
903 // Count on how many consecutive times a block uses small/zeromv for encoding.
904 uint8_t *consec_zero_mv;
905
906 // VAR_BASED_PARTITION thresholds
907 // 0 - threshold_64x64; 1 - threshold_32x32;
908 // 2 - threshold_16x16; 3 - vbp_threshold_8x8;
909 int64_t vbp_thresholds[4];
910 int64_t vbp_threshold_minmax;
911 int64_t vbp_threshold_sad;
912 // Threshold used for partition copy
913 int64_t vbp_threshold_copy;
914 BLOCK_SIZE vbp_bsize_min;
915
916 // Multi-threading
917 int num_workers;
918 VPxWorker *workers;
919 struct EncWorkerData *tile_thr_data;
920 VP9LfSync lf_row_sync;
921 struct VP9BitstreamWorkerData *vp9_bitstream_worker_data;
922
923 int keep_level_stats;
924 Vp9LevelInfo level_info;
925 MultiThreadHandle multi_thread_ctxt;
926 void (*row_mt_sync_read_ptr)(VP9RowMTSync *const, int, int);
927 void (*row_mt_sync_write_ptr)(VP9RowMTSync *const, int, int, const int);
928 ARNRFilterData arnr_filter_data;
929
930 int row_mt;
931 unsigned int row_mt_bit_exact;
932
933 // Previous Partition Info
934 BLOCK_SIZE *prev_partition;
935 int8_t *prev_segment_id;
936 // Used to save the status of whether a block has a low variance in
937 // choose_partitioning. 0 for 64x64, 1~2 for 64x32, 3~4 for 32x64, 5~8 for
938 // 32x32, 9~24 for 16x16.
939 // This is for the last frame and is copied to the current frame
940 // when partition copy happens.
941 uint8_t *prev_variance_low;
942 uint8_t *copied_frame_cnt;
943 uint8_t max_copied_frame;
944 // If the last frame is dropped, we don't copy partition.
945 uint8_t last_frame_dropped;
946
947 // For each superblock: keeps track of the last time (in frame distance) the
948 // the superblock did not have low source sad.
949 uint8_t *content_state_sb_fd;
950
951 int compute_source_sad_onepass;
952
953 int compute_frame_low_motion_onepass;
954
955 LevelConstraint level_constraint;
956
957 uint8_t *count_arf_frame_usage;
958 uint8_t *count_lastgolden_frame_usage;
959
960 int multi_layer_arf;
961 vpx_roi_map_t roi;
962
963 LOOPFILTER_CONTROL loopfilter_ctrl;
964 #if CONFIG_RATE_CTRL
965 ENCODE_COMMAND encode_command;
966 PARTITION_INFO *partition_info;
967 MOTION_VECTOR_INFO *motion_vector_info;
968 MOTION_VECTOR_INFO *fp_motion_vector_info;
969 TplDepStats *tpl_stats_info;
970
971 RATE_QSTEP_MODEL rq_model[ENCODE_FRAME_TYPES];
972 #endif
973 EXT_RATECTRL ext_ratectrl;
974
975 int fixed_qp_onepass;
976 } VP9_COMP;
977
978 #if CONFIG_RATE_CTRL
979 // Allocates memory for the partition information.
980 // The unit size is each 4x4 block.
981 // Only called once in vp9_create_compressor().
partition_info_init(struct VP9_COMP * cpi)982 static INLINE void partition_info_init(struct VP9_COMP *cpi) {
983 VP9_COMMON *const cm = &cpi->common;
984 const int unit_width = get_num_unit_4x4(cpi->frame_info.frame_width);
985 const int unit_height = get_num_unit_4x4(cpi->frame_info.frame_height);
986 CHECK_MEM_ERROR(cm, cpi->partition_info,
987 (PARTITION_INFO *)vpx_calloc(unit_width * unit_height,
988 sizeof(PARTITION_INFO)));
989 memset(cpi->partition_info, 0,
990 unit_width * unit_height * sizeof(PARTITION_INFO));
991 }
992
993 // Frees memory of the partition information.
994 // Only called once in dealloc_compressor_data().
free_partition_info(struct VP9_COMP * cpi)995 static INLINE void free_partition_info(struct VP9_COMP *cpi) {
996 vpx_free(cpi->partition_info);
997 cpi->partition_info = NULL;
998 }
999
reset_mv_info(MOTION_VECTOR_INFO * mv_info)1000 static INLINE void reset_mv_info(MOTION_VECTOR_INFO *mv_info) {
1001 mv_info->ref_frame[0] = NONE;
1002 mv_info->ref_frame[1] = NONE;
1003 mv_info->mv[0].as_int = INVALID_MV;
1004 mv_info->mv[1].as_int = INVALID_MV;
1005 }
1006
1007 // Allocates memory for the motion vector information.
1008 // The unit size is each 4x4 block.
1009 // Only called once in vp9_create_compressor().
motion_vector_info_init(struct VP9_COMP * cpi)1010 static INLINE void motion_vector_info_init(struct VP9_COMP *cpi) {
1011 VP9_COMMON *const cm = &cpi->common;
1012 const int unit_width = get_num_unit_4x4(cpi->frame_info.frame_width);
1013 const int unit_height = get_num_unit_4x4(cpi->frame_info.frame_height);
1014 CHECK_MEM_ERROR(cm, cpi->motion_vector_info,
1015 (MOTION_VECTOR_INFO *)vpx_calloc(unit_width * unit_height,
1016 sizeof(MOTION_VECTOR_INFO)));
1017 memset(cpi->motion_vector_info, 0,
1018 unit_width * unit_height * sizeof(MOTION_VECTOR_INFO));
1019 }
1020
1021 // Frees memory of the motion vector information.
1022 // Only called once in dealloc_compressor_data().
free_motion_vector_info(struct VP9_COMP * cpi)1023 static INLINE void free_motion_vector_info(struct VP9_COMP *cpi) {
1024 vpx_free(cpi->motion_vector_info);
1025 cpi->motion_vector_info = NULL;
1026 }
1027
1028 // Allocates memory for the tpl stats information.
1029 // Only called once in vp9_create_compressor().
tpl_stats_info_init(struct VP9_COMP * cpi)1030 static INLINE void tpl_stats_info_init(struct VP9_COMP *cpi) {
1031 VP9_COMMON *const cm = &cpi->common;
1032 CHECK_MEM_ERROR(
1033 cm, cpi->tpl_stats_info,
1034 (TplDepStats *)vpx_calloc(MAX_LAG_BUFFERS, sizeof(TplDepStats)));
1035 memset(cpi->tpl_stats_info, 0, MAX_LAG_BUFFERS * sizeof(TplDepStats));
1036 }
1037
1038 // Frees memory of the tpl stats information.
1039 // Only called once in dealloc_compressor_data().
free_tpl_stats_info(struct VP9_COMP * cpi)1040 static INLINE void free_tpl_stats_info(struct VP9_COMP *cpi) {
1041 vpx_free(cpi->tpl_stats_info);
1042 cpi->tpl_stats_info = NULL;
1043 }
1044
1045 // Allocates memory for the first pass motion vector information.
1046 // The unit size is each 16x16 block.
1047 // Only called once in vp9_create_compressor().
fp_motion_vector_info_init(struct VP9_COMP * cpi)1048 static INLINE void fp_motion_vector_info_init(struct VP9_COMP *cpi) {
1049 VP9_COMMON *const cm = &cpi->common;
1050 const int unit_width = get_num_unit_16x16(cpi->frame_info.frame_width);
1051 const int unit_height = get_num_unit_16x16(cpi->frame_info.frame_height);
1052 CHECK_MEM_ERROR(cm, cpi->fp_motion_vector_info,
1053 (MOTION_VECTOR_INFO *)vpx_calloc(unit_width * unit_height,
1054 sizeof(MOTION_VECTOR_INFO)));
1055 }
1056
fp_motion_vector_info_reset(int frame_width,int frame_height,MOTION_VECTOR_INFO * fp_motion_vector_info)1057 static INLINE void fp_motion_vector_info_reset(
1058 int frame_width, int frame_height,
1059 MOTION_VECTOR_INFO *fp_motion_vector_info) {
1060 const int unit_width = get_num_unit_16x16(frame_width);
1061 const int unit_height = get_num_unit_16x16(frame_height);
1062 int i;
1063 for (i = 0; i < unit_width * unit_height; ++i) {
1064 reset_mv_info(fp_motion_vector_info + i);
1065 }
1066 }
1067
1068 // Frees memory of the first pass motion vector information.
1069 // Only called once in dealloc_compressor_data().
free_fp_motion_vector_info(struct VP9_COMP * cpi)1070 static INLINE void free_fp_motion_vector_info(struct VP9_COMP *cpi) {
1071 vpx_free(cpi->fp_motion_vector_info);
1072 cpi->fp_motion_vector_info = NULL;
1073 }
1074
1075 // This is the c-version counter part of ImageBuffer
1076 typedef struct IMAGE_BUFFER {
1077 int allocated;
1078 int plane_width[3];
1079 int plane_height[3];
1080 uint8_t *plane_buffer[3];
1081 } IMAGE_BUFFER;
1082
1083 #define RATE_CTRL_MAX_RECODE_NUM 7
1084
1085 typedef struct RATE_QINDEX_HISTORY {
1086 int recode_count;
1087 int q_index_history[RATE_CTRL_MAX_RECODE_NUM];
1088 int rate_history[RATE_CTRL_MAX_RECODE_NUM];
1089 int q_index_high;
1090 int q_index_low;
1091 } RATE_QINDEX_HISTORY;
1092
1093 #endif // CONFIG_RATE_CTRL
1094
1095 typedef struct ENCODE_FRAME_RESULT {
1096 int show_idx;
1097 FRAME_UPDATE_TYPE update_type;
1098 #if CONFIG_RATE_CTRL
1099 int frame_coding_index;
1100 int ref_frame_coding_indexes[MAX_INTER_REF_FRAMES];
1101 int ref_frame_valid_list[MAX_INTER_REF_FRAMES];
1102 double psnr;
1103 uint64_t sse;
1104 FRAME_COUNTS frame_counts;
1105 const PARTITION_INFO *partition_info;
1106 const MOTION_VECTOR_INFO *motion_vector_info;
1107 const TplDepStats *tpl_stats_info;
1108 IMAGE_BUFFER coded_frame;
1109 RATE_QINDEX_HISTORY rq_history;
1110 #endif // CONFIG_RATE_CTRL
1111 int quantize_index;
1112 } ENCODE_FRAME_RESULT;
1113
1114 void vp9_init_encode_frame_result(ENCODE_FRAME_RESULT *encode_frame_result);
1115
1116 void vp9_initialize_enc(void);
1117
1118 void vp9_update_compressor_with_img_fmt(VP9_COMP *cpi, vpx_img_fmt_t img_fmt);
1119 struct VP9_COMP *vp9_create_compressor(const VP9EncoderConfig *oxcf,
1120 BufferPool *const pool);
1121 void vp9_remove_compressor(VP9_COMP *cpi);
1122
1123 void vp9_change_config(VP9_COMP *cpi, const VP9EncoderConfig *oxcf);
1124
1125 // receive a frames worth of data. caller can assume that a copy of this
1126 // frame is made and not just a copy of the pointer..
1127 int vp9_receive_raw_frame(VP9_COMP *cpi, vpx_enc_frame_flags_t frame_flags,
1128 YV12_BUFFER_CONFIG *sd, int64_t time_stamp,
1129 int64_t end_time);
1130
1131 int vp9_get_compressed_data(VP9_COMP *cpi, unsigned int *frame_flags,
1132 size_t *size, uint8_t *dest, int64_t *time_stamp,
1133 int64_t *time_end, int flush,
1134 ENCODE_FRAME_RESULT *encode_frame_result);
1135
1136 int vp9_get_preview_raw_frame(VP9_COMP *cpi, YV12_BUFFER_CONFIG *dest,
1137 vp9_ppflags_t *flags);
1138
1139 int vp9_use_as_reference(VP9_COMP *cpi, int ref_frame_flags);
1140
1141 void vp9_update_reference(VP9_COMP *cpi, int ref_frame_flags);
1142
1143 int vp9_copy_reference_enc(VP9_COMP *cpi, VP9_REFFRAME ref_frame_flag,
1144 YV12_BUFFER_CONFIG *sd);
1145
1146 int vp9_set_reference_enc(VP9_COMP *cpi, VP9_REFFRAME ref_frame_flag,
1147 YV12_BUFFER_CONFIG *sd);
1148
1149 int vp9_update_entropy(VP9_COMP *cpi, int update);
1150
1151 int vp9_set_active_map(VP9_COMP *cpi, unsigned char *new_map_16x16, int rows,
1152 int cols);
1153
1154 int vp9_get_active_map(VP9_COMP *cpi, unsigned char *new_map_16x16, int rows,
1155 int cols);
1156
1157 int vp9_set_internal_size(VP9_COMP *cpi, VPX_SCALING horiz_mode,
1158 VPX_SCALING vert_mode);
1159
1160 int vp9_set_size_literal(VP9_COMP *cpi, unsigned int width,
1161 unsigned int height);
1162
1163 void vp9_set_svc(VP9_COMP *cpi, int use_svc);
1164
1165 // Check for resetting the rc flags (rc_1_frame, rc_2_frame) if the
1166 // configuration change has a large change in avg_frame_bandwidth.
1167 // For SVC check for resetting based on spatial layer average bandwidth.
1168 // Also reset buffer level to optimal level.
1169 void vp9_check_reset_rc_flag(VP9_COMP *cpi);
1170
1171 void vp9_set_rc_buffer_sizes(VP9_COMP *cpi);
1172
stack_pop(int * stack,int stack_size)1173 static INLINE int stack_pop(int *stack, int stack_size) {
1174 int idx;
1175 const int r = stack[0];
1176 for (idx = 1; idx < stack_size; ++idx) stack[idx - 1] = stack[idx];
1177
1178 return r;
1179 }
1180
stack_top(const int * stack)1181 static INLINE int stack_top(const int *stack) { return stack[0]; }
1182
stack_push(int * stack,int new_item,int stack_size)1183 static INLINE void stack_push(int *stack, int new_item, int stack_size) {
1184 int idx;
1185 for (idx = stack_size; idx > 0; --idx) stack[idx] = stack[idx - 1];
1186 stack[0] = new_item;
1187 }
1188
stack_init(int * stack,int length)1189 static INLINE void stack_init(int *stack, int length) {
1190 int idx;
1191 for (idx = 0; idx < length; ++idx) stack[idx] = -1;
1192 }
1193
1194 int vp9_get_quantizer(const VP9_COMP *cpi);
1195
frame_is_kf_gf_arf(const VP9_COMP * cpi)1196 static INLINE int frame_is_kf_gf_arf(const VP9_COMP *cpi) {
1197 return frame_is_intra_only(&cpi->common) || cpi->refresh_alt_ref_frame ||
1198 (cpi->refresh_golden_frame && !cpi->rc.is_src_frame_alt_ref);
1199 }
1200
ref_frame_to_flag(int8_t ref_frame)1201 static INLINE int ref_frame_to_flag(int8_t ref_frame) {
1202 static const int kVp9RefFlagList[4] = { 0, VP9_LAST_FLAG, VP9_GOLD_FLAG,
1203 VP9_ALT_FLAG };
1204 assert(ref_frame >= LAST_FRAME && ref_frame <= ALTREF_FRAME);
1205 return kVp9RefFlagList[ref_frame];
1206 }
1207
get_ref_frame_map_idx(const VP9_COMP * cpi,MV_REFERENCE_FRAME ref_frame)1208 static INLINE int get_ref_frame_map_idx(const VP9_COMP *cpi,
1209 MV_REFERENCE_FRAME ref_frame) {
1210 if (ref_frame == LAST_FRAME) {
1211 return cpi->lst_fb_idx;
1212 } else if (ref_frame == GOLDEN_FRAME) {
1213 return cpi->gld_fb_idx;
1214 } else {
1215 return cpi->alt_fb_idx;
1216 }
1217 }
1218
get_ref_frame_buf_idx(const VP9_COMP * const cpi,int ref_frame)1219 static INLINE int get_ref_frame_buf_idx(const VP9_COMP *const cpi,
1220 int ref_frame) {
1221 const VP9_COMMON *const cm = &cpi->common;
1222 const int map_idx = get_ref_frame_map_idx(cpi, ref_frame);
1223 return (map_idx != INVALID_IDX) ? cm->ref_frame_map[map_idx] : INVALID_IDX;
1224 }
1225
get_ref_cnt_buffer(const VP9_COMMON * cm,int fb_idx)1226 static INLINE RefCntBuffer *get_ref_cnt_buffer(const VP9_COMMON *cm,
1227 int fb_idx) {
1228 return fb_idx != INVALID_IDX ? &cm->buffer_pool->frame_bufs[fb_idx] : NULL;
1229 }
1230
get_ref_frame_bufs(const VP9_COMP * cpi,RefCntBuffer * ref_frame_bufs[MAX_INTER_REF_FRAMES])1231 static INLINE void get_ref_frame_bufs(
1232 const VP9_COMP *cpi, RefCntBuffer *ref_frame_bufs[MAX_INTER_REF_FRAMES]) {
1233 const VP9_COMMON *const cm = &cpi->common;
1234 MV_REFERENCE_FRAME ref_frame;
1235 for (ref_frame = LAST_FRAME; ref_frame < MAX_REF_FRAMES; ++ref_frame) {
1236 int ref_frame_buf_idx = get_ref_frame_buf_idx(cpi, ref_frame);
1237 int inter_ref_idx = mv_ref_frame_to_inter_ref_idx(ref_frame);
1238 ref_frame_bufs[inter_ref_idx] = get_ref_cnt_buffer(cm, ref_frame_buf_idx);
1239 }
1240 }
1241
get_ref_frame_buffer(const VP9_COMP * const cpi,MV_REFERENCE_FRAME ref_frame)1242 static INLINE YV12_BUFFER_CONFIG *get_ref_frame_buffer(
1243 const VP9_COMP *const cpi, MV_REFERENCE_FRAME ref_frame) {
1244 const VP9_COMMON *const cm = &cpi->common;
1245 const int buf_idx = get_ref_frame_buf_idx(cpi, ref_frame);
1246 return buf_idx != INVALID_IDX ? &cm->buffer_pool->frame_bufs[buf_idx].buf
1247 : NULL;
1248 }
1249
get_token_alloc(int mb_rows,int mb_cols)1250 static INLINE int get_token_alloc(int mb_rows, int mb_cols) {
1251 // TODO(JBB): double check we can't exceed this token count if we have a
1252 // 32x32 transform crossing a boundary at a multiple of 16.
1253 // mb_rows, cols are in units of 16 pixels. We assume 3 planes all at full
1254 // resolution. We assume up to 1 token per pixel, and then allow
1255 // a head room of 4.
1256 return mb_rows * mb_cols * (16 * 16 * 3 + 4);
1257 }
1258
1259 // Get the allocated token size for a tile. It does the same calculation as in
1260 // the frame token allocation.
allocated_tokens(TileInfo tile)1261 static INLINE int allocated_tokens(TileInfo tile) {
1262 int tile_mb_rows = (tile.mi_row_end - tile.mi_row_start + 1) >> 1;
1263 int tile_mb_cols = (tile.mi_col_end - tile.mi_col_start + 1) >> 1;
1264
1265 return get_token_alloc(tile_mb_rows, tile_mb_cols);
1266 }
1267
get_start_tok(VP9_COMP * cpi,int tile_row,int tile_col,int mi_row,TOKENEXTRA ** tok)1268 static INLINE void get_start_tok(VP9_COMP *cpi, int tile_row, int tile_col,
1269 int mi_row, TOKENEXTRA **tok) {
1270 VP9_COMMON *const cm = &cpi->common;
1271 const int tile_cols = 1 << cm->log2_tile_cols;
1272 TileDataEnc *this_tile = &cpi->tile_data[tile_row * tile_cols + tile_col];
1273 const TileInfo *const tile_info = &this_tile->tile_info;
1274
1275 int tile_mb_cols = (tile_info->mi_col_end - tile_info->mi_col_start + 1) >> 1;
1276 const int mb_row = (mi_row - tile_info->mi_row_start) >> 1;
1277
1278 *tok =
1279 cpi->tile_tok[tile_row][tile_col] + get_token_alloc(mb_row, tile_mb_cols);
1280 }
1281
1282 int64_t vp9_get_y_sse(const YV12_BUFFER_CONFIG *a, const YV12_BUFFER_CONFIG *b);
1283 #if CONFIG_VP9_HIGHBITDEPTH
1284 int64_t vp9_highbd_get_y_sse(const YV12_BUFFER_CONFIG *a,
1285 const YV12_BUFFER_CONFIG *b);
1286 #endif // CONFIG_VP9_HIGHBITDEPTH
1287
1288 void vp9_scale_references(VP9_COMP *cpi);
1289
1290 void vp9_update_reference_frames(VP9_COMP *cpi);
1291
1292 void vp9_get_ref_frame_info(FRAME_UPDATE_TYPE update_type, int ref_frame_flags,
1293 RefCntBuffer *ref_frame_bufs[MAX_INTER_REF_FRAMES],
1294 int *ref_frame_coding_indexes,
1295 int *ref_frame_valid_list);
1296
1297 void vp9_set_high_precision_mv(VP9_COMP *cpi, int allow_high_precision_mv);
1298
1299 YV12_BUFFER_CONFIG *vp9_svc_twostage_scale(
1300 VP9_COMMON *cm, YV12_BUFFER_CONFIG *unscaled, YV12_BUFFER_CONFIG *scaled,
1301 YV12_BUFFER_CONFIG *scaled_temp, INTERP_FILTER filter_type,
1302 int phase_scaler, INTERP_FILTER filter_type2, int phase_scaler2);
1303
1304 YV12_BUFFER_CONFIG *vp9_scale_if_required(
1305 VP9_COMMON *cm, YV12_BUFFER_CONFIG *unscaled, YV12_BUFFER_CONFIG *scaled,
1306 int use_normative_scaler, INTERP_FILTER filter_type, int phase_scaler);
1307
1308 void vp9_apply_encoding_flags(VP9_COMP *cpi, vpx_enc_frame_flags_t flags);
1309
is_one_pass_svc(const struct VP9_COMP * const cpi)1310 static INLINE int is_one_pass_svc(const struct VP9_COMP *const cpi) {
1311 return (cpi->use_svc && cpi->oxcf.pass == 0);
1312 }
1313
1314 #if CONFIG_VP9_TEMPORAL_DENOISING
denoise_svc(const struct VP9_COMP * const cpi)1315 static INLINE int denoise_svc(const struct VP9_COMP *const cpi) {
1316 return (!cpi->use_svc || (cpi->use_svc && cpi->svc.spatial_layer_id >=
1317 cpi->svc.first_layer_denoise));
1318 }
1319 #endif
1320
1321 #define MIN_LOOKAHEAD_FOR_ARFS 4
is_altref_enabled(const VP9_COMP * const cpi)1322 static INLINE int is_altref_enabled(const VP9_COMP *const cpi) {
1323 return !(cpi->oxcf.mode == REALTIME && cpi->oxcf.rc_mode == VPX_CBR) &&
1324 cpi->oxcf.lag_in_frames >= MIN_LOOKAHEAD_FOR_ARFS &&
1325 cpi->oxcf.enable_auto_arf;
1326 }
1327
set_ref_ptrs(const VP9_COMMON * const cm,MACROBLOCKD * xd,MV_REFERENCE_FRAME ref0,MV_REFERENCE_FRAME ref1)1328 static INLINE void set_ref_ptrs(const VP9_COMMON *const cm, MACROBLOCKD *xd,
1329 MV_REFERENCE_FRAME ref0,
1330 MV_REFERENCE_FRAME ref1) {
1331 xd->block_refs[0] =
1332 &cm->frame_refs[ref0 >= LAST_FRAME ? ref0 - LAST_FRAME : 0];
1333 xd->block_refs[1] =
1334 &cm->frame_refs[ref1 >= LAST_FRAME ? ref1 - LAST_FRAME : 0];
1335 }
1336
get_chessboard_index(const int frame_index)1337 static INLINE int get_chessboard_index(const int frame_index) {
1338 return frame_index & 0x1;
1339 }
1340
cond_cost_list(const struct VP9_COMP * cpi,int * cost_list)1341 static INLINE int *cond_cost_list(const struct VP9_COMP *cpi, int *cost_list) {
1342 return cpi->sf.mv.subpel_search_method != SUBPEL_TREE ? cost_list : NULL;
1343 }
1344
get_num_vert_units(TileInfo tile,int shift)1345 static INLINE int get_num_vert_units(TileInfo tile, int shift) {
1346 int num_vert_units =
1347 (tile.mi_row_end - tile.mi_row_start + (1 << shift) - 1) >> shift;
1348 return num_vert_units;
1349 }
1350
get_num_cols(TileInfo tile,int shift)1351 static INLINE int get_num_cols(TileInfo tile, int shift) {
1352 int num_cols =
1353 (tile.mi_col_end - tile.mi_col_start + (1 << shift) - 1) >> shift;
1354 return num_cols;
1355 }
1356
get_level_index(VP9_LEVEL level)1357 static INLINE int get_level_index(VP9_LEVEL level) {
1358 int i;
1359 for (i = 0; i < VP9_LEVELS; ++i) {
1360 if (level == vp9_level_defs[i].level) return i;
1361 }
1362 return -1;
1363 }
1364
1365 // Return the log2 value of max column tiles corresponding to the level that
1366 // the picture size fits into.
log_tile_cols_from_picsize_level(uint32_t width,uint32_t height)1367 static INLINE int log_tile_cols_from_picsize_level(uint32_t width,
1368 uint32_t height) {
1369 int i;
1370 const uint32_t pic_size = width * height;
1371 const uint32_t pic_breadth = VPXMAX(width, height);
1372 for (i = LEVEL_1; i < LEVEL_MAX; ++i) {
1373 if (vp9_level_defs[i].max_luma_picture_size >= pic_size &&
1374 vp9_level_defs[i].max_luma_picture_breadth >= pic_breadth) {
1375 return get_msb(vp9_level_defs[i].max_col_tiles);
1376 }
1377 }
1378 return INT_MAX;
1379 }
1380
1381 VP9_LEVEL vp9_get_level(const Vp9LevelSpec *const level_spec);
1382
1383 int vp9_set_roi_map(VP9_COMP *cpi, unsigned char *map, unsigned int rows,
1384 unsigned int cols, int delta_q[8], int delta_lf[8],
1385 int skip[8], int ref_frame[8]);
1386
1387 void vp9_new_framerate(VP9_COMP *cpi, double framerate);
1388
1389 void vp9_set_row_mt(VP9_COMP *cpi);
1390
1391 int vp9_get_psnr(const VP9_COMP *cpi, PSNR_STATS *psnr);
1392
1393 #define LAYER_IDS_TO_IDX(sl, tl, num_tl) ((sl) * (num_tl) + (tl))
1394
1395 #ifdef __cplusplus
1396 } // extern "C"
1397 #endif
1398
1399 #endif // VPX_VP9_ENCODER_VP9_ENCODER_H_
1400