AOMedia AV1 Codec
av1_common_int.h
1 /*
2  * Copyright (c) 2016, Alliance for Open Media. All rights reserved.
3  *
4  * This source code is subject to the terms of the BSD 2 Clause License and
5  * the Alliance for Open Media Patent License 1.0. If the BSD 2 Clause License
6  * was not distributed with this source code in the LICENSE file, you can
7  * obtain it at www.aomedia.org/license/software. If the Alliance for Open
8  * Media Patent License 1.0 was not distributed with this source code in the
9  * PATENTS file, you can obtain it at www.aomedia.org/license/patent.
10  */
11 
12 #ifndef AOM_AV1_COMMON_AV1_COMMON_INT_H_
13 #define AOM_AV1_COMMON_AV1_COMMON_INT_H_
14 
15 #include <stdbool.h>
16 
17 #include "config/aom_config.h"
18 #include "config/av1_rtcd.h"
19 
20 #include "aom/internal/aom_codec_internal.h"
21 #include "aom_dsp/flow_estimation/corner_detect.h"
22 #include "aom_util/aom_pthread.h"
23 #include "av1/common/alloccommon.h"
24 #include "av1/common/av1_loopfilter.h"
25 #include "av1/common/entropy.h"
26 #include "av1/common/entropymode.h"
27 #include "av1/common/entropymv.h"
28 #include "av1/common/enums.h"
29 #include "av1/common/frame_buffers.h"
30 #include "av1/common/mv.h"
31 #include "av1/common/quant_common.h"
32 #include "av1/common/restoration.h"
33 #include "av1/common/tile_common.h"
34 #include "av1/common/timing.h"
35 #include "aom_dsp/grain_params.h"
36 #include "aom_dsp/grain_table.h"
37 #include "aom_dsp/odintrin.h"
38 #ifdef __cplusplus
39 extern "C" {
40 #endif
41 
42 #if defined(__clang__) && defined(__has_warning)
43 #if __has_feature(cxx_attributes) && __has_warning("-Wimplicit-fallthrough")
44 #define AOM_FALLTHROUGH_INTENDED [[clang::fallthrough]] // NOLINT
45 #endif
46 #elif defined(__GNUC__) && __GNUC__ >= 7
47 #define AOM_FALLTHROUGH_INTENDED __attribute__((fallthrough)) // NOLINT
48 #endif
49 
50 #ifndef AOM_FALLTHROUGH_INTENDED
51 #define AOM_FALLTHROUGH_INTENDED \
52  do { \
53  } while (0)
54 #endif
55 
56 #define CDEF_MAX_STRENGTHS 16
57 
58 /* Constant values while waiting for the sequence header */
59 #define FRAME_ID_LENGTH 15
60 #define DELTA_FRAME_ID_LENGTH 14
61 
62 #define FRAME_CONTEXTS (FRAME_BUFFERS + 1)
63 // Extra frame context which is always kept at default values
64 #define FRAME_CONTEXT_DEFAULTS (FRAME_CONTEXTS - 1)
65 #define PRIMARY_REF_BITS 3
66 #define PRIMARY_REF_NONE 7
67 
68 #define NUM_PING_PONG_BUFFERS 2
69 
70 #define MAX_NUM_TEMPORAL_LAYERS 8
71 #define MAX_NUM_SPATIAL_LAYERS 4
72 /* clang-format off */
73 // clang-format seems to think this is a pointer dereference and not a
74 // multiplication.
75 #define MAX_NUM_OPERATING_POINTS \
76  (MAX_NUM_TEMPORAL_LAYERS * MAX_NUM_SPATIAL_LAYERS)
77 /* clang-format on */
78 
79 // TODO(jingning): Turning this on to set up transform coefficient
80 // processing timer.
81 #define TXCOEFF_TIMER 0
82 #define TXCOEFF_COST_TIMER 0
83 
86 enum {
87  SINGLE_REFERENCE = 0,
88  COMPOUND_REFERENCE = 1,
89  REFERENCE_MODE_SELECT = 2,
90  REFERENCE_MODES = 3,
91 } UENUM1BYTE(REFERENCE_MODE);
92 
93 enum {
97  REFRESH_FRAME_CONTEXT_DISABLED,
102  REFRESH_FRAME_CONTEXT_BACKWARD,
103 } UENUM1BYTE(REFRESH_FRAME_CONTEXT_MODE);
104 
105 #define MFMV_STACK_SIZE 3
106 typedef struct {
107  int_mv mfmv0;
108  uint8_t ref_frame_offset;
109 } TPL_MV_REF;
110 
111 typedef struct {
112  int_mv mv;
113  MV_REFERENCE_FRAME ref_frame;
114 } MV_REF;
115 
116 typedef struct RefCntBuffer {
117  // For a RefCntBuffer, the following are reference-holding variables:
118  // - cm->ref_frame_map[]
119  // - cm->cur_frame
120  // - cm->scaled_ref_buf[] (encoder only)
121  // - pbi->output_frame_index[] (decoder only)
122  // With that definition, 'ref_count' is the number of reference-holding
123  // variables that are currently referencing this buffer.
124  // For example:
125  // - suppose this buffer is at index 'k' in the buffer pool, and
126  // - Total 'n' of the variables / array elements above have value 'k' (that
127  // is, they are pointing to buffer at index 'k').
128  // Then, pool->frame_bufs[k].ref_count = n.
129  int ref_count;
130 
131  unsigned int order_hint;
132  unsigned int ref_order_hints[INTER_REFS_PER_FRAME];
133 
134  // These variables are used only in encoder and compare the absolute
135  // display order hint to compute the relative distance and overcome
136  // the limitation of get_relative_dist() which returns incorrect
137  // distance when a very old frame is used as a reference.
138  unsigned int display_order_hint;
139  unsigned int ref_display_order_hint[INTER_REFS_PER_FRAME];
140  // Frame's level within the hierarchical structure.
141  unsigned int pyramid_level;
142  int base_qindex;
143  MV_REF *mvs;
144  uint8_t *seg_map;
145  struct segmentation seg;
146  int mi_rows;
147  int mi_cols;
148  // Width and height give the size of the buffer (before any upscaling, unlike
149  // the sizes that can be derived from the buf structure)
150  int width;
151  int height;
152  WarpedMotionParams global_motion[REF_FRAMES];
153  int showable_frame; // frame can be used as show existing frame in future
154  uint8_t film_grain_params_present;
155  aom_film_grain_t film_grain_params;
156  aom_codec_frame_buffer_t raw_frame_buffer;
157  YV12_BUFFER_CONFIG buf;
158  int temporal_id; // Temporal layer ID of the frame
159  int spatial_id; // Spatial layer ID of the frame
160  FRAME_TYPE frame_type;
161 
162  // This is only used in the encoder but needs to be indexed per ref frame
163  // so it's extremely convenient to keep it here.
164  int interp_filter_selected[SWITCHABLE];
165 
166  // Inter frame reference frame delta for loop filter
167  int8_t ref_deltas[REF_FRAMES];
168 
169  // 0 = ZERO_MV, MV
170  int8_t mode_deltas[MAX_MODE_LF_DELTAS];
171 
172  FRAME_CONTEXT frame_context;
173 
174  int filter_level[2];
175 } RefCntBuffer;
176 
177 typedef struct BufferPool {
178 // Protect BufferPool from being accessed by several FrameWorkers at
179 // the same time during frame parallel decode.
180 // TODO(hkuang): Try to use atomic variable instead of locking the whole pool.
181 // TODO(wtc): Remove this. See
182 // https://chromium-review.googlesource.com/c/webm/libvpx/+/560630.
183 #if CONFIG_MULTITHREAD
184  pthread_mutex_t pool_mutex;
185 #endif
186 
187  // Private data associated with the frame buffer callbacks.
188  void *cb_priv;
189 
191  aom_release_frame_buffer_cb_fn_t release_fb_cb;
192 
193  RefCntBuffer *frame_bufs;
194  uint8_t num_frame_bufs;
195 
196  // Frame buffers allocated internally by the codec.
197  InternalFrameBufferList int_frame_buffers;
198 } BufferPool;
199 
203 typedef struct {
205  uint16_t *colbuf[MAX_MB_PLANE];
207  uint16_t *linebuf[MAX_MB_PLANE];
209  uint16_t *srcbuf;
211  size_t allocated_colbuf_size[MAX_MB_PLANE];
213  size_t allocated_linebuf_size[MAX_MB_PLANE];
221  int cdef_strengths[CDEF_MAX_STRENGTHS];
223  int cdef_uv_strengths[CDEF_MAX_STRENGTHS];
230 } CdefInfo;
231 
234 typedef struct {
235  int delta_q_present_flag;
236  // Resolution of delta quant
237  int delta_q_res;
238  int delta_lf_present_flag;
239  // Resolution of delta lf level
240  int delta_lf_res;
241  // This is a flag for number of deltas of loop filter level
242  // 0: use 1 delta, for y_vertical, y_horizontal, u, and v
243  // 1: use separate deltas for each filter level
244  int delta_lf_multi;
245 } DeltaQInfo;
246 
247 typedef struct {
248  int enable_order_hint; // 0 - disable order hint, and related tools
249  int order_hint_bits_minus_1; // dist_wtd_comp, ref_frame_mvs,
250  // frame_sign_bias
251  // if 0, enable_dist_wtd_comp and
252  // enable_ref_frame_mvs must be set as 0.
253  int enable_dist_wtd_comp; // 0 - disable dist-wtd compound modes
254  // 1 - enable it
255  int enable_ref_frame_mvs; // 0 - disable ref frame mvs
256  // 1 - enable it
257 } OrderHintInfo;
258 
259 // Sequence header structure.
260 // Note: All syntax elements of sequence_header_obu that need to be
261 // bit-identical across multiple sequence headers must be part of this struct,
262 // so that consistency is checked by are_seq_headers_consistent() function.
263 // One exception is the last member 'op_params' that is ignored by
264 // are_seq_headers_consistent() function.
265 typedef struct SequenceHeader {
266  int num_bits_width;
267  int num_bits_height;
268  int max_frame_width;
269  int max_frame_height;
270  // Whether current and reference frame IDs are signaled in the bitstream.
271  // Frame id numbers are additional information that do not affect the
272  // decoding process, but provide decoders with a way of detecting missing
273  // reference frames so that appropriate action can be taken.
274  uint8_t frame_id_numbers_present_flag;
275  int frame_id_length;
276  int delta_frame_id_length;
277  BLOCK_SIZE sb_size; // Size of the superblock used for this frame
278  int mib_size; // Size of the superblock in units of MI blocks
279  int mib_size_log2; // Log 2 of above.
280 
281  OrderHintInfo order_hint_info;
282 
283  uint8_t force_screen_content_tools; // 0 - force off
284  // 1 - force on
285  // 2 - adaptive
286  uint8_t still_picture; // Video is a single frame still picture
287  uint8_t reduced_still_picture_hdr; // Use reduced header for still picture
288  uint8_t force_integer_mv; // 0 - Don't force. MV can use subpel
289  // 1 - force to integer
290  // 2 - adaptive
291  uint8_t enable_filter_intra; // enables/disables filterintra
292  uint8_t enable_intra_edge_filter; // enables/disables edge upsampling
293  uint8_t enable_interintra_compound; // enables/disables interintra_compound
294  uint8_t enable_masked_compound; // enables/disables masked compound
295  uint8_t enable_dual_filter; // 0 - disable dual interpolation filter
296  // 1 - enable vert/horz filter selection
297  uint8_t enable_warped_motion; // 0 - disable warp for the sequence
298  // 1 - enable warp for the sequence
299  uint8_t enable_superres; // 0 - Disable superres for the sequence
300  // and no frame level superres flag
301  // 1 - Enable superres for the sequence
302  // enable per-frame superres flag
303  uint8_t enable_cdef; // To turn on/off CDEF
304  uint8_t enable_restoration; // To turn on/off loop restoration
305  BITSTREAM_PROFILE profile;
306 
307  // Color config.
308  aom_bit_depth_t bit_depth; // AOM_BITS_8 in profile 0 or 1,
309  // AOM_BITS_10 or AOM_BITS_12 in profile 2 or 3.
310  uint8_t use_highbitdepth; // If true, we need to use 16bit frame buffers.
311  uint8_t monochrome; // Monochrome video
312  aom_color_primaries_t color_primaries;
313  aom_transfer_characteristics_t transfer_characteristics;
314  aom_matrix_coefficients_t matrix_coefficients;
315  int color_range;
316  int subsampling_x; // Chroma subsampling for x
317  int subsampling_y; // Chroma subsampling for y
318  aom_chroma_sample_position_t chroma_sample_position;
319  uint8_t separate_uv_delta_q;
320  uint8_t film_grain_params_present;
321 
322  // Operating point info.
323  int operating_points_cnt_minus_1;
324  int operating_point_idc[MAX_NUM_OPERATING_POINTS];
325  // True if operating_point_idc[op] is not equal to 0 for any value of op from
326  // 0 to operating_points_cnt_minus_1.
327  bool has_nonzero_operating_point_idc;
328  int timing_info_present;
329  aom_timing_info_t timing_info;
330  uint8_t decoder_model_info_present_flag;
331  aom_dec_model_info_t decoder_model_info;
332  uint8_t display_model_info_present_flag;
333  AV1_LEVEL seq_level_idx[MAX_NUM_OPERATING_POINTS];
334  uint8_t tier[MAX_NUM_OPERATING_POINTS]; // seq_tier in spec. One bit: 0 or 1.
335 
336  // IMPORTANT: the op_params member must be at the end of the struct so that
337  // are_seq_headers_consistent() can be implemented with a memcmp() call.
338  // TODO(urvang): We probably don't need the +1 here.
339  aom_dec_model_op_parameters_t op_params[MAX_NUM_OPERATING_POINTS + 1];
340 } SequenceHeader;
341 
342 typedef struct {
343  int skip_mode_allowed;
344  int skip_mode_flag;
345  int ref_frame_idx_0;
346  int ref_frame_idx_1;
347 } SkipModeInfo;
348 
349 typedef struct {
350  FRAME_TYPE frame_type;
351  REFERENCE_MODE reference_mode;
352 
353  unsigned int order_hint;
354  unsigned int display_order_hint;
355  // Frame's level within the hierarchical structure.
356  unsigned int pyramid_level;
357  unsigned int frame_number;
358  SkipModeInfo skip_mode_info;
359  int refresh_frame_flags; // Which ref frames are overwritten by this frame
360  int frame_refs_short_signaling;
361 } CurrentFrame;
362 
368 typedef struct {
416  TX_MODE tx_mode;
417  InterpFilter interp_filter;
431  REFRESH_FRAME_CONTEXT_MODE refresh_frame_context;
432 } FeatureFlags;
433 
437 typedef struct CommonTileParams {
438  int cols;
439  int rows;
447 
454 
459  int log2_cols;
460  int log2_rows;
461  int width;
462  int height;
484  int min_log2;
489  int col_start_sb[MAX_TILE_COLS + 1];
494  int row_start_sb[MAX_TILE_ROWS + 1];
498  unsigned int large_scale;
504  unsigned int single_tile_decoding;
506 
516  int mb_rows;
521  int mb_cols;
522 
526  int MBs;
527 
532  int mi_rows;
537  int mi_cols;
538 
560  BLOCK_SIZE mi_alloc_bsize;
561 
578 
585  TX_TYPE *tx_type_map;
586 
595  void (*free_mi)(struct CommonModeInfoParams *mi_params);
600  void (*setup_mi)(struct CommonModeInfoParams *mi_params);
610  void (*set_mb_mi)(struct CommonModeInfoParams *mi_params, int width,
611  int height, BLOCK_SIZE min_partition_size);
613 };
614 
615 typedef struct CommonQuantParams CommonQuantParams;
624 
629 
635 
644 
655 
656  /*
657  * Note: The qindex per superblock may have a delta from the qindex obtained
658  * at frame level from parameters above, based on 'cm->delta_q_info'.
659  */
660 
668  int16_t y_dequant_QTX[MAX_SEGMENTS][2];
669  int16_t u_dequant_QTX[MAX_SEGMENTS][2];
670  int16_t v_dequant_QTX[MAX_SEGMENTS][2];
680  const qm_val_t *giqmatrix[NUM_QM_LEVELS][3][TX_SIZES_ALL];
684  const qm_val_t *gqmatrix[NUM_QM_LEVELS][3][TX_SIZES_ALL];
694  const qm_val_t *y_iqmatrix[MAX_SEGMENTS][TX_SIZES_ALL];
698  const qm_val_t *u_iqmatrix[MAX_SEGMENTS][TX_SIZES_ALL];
702  const qm_val_t *v_iqmatrix[MAX_SEGMENTS][TX_SIZES_ALL];
723 };
724 
725 typedef struct CommonContexts CommonContexts;
734  PARTITION_CONTEXT **partition;
735 
744  ENTROPY_CONTEXT **entropy[MAX_MB_PLANE];
745 
752  TXFM_CONTEXT **txfm;
753 
761 };
762 
766 typedef struct AV1Common {
770  CurrentFrame current_frame;
774  struct aom_internal_error_info *error;
775 
791  int width;
792  int height;
824 
831  uint32_t buffer_removal_times[MAX_NUM_OPERATING_POINTS + 1];
838 
842  RefCntBuffer *prev_frame;
843 
848  RefCntBuffer *cur_frame;
849 
870  int remapped_ref_idx[REF_FRAMES];
871 
877  struct scale_factors sf_identity;
878 
885  struct scale_factors ref_scale_factors[REF_FRAMES];
886 
894  RefCntBuffer *ref_frame_map[REF_FRAMES];
895 
902 
910 
917 
922 
927 
928 #if CONFIG_ENTROPY_STATS
929 
932  int coef_cdf_category;
933 #endif // CONFIG_ENTROPY_STATS
934 
939 
943  struct segmentation seg;
944 
949 
954  loop_filter_info_n lf_info;
955  struct loopfilter lf;
962  RestorationInfo rst_info[MAX_MB_PLANE];
963  int32_t *rst_tmpbuf;
964  RestorationLineBuffers *rlbs;
972 
976  aom_film_grain_t film_grain_params;
977 
981  DeltaQInfo delta_q_info;
982 
986  WarpedMotionParams global_motion[REF_FRAMES];
987 
992  SequenceHeader *seq_params;
993 
997  FRAME_CONTEXT *fc;
1003  FRAME_CONTEXT *default_frame_context;
1004 
1009 
1013  BufferPool *buffer_pool;
1014 
1022 
1028  int ref_frame_id[REF_FRAMES];
1038  TPL_MV_REF *tpl_mvs;
1047  int ref_frame_sign_bias[REF_FRAMES];
1053  int8_t ref_frame_side[REF_FRAMES];
1054 
1060 
1066 
1067 #if TXCOEFF_TIMER
1068  int64_t cum_txcoeff_timer;
1069  int64_t txcoeff_timer;
1070  int txb_count;
1071 #endif // TXCOEFF_TIMER
1072 
1073 #if TXCOEFF_COST_TIMER
1074  int64_t cum_txcoeff_cost_timer;
1075  int64_t txcoeff_cost_timer;
1076  int64_t txcoeff_cost_count;
1077 #endif // TXCOEFF_COST_TIMER
1078 } AV1_COMMON;
1079 
1082 // TODO(hkuang): Don't need to lock the whole pool after implementing atomic
1083 // frame reference count.
1084 static void lock_buffer_pool(BufferPool *const pool) {
1085 #if CONFIG_MULTITHREAD
1086  pthread_mutex_lock(&pool->pool_mutex);
1087 #else
1088  (void)pool;
1089 #endif
1090 }
1091 
1092 static void unlock_buffer_pool(BufferPool *const pool) {
1093 #if CONFIG_MULTITHREAD
1094  pthread_mutex_unlock(&pool->pool_mutex);
1095 #else
1096  (void)pool;
1097 #endif
1098 }
1099 
1100 static inline YV12_BUFFER_CONFIG *get_ref_frame(AV1_COMMON *cm, int index) {
1101  if (index < 0 || index >= REF_FRAMES) return NULL;
1102  if (cm->ref_frame_map[index] == NULL) return NULL;
1103  return &cm->ref_frame_map[index]->buf;
1104 }
1105 
1106 static inline int get_free_fb(AV1_COMMON *cm) {
1107  RefCntBuffer *const frame_bufs = cm->buffer_pool->frame_bufs;
1108  int i;
1109 
1110  lock_buffer_pool(cm->buffer_pool);
1111  const int num_frame_bufs = cm->buffer_pool->num_frame_bufs;
1112  for (i = 0; i < num_frame_bufs; ++i)
1113  if (frame_bufs[i].ref_count == 0) break;
1114 
1115  if (i != num_frame_bufs) {
1116  if (frame_bufs[i].buf.use_external_reference_buffers) {
1117  // If this frame buffer's y_buffer, u_buffer, and v_buffer point to the
1118  // external reference buffers. Restore the buffer pointers to point to the
1119  // internally allocated memory.
1120  YV12_BUFFER_CONFIG *ybf = &frame_bufs[i].buf;
1121  ybf->y_buffer = ybf->store_buf_adr[0];
1122  ybf->u_buffer = ybf->store_buf_adr[1];
1123  ybf->v_buffer = ybf->store_buf_adr[2];
1124  ybf->use_external_reference_buffers = 0;
1125  }
1126 
1127  frame_bufs[i].ref_count = 1;
1128  } else {
1129  // We should never run out of free buffers. If this assertion fails, there
1130  // is a reference leak.
1131  assert(0 && "Ran out of free frame buffers. Likely a reference leak.");
1132  // Reset i to be INVALID_IDX to indicate no free buffer found.
1133  i = INVALID_IDX;
1134  }
1135 
1136  unlock_buffer_pool(cm->buffer_pool);
1137  return i;
1138 }
1139 
1140 static inline RefCntBuffer *assign_cur_frame_new_fb(AV1_COMMON *const cm) {
1141  // Release the previously-used frame-buffer
1142  if (cm->cur_frame != NULL) {
1143  --cm->cur_frame->ref_count;
1144  cm->cur_frame = NULL;
1145  }
1146 
1147  // Assign a new framebuffer
1148  const int new_fb_idx = get_free_fb(cm);
1149  if (new_fb_idx == INVALID_IDX) return NULL;
1150 
1151  cm->cur_frame = &cm->buffer_pool->frame_bufs[new_fb_idx];
1152 #if CONFIG_AV1_ENCODER && !CONFIG_REALTIME_ONLY
1153  aom_invalidate_pyramid(cm->cur_frame->buf.y_pyramid);
1154  av1_invalidate_corner_list(cm->cur_frame->buf.corners);
1155 #endif // CONFIG_AV1_ENCODER && !CONFIG_REALTIME_ONLY
1156  av1_zero(cm->cur_frame->interp_filter_selected);
1157  return cm->cur_frame;
1158 }
1159 
1160 // Modify 'lhs_ptr' to reference the buffer at 'rhs_ptr', and update the ref
1161 // counts accordingly.
1162 static inline void assign_frame_buffer_p(RefCntBuffer **lhs_ptr,
1163  RefCntBuffer *rhs_ptr) {
1164  RefCntBuffer *const old_ptr = *lhs_ptr;
1165  if (old_ptr != NULL) {
1166  assert(old_ptr->ref_count > 0);
1167  // One less reference to the buffer at 'old_ptr', so decrease ref count.
1168  --old_ptr->ref_count;
1169  }
1170 
1171  *lhs_ptr = rhs_ptr;
1172  // One more reference to the buffer at 'rhs_ptr', so increase ref count.
1173  ++rhs_ptr->ref_count;
1174 }
1175 
1176 static inline int frame_is_intra_only(const AV1_COMMON *const cm) {
1177  return cm->current_frame.frame_type == KEY_FRAME ||
1178  cm->current_frame.frame_type == INTRA_ONLY_FRAME;
1179 }
1180 
1181 static inline int frame_is_sframe(const AV1_COMMON *cm) {
1182  return cm->current_frame.frame_type == S_FRAME;
1183 }
1184 
1185 // These functions take a reference frame label between LAST_FRAME and
1186 // EXTREF_FRAME inclusive. Note that this is different to the indexing
1187 // previously used by the frame_refs[] array.
1188 static inline int get_ref_frame_map_idx(const AV1_COMMON *const cm,
1189  const MV_REFERENCE_FRAME ref_frame) {
1190  return (ref_frame >= LAST_FRAME && ref_frame <= EXTREF_FRAME)
1191  ? cm->remapped_ref_idx[ref_frame - LAST_FRAME]
1192  : INVALID_IDX;
1193 }
1194 
1195 static inline RefCntBuffer *get_ref_frame_buf(
1196  const AV1_COMMON *const cm, const MV_REFERENCE_FRAME ref_frame) {
1197  const int map_idx = get_ref_frame_map_idx(cm, ref_frame);
1198  return (map_idx != INVALID_IDX) ? cm->ref_frame_map[map_idx] : NULL;
1199 }
1200 
1201 // Both const and non-const versions of this function are provided so that it
1202 // can be used with a const AV1_COMMON if needed.
1203 static inline const struct scale_factors *get_ref_scale_factors_const(
1204  const AV1_COMMON *const cm, const MV_REFERENCE_FRAME ref_frame) {
1205  const int map_idx = get_ref_frame_map_idx(cm, ref_frame);
1206  return (map_idx != INVALID_IDX) ? &cm->ref_scale_factors[map_idx] : NULL;
1207 }
1208 
1209 static inline struct scale_factors *get_ref_scale_factors(
1210  AV1_COMMON *const cm, const MV_REFERENCE_FRAME ref_frame) {
1211  const int map_idx = get_ref_frame_map_idx(cm, ref_frame);
1212  return (map_idx != INVALID_IDX) ? &cm->ref_scale_factors[map_idx] : NULL;
1213 }
1214 
1215 static inline RefCntBuffer *get_primary_ref_frame_buf(
1216  const AV1_COMMON *const cm) {
1217  const int primary_ref_frame = cm->features.primary_ref_frame;
1218  if (primary_ref_frame == PRIMARY_REF_NONE) return NULL;
1219  const int map_idx = get_ref_frame_map_idx(cm, primary_ref_frame + 1);
1220  return (map_idx != INVALID_IDX) ? cm->ref_frame_map[map_idx] : NULL;
1221 }
1222 
1223 // Returns 1 if this frame might allow mvs from some reference frame.
1224 static inline int frame_might_allow_ref_frame_mvs(const AV1_COMMON *cm) {
1225  return !cm->features.error_resilient_mode &&
1226  cm->seq_params->order_hint_info.enable_ref_frame_mvs &&
1227  cm->seq_params->order_hint_info.enable_order_hint &&
1228  !frame_is_intra_only(cm);
1229 }
1230 
1231 // Returns 1 if this frame might use warped_motion
1232 static inline int frame_might_allow_warped_motion(const AV1_COMMON *cm) {
1233  return !cm->features.error_resilient_mode && !frame_is_intra_only(cm) &&
1234  cm->seq_params->enable_warped_motion;
1235 }
1236 
1237 static inline void ensure_mv_buffer(RefCntBuffer *buf, AV1_COMMON *cm) {
1238  const int buf_rows = buf->mi_rows;
1239  const int buf_cols = buf->mi_cols;
1240  const CommonModeInfoParams *const mi_params = &cm->mi_params;
1241 
1242  if (buf->mvs == NULL || buf_rows != mi_params->mi_rows ||
1243  buf_cols != mi_params->mi_cols) {
1244  aom_free(buf->mvs);
1245  buf->mi_rows = mi_params->mi_rows;
1246  buf->mi_cols = mi_params->mi_cols;
1247  CHECK_MEM_ERROR(cm, buf->mvs,
1248  (MV_REF *)aom_calloc(((mi_params->mi_rows + 1) >> 1) *
1249  ((mi_params->mi_cols + 1) >> 1),
1250  sizeof(*buf->mvs)));
1251  aom_free(buf->seg_map);
1252  CHECK_MEM_ERROR(
1253  cm, buf->seg_map,
1254  (uint8_t *)aom_calloc(mi_params->mi_rows * mi_params->mi_cols,
1255  sizeof(*buf->seg_map)));
1256  }
1257 
1258  const int mem_size =
1259  ((mi_params->mi_rows + MAX_MIB_SIZE) >> 1) * (mi_params->mi_stride >> 1);
1260 
1261  if (cm->tpl_mvs == NULL || cm->tpl_mvs_mem_size < mem_size) {
1262  aom_free(cm->tpl_mvs);
1263  CHECK_MEM_ERROR(cm, cm->tpl_mvs,
1264  (TPL_MV_REF *)aom_calloc(mem_size, sizeof(*cm->tpl_mvs)));
1265  cm->tpl_mvs_mem_size = mem_size;
1266  }
1267 }
1268 
1269 #if !CONFIG_REALTIME_ONLY || CONFIG_AV1_DECODER
1270 void cfl_init(CFL_CTX *cfl, const SequenceHeader *seq_params);
1271 #endif
1272 
1273 static inline int av1_num_planes(const AV1_COMMON *cm) {
1274  return cm->seq_params->monochrome ? 1 : MAX_MB_PLANE;
1275 }
1276 
1277 static inline void av1_init_above_context(CommonContexts *above_contexts,
1278  int num_planes, int tile_row,
1279  MACROBLOCKD *xd) {
1280  for (int i = 0; i < num_planes; ++i) {
1281  xd->above_entropy_context[i] = above_contexts->entropy[i][tile_row];
1282  }
1283  xd->above_partition_context = above_contexts->partition[tile_row];
1284  xd->above_txfm_context = above_contexts->txfm[tile_row];
1285 }
1286 
1287 static inline void av1_init_macroblockd(AV1_COMMON *cm, MACROBLOCKD *xd) {
1288  const int num_planes = av1_num_planes(cm);
1289  const CommonQuantParams *const quant_params = &cm->quant_params;
1290 
1291  for (int i = 0; i < num_planes; ++i) {
1292  if (xd->plane[i].plane_type == PLANE_TYPE_Y) {
1293  memcpy(xd->plane[i].seg_dequant_QTX, quant_params->y_dequant_QTX,
1294  sizeof(quant_params->y_dequant_QTX));
1295  memcpy(xd->plane[i].seg_iqmatrix, quant_params->y_iqmatrix,
1296  sizeof(quant_params->y_iqmatrix));
1297 
1298  } else {
1299  if (i == AOM_PLANE_U) {
1300  memcpy(xd->plane[i].seg_dequant_QTX, quant_params->u_dequant_QTX,
1301  sizeof(quant_params->u_dequant_QTX));
1302  memcpy(xd->plane[i].seg_iqmatrix, quant_params->u_iqmatrix,
1303  sizeof(quant_params->u_iqmatrix));
1304  } else {
1305  memcpy(xd->plane[i].seg_dequant_QTX, quant_params->v_dequant_QTX,
1306  sizeof(quant_params->v_dequant_QTX));
1307  memcpy(xd->plane[i].seg_iqmatrix, quant_params->v_iqmatrix,
1308  sizeof(quant_params->v_iqmatrix));
1309  }
1310  }
1311  }
1312  xd->mi_stride = cm->mi_params.mi_stride;
1313  xd->error_info = cm->error;
1314 #if !CONFIG_REALTIME_ONLY || CONFIG_AV1_DECODER
1315  cfl_init(&xd->cfl, cm->seq_params);
1316 #endif
1317 }
1318 
1319 static inline void set_entropy_context(MACROBLOCKD *xd, int mi_row, int mi_col,
1320  const int num_planes) {
1321  int i;
1322  int row_offset = mi_row;
1323  int col_offset = mi_col;
1324  for (i = 0; i < num_planes; ++i) {
1325  struct macroblockd_plane *const pd = &xd->plane[i];
1326  // Offset the buffer pointer
1327  const BLOCK_SIZE bsize = xd->mi[0]->bsize;
1328  if (pd->subsampling_y && (mi_row & 0x01) && (mi_size_high[bsize] == 1))
1329  row_offset = mi_row - 1;
1330  if (pd->subsampling_x && (mi_col & 0x01) && (mi_size_wide[bsize] == 1))
1331  col_offset = mi_col - 1;
1332  int above_idx = col_offset;
1333  int left_idx = row_offset & MAX_MIB_MASK;
1334  pd->above_entropy_context =
1335  &xd->above_entropy_context[i][above_idx >> pd->subsampling_x];
1336  pd->left_entropy_context =
1337  &xd->left_entropy_context[i][left_idx >> pd->subsampling_y];
1338  }
1339 }
1340 
1341 static inline int calc_mi_size(int len) {
1342  // len is in mi units. Align to a multiple of SBs.
1343  return ALIGN_POWER_OF_TWO(len, MAX_MIB_SIZE_LOG2);
1344 }
1345 
1346 static inline void set_plane_n4(MACROBLOCKD *const xd, int bw, int bh,
1347  const int num_planes) {
1348  int i;
1349  for (i = 0; i < num_planes; i++) {
1350  xd->plane[i].width = (bw * MI_SIZE) >> xd->plane[i].subsampling_x;
1351  xd->plane[i].height = (bh * MI_SIZE) >> xd->plane[i].subsampling_y;
1352 
1353  xd->plane[i].width = AOMMAX(xd->plane[i].width, 4);
1354  xd->plane[i].height = AOMMAX(xd->plane[i].height, 4);
1355  }
1356 }
1357 
1358 static inline void set_mi_row_col(MACROBLOCKD *xd, const TileInfo *const tile,
1359  int mi_row, int bh, int mi_col, int bw,
1360  int mi_rows, int mi_cols) {
1361  xd->mb_to_top_edge = -GET_MV_SUBPEL(mi_row * MI_SIZE);
1362  xd->mb_to_bottom_edge = GET_MV_SUBPEL((mi_rows - bh - mi_row) * MI_SIZE);
1363  xd->mb_to_left_edge = -GET_MV_SUBPEL((mi_col * MI_SIZE));
1364  xd->mb_to_right_edge = GET_MV_SUBPEL((mi_cols - bw - mi_col) * MI_SIZE);
1365 
1366  xd->mi_row = mi_row;
1367  xd->mi_col = mi_col;
1368 
1369  // Are edges available for intra prediction?
1370  xd->up_available = (mi_row > tile->mi_row_start);
1371 
1372  const int ss_x = xd->plane[1].subsampling_x;
1373  const int ss_y = xd->plane[1].subsampling_y;
1374 
1375  xd->left_available = (mi_col > tile->mi_col_start);
1378  if (ss_x && bw < mi_size_wide[BLOCK_8X8])
1379  xd->chroma_left_available = (mi_col - 1) > tile->mi_col_start;
1380  if (ss_y && bh < mi_size_high[BLOCK_8X8])
1381  xd->chroma_up_available = (mi_row - 1) > tile->mi_row_start;
1382  if (xd->up_available) {
1383  xd->above_mbmi = xd->mi[-xd->mi_stride];
1384  } else {
1385  xd->above_mbmi = NULL;
1386  }
1387 
1388  if (xd->left_available) {
1389  xd->left_mbmi = xd->mi[-1];
1390  } else {
1391  xd->left_mbmi = NULL;
1392  }
1393 
1394  const int chroma_ref = ((mi_row & 0x01) || !(bh & 0x01) || !ss_y) &&
1395  ((mi_col & 0x01) || !(bw & 0x01) || !ss_x);
1396  xd->is_chroma_ref = chroma_ref;
1397  if (chroma_ref) {
1398  // To help calculate the "above" and "left" chroma blocks, note that the
1399  // current block may cover multiple luma blocks (e.g., if partitioned into
1400  // 4x4 luma blocks).
1401  // First, find the top-left-most luma block covered by this chroma block
1402  MB_MODE_INFO **base_mi =
1403  &xd->mi[-(mi_row & ss_y) * xd->mi_stride - (mi_col & ss_x)];
1404 
1405  // Then, we consider the luma region covered by the left or above 4x4 chroma
1406  // prediction. We want to point to the chroma reference block in that
1407  // region, which is the bottom-right-most mi unit.
1408  // This leads to the following offsets:
1409  MB_MODE_INFO *chroma_above_mi =
1410  xd->chroma_up_available ? base_mi[-xd->mi_stride + ss_x] : NULL;
1411  xd->chroma_above_mbmi = chroma_above_mi;
1412 
1413  MB_MODE_INFO *chroma_left_mi =
1414  xd->chroma_left_available ? base_mi[ss_y * xd->mi_stride - 1] : NULL;
1415  xd->chroma_left_mbmi = chroma_left_mi;
1416  }
1417 
1418  xd->height = bh;
1419  xd->width = bw;
1420 
1421  xd->is_last_vertical_rect = 0;
1422  if (xd->width < xd->height) {
1423  if (!((mi_col + xd->width) & (xd->height - 1))) {
1424  xd->is_last_vertical_rect = 1;
1425  }
1426  }
1427 
1428  xd->is_first_horizontal_rect = 0;
1429  if (xd->width > xd->height)
1430  if (!(mi_row & (xd->width - 1))) xd->is_first_horizontal_rect = 1;
1431 }
1432 
1433 static inline aom_cdf_prob *get_y_mode_cdf(FRAME_CONTEXT *tile_ctx,
1434  const MB_MODE_INFO *above_mi,
1435  const MB_MODE_INFO *left_mi) {
1436  const PREDICTION_MODE above = av1_above_block_mode(above_mi);
1437  const PREDICTION_MODE left = av1_left_block_mode(left_mi);
1438  const int above_ctx = intra_mode_context[above];
1439  const int left_ctx = intra_mode_context[left];
1440  return tile_ctx->kf_y_cdf[above_ctx][left_ctx];
1441 }
1442 
1443 static inline void update_partition_context(MACROBLOCKD *xd, int mi_row,
1444  int mi_col, BLOCK_SIZE subsize,
1445  BLOCK_SIZE bsize) {
1446  PARTITION_CONTEXT *const above_ctx = xd->above_partition_context + mi_col;
1447  PARTITION_CONTEXT *const left_ctx =
1448  xd->left_partition_context + (mi_row & MAX_MIB_MASK);
1449 
1450  const int bw = mi_size_wide[bsize];
1451  const int bh = mi_size_high[bsize];
1452  memset(above_ctx, partition_context_lookup[subsize].above, bw);
1453  memset(left_ctx, partition_context_lookup[subsize].left, bh);
1454 }
1455 
1456 static inline int is_chroma_reference(int mi_row, int mi_col, BLOCK_SIZE bsize,
1457  int subsampling_x, int subsampling_y) {
1458  assert(bsize < BLOCK_SIZES_ALL);
1459  const int bw = mi_size_wide[bsize];
1460  const int bh = mi_size_high[bsize];
1461  int ref_pos = ((mi_row & 0x01) || !(bh & 0x01) || !subsampling_y) &&
1462  ((mi_col & 0x01) || !(bw & 0x01) || !subsampling_x);
1463  return ref_pos;
1464 }
1465 
1466 static inline aom_cdf_prob cdf_element_prob(const aom_cdf_prob *cdf,
1467  size_t element) {
1468  assert(cdf != NULL);
1469  return (element > 0 ? cdf[element - 1] : CDF_PROB_TOP) - cdf[element];
1470 }
1471 
1472 static inline void partition_gather_horz_alike(aom_cdf_prob *out,
1473  const aom_cdf_prob *const in,
1474  BLOCK_SIZE bsize) {
1475  (void)bsize;
1476  out[0] = CDF_PROB_TOP;
1477  out[0] -= cdf_element_prob(in, PARTITION_HORZ);
1478  out[0] -= cdf_element_prob(in, PARTITION_SPLIT);
1479  out[0] -= cdf_element_prob(in, PARTITION_HORZ_A);
1480  out[0] -= cdf_element_prob(in, PARTITION_HORZ_B);
1481  out[0] -= cdf_element_prob(in, PARTITION_VERT_A);
1482  if (bsize != BLOCK_128X128) out[0] -= cdf_element_prob(in, PARTITION_HORZ_4);
1483  out[0] = AOM_ICDF(out[0]);
1484  out[1] = AOM_ICDF(CDF_PROB_TOP);
1485 }
1486 
1487 static inline void partition_gather_vert_alike(aom_cdf_prob *out,
1488  const aom_cdf_prob *const in,
1489  BLOCK_SIZE bsize) {
1490  (void)bsize;
1491  out[0] = CDF_PROB_TOP;
1492  out[0] -= cdf_element_prob(in, PARTITION_VERT);
1493  out[0] -= cdf_element_prob(in, PARTITION_SPLIT);
1494  out[0] -= cdf_element_prob(in, PARTITION_HORZ_A);
1495  out[0] -= cdf_element_prob(in, PARTITION_VERT_A);
1496  out[0] -= cdf_element_prob(in, PARTITION_VERT_B);
1497  if (bsize != BLOCK_128X128) out[0] -= cdf_element_prob(in, PARTITION_VERT_4);
1498  out[0] = AOM_ICDF(out[0]);
1499  out[1] = AOM_ICDF(CDF_PROB_TOP);
1500 }
1501 
1502 static inline void update_ext_partition_context(MACROBLOCKD *xd, int mi_row,
1503  int mi_col, BLOCK_SIZE subsize,
1504  BLOCK_SIZE bsize,
1505  PARTITION_TYPE partition) {
1506  if (bsize >= BLOCK_8X8) {
1507  const int hbs = mi_size_wide[bsize] / 2;
1508  BLOCK_SIZE bsize2 = get_partition_subsize(bsize, PARTITION_SPLIT);
1509  switch (partition) {
1510  case PARTITION_SPLIT:
1511  if (bsize != BLOCK_8X8) break;
1512  AOM_FALLTHROUGH_INTENDED;
1513  case PARTITION_NONE:
1514  case PARTITION_HORZ:
1515  case PARTITION_VERT:
1516  case PARTITION_HORZ_4:
1517  case PARTITION_VERT_4:
1518  update_partition_context(xd, mi_row, mi_col, subsize, bsize);
1519  break;
1520  case PARTITION_HORZ_A:
1521  update_partition_context(xd, mi_row, mi_col, bsize2, subsize);
1522  update_partition_context(xd, mi_row + hbs, mi_col, subsize, subsize);
1523  break;
1524  case PARTITION_HORZ_B:
1525  update_partition_context(xd, mi_row, mi_col, subsize, subsize);
1526  update_partition_context(xd, mi_row + hbs, mi_col, bsize2, subsize);
1527  break;
1528  case PARTITION_VERT_A:
1529  update_partition_context(xd, mi_row, mi_col, bsize2, subsize);
1530  update_partition_context(xd, mi_row, mi_col + hbs, subsize, subsize);
1531  break;
1532  case PARTITION_VERT_B:
1533  update_partition_context(xd, mi_row, mi_col, subsize, subsize);
1534  update_partition_context(xd, mi_row, mi_col + hbs, bsize2, subsize);
1535  break;
1536  default: assert(0 && "Invalid partition type");
1537  }
1538  }
1539 }
1540 
1541 static inline int partition_plane_context(const MACROBLOCKD *xd, int mi_row,
1542  int mi_col, BLOCK_SIZE bsize) {
1543  const PARTITION_CONTEXT *above_ctx = xd->above_partition_context + mi_col;
1544  const PARTITION_CONTEXT *left_ctx =
1545  xd->left_partition_context + (mi_row & MAX_MIB_MASK);
1546  // Minimum partition point is 8x8. Offset the bsl accordingly.
1547  const int bsl = mi_size_wide_log2[bsize] - mi_size_wide_log2[BLOCK_8X8];
1548  int above = (*above_ctx >> bsl) & 1, left = (*left_ctx >> bsl) & 1;
1549 
1550  assert(mi_size_wide_log2[bsize] == mi_size_high_log2[bsize]);
1551  assert(bsl >= 0);
1552 
1553  return (left * 2 + above) + bsl * PARTITION_PLOFFSET;
1554 }
1555 
1556 // Return the number of elements in the partition CDF when
1557 // partitioning the (square) block with luma block size of bsize.
1558 static inline int partition_cdf_length(BLOCK_SIZE bsize) {
1559  if (bsize <= BLOCK_8X8)
1560  return PARTITION_TYPES;
1561  else if (bsize == BLOCK_128X128)
1562  return EXT_PARTITION_TYPES - 2;
1563  else
1564  return EXT_PARTITION_TYPES;
1565 }
1566 
1567 static inline int max_block_wide(const MACROBLOCKD *xd, BLOCK_SIZE bsize,
1568  int plane) {
1569  assert(bsize < BLOCK_SIZES_ALL);
1570  int max_blocks_wide = block_size_wide[bsize];
1571 
1572  if (xd->mb_to_right_edge < 0) {
1573  const struct macroblockd_plane *const pd = &xd->plane[plane];
1574  max_blocks_wide += xd->mb_to_right_edge >> (3 + pd->subsampling_x);
1575  }
1576 
1577  // Scale the width in the transform block unit.
1578  return max_blocks_wide >> MI_SIZE_LOG2;
1579 }
1580 
1581 static inline int max_block_high(const MACROBLOCKD *xd, BLOCK_SIZE bsize,
1582  int plane) {
1583  int max_blocks_high = block_size_high[bsize];
1584 
1585  if (xd->mb_to_bottom_edge < 0) {
1586  const struct macroblockd_plane *const pd = &xd->plane[plane];
1587  max_blocks_high += xd->mb_to_bottom_edge >> (3 + pd->subsampling_y);
1588  }
1589 
1590  // Scale the height in the transform block unit.
1591  return max_blocks_high >> MI_SIZE_LOG2;
1592 }
1593 
1594 static inline void av1_zero_above_context(AV1_COMMON *const cm,
1595  const MACROBLOCKD *xd,
1596  int mi_col_start, int mi_col_end,
1597  const int tile_row) {
1598  const SequenceHeader *const seq_params = cm->seq_params;
1599  const int num_planes = av1_num_planes(cm);
1600  const int width = mi_col_end - mi_col_start;
1601  const int aligned_width =
1602  ALIGN_POWER_OF_TWO(width, seq_params->mib_size_log2);
1603  const int offset_y = mi_col_start;
1604  const int width_y = aligned_width;
1605  const int offset_uv = offset_y >> seq_params->subsampling_x;
1606  const int width_uv = width_y >> seq_params->subsampling_x;
1607  CommonContexts *const above_contexts = &cm->above_contexts;
1608 
1609  av1_zero_array(above_contexts->entropy[0][tile_row] + offset_y, width_y);
1610  if (num_planes > 1) {
1611  if (above_contexts->entropy[1][tile_row] &&
1612  above_contexts->entropy[2][tile_row]) {
1613  av1_zero_array(above_contexts->entropy[1][tile_row] + offset_uv,
1614  width_uv);
1615  av1_zero_array(above_contexts->entropy[2][tile_row] + offset_uv,
1616  width_uv);
1617  } else {
1618  aom_internal_error(xd->error_info, AOM_CODEC_CORRUPT_FRAME,
1619  "Invalid value of planes");
1620  }
1621  }
1622 
1623  av1_zero_array(above_contexts->partition[tile_row] + mi_col_start,
1624  aligned_width);
1625 
1626  memset(above_contexts->txfm[tile_row] + mi_col_start,
1627  tx_size_wide[TX_SIZES_LARGEST], aligned_width * sizeof(TXFM_CONTEXT));
1628 }
1629 
1630 static inline void av1_zero_left_context(MACROBLOCKD *const xd) {
1631  av1_zero(xd->left_entropy_context);
1632  av1_zero(xd->left_partition_context);
1633 
1634  memset(xd->left_txfm_context_buffer, tx_size_high[TX_SIZES_LARGEST],
1635  sizeof(xd->left_txfm_context_buffer));
1636 }
1637 
1638 static inline void set_txfm_ctx(TXFM_CONTEXT *txfm_ctx, uint8_t txs, int len) {
1639  int i;
1640  for (i = 0; i < len; ++i) txfm_ctx[i] = txs;
1641 }
1642 
1643 static inline void set_txfm_ctxs(TX_SIZE tx_size, int n4_w, int n4_h, int skip,
1644  const MACROBLOCKD *xd) {
1645  uint8_t bw = tx_size_wide[tx_size];
1646  uint8_t bh = tx_size_high[tx_size];
1647 
1648  if (skip) {
1649  bw = n4_w * MI_SIZE;
1650  bh = n4_h * MI_SIZE;
1651  }
1652 
1653  set_txfm_ctx(xd->above_txfm_context, bw, n4_w);
1654  set_txfm_ctx(xd->left_txfm_context, bh, n4_h);
1655 }
1656 
1657 static inline int get_mi_grid_idx(const CommonModeInfoParams *const mi_params,
1658  int mi_row, int mi_col) {
1659  return mi_row * mi_params->mi_stride + mi_col;
1660 }
1661 
1662 static inline int get_alloc_mi_idx(const CommonModeInfoParams *const mi_params,
1663  int mi_row, int mi_col) {
1664  const int mi_alloc_size_1d = mi_size_wide[mi_params->mi_alloc_bsize];
1665  const int mi_alloc_row = mi_row / mi_alloc_size_1d;
1666  const int mi_alloc_col = mi_col / mi_alloc_size_1d;
1667 
1668  return mi_alloc_row * mi_params->mi_alloc_stride + mi_alloc_col;
1669 }
1670 
1671 // For this partition block, set pointers in mi_params->mi_grid_base and xd->mi.
1672 static inline void set_mi_offsets(const CommonModeInfoParams *const mi_params,
1673  MACROBLOCKD *const xd, int mi_row,
1674  int mi_col) {
1675  // 'mi_grid_base' should point to appropriate memory in 'mi'.
1676  const int mi_grid_idx = get_mi_grid_idx(mi_params, mi_row, mi_col);
1677  const int mi_alloc_idx = get_alloc_mi_idx(mi_params, mi_row, mi_col);
1678  mi_params->mi_grid_base[mi_grid_idx] = &mi_params->mi_alloc[mi_alloc_idx];
1679  // 'xd->mi' should point to an offset in 'mi_grid_base';
1680  xd->mi = mi_params->mi_grid_base + mi_grid_idx;
1681  // 'xd->tx_type_map' should point to an offset in 'mi_params->tx_type_map'.
1682  xd->tx_type_map = mi_params->tx_type_map + mi_grid_idx;
1683  xd->tx_type_map_stride = mi_params->mi_stride;
1684 }
1685 
1686 static inline void txfm_partition_update(TXFM_CONTEXT *above_ctx,
1687  TXFM_CONTEXT *left_ctx,
1688  TX_SIZE tx_size, TX_SIZE txb_size) {
1689  BLOCK_SIZE bsize = txsize_to_bsize[txb_size];
1690  int bh = mi_size_high[bsize];
1691  int bw = mi_size_wide[bsize];
1692  uint8_t txw = tx_size_wide[tx_size];
1693  uint8_t txh = tx_size_high[tx_size];
1694  int i;
1695  for (i = 0; i < bh; ++i) left_ctx[i] = txh;
1696  for (i = 0; i < bw; ++i) above_ctx[i] = txw;
1697 }
1698 
1699 static inline TX_SIZE get_sqr_tx_size(int tx_dim) {
1700  switch (tx_dim) {
1701  case 128:
1702  case 64: return TX_64X64; break;
1703  case 32: return TX_32X32; break;
1704  case 16: return TX_16X16; break;
1705  case 8: return TX_8X8; break;
1706  default: return TX_4X4;
1707  }
1708 }
1709 
1710 static inline TX_SIZE get_tx_size(int width, int height) {
1711  if (width == height) {
1712  return get_sqr_tx_size(width);
1713  }
1714  if (width < height) {
1715  if (width + width == height) {
1716  switch (width) {
1717  case 4: return TX_4X8; break;
1718  case 8: return TX_8X16; break;
1719  case 16: return TX_16X32; break;
1720  case 32: return TX_32X64; break;
1721  }
1722  } else {
1723  switch (width) {
1724  case 4: return TX_4X16; break;
1725  case 8: return TX_8X32; break;
1726  case 16: return TX_16X64; break;
1727  }
1728  }
1729  } else {
1730  if (height + height == width) {
1731  switch (height) {
1732  case 4: return TX_8X4; break;
1733  case 8: return TX_16X8; break;
1734  case 16: return TX_32X16; break;
1735  case 32: return TX_64X32; break;
1736  }
1737  } else {
1738  switch (height) {
1739  case 4: return TX_16X4; break;
1740  case 8: return TX_32X8; break;
1741  case 16: return TX_64X16; break;
1742  }
1743  }
1744  }
1745  assert(0);
1746  return TX_4X4;
1747 }
1748 
1749 static inline int txfm_partition_context(const TXFM_CONTEXT *const above_ctx,
1750  const TXFM_CONTEXT *const left_ctx,
1751  BLOCK_SIZE bsize, TX_SIZE tx_size) {
1752  const uint8_t txw = tx_size_wide[tx_size];
1753  const uint8_t txh = tx_size_high[tx_size];
1754  const int above = *above_ctx < txw;
1755  const int left = *left_ctx < txh;
1756  int category = TXFM_PARTITION_CONTEXTS;
1757 
1758  // dummy return, not used by others.
1759  if (tx_size <= TX_4X4) return 0;
1760 
1761  TX_SIZE max_tx_size =
1762  get_sqr_tx_size(AOMMAX(block_size_wide[bsize], block_size_high[bsize]));
1763 
1764  if (max_tx_size >= TX_8X8) {
1765  category =
1766  (txsize_sqr_up_map[tx_size] != max_tx_size && max_tx_size > TX_8X8) +
1767  (TX_SIZES - 1 - max_tx_size) * 2;
1768  }
1769  assert(category != TXFM_PARTITION_CONTEXTS);
1770  return category * 3 + above + left;
1771 }
1772 
1773 // Compute the next partition in the direction of the sb_type stored in the mi
1774 // array, starting with bsize.
1775 static inline PARTITION_TYPE get_partition(const AV1_COMMON *const cm,
1776  int mi_row, int mi_col,
1777  BLOCK_SIZE bsize) {
1778  const CommonModeInfoParams *const mi_params = &cm->mi_params;
1779  if (mi_row >= mi_params->mi_rows || mi_col >= mi_params->mi_cols)
1780  return PARTITION_INVALID;
1781 
1782  const int offset = mi_row * mi_params->mi_stride + mi_col;
1783  MB_MODE_INFO **mi = mi_params->mi_grid_base + offset;
1784  const BLOCK_SIZE subsize = mi[0]->bsize;
1785 
1786  assert(bsize < BLOCK_SIZES_ALL);
1787 
1788  if (subsize == bsize) return PARTITION_NONE;
1789 
1790  const int bhigh = mi_size_high[bsize];
1791  const int bwide = mi_size_wide[bsize];
1792  const int sshigh = mi_size_high[subsize];
1793  const int sswide = mi_size_wide[subsize];
1794 
1795  if (bsize > BLOCK_8X8 && mi_row + bwide / 2 < mi_params->mi_rows &&
1796  mi_col + bhigh / 2 < mi_params->mi_cols) {
1797  // In this case, the block might be using an extended partition
1798  // type.
1799  const MB_MODE_INFO *const mbmi_right = mi[bwide / 2];
1800  const MB_MODE_INFO *const mbmi_below = mi[bhigh / 2 * mi_params->mi_stride];
1801 
1802  if (sswide == bwide) {
1803  // Smaller height but same width. Is PARTITION_HORZ_4, PARTITION_HORZ or
1804  // PARTITION_HORZ_B. To distinguish the latter two, check if the lower
1805  // half was split.
1806  if (sshigh * 4 == bhigh) return PARTITION_HORZ_4;
1807  assert(sshigh * 2 == bhigh);
1808 
1809  if (mbmi_below->bsize == subsize)
1810  return PARTITION_HORZ;
1811  else
1812  return PARTITION_HORZ_B;
1813  } else if (sshigh == bhigh) {
1814  // Smaller width but same height. Is PARTITION_VERT_4, PARTITION_VERT or
1815  // PARTITION_VERT_B. To distinguish the latter two, check if the right
1816  // half was split.
1817  if (sswide * 4 == bwide) return PARTITION_VERT_4;
1818  assert(sswide * 2 == bwide);
1819 
1820  if (mbmi_right->bsize == subsize)
1821  return PARTITION_VERT;
1822  else
1823  return PARTITION_VERT_B;
1824  } else {
1825  // Smaller width and smaller height. Might be PARTITION_SPLIT or could be
1826  // PARTITION_HORZ_A or PARTITION_VERT_A. If subsize isn't halved in both
1827  // dimensions, we immediately know this is a split (which will recurse to
1828  // get to subsize). Otherwise look down and to the right. With
1829  // PARTITION_VERT_A, the right block will have height bhigh; with
1830  // PARTITION_HORZ_A, the lower block with have width bwide. Otherwise
1831  // it's PARTITION_SPLIT.
1832  if (sswide * 2 != bwide || sshigh * 2 != bhigh) return PARTITION_SPLIT;
1833 
1834  if (mi_size_wide[mbmi_below->bsize] == bwide) return PARTITION_HORZ_A;
1835  if (mi_size_high[mbmi_right->bsize] == bhigh) return PARTITION_VERT_A;
1836 
1837  return PARTITION_SPLIT;
1838  }
1839  }
1840  const int vert_split = sswide < bwide;
1841  const int horz_split = sshigh < bhigh;
1842  const int split_idx = (vert_split << 1) | horz_split;
1843  assert(split_idx != 0);
1844 
1845  static const PARTITION_TYPE base_partitions[4] = {
1846  PARTITION_INVALID, PARTITION_HORZ, PARTITION_VERT, PARTITION_SPLIT
1847  };
1848 
1849  return base_partitions[split_idx];
1850 }
1851 
1852 static inline void set_sb_size(SequenceHeader *const seq_params,
1853  BLOCK_SIZE sb_size) {
1854  seq_params->sb_size = sb_size;
1855  seq_params->mib_size = mi_size_wide[seq_params->sb_size];
1856  seq_params->mib_size_log2 = mi_size_wide_log2[seq_params->sb_size];
1857 }
1858 
1859 // Returns true if the frame is fully lossless at the coded resolution.
1860 // Note: If super-resolution is used, such a frame will still NOT be lossless at
1861 // the upscaled resolution.
1862 static inline int is_coded_lossless(const AV1_COMMON *cm,
1863  const MACROBLOCKD *xd) {
1864  int coded_lossless = 1;
1865  if (cm->seg.enabled) {
1866  for (int i = 0; i < MAX_SEGMENTS; ++i) {
1867  if (!xd->lossless[i]) {
1868  coded_lossless = 0;
1869  break;
1870  }
1871  }
1872  } else {
1873  coded_lossless = xd->lossless[0];
1874  }
1875  return coded_lossless;
1876 }
1877 
1878 static inline int is_valid_seq_level_idx(AV1_LEVEL seq_level_idx) {
1879  return seq_level_idx == SEQ_LEVEL_MAX ||
1880  (seq_level_idx < SEQ_LEVELS &&
1881  // The following levels are currently undefined.
1882  seq_level_idx != SEQ_LEVEL_2_2 && seq_level_idx != SEQ_LEVEL_2_3 &&
1883  seq_level_idx != SEQ_LEVEL_3_2 && seq_level_idx != SEQ_LEVEL_3_3 &&
1884  seq_level_idx != SEQ_LEVEL_4_2 && seq_level_idx != SEQ_LEVEL_4_3
1885 #if !CONFIG_CWG_C013
1886  && seq_level_idx != SEQ_LEVEL_7_0 && seq_level_idx != SEQ_LEVEL_7_1 &&
1887  seq_level_idx != SEQ_LEVEL_7_2 && seq_level_idx != SEQ_LEVEL_7_3 &&
1888  seq_level_idx != SEQ_LEVEL_8_0 && seq_level_idx != SEQ_LEVEL_8_1 &&
1889  seq_level_idx != SEQ_LEVEL_8_2 && seq_level_idx != SEQ_LEVEL_8_3
1890 #endif
1891  );
1892 }
1893 
1896 #ifdef __cplusplus
1897 } // extern "C"
1898 #endif
1899 
1900 #endif // AOM_AV1_COMMON_AV1_COMMON_INT_H_
bool reduced_tx_set_used
Definition: av1_common_int.h:404
DeltaQInfo delta_q_info
Definition: av1_common_int.h:981
struct scale_factors sf_identity
Definition: av1_common_int.h:877
#define AOM_PLANE_U
Definition: aom_image.h:240
bool allow_warped_motion
Definition: av1_common_int.h:387
CdefInfo cdef_info
Definition: av1_common_int.h:971
YV12_BUFFER_CONFIG rst_frame
Definition: av1_common_int.h:965
int qmatrix_level_u
Definition: av1_common_int.h:720
void(* set_mb_mi)(struct CommonModeInfoParams *mi_params, int width, int height, BLOCK_SIZE min_partition_size)
Definition: av1_common_int.h:610
int log2_cols
Definition: av1_common_int.h:459
int u_ac_delta_q
Definition: av1_common_int.h:649
TPL_MV_REF * tpl_mvs
Definition: av1_common_int.h:1038
int show_frame
Definition: av1_common_int.h:901
int max_width_sb
Definition: av1_common_int.h:440
int spatial_layer_id
Definition: av1_common_int.h:1065
int mb_to_left_edge
Definition: blockd.h:677
bool allow_ref_frame_mvs
Definition: av1_common_int.h:391
const qm_val_t * u_iqmatrix[8][TX_SIZES_ALL]
Definition: av1_common_int.h:698
RefCntBuffer * prev_frame
Definition: av1_common_int.h:842
uint8_t superres_scale_denominator
Definition: av1_common_int.h:823
The coded data for this stream is corrupt or incomplete.
Definition: aom_codec.h:195
struct loopfilter lf
Definition: av1_common_int.h:955
int mi_row
Definition: blockd.h:575
FeatureFlags features
Definition: av1_common_int.h:921
int min_log2_cols
Definition: av1_common_int.h:468
int cdef_damping
CDEF damping factor.
Definition: av1_common_int.h:217
int min_inner_width
Definition: av1_common_int.h:446
TXFM_CONTEXT left_txfm_context_buffer[MAX_MIB_SIZE]
Definition: blockd.h:747
bool is_chroma_ref
Definition: blockd.h:601
TXFM_CONTEXT ** txfm
Definition: av1_common_int.h:752
struct macroblockd_plane plane[3]
Definition: blockd.h:606
TX_TYPE * tx_type_map
Definition: av1_common_int.h:585
void(* free_mi)(struct CommonModeInfoParams *mi_params)
Definition: av1_common_int.h:595
TX_MODE tx_mode
Definition: av1_common_int.h:416
FRAME_CONTEXT * fc
Definition: av1_common_int.h:997
int cdef_bits
Number of CDEF strength values in bits.
Definition: av1_common_int.h:225
size_t allocated_srcbuf_size
CDEF intermediate buffer size.
Definition: av1_common_int.h:215
enum aom_color_primaries aom_color_primaries_t
List of supported color primaries.
uint8_t * tx_type_map
Definition: blockd.h:666
int primary_ref_frame
Definition: av1_common_int.h:422
enum aom_matrix_coefficients aom_matrix_coefficients_t
List of supported matrix coefficients.
int mi_grid_size
Definition: av1_common_int.h:573
aom_film_grain_t film_grain_params
Definition: av1_common_int.h:976
External frame buffer.
Definition: aom_frame_buffer.h:40
bool using_qmatrix
Definition: av1_common_int.h:712
ENTROPY_CONTEXT ** entropy[3]
Definition: av1_common_int.h:744
MB_MODE_INFO ** mi_grid_base
Definition: av1_common_int.h:569
int remapped_ref_idx[REF_FRAMES]
Definition: av1_common_int.h:870
bool left_available
Definition: blockd.h:626
TXFM_CONTEXT * left_txfm_context
Definition: blockd.h:740
Contexts used for transmitting various symbols in the bitstream.
Definition: av1_common_int.h:729
int superres_upscaled_height
Definition: av1_common_int.h:816
bool is_first_horizontal_rect
Definition: blockd.h:792
int num_tile_rows
Definition: av1_common_int.h:759
int(* aom_get_frame_buffer_cb_fn_t)(void *priv, size_t min_size, aom_codec_frame_buffer_t *fb)
get frame buffer callback prototype
Definition: aom_frame_buffer.h:64
int mi_cols
Definition: av1_common_int.h:537
CommonQuantParams quant_params
Definition: av1_common_int.h:938
FRAME_CONTEXT * default_frame_context
Definition: av1_common_int.h:1003
bool all_lossless
Definition: av1_common_int.h:399
bool switchable_motion_mode
Definition: av1_common_int.h:415
int allocated_mi_rows
Number of rows in the frame in 4 pixel.
Definition: av1_common_int.h:227
int mb_to_right_edge
Definition: blockd.h:678
int lossless[8]
Definition: blockd.h:817
bool up_available
Definition: blockd.h:622
int current_frame_id
Definition: av1_common_int.h:1027
int16_t y_dequant_QTX[8][2]
Definition: av1_common_int.h:668
int(* aom_release_frame_buffer_cb_fn_t)(void *priv, aom_codec_frame_buffer_t *fb)
release frame buffer callback prototype
Definition: aom_frame_buffer.h:77
int u_dc_delta_q
Definition: av1_common_int.h:639
int nb_cdef_strengths
Number of CDEF strength values.
Definition: av1_common_int.h:219
struct aom_internal_error_info * error_info
Definition: blockd.h:838
int allocated_num_workers
Number of CDEF workers.
Definition: av1_common_int.h:229
PARTITION_CONTEXT * above_partition_context
Definition: blockd.h:718
bool allow_intrabc
Definition: av1_common_int.h:386
int y_dc_delta_q
Definition: av1_common_int.h:634
CommonModeInfoParams mi_params
Definition: av1_common_int.h:926
int mi_col
Definition: blockd.h:576
RestorationInfo rst_info[3]
Definition: av1_common_int.h:962
const qm_val_t * v_iqmatrix[8][TX_SIZES_ALL]
Definition: av1_common_int.h:702
MB_MODE_INFO * mi_alloc
Definition: av1_common_int.h:545
uint16_t * srcbuf
CDEF intermediate buffer.
Definition: av1_common_int.h:209
MB_MODE_INFO * chroma_left_mbmi
Definition: blockd.h:652
int min_log2
Definition: av1_common_int.h:484
bool allow_screen_content_tools
Definition: av1_common_int.h:385
int mi_alloc_size
Definition: av1_common_int.h:549
int v_ac_delta_q
Definition: av1_common_int.h:654
int height
Definition: av1_common_int.h:462
int showable_frame
Definition: av1_common_int.h:909
int mb_cols
Definition: av1_common_int.h:521
int width
Definition: av1_common_int.h:791
int16_t u_dequant_QTX[8][2]
Definition: av1_common_int.h:669
int tpl_mvs_mem_size
Definition: av1_common_int.h:1042
RefCntBuffer * ref_frame_map[REF_FRAMES]
Definition: av1_common_int.h:894
REFRESH_FRAME_CONTEXT_MODE refresh_frame_context
Definition: av1_common_int.h:431
ENTROPY_CONTEXT * above_entropy_context[3]
Definition: blockd.h:703
Params related to MB_MODE_INFO arrays and related info.
Definition: av1_common_int.h:511
int render_height
Definition: av1_common_int.h:803
const qm_val_t * giqmatrix[(1<< 4)][3][TX_SIZES_ALL]
Definition: av1_common_int.h:680
bool coded_lossless
Definition: av1_common_int.h:395
int log2_rows
Definition: av1_common_int.h:460
Frame level features.
Definition: av1_common_int.h:368
SequenceHeader * seq_params
Definition: av1_common_int.h:992
int ref_frame_id[REF_FRAMES]
Definition: av1_common_int.h:1028
int v_dc_delta_q
Definition: av1_common_int.h:643
Parameters related to quantization at the frame level.
Definition: av1_common_int.h:619
Parameters related to Restoration Info.
Definition: restoration.h:246
int mb_rows
Definition: av1_common_int.h:516
int col_start_sb[MAX_TILE_COLS+1]
Definition: av1_common_int.h:489
int mb_to_bottom_edge
Definition: blockd.h:680
CommonContexts above_contexts
Definition: av1_common_int.h:1021
bool allow_high_precision_mv
Definition: av1_common_int.h:377
WarpedMotionParams global_motion[REF_FRAMES]
Definition: av1_common_int.h:986
MB_MODE_INFO * above_mbmi
Definition: blockd.h:645
loop_filter_info_n lf_info
Definition: av1_common_int.h:954
BufferPool * buffer_pool
Definition: av1_common_int.h:1013
bool cur_frame_force_integer_mv
Definition: av1_common_int.h:381
int mi_rows
Definition: av1_common_int.h:532
bool chroma_left_available
Definition: blockd.h:634
uint8_t width
Definition: blockd.h:765
CommonTileParams tiles
Definition: av1_common_int.h:1008
CurrentFrame current_frame
Definition: av1_common_int.h:770
int render_width
Definition: av1_common_int.h:802
int uniform_spacing
Definition: av1_common_int.h:453
const qm_val_t * gqmatrix[(1<< 4)][3][TX_SIZES_ALL]
Definition: av1_common_int.h:684
YV12 frame buffer data structure.
Definition: yv12config.h:46
CFL_CTX cfl
Definition: blockd.h:894
RestorationLineBuffers * rlbs
Definition: av1_common_int.h:964
bool is_last_vertical_rect
Definition: blockd.h:787
int32_t * rst_tmpbuf
Definition: av1_common_int.h:963
Parameters related to CDEF.
Definition: av1_common_int.h:203
int min_log2_rows
Definition: av1_common_int.h:472
struct scale_factors ref_scale_factors[REF_FRAMES]
Definition: av1_common_int.h:885
MB_MODE_INFO ** mi
Definition: blockd.h:617
ENTROPY_CONTEXT left_entropy_context[3][MAX_MIB_SIZE]
Definition: blockd.h:710
RefCntBuffer * cur_frame
Definition: av1_common_int.h:848
Variables related to current coding block.
Definition: blockd.h:570
Params related to tiles.
Definition: av1_common_int.h:437
int num_mi_cols
Definition: av1_common_int.h:760
int rows
Definition: av1_common_int.h:439
int mi_alloc_stride
Definition: av1_common_int.h:553
int max_log2_cols
Definition: av1_common_int.h:476
int temporal_layer_id
Definition: av1_common_int.h:1059
bool chroma_up_available
Definition: blockd.h:630
int cols
Definition: av1_common_int.h:438
int mi_stride
Definition: av1_common_int.h:577
uint8_t height
Definition: blockd.h:766
enum aom_bit_depth aom_bit_depth_t
Bit depth for codecThis enumeration determines the bit depth of the codec.
int byte_alignment
Definition: av1_common_int.h:426
int16_t v_dequant_QTX[8][2]
Definition: av1_common_int.h:670
int sharpness
Definition: av1_common_int.h:628
uint8_t * last_frame_seg_map
Definition: av1_common_int.h:948
Top level common structure used by both encoder and decoder.
Definition: av1_common_int.h:766
enum aom_chroma_sample_position aom_chroma_sample_position_t
List of chroma sample positions.
BLOCK_SIZE bsize
The block size of the current coding block.
Definition: blockd.h:228
InterpFilter interp_filter
Definition: av1_common_int.h:417
Stores the prediction/txfm mode of the current coding block.
Definition: blockd.h:222
int row_start_sb[MAX_TILE_ROWS+1]
Definition: av1_common_int.h:494
struct segmentation seg
Definition: av1_common_int.h:943
unsigned int large_scale
Definition: av1_common_int.h:498
bool disable_cdf_update
Definition: av1_common_int.h:372
int superres_upscaled_width
Definition: av1_common_int.h:815
int tx_type_map_stride
Definition: blockd.h:671
int qmatrix_level_y
Definition: av1_common_int.h:719
BLOCK_SIZE mi_alloc_bsize
Definition: av1_common_int.h:560
int max_log2_rows
Definition: av1_common_int.h:480
int base_qindex
Definition: av1_common_int.h:623
TXFM_CONTEXT * above_txfm_context
Definition: blockd.h:733
const qm_val_t * y_iqmatrix[8][TX_SIZES_ALL]
Definition: av1_common_int.h:694
MB_MODE_INFO * left_mbmi
Definition: blockd.h:640
int max_height_sb
Definition: av1_common_int.h:441
MB_MODE_INFO * chroma_above_mbmi
Definition: blockd.h:659
int mb_to_top_edge
Definition: blockd.h:679
enum aom_transfer_characteristics aom_transfer_characteristics_t
List of supported transfer functions.
int width
Definition: av1_common_int.h:461
int8_t ref_frame_side[REF_FRAMES]
Definition: av1_common_int.h:1053
int qmatrix_level_v
Definition: av1_common_int.h:721
int mi_stride
Definition: blockd.h:582
int height
Definition: av1_common_int.h:792
bool error_resilient_mode
Definition: av1_common_int.h:410
int ref_frame_sign_bias[REF_FRAMES]
Definition: av1_common_int.h:1047
int MBs
Definition: av1_common_int.h:526
int num_planes
Definition: av1_common_int.h:758
uint32_t buffer_removal_times[(8 *4)+1]
Definition: av1_common_int.h:831
void(* setup_mi)(struct CommonModeInfoParams *mi_params)
Definition: av1_common_int.h:600
PARTITION_CONTEXT left_partition_context[MAX_MIB_SIZE]
Definition: blockd.h:725
struct aom_internal_error_info * error
Definition: av1_common_int.h:774
uint32_t frame_presentation_time
Definition: av1_common_int.h:837
PARTITION_CONTEXT ** partition
Definition: av1_common_int.h:734
unsigned int single_tile_decoding
Definition: av1_common_int.h:504
int show_existing_frame
Definition: av1_common_int.h:916