onyxc_int.h 46.7 KB
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/*
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 * Copyright (c) 2016, Alliance for Open Media. All rights reserved
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 *
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 * This source code is subject to the terms of the BSD 2 Clause License and
 * the Alliance for Open Media Patent License 1.0. If the BSD 2 Clause License
 * was not distributed with this source code in the LICENSE file, you can
 * obtain it at www.aomedia.org/license/software. If the Alliance for Open
 * Media Patent License 1.0 was not distributed with this source code in the
 * PATENTS file, you can obtain it at www.aomedia.org/license/patent.
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 */

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#ifndef AV1_COMMON_ONYXC_INT_H_
#define AV1_COMMON_ONYXC_INT_H_
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#include "./aom_config.h"
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#include "./av1_rtcd.h"
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#include "aom/internal/aom_codec_internal.h"
#include "aom_util/aom_thread.h"
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#if CONFIG_ANS
#include "aom_dsp/ans.h"
#endif
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#include "av1/common/alloccommon.h"
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#include "av1/common/av1_loopfilter.h"
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#include "av1/common/entropy.h"
#include "av1/common/entropymode.h"
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#include "av1/common/entropymv.h"
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#include "av1/common/frame_buffers.h"
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#include "av1/common/mv.h"
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#include "av1/common/quant_common.h"
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#if CONFIG_LOOP_RESTORATION
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#include "av1/common/restoration.h"
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#endif  // CONFIG_LOOP_RESTORATION
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#include "av1/common/tile_common.h"
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#include "av1/common/odintrin.h"
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#if CONFIG_CFL
#include "av1/common/cfl.h"
#endif
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#if CONFIG_HASH_ME
// TODO(youzhou@microsoft.com): Encoder only. Move it out of common
#include "av1/encoder/hash_motion.h"
#endif
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#ifdef __cplusplus
extern "C" {
#endif

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#define CDEF_MAX_STRENGTHS 16

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#define REF_FRAMES_LOG2 3
#define REF_FRAMES (1 << REF_FRAMES_LOG2)

// 4 scratch frames for the new frames to support a maximum of 4 cores decoding
// in parallel, 3 for scaled references on the encoder.
// TODO(hkuang): Add ondemand frame buffers instead of hardcoding the number
// of framebuffers.
// TODO(jkoleszar): These 3 extra references could probably come from the
// normal reference pool.
#define FRAME_BUFFERS (REF_FRAMES + 7)

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#if CONFIG_REFERENCE_BUFFER
/* Constant values while waiting for the sequence header */
#define FRAME_ID_NUMBERS_PRESENT_FLAG 1
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#define FRAME_ID_LENGTH 15
#define DELTA_FRAME_ID_LENGTH 14
#endif  // CONFIG_REFERENCE_BUFFER
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#if CONFIG_NO_FRAME_CONTEXT_SIGNALING
#define FRAME_CONTEXTS (FRAME_BUFFERS + 1)
// Extra frame context which is always kept at default values
#define FRAME_CONTEXT_DEFAULTS (FRAME_CONTEXTS - 1)
#else

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#define FRAME_CONTEXTS_LOG2 3

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#define FRAME_CONTEXTS (1 << FRAME_CONTEXTS_LOG2)
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#endif  // CONFIG_NO_FRAME_CONTEXT_SIGNALING
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#define NUM_PING_PONG_BUFFERS 2

typedef enum {
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  SINGLE_REFERENCE = 0,
  COMPOUND_REFERENCE = 1,
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  REFERENCE_MODE_SELECT = 2,
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  REFERENCE_MODES = 3,
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} REFERENCE_MODE;

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#if !CONFIG_NO_FRAME_CONTEXT_SIGNALING
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typedef enum {
  RESET_FRAME_CONTEXT_NONE = 0,
  RESET_FRAME_CONTEXT_CURRENT = 1,
  RESET_FRAME_CONTEXT_ALL = 2,
} RESET_FRAME_CONTEXT_MODE;
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#endif
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typedef enum {
  /**
   * Update frame context to values resulting from forward probability
   * updates signaled in the frame header
   */
  REFRESH_FRAME_CONTEXT_FORWARD,
  /**
   * Update frame context to values resulting from backward probability
   * updates based on entropy/counts in the decoded frame
   */
  REFRESH_FRAME_CONTEXT_BACKWARD,
} REFRESH_FRAME_CONTEXT_MODE;

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#if CONFIG_MFMV
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#define MFMV_STACK_SIZE 3
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typedef struct {
  int_mv mfmv[INTER_REFS_PER_FRAME][MFMV_STACK_SIZE];
} TPL_MV_REF;
#endif

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typedef struct {
  int_mv mv[2];
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  int_mv pred_mv[2];
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  MV_REFERENCE_FRAME ref_frame[2];
} MV_REF;

typedef struct {
  int ref_count;
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#if CONFIG_FRAME_MARKER
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  unsigned int cur_frame_offset;
  unsigned int lst_frame_offset;
  unsigned int alt_frame_offset;
  unsigned int gld_frame_offset;
  unsigned int lst2_frame_offset;
  unsigned int lst3_frame_offset;
  unsigned int bwd_frame_offset;
  unsigned int alt2_frame_offset;
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#endif  // CONFIG_FRAME_MARKER

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  MV_REF *mvs;
  int mi_rows;
  int mi_cols;
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  // Width and height give the size of the buffer (before any upscaling, unlike
  // the sizes that can be derived from the buf structure)
  int width;
  int height;
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  WarpedMotionParams global_motion[TOTAL_REFS_PER_FRAME];
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  aom_codec_frame_buffer_t raw_frame_buffer;
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  YV12_BUFFER_CONFIG buf;
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#if CONFIG_HASH_ME
  hash_table hash_table;
#endif
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#if CONFIG_TEMPMV_SIGNALING
  uint8_t intra_only;
#endif
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  // The Following variables will only be used in frame parallel decode.

  // frame_worker_owner indicates which FrameWorker owns this buffer. NULL means
  // that no FrameWorker owns, or is decoding, this buffer.
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  AVxWorker *frame_worker_owner;
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  // row and col indicate which position frame has been decoded to in real
  // pixel unit. They are reset to -1 when decoding begins and set to INT_MAX
  // when the frame is fully decoded.
  int row;
  int col;
} RefCntBuffer;

typedef struct BufferPool {
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// Protect BufferPool from being accessed by several FrameWorkers at
// the same time during frame parallel decode.
// TODO(hkuang): Try to use atomic variable instead of locking the whole pool.
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#if CONFIG_MULTITHREAD
  pthread_mutex_t pool_mutex;
#endif

  // Private data associated with the frame buffer callbacks.
  void *cb_priv;

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  aom_get_frame_buffer_cb_fn_t get_fb_cb;
  aom_release_frame_buffer_cb_fn_t release_fb_cb;
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  RefCntBuffer frame_bufs[FRAME_BUFFERS];

  // Frame buffers allocated internally by the codec.
  InternalFrameBufferList int_frame_buffers;
} BufferPool;

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#if CONFIG_LV_MAP
typedef struct {
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  int base_ctx_table[2 /*row*/][2 /*col*/][3 /*sig_map*/]
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                    [BASE_CONTEXT_POSITION_NUM + 1];
} LV_MAP_CTX_TABLE;
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typedef int BASE_CTX_TABLE[2 /*col*/][3 /*sig_map*/]
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                          [BASE_CONTEXT_POSITION_NUM + 1];
#endif

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#if CONFIG_REFERENCE_BUFFER
/* Initial version of sequence header structure */
typedef struct SequenceHeader {
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#if CONFIG_FRAME_SIZE
  int num_bits_width;
  int num_bits_height;
  int max_frame_width;
  int max_frame_height;
#endif
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  int frame_id_numbers_present_flag;
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  int frame_id_length;
  int delta_frame_id_length;
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} SequenceHeader;
#endif  // CONFIG_REFERENCE_BUFFER

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typedef struct AV1Common {
  struct aom_internal_error_info error;
  aom_color_space_t color_space;
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  aom_transfer_function_t transfer_function;
  aom_chroma_sample_position_t chroma_sample_position;
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  int color_range;
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  int width;
  int height;
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  int render_width;
  int render_height;
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  int last_width;
  int last_height;

  // TODO(jkoleszar): this implies chroma ss right now, but could vary per
  // plane. Revisit as part of the future change to YV12_BUFFER_CONFIG to
  // support additional planes.
  int subsampling_x;
  int subsampling_y;
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#if CONFIG_SIMPLE_BWD_ADAPT
  int largest_tile_id;
#endif
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#if CONFIG_HIGHBITDEPTH
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  // Marks if we need to use 16bit frame buffers (1: yes, 0: no).
  int use_highbitdepth;
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#endif
  YV12_BUFFER_CONFIG *frame_to_show;
  RefCntBuffer *prev_frame;

  // TODO(hkuang): Combine this with cur_buf in macroblockd.
  RefCntBuffer *cur_frame;

  int ref_frame_map[REF_FRAMES]; /* maps fb_idx to reference slot */

  // Prepare ref_frame_map for the next frame.
  // Only used in frame parallel decode.
  int next_ref_frame_map[REF_FRAMES];

  // TODO(jkoleszar): could expand active_ref_idx to 4, with 0 as intra, and
  // roll new_fb_idx into it.

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  // Each Inter frame can reference INTER_REFS_PER_FRAME buffers
  RefBuffer frame_refs[INTER_REFS_PER_FRAME];
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#if CONFIG_EXT_SKIP
  int is_skip_mode_allowed;
  int ref_frame_idx_0;
  int ref_frame_idx_1;
#endif  // CONFIG_EXT_SKIP
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  int new_fb_idx;

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  FRAME_TYPE last_frame_type; /* last frame's frame type for motion search.*/
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  FRAME_TYPE frame_type;

  int show_frame;
  int last_show_frame;
  int show_existing_frame;
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  // Flag for a frame used as a reference - not written to the bitstream
  int is_reference_frame;
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  // Flag signaling that the frame is encoded using only INTRA modes.
  uint8_t intra_only;
  uint8_t last_intra_only;

  int allow_high_precision_mv;
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#if CONFIG_AMVR
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  int seq_force_integer_mv;        // 0 - Not to force. MV can be in 1/4 or 1/8
                                   // 1 - force to integer
                                   // 2 - adaptive
  int cur_frame_force_integer_mv;  // 0 the default in AOM, 1 only integer
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#endif
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  int allow_screen_content_tools;
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#if CONFIG_INTRABC
  int allow_intrabc;
#endif  // CONFIG_INTRABC
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  int allow_interintra_compound;
  int allow_masked_compound;
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#if !CONFIG_NO_FRAME_CONTEXT_SIGNALING
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  // Flag signaling which frame contexts should be reset to default values.
  RESET_FRAME_CONTEXT_MODE reset_frame_context;
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#endif
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  // MBs, mb_rows/cols is in 16-pixel units; mi_rows/cols is in
  // MODE_INFO (8-pixel) units.
  int MBs;
  int mb_rows, mi_rows;
  int mb_cols, mi_cols;
  int mi_stride;

  /* profile settings */
  TX_MODE tx_mode;

  int base_qindex;
  int y_dc_delta_q;
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  int u_dc_delta_q;
  int v_dc_delta_q;
  int u_ac_delta_q;
  int v_ac_delta_q;
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  // The dequantizers below are true dequntizers used only in the
  // dequantization process.  They have the same coefficient
  // shift/scale as TX.
  int16_t y_dequant_QTX[MAX_SEGMENTS][2];
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  int16_t u_dequant_QTX[MAX_SEGMENTS][2];
  int16_t v_dequant_QTX[MAX_SEGMENTS][2];
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#if CONFIG_AOM_QM
  // Global quant matrix tables
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  qm_val_t *giqmatrix[NUM_QM_LEVELS][2][TX_SIZES_ALL];
  qm_val_t *gqmatrix[NUM_QM_LEVELS][2][TX_SIZES_ALL];
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  // Local quant matrix tables for each frame
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  qm_val_t *y_iqmatrix[MAX_SEGMENTS][TX_SIZES_ALL];
  qm_val_t *uv_iqmatrix[MAX_SEGMENTS][TX_SIZES_ALL];
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  // Encoder
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  qm_val_t *y_qmatrix[MAX_SEGMENTS][TX_SIZES_ALL];
  qm_val_t *uv_qmatrix[MAX_SEGMENTS][TX_SIZES_ALL];
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  int using_qmatrix;
  int min_qmlevel;
  int max_qmlevel;
#endif
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#if CONFIG_NEW_QUANT
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  dequant_val_type_nuq y_dequant_nuq_QTX[MAX_SEGMENTS][QUANT_PROFILES]
                                        [COEF_BANDS];
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  dequant_val_type_nuq u_dequant_nuq_QTX[MAX_SEGMENTS][QUANT_PROFILES]
                                        [COEF_BANDS];
  dequant_val_type_nuq v_dequant_nuq_QTX[MAX_SEGMENTS][QUANT_PROFILES]
                                        [COEF_BANDS];
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#endif
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  /* We allocate a MODE_INFO struct for each macroblock, together with
     an extra row on top and column on the left to simplify prediction. */
  int mi_alloc_size;
  MODE_INFO *mip; /* Base of allocated array */
  MODE_INFO *mi;  /* Corresponds to upper left visible macroblock */

  // TODO(agrange): Move prev_mi into encoder structure.
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  // prev_mip and prev_mi will only be allocated in encoder.
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  MODE_INFO *prev_mip; /* MODE_INFO array 'mip' from last decoded frame */
  MODE_INFO *prev_mi;  /* 'mi' from last frame (points into prev_mip) */

  // Separate mi functions between encoder and decoder.
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  int (*alloc_mi)(struct AV1Common *cm, int mi_size);
  void (*free_mi)(struct AV1Common *cm);
  void (*setup_mi)(struct AV1Common *cm);
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  // Grid of pointers to 8x8 MODE_INFO structs.  Any 8x8 not in the visible
  // area will be NULL.
  MODE_INFO **mi_grid_base;
  MODE_INFO **mi_grid_visible;
  MODE_INFO **prev_mi_grid_base;
  MODE_INFO **prev_mi_grid_visible;

  // Whether to use previous frame's motion vectors for prediction.
  int use_prev_frame_mvs;

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  int use_ref_frame_mvs;

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  // Persistent mb segment id map used in prediction.
  int seg_map_idx;
  int prev_seg_map_idx;

  uint8_t *seg_map_array[NUM_PING_PONG_BUFFERS];
  uint8_t *last_frame_seg_map;
  uint8_t *current_frame_seg_map;
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#if CONFIG_Q_SEGMENTATION
  uint8_t *q_seg_map;
#endif
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  int seg_map_alloc_size;

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  InterpFilter interp_filter;
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  loop_filter_info_n lf_info;
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#if CONFIG_FRAME_SUPERRES
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  // The denominator of the superres scale; the numerator is fixed.
  uint8_t superres_scale_denominator;
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  int superres_upscaled_width;
  int superres_upscaled_height;
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#endif  // CONFIG_FRAME_SUPERRES
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#if CONFIG_LOOP_RESTORATION
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  RestorationInfo rst_info[MAX_MB_PLANE];
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  // rst_end_stripe[i] is one more than the index of the bottom stripe
  // for tile row i.
  int rst_end_stripe[MAX_TILE_ROWS];

  // Pointer to a scratch buffer used by self-guided restoration
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  int32_t *rst_tmpbuf;
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#endif  // CONFIG_LOOP_RESTORATION
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  // Flag signaling how frame contexts should be updated at the end of
  // a frame decode
  REFRESH_FRAME_CONTEXT_MODE refresh_frame_context;
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  int ref_frame_sign_bias[TOTAL_REFS_PER_FRAME]; /* Two state 0, 1 */
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  struct loopfilter lf;
  struct segmentation seg;
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  int all_lossless;
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  int frame_parallel_decode;  // frame-based threading.

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  int reduced_tx_set_used;

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  // Context probabilities for reference frame prediction
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  MV_REFERENCE_FRAME comp_fwd_ref[FWD_REFS];
  MV_REFERENCE_FRAME comp_bwd_ref[BWD_REFS];
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  REFERENCE_MODE reference_mode;

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  FRAME_CONTEXT *fc;              /* this frame entropy */
  FRAME_CONTEXT *frame_contexts;  // FRAME_CONTEXTS
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  FRAME_CONTEXT *pre_fc;          // Context referenced in this frame
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#if !CONFIG_NO_FRAME_CONTEXT_SIGNALING
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  unsigned int frame_context_idx; /* Context to use/update */
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#endif
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  FRAME_COUNTS counts;

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#if CONFIG_FRAME_MARKER
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  unsigned int frame_offset;
#endif

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  unsigned int current_video_frame;
  BITSTREAM_PROFILE profile;

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  // AOM_BITS_8 in profile 0 or 1, AOM_BITS_10 or AOM_BITS_12 in profile 2 or 3.
  aom_bit_depth_t bit_depth;
  aom_bit_depth_t dequant_bit_depth;  // bit_depth of current dequantizer
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  int error_resilient_mode;

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  int tile_cols, tile_rows;
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  int last_tile_cols, last_tile_rows;
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#if CONFIG_MAX_TILE
  int min_log2_tile_cols;
  int max_log2_tile_cols;
  int max_log2_tile_rows;
  int min_log2_tile_rows;
  int min_log2_tiles;
  int max_tile_width_sb;
  int max_tile_height_sb;
  int uniform_tile_spacing_flag;
  int log2_tile_cols;                        // only valid for uniform tiles
  int log2_tile_rows;                        // only valid for uniform tiles
  int tile_col_start_sb[MAX_TILE_COLS + 1];  // valid for 0 <= i <= tile_cols
  int tile_row_start_sb[MAX_TILE_ROWS + 1];  // valid for 0 <= i <= tile_rows
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#if CONFIG_DEPENDENT_HORZTILES
  int tile_row_independent[MAX_TILE_ROWS];  // valid for 0 <= i <  tile_rows
#endif
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#else
  int log2_tile_cols, log2_tile_rows;  // Used in non-large_scale_tile_coding.
  int tile_width, tile_height;         // In MI units
#endif  // CONFIG_MAX_TILE

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#if CONFIG_EXT_TILE
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  unsigned int large_scale_tile;
  unsigned int single_tile_decoding;
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#endif  // CONFIG_EXT_TILE
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#if CONFIG_DEPENDENT_HORZTILES
  int dependent_horz_tiles;
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  int tile_group_start_row[MAX_TILE_ROWS][MAX_TILE_COLS];
  int tile_group_start_col[MAX_TILE_ROWS][MAX_TILE_COLS];
#endif
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#if CONFIG_LOOPFILTERING_ACROSS_TILES
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  int loop_filter_across_tiles_enabled;
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#endif  // CONFIG_LOOPFILTERING_ACROSS_TILES
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  int byte_alignment;
  int skip_loop_filter;

  // Private data associated with the frame buffer callbacks.
  void *cb_priv;
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  aom_get_frame_buffer_cb_fn_t get_fb_cb;
  aom_release_frame_buffer_cb_fn_t release_fb_cb;
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  // Handles memory for the codec.
  InternalFrameBufferList int_frame_buffers;

  // External BufferPool passed from outside.
  BufferPool *buffer_pool;

  PARTITION_CONTEXT *above_seg_context;
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  ENTROPY_CONTEXT *above_context[MAX_MB_PLANE];
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  TXFM_CONTEXT *above_txfm_context;
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  TXFM_CONTEXT *top_txfm_context[MAX_MB_PLANE];
  TXFM_CONTEXT left_txfm_context[MAX_MB_PLANE][2 * MAX_MIB_SIZE];
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  int above_context_alloc_cols;
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  // scratch memory for intraonly/keyframe forward updates from default tables
  // - this is intentionally not placed in FRAME_CONTEXT since it's reset upon
  // each keyframe and not used afterwards
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  aom_prob kf_y_prob[INTRA_MODES][INTRA_MODES][INTRA_MODES - 1];
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  WarpedMotionParams global_motion[TOTAL_REFS_PER_FRAME];
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  BLOCK_SIZE sb_size;  // Size of the superblock used for this frame
  int mib_size;        // Size of the superblock in units of MI blocks
  int mib_size_log2;   // Log 2 of above.
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#if CONFIG_CDEF
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  int cdef_pri_damping;
  int cdef_sec_damping;
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  int nb_cdef_strengths;
  int cdef_strengths[CDEF_MAX_STRENGTHS];
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  int cdef_uv_strengths[CDEF_MAX_STRENGTHS];
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  int cdef_bits;
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#endif
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  int delta_q_present_flag;
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  // Resolution of delta quant
  int delta_q_res;
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#if CONFIG_EXT_DELTA_Q
  int delta_lf_present_flag;
  // Resolution of delta lf level
  int delta_lf_res;
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#if CONFIG_LOOPFILTER_LEVEL
  // This is a flag for number of deltas of loop filter level
  // 0: use 1 delta, for y_vertical, y_horizontal, u, and v
  // 1: use separate deltas for each filter level
  int delta_lf_multi;
#endif  // CONFIG_LOOPFILTER_LEVEL
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#endif
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  int num_tg;
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#if CONFIG_REFERENCE_BUFFER
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  SequenceHeader seq_params;
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  int current_frame_id;
  int ref_frame_id[REF_FRAMES];
  int valid_for_referencing[REF_FRAMES];
  int refresh_mask;
  int invalid_delta_frame_id_minus1;
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#endif  // CONFIG_REFERENCE_BUFFER
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#if CONFIG_ANS && ANS_MAX_SYMBOLS
  int ans_window_size_log2;
#endif
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#if CONFIG_LV_MAP
  LV_MAP_CTX_TABLE coeff_ctx_table;
#endif
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#if CONFIG_LPF_SB
  int final_lpf_encode;
#endif
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#if CONFIG_ADAPT_SCAN
  int use_adapt_scan;
#endif
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#if CONFIG_MFMV
  TPL_MV_REF *tpl_mvs;
#endif
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} AV1_COMMON;
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// TODO(hkuang): Don't need to lock the whole pool after implementing atomic
// frame reference count.
static void lock_buffer_pool(BufferPool *const pool) {
#if CONFIG_MULTITHREAD
  pthread_mutex_lock(&pool->pool_mutex);
#else
  (void)pool;
#endif
}

static void unlock_buffer_pool(BufferPool *const pool) {
#if CONFIG_MULTITHREAD
  pthread_mutex_unlock(&pool->pool_mutex);
#else
  (void)pool;
#endif
}

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static INLINE YV12_BUFFER_CONFIG *get_ref_frame(AV1_COMMON *cm, int index) {
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  if (index < 0 || index >= REF_FRAMES) return NULL;
  if (cm->ref_frame_map[index] < 0) return NULL;
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  assert(cm->ref_frame_map[index] < FRAME_BUFFERS);
  return &cm->buffer_pool->frame_bufs[cm->ref_frame_map[index]].buf;
}

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static INLINE YV12_BUFFER_CONFIG *get_frame_new_buffer(
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    const AV1_COMMON *const cm) {
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  return &cm->buffer_pool->frame_bufs[cm->new_fb_idx].buf;
}

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static INLINE int get_free_fb(AV1_COMMON *cm) {
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  RefCntBuffer *const frame_bufs = cm->buffer_pool->frame_bufs;
  int i;

  lock_buffer_pool(cm->buffer_pool);
  for (i = 0; i < FRAME_BUFFERS; ++i)
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    if (frame_bufs[i].ref_count == 0) break;
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  if (i != FRAME_BUFFERS) {
    frame_bufs[i].ref_count = 1;
  } else {
    // Reset i to be INVALID_IDX to indicate no free buffer found.
    i = INVALID_IDX;
  }

  unlock_buffer_pool(cm->buffer_pool);
  return i;
}

static INLINE void ref_cnt_fb(RefCntBuffer *bufs, int *idx, int new_idx) {
  const int ref_index = *idx;

  if (ref_index >= 0 && bufs[ref_index].ref_count > 0)
    bufs[ref_index].ref_count--;

  *idx = new_idx;

  bufs[new_idx].ref_count++;
}

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#if CONFIG_TEMPMV_SIGNALING
// Returns 1 if this frame might use mvs from some previous frame. This
// function doesn't consider whether prev_frame is actually suitable (see
// frame_can_use_prev_frame_mvs for that)
static INLINE int frame_might_use_prev_frame_mvs(const AV1_COMMON *cm) {
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  return !cm->error_resilient_mode &&
#if CONFIG_EXT_TILE
         !cm->large_scale_tile &&
#endif  // CONFIG_EXT_TILE
         !cm->intra_only;
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}

// Returns 1 if this frame really can use MVs from some previous frame.
static INLINE int frame_can_use_prev_frame_mvs(const AV1_COMMON *cm) {
  return (frame_might_use_prev_frame_mvs(cm) && cm->last_show_frame &&
          cm->prev_frame && !cm->prev_frame->intra_only &&
          cm->width == cm->prev_frame->width &&
          cm->height == cm->prev_frame->height);
}
#endif

static INLINE void ensure_mv_buffer(RefCntBuffer *buf, AV1_COMMON *cm) {
  if (buf->mvs == NULL || buf->mi_rows < cm->mi_rows ||
      buf->mi_cols < cm->mi_cols) {
    aom_free(buf->mvs);
    buf->mi_rows = cm->mi_rows;
    buf->mi_cols = cm->mi_cols;
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#if CONFIG_TMV || CONFIG_MFMV
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    CHECK_MEM_ERROR(cm, buf->mvs,
                    (MV_REF *)aom_calloc(
                        ((cm->mi_rows + 1) >> 1) * ((cm->mi_cols + 1) >> 1),
                        sizeof(*buf->mvs)));
#else
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    CHECK_MEM_ERROR(
        cm, buf->mvs,
        (MV_REF *)aom_calloc(cm->mi_rows * cm->mi_cols, sizeof(*buf->mvs)));
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#endif  // CONFIG_TMV
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  }
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#if CONFIG_MFMV
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  if (cm->tpl_mvs == NULL || buf->mi_rows < cm->mi_rows ||
      buf->mi_cols < cm->mi_cols) {
    aom_free(cm->tpl_mvs);
    CHECK_MEM_ERROR(cm, cm->tpl_mvs, (TPL_MV_REF *)aom_calloc(
                                         ((cm->mi_rows + MAX_MIB_SIZE) >> 1) *
                                             (cm->mi_stride >> 1),
                                         sizeof(*cm->tpl_mvs)));
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  }
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#endif
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}

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static INLINE int mi_cols_aligned_to_sb(const AV1_COMMON *cm) {
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  return ALIGN_POWER_OF_TWO(cm->mi_cols, cm->mib_size_log2);
}

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static INLINE int mi_rows_aligned_to_sb(const AV1_COMMON *cm) {
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  return ALIGN_POWER_OF_TWO(cm->mi_rows, cm->mib_size_log2);
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}

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static INLINE int frame_is_intra_only(const AV1_COMMON *const cm) {
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  return cm->frame_type == KEY_FRAME || cm->intra_only;
}

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#if CONFIG_CFL
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#if CONFIG_DEBUG
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static INLINE void cfl_clear_sub8x8_val(CFL_CTX *cfl) {
  memset(cfl->sub8x8_val, 0, sizeof(cfl->sub8x8_val));
}
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#endif  // CONFIG_DEBUG
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void cfl_init(CFL_CTX *cfl, AV1_COMMON *cm);
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#endif  // CONFIG_CFL
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static INLINE void av1_init_macroblockd(AV1_COMMON *cm, MACROBLOCKD *xd,
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#if CONFIG_CFL
                                        CFL_CTX *cfl,
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#endif
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                                        tran_low_t *dqcoeff) {
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  for (int i = 0; i < MAX_MB_PLANE; ++i) {
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    xd->plane[i].dqcoeff = dqcoeff;
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    xd->above_context[i] = cm->above_context[i];
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    if (xd->plane[i].plane_type == PLANE_TYPE_Y) {
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      memcpy(xd->plane[i].seg_dequant_QTX, cm->y_dequant_QTX,
             sizeof(cm->y_dequant_QTX));
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#if CONFIG_AOM_QM
      memcpy(xd->plane[i].seg_iqmatrix, cm->y_iqmatrix, sizeof(cm->y_iqmatrix));
#endif

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#if CONFIG_NEW_QUANT
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      memcpy(xd->plane[i].seg_dequant_nuq_QTX, cm->y_dequant_nuq_QTX,
             sizeof(cm->y_dequant_nuq_QTX));
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#endif
    } else if (xd->plane[i].plane_type == 1) {
      memcpy(xd->plane[i].seg_dequant_QTX, cm->u_dequant_QTX,
             sizeof(cm->u_dequant_QTX));
#if CONFIG_AOM_QM
      memcpy(xd->plane[i].seg_iqmatrix, cm->uv_iqmatrix,
             sizeof(cm->uv_iqmatrix));
#endif
#if CONFIG_NEW_QUANT
      memcpy(xd->plane[i].seg_dequant_nuq_QTX, cm->u_dequant_nuq_QTX,
             sizeof(cm->u_dequant_nuq_QTX));
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#endif
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    } else {
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      memcpy(xd->plane[i].seg_dequant_QTX, cm->v_dequant_QTX,
             sizeof(cm->v_dequant_QTX));
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#if CONFIG_AOM_QM
      memcpy(xd->plane[i].seg_iqmatrix, cm->uv_iqmatrix,
             sizeof(cm->uv_iqmatrix));
#endif
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#if CONFIG_NEW_QUANT
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      memcpy(xd->plane[i].seg_dequant_nuq_QTX, cm->v_dequant_nuq_QTX,
             sizeof(cm->v_dequant_nuq_QTX));
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#endif
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    }
  }
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  xd->fc = cm->fc;
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  xd->above_seg_context = cm->above_seg_context;
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  xd->above_txfm_context = cm->above_txfm_context;
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#if CONFIG_CFL
  cfl_init(cfl, cm);
  xd->cfl = cfl;
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#endif
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  xd->mi_stride = cm->mi_stride;
  xd->error_info = &cm->error;
}

static INLINE void set_skip_context(MACROBLOCKD *xd, int mi_row, int mi_col) {
  int i;
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  int row_offset = mi_row;
  int col_offset = mi_col;
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  for (i = 0; i < MAX_MB_PLANE; ++i) {
    struct macroblockd_plane *const pd = &xd->plane[i];
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    // Offset the buffer pointer
    const BLOCK_SIZE bsize = xd->mi[0]->mbmi.sb_type;
    if (pd->subsampling_y && (mi_row & 0x01) && (mi_size_high[bsize] == 1))
      row_offset = mi_row - 1;
    if (pd->subsampling_x && (mi_col & 0x01) && (mi_size_wide[bsize] == 1))
      col_offset = mi_col - 1;
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    int above_idx = col_offset << (MI_SIZE_LOG2 - tx_size_wide_log2[0]);
    int left_idx = (row_offset & MAX_MIB_MASK)
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                   << (MI_SIZE_LOG2 - tx_size_high_log2[0]);
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    pd->above_context = &xd->above_context[i][above_idx >> pd->subsampling_x];
    pd->left_context = &xd->left_context[i][left_idx >> pd->subsampling_y];
  }
}

static INLINE int calc_mi_size(int len) {
  // len is in mi units.
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  return len + MAX_MIB_SIZE;
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}

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static INLINE void set_plane_n4(MACROBLOCKD *const xd, int bw, int bh) {
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  int i;
  for (i = 0; i < MAX_MB_PLANE; i++) {
    xd->plane[i].n4_w = (bw << 1) >> xd->plane[i].subsampling_x;
    xd->plane[i].n4_h = (bh << 1) >> xd->plane[i].subsampling_y;
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    xd->plane[i].width = (bw * MI_SIZE) >> xd->plane[i].subsampling_x;
    xd->plane[i].height = (bh * MI_SIZE) >> xd->plane[i].subsampling_y;
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    xd->plane[i].width = AOMMAX(xd->plane[i].width, 4);
    xd->plane[i].height = AOMMAX(xd->plane[i].height, 4);
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  }
}

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static INLINE void set_mi_row_col(MACROBLOCKD *xd, const TileInfo *const tile,
                                  int mi_row, int bh, int mi_col, int bw,
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#if CONFIG_DEPENDENT_HORZTILES
                                  int dependent_horz_tile_flag,
#endif  // CONFIG_DEPENDENT_HORZTILES
                                  int mi_rows, int mi_cols) {
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  xd->mb_to_top_edge = -((mi_row * MI_SIZE) * 8);
  xd->mb_to_bottom_edge = ((mi_rows - bh - mi_row) * MI_SIZE) * 8;
  xd->mb_to_left_edge = -((mi_col * MI_SIZE) * 8);
  xd->mb_to_right_edge = ((mi_cols - bw - mi_col) * MI_SIZE) * 8;

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#if CONFIG_DEPENDENT_HORZTILES
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  if (dependent_horz_tile_flag) {
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    xd->up_available = (mi_row > tile->mi_row_start) || !tile->tg_horz_boundary;
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  } else {
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#endif  // CONFIG_DEPENDENT_HORZTILES
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    // Are edges available for intra prediction?
    xd->up_available = (mi_row > tile->mi_row_start);
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#if CONFIG_DEPENDENT_HORZTILES
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  }
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#endif  // CONFIG_DEPENDENT_HORZTILES
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  xd->left_available = (mi_col > tile->mi_col_start);
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  xd->chroma_up_available = xd->up_available;
  xd->chroma_left_available = xd->left_available;
  if (xd->plane[1].subsampling_x && bw < mi_size_wide[BLOCK_8X8])
    xd->chroma_left_available = (mi_col - 1) > tile->mi_col_start;
  if (xd->plane[1].subsampling_y && bh < mi_size_high[BLOCK_8X8])
    xd->chroma_up_available = (mi_row - 1) > tile->mi_row_start;
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  if (xd->up_available) {
    xd->above_mi = xd->mi[-xd->mi_stride];
    // above_mi may be NULL in encoder's first pass.
    xd->above_mbmi = xd->above_mi ? &xd->above_mi->mbmi : NULL;
  } else {
    xd->above_mi = NULL;
    xd->above_mbmi = NULL;
  }

  if (xd->left_available) {
    xd->left_mi = xd->mi[-1];
    // left_mi may be NULL in encoder's first pass.
    xd->left_mbmi = xd->left_mi ? &xd->left_mi->mbmi : NULL;
  } else {
    xd->left_mi = NULL;
    xd->left_mbmi = NULL;
  }

  xd->n8_h = bh;
  xd->n8_w = bw;
  xd->is_sec_rect = 0;
  if (xd->n8_w < xd->n8_h)
    if (mi_col & (xd->n8_h - 1)) xd->is_sec_rect = 1;

  if (xd->n8_w > xd->n8_h)
    if (mi_row & (xd->n8_w - 1)) xd->is_sec_rect = 1;
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}

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static INLINE const aom_prob *get_y_mode_probs(const AV1_COMMON *cm,
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                                               const MODE_INFO *mi,
                                               const MODE_INFO *above_mi,
                                               const MODE_INFO *left_mi,
                                               int block) {
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  const PREDICTION_MODE above = av1_above_block_mode(mi, above_mi, block);
  const PREDICTION_MODE left = av1_left_block_mode(mi, left_mi, block);
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  return cm->kf_y_prob[above][left];
}

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static INLINE aom_cdf_prob *get_y_mode_cdf(FRAME_CONTEXT *tile_ctx,
                                           const MODE_INFO *mi,
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                                           const MODE_INFO *above_mi,
                                           const MODE_INFO *left_mi,
                                           int block) {
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  const PREDICTION_MODE above = av1_above_block_mode(mi, above_mi, block);
  const PREDICTION_MODE left = av1_left_block_mode(mi, left_mi, block);
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#if CONFIG_KF_CTX
  int above_ctx = intra_mode_context[above];
  int left_ctx = intra_mode_context[left];
  return tile_ctx->kf_y_cdf[above_ctx][left_ctx];
#else
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  return tile_ctx->kf_y_cdf[above][left];
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#endif
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}

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static INLINE void update_partition_context(MACROBLOCKD *xd, int mi_row,
                                            int mi_col, BLOCK_SIZE subsize,
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                                            BLOCK_SIZE bsize) {
  PARTITION_CONTEXT *const above_ctx = xd->above_seg_context + mi_col;
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  PARTITION_CONTEXT *const left_ctx =
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      xd->left_seg_context + (mi_row & MAX_MIB_MASK);
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#if CONFIG_EXT_PARTITION_TYPES
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  const int bw = mi_size_wide[bsize];
  const int bh = mi_size_high[bsize];
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  memset(above_ctx, partition_context_lookup[subsize].above, bw);
  memset(left_ctx, partition_context_lookup[subsize].left, bh);
#else
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  // num_4x4_blocks_wide_lookup[bsize] / 2
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  const int bs = mi_size_wide[bsize];
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  // update the partition context at the end notes. set partition bits
  // of block sizes larger than the current one to be one, and partition
  // bits of smaller block sizes to be zero.
  memset(above_ctx, partition_context_lookup[subsize].above, bs);
  memset(left_ctx, partition_context_lookup[subsize].left, bs);
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#endif  // CONFIG_EXT_PARTITION_TYPES
}

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static INLINE int is_chroma_reference(int mi_row, int mi_col, BLOCK_SIZE bsize,
                                      int subsampling_x, int subsampling_y) {
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  const int bw = mi_size_wide[bsize];
  const int bh = mi_size_high[bsize];
  int ref_pos = ((mi_row & 0x01) || !(bh & 0x01) || !subsampling_y) &&
                ((mi_col & 0x01) || !(bw & 0x01) || !subsampling_x);
  return ref_pos;
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}
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static INLINE BLOCK_SIZE scale_chroma_bsize(BLOCK_SIZE bsize, int subsampling_x,
                                            int subsampling_y) {
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  BLOCK_SIZE bs = bsize;
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  switch (bsize) {
    case BLOCK_4X4:
      if (subsampling_x == 1 && subsampling_y == 1)
        bs = BLOCK_8X8;
      else if (subsampling_x == 1)
        bs = BLOCK_8X4;
      else if (subsampling_y == 1)
        bs = BLOCK_4X8;
      break;
    case BLOCK_4X8:
      if (subsampling_x == 1 && subsampling_y == 1)
        bs = BLOCK_8X8;
      else if (subsampling_x == 1)
        bs = BLOCK_8X8;
      else if (subsampling_y == 1)
        bs = BLOCK_4X8;
      break;
    case BLOCK_8X4:
      if (subsampling_x == 1 && subsampling_y == 1)
        bs = BLOCK_8X8;
      else if (subsampling_x == 1)
        bs = BLOCK_8X4;
      else if (subsampling_y == 1)
        bs = BLOCK_8X8;
      break;
    case BLOCK_4X16:
      if (subsampling_x == 1 && subsampling_y == 1)
        bs = BLOCK_8X16;
      else if (subsampling_x == 1)
        bs = BLOCK_8X16;
      else if (subsampling_y == 1)
        bs = BLOCK_4X16;
      break;
    case BLOCK_16X4:
      if (subsampling_x == 1 && subsampling_y == 1)
        bs = BLOCK_16X8;
      else if (subsampling_x == 1)
        bs = BLOCK_16X4;
      else if (subsampling_y == 1)
        bs = BLOCK_16X8;
      break;
    default: break;
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  }
  return bs;
}
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static INLINE aom_cdf_prob cdf_element_prob(const aom_cdf_prob *cdf,
                                            size_t element) {
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  assert(cdf != NULL);
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#if !CONFIG_ANS
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  return (element > 0 ? cdf[element - 1] : CDF_PROB_TOP) - cdf[element];
#else
  return cdf[element] - (element > 0 ? cdf[element - 1] : 0);
#endif
}

static INLINE void partition_gather_horz_alike(aom_cdf_prob *out,
                                               const aom_cdf_prob *const in) {
  out[0] = CDF_PROB_TOP;
  out[0] -= cdf_element_prob(in, PARTITION_HORZ);
  out[0] -= cdf_element_prob(in, PARTITION_SPLIT);
#if CONFIG_EXT_PARTITION_TYPES
  out[0] -= cdf_element_prob(in, PARTITION_HORZ_A);
  out[0] -= cdf_element_prob(in, PARTITION_HORZ_B);
  out[0] -= cdf_element_prob(in, PARTITION_VERT_A);
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  out[0] -= cdf_element_prob(in, PARTITION_HORZ_4);
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#endif
  out[0] = AOM_ICDF(out[0]);
  out[1] = AOM_ICDF(CDF_PROB_TOP);
}

static INLINE void partition_gather_vert_alike(aom_cdf_prob *out,
                                               const aom_cdf_prob *const in) {
  out[0] = CDF_PROB_TOP;
  out[0] -= cdf_element_prob(in, PARTITION_VERT);
  out[0] -= cdf_element_prob(in, PARTITION_SPLIT);
#if CONFIG_EXT_PARTITION_TYPES
  out[0] -= cdf_element_prob(in, PARTITION_HORZ_A);
  out[0] -= cdf_element_prob(in, PARTITION_VERT_A);
  out[0] -= cdf_element_prob(in, PARTITION_VERT_B);
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  out[0] -= cdf_element_prob(in, PARTITION_VERT_4);
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#endif
  out[0] = AOM_ICDF(out[0]);
  out[1] = AOM_ICDF(CDF_PROB_TOP);
}

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#if CONFIG_EXT_PARTITION_TYPES
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static INLINE void update_ext_partition_context(MACROBLOCKD *xd, int mi_row,
                                                int mi_col, BLOCK_SIZE subsize,
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                                                BLOCK_SIZE bsize,
                                                PARTITION_TYPE partition) {
  if (bsize >= BLOCK_8X8) {
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#if !CONFIG_EXT_PARTITION_TYPES_AB
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    const int hbs = mi_size_wide[bsize] / 2;
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    BLOCK_SIZE bsize2 = get_subsize(bsize, PARTITION_SPLIT);
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#endif
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    switch (partition) {
      case PARTITION_SPLIT:
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        if (bsize != BLOCK_8X8) break;
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