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661 lines
20 KiB
C
661 lines
20 KiB
C
/*
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* jcshuff.c
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*
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* Copyright (C) 1991-1998, Thomas G. Lane.
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* This file is part of the Independent JPEG Group's software.
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* For conditions of distribution and use, see the accompanying README file.
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*
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* This file contains Huffman entropy encoding routines for sequential JPEG.
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*
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* Much of the complexity here has to do with supporting output suspension.
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* If the data destination module demands suspension, we want to be able to
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* back up to the start of the current MCU. To do this, we copy state
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* variables into local working storage, and update them back to the
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* permanent JPEG objects only upon successful completion of an MCU.
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*/
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#define JPEG_INTERNALS
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#include "jinclude.h"
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#include "jpeglib.h"
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#include "jlossy.h" /* Private declarations for lossy codec */
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#include "jchuff.h" /* Declarations shared with jc*huff.c */
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/* Expanded entropy encoder object for Huffman encoding.
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*
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* The savable_state subrecord contains fields that change within an MCU,
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* but must not be updated permanently until we complete the MCU.
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*/
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typedef struct {
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INT32 put_buffer; /* current bit-accumulation buffer */
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int put_bits; /* # of bits now in it */
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int last_dc_val[MAX_COMPS_IN_SCAN]; /* last DC coef for each component */
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} savable_state;
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/* This macro is to work around compilers with missing or broken
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* structure assignment. You'll need to fix this code if you have
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* such a compiler and you change MAX_COMPS_IN_SCAN.
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*/
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#ifndef NO_STRUCT_ASSIGN
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#define ASSIGN_STATE(dest,src) ((dest) = (src))
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#else
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#if MAX_COMPS_IN_SCAN == 4
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#define ASSIGN_STATE(dest,src) \
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((dest).put_buffer = (src).put_buffer, \
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(dest).put_bits = (src).put_bits, \
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(dest).last_dc_val[0] = (src).last_dc_val[0], \
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(dest).last_dc_val[1] = (src).last_dc_val[1], \
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(dest).last_dc_val[2] = (src).last_dc_val[2], \
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(dest).last_dc_val[3] = (src).last_dc_val[3])
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#endif
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#endif
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typedef struct {
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savable_state saved; /* Bit buffer & DC state at start of MCU */
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/* These fields are NOT loaded into local working state. */
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unsigned int restarts_to_go; /* MCUs left in this restart interval */
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int next_restart_num; /* next restart number to write (0-7) */
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/* Pointers to derived tables (these workspaces have image lifespan) */
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c_derived_tbl * dc_derived_tbls[NUM_HUFF_TBLS];
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c_derived_tbl * ac_derived_tbls[NUM_HUFF_TBLS];
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#ifdef ENTROPY_OPT_SUPPORTED /* Statistics tables for optimization */
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long * dc_count_ptrs[NUM_HUFF_TBLS];
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long * ac_count_ptrs[NUM_HUFF_TBLS];
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#endif
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} shuff_entropy_encoder;
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typedef shuff_entropy_encoder * shuff_entropy_ptr;
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/* Working state while writing an MCU.
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* This struct contains all the fields that are needed by subroutines.
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*/
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typedef struct {
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JOCTET * next_output_byte; /* => next byte to write in buffer */
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size_t free_in_buffer; /* # of byte spaces remaining in buffer */
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savable_state cur; /* Current bit buffer & DC state */
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j_compress_ptr cinfo; /* dump_buffer needs access to this */
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} working_state;
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/* Forward declarations */
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METHODDEF(boolean) encode_mcu_huff JPP((j_compress_ptr cinfo,
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JBLOCKROW *MCU_data));
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METHODDEF(void) finish_pass_huff JPP((j_compress_ptr cinfo));
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#ifdef ENTROPY_OPT_SUPPORTED
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METHODDEF(boolean) encode_mcu_gather JPP((j_compress_ptr cinfo,
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JBLOCKROW *MCU_data));
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METHODDEF(void) finish_pass_gather JPP((j_compress_ptr cinfo));
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#endif
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/*
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* Initialize for a Huffman-compressed scan.
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* If gather_statistics is TRUE, we do not output anything during the scan,
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* just count the Huffman symbols used and generate Huffman code tables.
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*/
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METHODDEF(void)
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start_pass_huff (j_compress_ptr cinfo, boolean gather_statistics)
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{
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j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
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shuff_entropy_ptr entropy = (shuff_entropy_ptr) lossyc->entropy_private;
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int ci, dctbl, actbl;
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jpeg_component_info * compptr;
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if (gather_statistics) {
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#ifdef ENTROPY_OPT_SUPPORTED
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lossyc->entropy_encode_mcu = encode_mcu_gather;
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lossyc->pub.entropy_finish_pass = finish_pass_gather;
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#else
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ERREXIT(cinfo, JERR_NOT_COMPILED);
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#endif
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} else {
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lossyc->entropy_encode_mcu = encode_mcu_huff;
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lossyc->pub.entropy_finish_pass = finish_pass_huff;
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}
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for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
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compptr = cinfo->cur_comp_info[ci];
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dctbl = compptr->dc_tbl_no;
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actbl = compptr->ac_tbl_no;
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if (gather_statistics) {
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#ifdef ENTROPY_OPT_SUPPORTED
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/* Check for invalid table indexes */
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/* (make_c_derived_tbl does this in the other path) */
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if (dctbl < 0 || dctbl >= NUM_HUFF_TBLS)
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ERREXIT1(cinfo, JERR_NO_HUFF_TABLE, dctbl);
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if (actbl < 0 || actbl >= NUM_HUFF_TBLS)
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ERREXIT1(cinfo, JERR_NO_HUFF_TABLE, actbl);
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/* Allocate and zero the statistics tables */
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/* Note that jpeg_gen_optimal_table expects 257 entries in each table! */
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if (entropy->dc_count_ptrs[dctbl] == NULL)
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entropy->dc_count_ptrs[dctbl] = (long *)
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(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
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257 * SIZEOF(long));
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MEMZERO(entropy->dc_count_ptrs[dctbl], 257 * SIZEOF(long));
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if (entropy->ac_count_ptrs[actbl] == NULL)
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entropy->ac_count_ptrs[actbl] = (long *)
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(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
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257 * SIZEOF(long));
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MEMZERO(entropy->ac_count_ptrs[actbl], 257 * SIZEOF(long));
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#endif
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} else {
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/* Compute derived values for Huffman tables */
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/* We may do this more than once for a table, but it's not expensive */
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jpeg_make_c_derived_tbl(cinfo, TRUE, dctbl,
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& entropy->dc_derived_tbls[dctbl]);
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jpeg_make_c_derived_tbl(cinfo, FALSE, actbl,
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& entropy->ac_derived_tbls[actbl]);
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}
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/* Initialize DC predictions to 0 */
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entropy->saved.last_dc_val[ci] = 0;
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}
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/* Initialize bit buffer to empty */
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entropy->saved.put_buffer = 0;
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entropy->saved.put_bits = 0;
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/* Initialize restart stuff */
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entropy->restarts_to_go = cinfo->restart_interval;
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entropy->next_restart_num = 0;
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}
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/* Outputting bytes to the file */
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/* Emit a byte, taking 'action' if must suspend. */
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#define emit_byte(state,val,action) \
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{ *(state)->next_output_byte++ = (JOCTET) (val); \
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if (--(state)->free_in_buffer == 0) \
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if (! dump_buffer(state)) \
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{ action; } }
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LOCAL(boolean)
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dump_buffer (working_state * state)
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/* Empty the output buffer; return TRUE if successful, FALSE if must suspend */
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{
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struct jpeg_destination_mgr * dest = state->cinfo->dest;
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if (! (*dest->empty_output_buffer) (state->cinfo))
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return FALSE;
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/* After a successful buffer dump, must reset buffer pointers */
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state->next_output_byte = dest->next_output_byte;
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state->free_in_buffer = dest->free_in_buffer;
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return TRUE;
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}
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/* Outputting bits to the file */
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/* Only the right 24 bits of put_buffer are used; the valid bits are
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* left-justified in this part. At most 16 bits can be passed to emit_bits
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* in one call, and we never retain more than 7 bits in put_buffer
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* between calls, so 24 bits are sufficient.
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*/
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INLINE
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LOCAL(boolean)
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emit_bits (working_state * state, unsigned int code, int size)
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/* Emit some bits; return TRUE if successful, FALSE if must suspend */
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{
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/* This routine is heavily used, so it's worth coding tightly. */
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register INT32 put_buffer = (INT32) code;
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register int put_bits = state->cur.put_bits;
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/* if size is 0, caller used an invalid Huffman table entry */
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if (size == 0)
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ERREXIT(state->cinfo, JERR_HUFF_MISSING_CODE);
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put_buffer &= (((INT32) 1)<<size) - 1; /* mask off any extra bits in code */
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put_bits += size; /* new number of bits in buffer */
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put_buffer <<= 24 - put_bits; /* align incoming bits */
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put_buffer |= state->cur.put_buffer; /* and merge with old buffer contents */
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while (put_bits >= 8) {
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int c = (int) ((put_buffer >> 16) & 0xFF);
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emit_byte(state, c, return FALSE);
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if (c == 0xFF) { /* need to stuff a zero byte? */
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emit_byte(state, 0, return FALSE);
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}
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put_buffer <<= 8;
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put_bits -= 8;
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}
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state->cur.put_buffer = put_buffer; /* update state variables */
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state->cur.put_bits = put_bits;
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return TRUE;
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}
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LOCAL(boolean)
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flush_bits (working_state * state)
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{
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if (! emit_bits(state, 0x7F, 7)) /* fill any partial byte with ones */
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return FALSE;
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state->cur.put_buffer = 0; /* and reset bit-buffer to empty */
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state->cur.put_bits = 0;
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return TRUE;
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}
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/* Encode a single block's worth of coefficients */
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LOCAL(boolean)
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encode_one_block (working_state * state, JCOEFPTR block, int last_dc_val,
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c_derived_tbl *dctbl, c_derived_tbl *actbl)
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{
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register int temp, temp2;
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register int nbits;
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register int k, r, i;
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/* Encode the DC coefficient difference per section F.1.2.1 */
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temp = temp2 = block[0] - last_dc_val;
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if (temp < 0) {
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temp = -temp; /* temp is abs value of input */
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/* For a negative input, want temp2 = bitwise complement of abs(input) */
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/* This code assumes we are on a two's complement machine */
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temp2--;
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}
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/* Find the number of bits needed for the magnitude of the coefficient */
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nbits = 0;
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while (temp) {
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nbits++;
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temp >>= 1;
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}
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/* Check for out-of-range coefficient values.
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* Since we're encoding a difference, the range limit is twice as much.
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*/
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if (nbits > MAX_COEF_BITS+1)
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ERREXIT(state->cinfo, JERR_BAD_DCT_COEF);
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/* Emit the Huffman-coded symbol for the number of bits */
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if (! emit_bits(state, dctbl->ehufco[nbits], dctbl->ehufsi[nbits]))
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return FALSE;
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/* Emit that number of bits of the value, if positive, */
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/* or the complement of its magnitude, if negative. */
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if (nbits) /* emit_bits rejects calls with size 0 */
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if (! emit_bits(state, (unsigned int) temp2, nbits))
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return FALSE;
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/* Encode the AC coefficients per section F.1.2.2 */
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r = 0; /* r = run length of zeros */
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for (k = 1; k < DCTSIZE2; k++) {
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if ((temp = block[jpeg_natural_order[k]]) == 0) {
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r++;
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} else {
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/* if run length > 15, must emit special run-length-16 codes (0xF0) */
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while (r > 15) {
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if (! emit_bits(state, actbl->ehufco[0xF0], actbl->ehufsi[0xF0]))
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return FALSE;
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r -= 16;
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}
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temp2 = temp;
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if (temp < 0) {
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temp = -temp; /* temp is abs value of input */
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/* This code assumes we are on a two's complement machine */
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temp2--;
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}
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/* Find the number of bits needed for the magnitude of the coefficient */
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nbits = 1; /* there must be at least one 1 bit */
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while ((temp >>= 1))
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nbits++;
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/* Check for out-of-range coefficient values */
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if (nbits > MAX_COEF_BITS)
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ERREXIT(state->cinfo, JERR_BAD_DCT_COEF);
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/* Emit Huffman symbol for run length / number of bits */
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i = (r << 4) + nbits;
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if (! emit_bits(state, actbl->ehufco[i], actbl->ehufsi[i]))
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return FALSE;
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/* Emit that number of bits of the value, if positive, */
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/* or the complement of its magnitude, if negative. */
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if (! emit_bits(state, (unsigned int) temp2, nbits))
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return FALSE;
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r = 0;
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}
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}
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/* If the last coef(s) were zero, emit an end-of-block code */
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if (r > 0)
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if (! emit_bits(state, actbl->ehufco[0], actbl->ehufsi[0]))
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return FALSE;
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return TRUE;
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}
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/*
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* Emit a restart marker & resynchronize predictions.
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*/
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LOCAL(boolean)
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emit_restart (working_state * state, int restart_num)
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{
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int ci;
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if (! flush_bits(state))
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return FALSE;
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emit_byte(state, 0xFF, return FALSE);
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emit_byte(state, JPEG_RST0 + restart_num, return FALSE);
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/* Re-initialize DC predictions to 0 */
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for (ci = 0; ci < state->cinfo->comps_in_scan; ci++)
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state->cur.last_dc_val[ci] = 0;
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/* The restart counter is not updated until we successfully write the MCU. */
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return TRUE;
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}
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/*
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* Encode and output one MCU's worth of Huffman-compressed coefficients.
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*/
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METHODDEF(boolean)
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encode_mcu_huff (j_compress_ptr cinfo, JBLOCKROW *MCU_data)
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{
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j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
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shuff_entropy_ptr entropy = (shuff_entropy_ptr) lossyc->entropy_private;
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working_state state;
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int blkn, ci;
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jpeg_component_info * compptr;
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/* Load up working state */
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state.next_output_byte = cinfo->dest->next_output_byte;
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state.free_in_buffer = cinfo->dest->free_in_buffer;
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ASSIGN_STATE(state.cur, entropy->saved);
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state.cinfo = cinfo;
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/* Emit restart marker if needed */
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if (cinfo->restart_interval) {
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if (entropy->restarts_to_go == 0)
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if (! emit_restart(&state, entropy->next_restart_num))
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return FALSE;
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}
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/* Encode the MCU data blocks */
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for (blkn = 0; blkn < cinfo->data_units_in_MCU; blkn++) {
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ci = cinfo->MCU_membership[blkn];
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compptr = cinfo->cur_comp_info[ci];
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if (! encode_one_block(&state,
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MCU_data[blkn][0], state.cur.last_dc_val[ci],
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entropy->dc_derived_tbls[compptr->dc_tbl_no],
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entropy->ac_derived_tbls[compptr->ac_tbl_no]))
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return FALSE;
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/* Update last_dc_val */
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state.cur.last_dc_val[ci] = MCU_data[blkn][0][0];
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}
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/* Completed MCU, so update state */
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cinfo->dest->next_output_byte = state.next_output_byte;
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cinfo->dest->free_in_buffer = state.free_in_buffer;
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ASSIGN_STATE(entropy->saved, state.cur);
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/* Update restart-interval state too */
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if (cinfo->restart_interval) {
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if (entropy->restarts_to_go == 0) {
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entropy->restarts_to_go = cinfo->restart_interval;
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entropy->next_restart_num++;
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entropy->next_restart_num &= 7;
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}
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entropy->restarts_to_go--;
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}
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return TRUE;
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}
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/*
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* Finish up at the end of a Huffman-compressed scan.
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*/
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METHODDEF(void)
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finish_pass_huff (j_compress_ptr cinfo)
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{
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j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
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shuff_entropy_ptr entropy = (shuff_entropy_ptr) lossyc->entropy_private;
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working_state state;
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/* Load up working state ... flush_bits needs it */
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state.next_output_byte = cinfo->dest->next_output_byte;
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state.free_in_buffer = cinfo->dest->free_in_buffer;
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ASSIGN_STATE(state.cur, entropy->saved);
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state.cinfo = cinfo;
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/* Flush out the last data */
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if (! flush_bits(&state))
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ERREXIT(cinfo, JERR_CANT_SUSPEND);
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/* Update state */
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cinfo->dest->next_output_byte = state.next_output_byte;
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cinfo->dest->free_in_buffer = state.free_in_buffer;
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ASSIGN_STATE(entropy->saved, state.cur);
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}
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/*
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* Huffman coding optimization.
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*
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* We first scan the supplied data and count the number of uses of each symbol
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* that is to be Huffman-coded. (This process MUST agree with the code above.)
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* Then we build a Huffman coding tree for the observed counts.
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* Symbols which are not needed at all for the particular image are not
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* assigned any code, which saves space in the DHT marker as well as in
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* the compressed data.
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*/
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#ifdef ENTROPY_OPT_SUPPORTED
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/* Process a single block's worth of coefficients */
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LOCAL(void)
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htest_one_block (j_compress_ptr cinfo, JCOEFPTR block, int last_dc_val,
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long dc_counts[], long ac_counts[])
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{
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register int temp;
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register int nbits;
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register int k, r;
|
|
|
|
/* Encode the DC coefficient difference per section F.1.2.1 */
|
|
|
|
temp = block[0] - last_dc_val;
|
|
if (temp < 0)
|
|
temp = -temp;
|
|
|
|
/* Find the number of bits needed for the magnitude of the coefficient */
|
|
nbits = 0;
|
|
while (temp) {
|
|
nbits++;
|
|
temp >>= 1;
|
|
}
|
|
/* Check for out-of-range coefficient values.
|
|
* Since we're encoding a difference, the range limit is twice as much.
|
|
*/
|
|
if (nbits > MAX_COEF_BITS+1)
|
|
ERREXIT(cinfo, JERR_BAD_DCT_COEF);
|
|
|
|
/* Count the Huffman symbol for the number of bits */
|
|
dc_counts[nbits]++;
|
|
|
|
/* Encode the AC coefficients per section F.1.2.2 */
|
|
|
|
r = 0; /* r = run length of zeros */
|
|
|
|
for (k = 1; k < DCTSIZE2; k++) {
|
|
if ((temp = block[jpeg_natural_order[k]]) == 0) {
|
|
r++;
|
|
} else {
|
|
/* if run length > 15, must emit special run-length-16 codes (0xF0) */
|
|
while (r > 15) {
|
|
ac_counts[0xF0]++;
|
|
r -= 16;
|
|
}
|
|
|
|
/* Find the number of bits needed for the magnitude of the coefficient */
|
|
if (temp < 0)
|
|
temp = -temp;
|
|
|
|
/* Find the number of bits needed for the magnitude of the coefficient */
|
|
nbits = 1; /* there must be at least one 1 bit */
|
|
while ((temp >>= 1))
|
|
nbits++;
|
|
/* Check for out-of-range coefficient values */
|
|
if (nbits > MAX_COEF_BITS)
|
|
ERREXIT(cinfo, JERR_BAD_DCT_COEF);
|
|
|
|
/* Count Huffman symbol for run length / number of bits */
|
|
ac_counts[(r << 4) + nbits]++;
|
|
|
|
r = 0;
|
|
}
|
|
}
|
|
|
|
/* If the last coef(s) were zero, emit an end-of-block code */
|
|
if (r > 0)
|
|
ac_counts[0]++;
|
|
}
|
|
|
|
|
|
/*
|
|
* Trial-encode one MCU's worth of Huffman-compressed coefficients.
|
|
* No data is actually output, so no suspension return is possible.
|
|
*/
|
|
|
|
METHODDEF(boolean)
|
|
encode_mcu_gather (j_compress_ptr cinfo, JBLOCKROW *MCU_data)
|
|
{
|
|
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
|
shuff_entropy_ptr entropy = (shuff_entropy_ptr) lossyc->entropy_private;
|
|
int blkn, ci;
|
|
jpeg_component_info * compptr;
|
|
|
|
/* Take care of restart intervals if needed */
|
|
if (cinfo->restart_interval) {
|
|
if (entropy->restarts_to_go == 0) {
|
|
/* Re-initialize DC predictions to 0 */
|
|
for (ci = 0; ci < cinfo->comps_in_scan; ci++)
|
|
entropy->saved.last_dc_val[ci] = 0;
|
|
/* Update restart state */
|
|
entropy->restarts_to_go = cinfo->restart_interval;
|
|
}
|
|
entropy->restarts_to_go--;
|
|
}
|
|
|
|
for (blkn = 0; blkn < cinfo->data_units_in_MCU; blkn++) {
|
|
ci = cinfo->MCU_membership[blkn];
|
|
compptr = cinfo->cur_comp_info[ci];
|
|
htest_one_block(cinfo, MCU_data[blkn][0], entropy->saved.last_dc_val[ci],
|
|
entropy->dc_count_ptrs[compptr->dc_tbl_no],
|
|
entropy->ac_count_ptrs[compptr->ac_tbl_no]);
|
|
entropy->saved.last_dc_val[ci] = MCU_data[blkn][0][0];
|
|
}
|
|
|
|
return TRUE;
|
|
}
|
|
|
|
|
|
/*
|
|
* Finish up a statistics-gathering pass and create the new Huffman tables.
|
|
*/
|
|
|
|
METHODDEF(void)
|
|
finish_pass_gather (j_compress_ptr cinfo)
|
|
{
|
|
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
|
shuff_entropy_ptr entropy = (shuff_entropy_ptr) lossyc->entropy_private;
|
|
int ci, dctbl, actbl;
|
|
jpeg_component_info * compptr;
|
|
JHUFF_TBL **htblptr;
|
|
boolean did_dc[NUM_HUFF_TBLS];
|
|
boolean did_ac[NUM_HUFF_TBLS];
|
|
|
|
/* It's important not to apply jpeg_gen_optimal_table more than once
|
|
* per table, because it clobbers the input frequency counts!
|
|
*/
|
|
MEMZERO(did_dc, SIZEOF(did_dc));
|
|
MEMZERO(did_ac, SIZEOF(did_ac));
|
|
|
|
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
|
compptr = cinfo->cur_comp_info[ci];
|
|
dctbl = compptr->dc_tbl_no;
|
|
actbl = compptr->ac_tbl_no;
|
|
if (! did_dc[dctbl]) {
|
|
htblptr = & cinfo->dc_huff_tbl_ptrs[dctbl];
|
|
if (*htblptr == NULL)
|
|
*htblptr = jpeg_alloc_huff_table((j_common_ptr) cinfo);
|
|
jpeg_gen_optimal_table(cinfo, *htblptr, entropy->dc_count_ptrs[dctbl]);
|
|
did_dc[dctbl] = TRUE;
|
|
}
|
|
if (! did_ac[actbl]) {
|
|
htblptr = & cinfo->ac_huff_tbl_ptrs[actbl];
|
|
if (*htblptr == NULL)
|
|
*htblptr = jpeg_alloc_huff_table((j_common_ptr) cinfo);
|
|
jpeg_gen_optimal_table(cinfo, *htblptr, entropy->ac_count_ptrs[actbl]);
|
|
did_ac[actbl] = TRUE;
|
|
}
|
|
}
|
|
}
|
|
|
|
|
|
#endif /* ENTROPY_OPT_SUPPORTED */
|
|
|
|
|
|
METHODDEF(boolean)
|
|
need_optimization_pass (j_compress_ptr cinfo)
|
|
{
|
|
return TRUE;
|
|
}
|
|
|
|
|
|
/*
|
|
* Module initialization routine for Huffman entropy encoding.
|
|
*/
|
|
|
|
GLOBAL(void)
|
|
jinit_shuff_encoder (j_compress_ptr cinfo)
|
|
{
|
|
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
|
shuff_entropy_ptr entropy;
|
|
int i;
|
|
|
|
entropy = (shuff_entropy_ptr)
|
|
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
|
SIZEOF(shuff_entropy_encoder));
|
|
lossyc->entropy_private = (struct jpeg_entropy_encoder *) entropy;
|
|
lossyc->pub.entropy_start_pass = start_pass_huff;
|
|
lossyc->pub.need_optimization_pass = need_optimization_pass;
|
|
|
|
/* Mark tables unallocated */
|
|
for (i = 0; i < NUM_HUFF_TBLS; i++) {
|
|
entropy->dc_derived_tbls[i] = entropy->ac_derived_tbls[i] = NULL;
|
|
#ifdef ENTROPY_OPT_SUPPORTED
|
|
entropy->dc_count_ptrs[i] = entropy->ac_count_ptrs[i] = NULL;
|
|
#endif
|
|
}
|
|
}
|