[2] | 1 | /*
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| 2 | * jcmaster.c
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| 3 | *
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| 4 | * Copyright (C) 1991-1997, Thomas G. Lane.
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[846] | 5 | * Modified 2003-2010 by Guido Vollbeding.
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[2] | 6 | * This file is part of the Independent JPEG Group's software.
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| 7 | * For conditions of distribution and use, see the accompanying README file.
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| 8 | *
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| 9 | * This file contains master control logic for the JPEG compressor.
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| 10 | * These routines are concerned with parameter validation, initial setup,
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| 11 | * and inter-pass control (determining the number of passes and the work
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| 12 | * to be done in each pass).
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| 13 | */
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| 14 |
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| 15 | #define JPEG_INTERNALS
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| 16 | #include "jinclude.h"
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| 17 | #include "jpeglib.h"
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| 18 |
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| 19 |
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| 20 | /* Private state */
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| 21 |
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| 22 | typedef enum {
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| 23 | main_pass, /* input data, also do first output step */
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| 24 | huff_opt_pass, /* Huffman code optimization pass */
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| 25 | output_pass /* data output pass */
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| 26 | } c_pass_type;
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| 27 |
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| 28 | typedef struct {
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| 29 | struct jpeg_comp_master pub; /* public fields */
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| 30 |
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| 31 | c_pass_type pass_type; /* the type of the current pass */
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| 32 |
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| 33 | int pass_number; /* # of passes completed */
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| 34 | int total_passes; /* total # of passes needed */
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| 35 |
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| 36 | int scan_number; /* current index in scan_info[] */
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| 37 | } my_comp_master;
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| 38 |
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| 39 | typedef my_comp_master * my_master_ptr;
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| 40 |
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| 41 |
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| 42 | /*
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| 43 | * Support routines that do various essential calculations.
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| 44 | */
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| 45 |
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[846] | 46 | /*
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| 47 | * Compute JPEG image dimensions and related values.
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| 48 | * NOTE: this is exported for possible use by application.
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| 49 | * Hence it mustn't do anything that can't be done twice.
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| 50 | */
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| 51 |
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| 52 | GLOBAL(void)
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| 53 | jpeg_calc_jpeg_dimensions (j_compress_ptr cinfo)
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| 54 | /* Do computations that are needed before master selection phase */
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| 55 | {
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| 56 | #ifdef DCT_SCALING_SUPPORTED
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| 57 |
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| 58 | /* Compute actual JPEG image dimensions and DCT scaling choices. */
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| 59 | if (cinfo->scale_num >= cinfo->scale_denom * 8) {
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| 60 | /* Provide 8/1 scaling */
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| 61 | cinfo->jpeg_width = cinfo->image_width << 3;
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| 62 | cinfo->jpeg_height = cinfo->image_height << 3;
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| 63 | cinfo->min_DCT_h_scaled_size = 1;
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| 64 | cinfo->min_DCT_v_scaled_size = 1;
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| 65 | } else if (cinfo->scale_num >= cinfo->scale_denom * 4) {
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| 66 | /* Provide 4/1 scaling */
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| 67 | cinfo->jpeg_width = cinfo->image_width << 2;
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| 68 | cinfo->jpeg_height = cinfo->image_height << 2;
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| 69 | cinfo->min_DCT_h_scaled_size = 2;
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| 70 | cinfo->min_DCT_v_scaled_size = 2;
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| 71 | } else if (cinfo->scale_num * 3 >= cinfo->scale_denom * 8) {
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| 72 | /* Provide 8/3 scaling */
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| 73 | cinfo->jpeg_width = (cinfo->image_width << 1) + (JDIMENSION)
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| 74 | jdiv_round_up((long) cinfo->image_width * 2, 3L);
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| 75 | cinfo->jpeg_height = (cinfo->image_height << 1) + (JDIMENSION)
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| 76 | jdiv_round_up((long) cinfo->image_height * 2, 3L);
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| 77 | cinfo->min_DCT_h_scaled_size = 3;
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| 78 | cinfo->min_DCT_v_scaled_size = 3;
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| 79 | } else if (cinfo->scale_num >= cinfo->scale_denom * 2) {
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| 80 | /* Provide 2/1 scaling */
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| 81 | cinfo->jpeg_width = cinfo->image_width << 1;
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| 82 | cinfo->jpeg_height = cinfo->image_height << 1;
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| 83 | cinfo->min_DCT_h_scaled_size = 4;
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| 84 | cinfo->min_DCT_v_scaled_size = 4;
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| 85 | } else if (cinfo->scale_num * 5 >= cinfo->scale_denom * 8) {
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| 86 | /* Provide 8/5 scaling */
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| 87 | cinfo->jpeg_width = cinfo->image_width + (JDIMENSION)
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| 88 | jdiv_round_up((long) cinfo->image_width * 3, 5L);
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| 89 | cinfo->jpeg_height = cinfo->image_height + (JDIMENSION)
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| 90 | jdiv_round_up((long) cinfo->image_height * 3, 5L);
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| 91 | cinfo->min_DCT_h_scaled_size = 5;
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| 92 | cinfo->min_DCT_v_scaled_size = 5;
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| 93 | } else if (cinfo->scale_num * 3 >= cinfo->scale_denom * 4) {
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| 94 | /* Provide 4/3 scaling */
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| 95 | cinfo->jpeg_width = cinfo->image_width + (JDIMENSION)
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| 96 | jdiv_round_up((long) cinfo->image_width, 3L);
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| 97 | cinfo->jpeg_height = cinfo->image_height + (JDIMENSION)
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| 98 | jdiv_round_up((long) cinfo->image_height, 3L);
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| 99 | cinfo->min_DCT_h_scaled_size = 6;
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| 100 | cinfo->min_DCT_v_scaled_size = 6;
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| 101 | } else if (cinfo->scale_num * 7 >= cinfo->scale_denom * 8) {
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| 102 | /* Provide 8/7 scaling */
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| 103 | cinfo->jpeg_width = cinfo->image_width + (JDIMENSION)
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| 104 | jdiv_round_up((long) cinfo->image_width, 7L);
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| 105 | cinfo->jpeg_height = cinfo->image_height + (JDIMENSION)
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| 106 | jdiv_round_up((long) cinfo->image_height, 7L);
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| 107 | cinfo->min_DCT_h_scaled_size = 7;
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| 108 | cinfo->min_DCT_v_scaled_size = 7;
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| 109 | } else if (cinfo->scale_num >= cinfo->scale_denom) {
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| 110 | /* Provide 1/1 scaling */
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| 111 | cinfo->jpeg_width = cinfo->image_width;
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| 112 | cinfo->jpeg_height = cinfo->image_height;
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| 113 | cinfo->min_DCT_h_scaled_size = 8;
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| 114 | cinfo->min_DCT_v_scaled_size = 8;
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| 115 | } else if (cinfo->scale_num * 9 >= cinfo->scale_denom * 8) {
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| 116 | /* Provide 8/9 scaling */
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| 117 | cinfo->jpeg_width = (JDIMENSION)
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| 118 | jdiv_round_up((long) cinfo->image_width * 8, 9L);
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| 119 | cinfo->jpeg_height = (JDIMENSION)
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| 120 | jdiv_round_up((long) cinfo->image_height * 8, 9L);
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| 121 | cinfo->min_DCT_h_scaled_size = 9;
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| 122 | cinfo->min_DCT_v_scaled_size = 9;
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| 123 | } else if (cinfo->scale_num * 5 >= cinfo->scale_denom * 4) {
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| 124 | /* Provide 4/5 scaling */
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| 125 | cinfo->jpeg_width = (JDIMENSION)
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| 126 | jdiv_round_up((long) cinfo->image_width * 4, 5L);
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| 127 | cinfo->jpeg_height = (JDIMENSION)
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| 128 | jdiv_round_up((long) cinfo->image_height * 4, 5L);
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| 129 | cinfo->min_DCT_h_scaled_size = 10;
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| 130 | cinfo->min_DCT_v_scaled_size = 10;
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| 131 | } else if (cinfo->scale_num * 11 >= cinfo->scale_denom * 8) {
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| 132 | /* Provide 8/11 scaling */
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| 133 | cinfo->jpeg_width = (JDIMENSION)
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| 134 | jdiv_round_up((long) cinfo->image_width * 8, 11L);
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| 135 | cinfo->jpeg_height = (JDIMENSION)
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| 136 | jdiv_round_up((long) cinfo->image_height * 8, 11L);
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| 137 | cinfo->min_DCT_h_scaled_size = 11;
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| 138 | cinfo->min_DCT_v_scaled_size = 11;
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| 139 | } else if (cinfo->scale_num * 3 >= cinfo->scale_denom * 2) {
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| 140 | /* Provide 2/3 scaling */
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| 141 | cinfo->jpeg_width = (JDIMENSION)
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| 142 | jdiv_round_up((long) cinfo->image_width * 2, 3L);
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| 143 | cinfo->jpeg_height = (JDIMENSION)
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| 144 | jdiv_round_up((long) cinfo->image_height * 2, 3L);
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| 145 | cinfo->min_DCT_h_scaled_size = 12;
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| 146 | cinfo->min_DCT_v_scaled_size = 12;
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| 147 | } else if (cinfo->scale_num * 13 >= cinfo->scale_denom * 8) {
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| 148 | /* Provide 8/13 scaling */
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| 149 | cinfo->jpeg_width = (JDIMENSION)
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| 150 | jdiv_round_up((long) cinfo->image_width * 8, 13L);
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| 151 | cinfo->jpeg_height = (JDIMENSION)
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| 152 | jdiv_round_up((long) cinfo->image_height * 8, 13L);
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| 153 | cinfo->min_DCT_h_scaled_size = 13;
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| 154 | cinfo->min_DCT_v_scaled_size = 13;
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| 155 | } else if (cinfo->scale_num * 7 >= cinfo->scale_denom * 4) {
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| 156 | /* Provide 4/7 scaling */
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| 157 | cinfo->jpeg_width = (JDIMENSION)
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| 158 | jdiv_round_up((long) cinfo->image_width * 4, 7L);
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| 159 | cinfo->jpeg_height = (JDIMENSION)
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| 160 | jdiv_round_up((long) cinfo->image_height * 4, 7L);
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| 161 | cinfo->min_DCT_h_scaled_size = 14;
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| 162 | cinfo->min_DCT_v_scaled_size = 14;
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| 163 | } else if (cinfo->scale_num * 15 >= cinfo->scale_denom * 8) {
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| 164 | /* Provide 8/15 scaling */
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| 165 | cinfo->jpeg_width = (JDIMENSION)
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| 166 | jdiv_round_up((long) cinfo->image_width * 8, 15L);
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| 167 | cinfo->jpeg_height = (JDIMENSION)
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| 168 | jdiv_round_up((long) cinfo->image_height * 8, 15L);
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| 169 | cinfo->min_DCT_h_scaled_size = 15;
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| 170 | cinfo->min_DCT_v_scaled_size = 15;
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| 171 | } else {
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| 172 | /* Provide 1/2 scaling */
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| 173 | cinfo->jpeg_width = (JDIMENSION)
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| 174 | jdiv_round_up((long) cinfo->image_width, 2L);
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| 175 | cinfo->jpeg_height = (JDIMENSION)
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| 176 | jdiv_round_up((long) cinfo->image_height, 2L);
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| 177 | cinfo->min_DCT_h_scaled_size = 16;
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| 178 | cinfo->min_DCT_v_scaled_size = 16;
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| 179 | }
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| 180 |
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| 181 | #else /* !DCT_SCALING_SUPPORTED */
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| 182 |
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| 183 | /* Hardwire it to "no scaling" */
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| 184 | cinfo->jpeg_width = cinfo->image_width;
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| 185 | cinfo->jpeg_height = cinfo->image_height;
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| 186 | cinfo->min_DCT_h_scaled_size = DCTSIZE;
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| 187 | cinfo->min_DCT_v_scaled_size = DCTSIZE;
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| 188 |
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| 189 | #endif /* DCT_SCALING_SUPPORTED */
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| 190 |
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| 191 | cinfo->block_size = DCTSIZE;
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| 192 | cinfo->natural_order = jpeg_natural_order;
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| 193 | cinfo->lim_Se = DCTSIZE2-1;
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| 194 | }
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| 195 |
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| 196 |
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[2] | 197 | LOCAL(void)
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[846] | 198 | jpeg_calc_trans_dimensions (j_compress_ptr cinfo)
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| 199 | {
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| 200 | if (cinfo->min_DCT_h_scaled_size < 1 || cinfo->min_DCT_h_scaled_size > 16
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| 201 | || cinfo->min_DCT_h_scaled_size != cinfo->min_DCT_v_scaled_size)
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| 202 | ERREXIT2(cinfo, JERR_BAD_DCTSIZE,
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| 203 | cinfo->min_DCT_h_scaled_size, cinfo->min_DCT_v_scaled_size);
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| 204 |
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| 205 | cinfo->block_size = cinfo->min_DCT_h_scaled_size;
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| 206 |
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| 207 | switch (cinfo->block_size) {
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| 208 | case 2: cinfo->natural_order = jpeg_natural_order2; break;
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| 209 | case 3: cinfo->natural_order = jpeg_natural_order3; break;
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| 210 | case 4: cinfo->natural_order = jpeg_natural_order4; break;
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| 211 | case 5: cinfo->natural_order = jpeg_natural_order5; break;
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| 212 | case 6: cinfo->natural_order = jpeg_natural_order6; break;
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| 213 | case 7: cinfo->natural_order = jpeg_natural_order7; break;
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| 214 | default: cinfo->natural_order = jpeg_natural_order; break;
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| 215 | }
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| 216 |
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| 217 | cinfo->lim_Se = cinfo->block_size < DCTSIZE ?
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| 218 | cinfo->block_size * cinfo->block_size - 1 : DCTSIZE2-1;
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| 219 | }
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| 220 |
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| 221 |
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| 222 | LOCAL(void)
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| 223 | initial_setup (j_compress_ptr cinfo, boolean transcode_only)
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[2] | 224 | /* Do computations that are needed before master selection phase */
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| 225 | {
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[846] | 226 | int ci, ssize;
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[2] | 227 | jpeg_component_info *compptr;
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| 228 | long samplesperrow;
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| 229 | JDIMENSION jd_samplesperrow;
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| 230 |
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[846] | 231 | if (transcode_only)
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| 232 | jpeg_calc_trans_dimensions(cinfo);
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| 233 | else
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| 234 | jpeg_calc_jpeg_dimensions(cinfo);
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| 235 |
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[2] | 236 | /* Sanity check on image dimensions */
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[846] | 237 | if (cinfo->jpeg_height <= 0 || cinfo->jpeg_width <= 0 ||
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| 238 | cinfo->num_components <= 0 || cinfo->input_components <= 0)
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[2] | 239 | ERREXIT(cinfo, JERR_EMPTY_IMAGE);
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| 240 |
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| 241 | /* Make sure image isn't bigger than I can handle */
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[846] | 242 | if ((long) cinfo->jpeg_height > (long) JPEG_MAX_DIMENSION ||
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| 243 | (long) cinfo->jpeg_width > (long) JPEG_MAX_DIMENSION)
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[2] | 244 | ERREXIT1(cinfo, JERR_IMAGE_TOO_BIG, (unsigned int) JPEG_MAX_DIMENSION);
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| 245 |
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| 246 | /* Width of an input scanline must be representable as JDIMENSION. */
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| 247 | samplesperrow = (long) cinfo->image_width * (long) cinfo->input_components;
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| 248 | jd_samplesperrow = (JDIMENSION) samplesperrow;
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| 249 | if ((long) jd_samplesperrow != samplesperrow)
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| 250 | ERREXIT(cinfo, JERR_WIDTH_OVERFLOW);
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| 251 |
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| 252 | /* For now, precision must match compiled-in value... */
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| 253 | if (cinfo->data_precision != BITS_IN_JSAMPLE)
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| 254 | ERREXIT1(cinfo, JERR_BAD_PRECISION, cinfo->data_precision);
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| 255 |
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| 256 | /* Check that number of components won't exceed internal array sizes */
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| 257 | if (cinfo->num_components > MAX_COMPONENTS)
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| 258 | ERREXIT2(cinfo, JERR_COMPONENT_COUNT, cinfo->num_components,
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| 259 | MAX_COMPONENTS);
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| 260 |
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| 261 | /* Compute maximum sampling factors; check factor validity */
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| 262 | cinfo->max_h_samp_factor = 1;
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| 263 | cinfo->max_v_samp_factor = 1;
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| 264 | for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
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| 265 | ci++, compptr++) {
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| 266 | if (compptr->h_samp_factor<=0 || compptr->h_samp_factor>MAX_SAMP_FACTOR ||
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| 267 | compptr->v_samp_factor<=0 || compptr->v_samp_factor>MAX_SAMP_FACTOR)
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| 268 | ERREXIT(cinfo, JERR_BAD_SAMPLING);
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| 269 | cinfo->max_h_samp_factor = MAX(cinfo->max_h_samp_factor,
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| 270 | compptr->h_samp_factor);
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| 271 | cinfo->max_v_samp_factor = MAX(cinfo->max_v_samp_factor,
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| 272 | compptr->v_samp_factor);
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| 273 | }
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| 274 |
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| 275 | /* Compute dimensions of components */
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| 276 | for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
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| 277 | ci++, compptr++) {
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| 278 | /* Fill in the correct component_index value; don't rely on application */
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| 279 | compptr->component_index = ci;
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[846] | 280 | /* In selecting the actual DCT scaling for each component, we try to
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| 281 | * scale down the chroma components via DCT scaling rather than downsampling.
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| 282 | * This saves time if the downsampler gets to use 1:1 scaling.
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| 283 | * Note this code adapts subsampling ratios which are powers of 2.
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| 284 | */
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| 285 | ssize = 1;
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| 286 | #ifdef DCT_SCALING_SUPPORTED
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| 287 | while (cinfo->min_DCT_h_scaled_size * ssize <=
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| 288 | (cinfo->do_fancy_downsampling ? DCTSIZE : DCTSIZE / 2) &&
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| 289 | (cinfo->max_h_samp_factor % (compptr->h_samp_factor * ssize * 2)) == 0) {
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| 290 | ssize = ssize * 2;
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| 291 | }
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| 292 | #endif
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| 293 | compptr->DCT_h_scaled_size = cinfo->min_DCT_h_scaled_size * ssize;
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| 294 | ssize = 1;
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| 295 | #ifdef DCT_SCALING_SUPPORTED
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| 296 | while (cinfo->min_DCT_v_scaled_size * ssize <=
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| 297 | (cinfo->do_fancy_downsampling ? DCTSIZE : DCTSIZE / 2) &&
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| 298 | (cinfo->max_v_samp_factor % (compptr->v_samp_factor * ssize * 2)) == 0) {
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| 299 | ssize = ssize * 2;
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| 300 | }
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| 301 | #endif
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| 302 | compptr->DCT_v_scaled_size = cinfo->min_DCT_v_scaled_size * ssize;
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| 303 |
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| 304 | /* We don't support DCT ratios larger than 2. */
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| 305 | if (compptr->DCT_h_scaled_size > compptr->DCT_v_scaled_size * 2)
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| 306 | compptr->DCT_h_scaled_size = compptr->DCT_v_scaled_size * 2;
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| 307 | else if (compptr->DCT_v_scaled_size > compptr->DCT_h_scaled_size * 2)
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| 308 | compptr->DCT_v_scaled_size = compptr->DCT_h_scaled_size * 2;
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| 309 |
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[2] | 310 | /* Size in DCT blocks */
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| 311 | compptr->width_in_blocks = (JDIMENSION)
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[846] | 312 | jdiv_round_up((long) cinfo->jpeg_width * (long) compptr->h_samp_factor,
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| 313 | (long) (cinfo->max_h_samp_factor * cinfo->block_size));
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[2] | 314 | compptr->height_in_blocks = (JDIMENSION)
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[846] | 315 | jdiv_round_up((long) cinfo->jpeg_height * (long) compptr->v_samp_factor,
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| 316 | (long) (cinfo->max_v_samp_factor * cinfo->block_size));
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[2] | 317 | /* Size in samples */
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| 318 | compptr->downsampled_width = (JDIMENSION)
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[846] | 319 | jdiv_round_up((long) cinfo->jpeg_width *
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| 320 | (long) (compptr->h_samp_factor * compptr->DCT_h_scaled_size),
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| 321 | (long) (cinfo->max_h_samp_factor * cinfo->block_size));
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[2] | 322 | compptr->downsampled_height = (JDIMENSION)
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[846] | 323 | jdiv_round_up((long) cinfo->jpeg_height *
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| 324 | (long) (compptr->v_samp_factor * compptr->DCT_v_scaled_size),
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| 325 | (long) (cinfo->max_v_samp_factor * cinfo->block_size));
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[2] | 326 | /* Mark component needed (this flag isn't actually used for compression) */
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| 327 | compptr->component_needed = TRUE;
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| 328 | }
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| 329 |
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| 330 | /* Compute number of fully interleaved MCU rows (number of times that
|
---|
| 331 | * main controller will call coefficient controller).
|
---|
| 332 | */
|
---|
| 333 | cinfo->total_iMCU_rows = (JDIMENSION)
|
---|
[846] | 334 | jdiv_round_up((long) cinfo->jpeg_height,
|
---|
| 335 | (long) (cinfo->max_v_samp_factor * cinfo->block_size));
|
---|
[2] | 336 | }
|
---|
| 337 |
|
---|
| 338 |
|
---|
| 339 | #ifdef C_MULTISCAN_FILES_SUPPORTED
|
---|
| 340 |
|
---|
| 341 | LOCAL(void)
|
---|
| 342 | validate_script (j_compress_ptr cinfo)
|
---|
| 343 | /* Verify that the scan script in cinfo->scan_info[] is valid; also
|
---|
| 344 | * determine whether it uses progressive JPEG, and set cinfo->progressive_mode.
|
---|
| 345 | */
|
---|
| 346 | {
|
---|
| 347 | const jpeg_scan_info * scanptr;
|
---|
| 348 | int scanno, ncomps, ci, coefi, thisi;
|
---|
| 349 | int Ss, Se, Ah, Al;
|
---|
| 350 | boolean component_sent[MAX_COMPONENTS];
|
---|
| 351 | #ifdef C_PROGRESSIVE_SUPPORTED
|
---|
| 352 | int * last_bitpos_ptr;
|
---|
| 353 | int last_bitpos[MAX_COMPONENTS][DCTSIZE2];
|
---|
| 354 | /* -1 until that coefficient has been seen; then last Al for it */
|
---|
| 355 | #endif
|
---|
| 356 |
|
---|
| 357 | if (cinfo->num_scans <= 0)
|
---|
| 358 | ERREXIT1(cinfo, JERR_BAD_SCAN_SCRIPT, 0);
|
---|
| 359 |
|
---|
| 360 | /* For sequential JPEG, all scans must have Ss=0, Se=DCTSIZE2-1;
|
---|
| 361 | * for progressive JPEG, no scan can have this.
|
---|
| 362 | */
|
---|
| 363 | scanptr = cinfo->scan_info;
|
---|
| 364 | if (scanptr->Ss != 0 || scanptr->Se != DCTSIZE2-1) {
|
---|
| 365 | #ifdef C_PROGRESSIVE_SUPPORTED
|
---|
| 366 | cinfo->progressive_mode = TRUE;
|
---|
| 367 | last_bitpos_ptr = & last_bitpos[0][0];
|
---|
| 368 | for (ci = 0; ci < cinfo->num_components; ci++)
|
---|
| 369 | for (coefi = 0; coefi < DCTSIZE2; coefi++)
|
---|
| 370 | *last_bitpos_ptr++ = -1;
|
---|
| 371 | #else
|
---|
| 372 | ERREXIT(cinfo, JERR_NOT_COMPILED);
|
---|
| 373 | #endif
|
---|
| 374 | } else {
|
---|
| 375 | cinfo->progressive_mode = FALSE;
|
---|
| 376 | for (ci = 0; ci < cinfo->num_components; ci++)
|
---|
| 377 | component_sent[ci] = FALSE;
|
---|
| 378 | }
|
---|
| 379 |
|
---|
| 380 | for (scanno = 1; scanno <= cinfo->num_scans; scanptr++, scanno++) {
|
---|
| 381 | /* Validate component indexes */
|
---|
| 382 | ncomps = scanptr->comps_in_scan;
|
---|
| 383 | if (ncomps <= 0 || ncomps > MAX_COMPS_IN_SCAN)
|
---|
| 384 | ERREXIT2(cinfo, JERR_COMPONENT_COUNT, ncomps, MAX_COMPS_IN_SCAN);
|
---|
| 385 | for (ci = 0; ci < ncomps; ci++) {
|
---|
| 386 | thisi = scanptr->component_index[ci];
|
---|
| 387 | if (thisi < 0 || thisi >= cinfo->num_components)
|
---|
| 388 | ERREXIT1(cinfo, JERR_BAD_SCAN_SCRIPT, scanno);
|
---|
| 389 | /* Components must appear in SOF order within each scan */
|
---|
| 390 | if (ci > 0 && thisi <= scanptr->component_index[ci-1])
|
---|
| 391 | ERREXIT1(cinfo, JERR_BAD_SCAN_SCRIPT, scanno);
|
---|
| 392 | }
|
---|
| 393 | /* Validate progression parameters */
|
---|
| 394 | Ss = scanptr->Ss;
|
---|
| 395 | Se = scanptr->Se;
|
---|
| 396 | Ah = scanptr->Ah;
|
---|
| 397 | Al = scanptr->Al;
|
---|
| 398 | if (cinfo->progressive_mode) {
|
---|
| 399 | #ifdef C_PROGRESSIVE_SUPPORTED
|
---|
| 400 | /* The JPEG spec simply gives the ranges 0..13 for Ah and Al, but that
|
---|
| 401 | * seems wrong: the upper bound ought to depend on data precision.
|
---|
| 402 | * Perhaps they really meant 0..N+1 for N-bit precision.
|
---|
| 403 | * Here we allow 0..10 for 8-bit data; Al larger than 10 results in
|
---|
| 404 | * out-of-range reconstructed DC values during the first DC scan,
|
---|
| 405 | * which might cause problems for some decoders.
|
---|
| 406 | */
|
---|
| 407 | #if BITS_IN_JSAMPLE == 8
|
---|
| 408 | #define MAX_AH_AL 10
|
---|
| 409 | #else
|
---|
| 410 | #define MAX_AH_AL 13
|
---|
| 411 | #endif
|
---|
| 412 | if (Ss < 0 || Ss >= DCTSIZE2 || Se < Ss || Se >= DCTSIZE2 ||
|
---|
| 413 | Ah < 0 || Ah > MAX_AH_AL || Al < 0 || Al > MAX_AH_AL)
|
---|
| 414 | ERREXIT1(cinfo, JERR_BAD_PROG_SCRIPT, scanno);
|
---|
| 415 | if (Ss == 0) {
|
---|
| 416 | if (Se != 0) /* DC and AC together not OK */
|
---|
| 417 | ERREXIT1(cinfo, JERR_BAD_PROG_SCRIPT, scanno);
|
---|
| 418 | } else {
|
---|
| 419 | if (ncomps != 1) /* AC scans must be for only one component */
|
---|
| 420 | ERREXIT1(cinfo, JERR_BAD_PROG_SCRIPT, scanno);
|
---|
| 421 | }
|
---|
| 422 | for (ci = 0; ci < ncomps; ci++) {
|
---|
| 423 | last_bitpos_ptr = & last_bitpos[scanptr->component_index[ci]][0];
|
---|
| 424 | if (Ss != 0 && last_bitpos_ptr[0] < 0) /* AC without prior DC scan */
|
---|
| 425 | ERREXIT1(cinfo, JERR_BAD_PROG_SCRIPT, scanno);
|
---|
| 426 | for (coefi = Ss; coefi <= Se; coefi++) {
|
---|
| 427 | if (last_bitpos_ptr[coefi] < 0) {
|
---|
| 428 | /* first scan of this coefficient */
|
---|
| 429 | if (Ah != 0)
|
---|
| 430 | ERREXIT1(cinfo, JERR_BAD_PROG_SCRIPT, scanno);
|
---|
| 431 | } else {
|
---|
| 432 | /* not first scan */
|
---|
| 433 | if (Ah != last_bitpos_ptr[coefi] || Al != Ah-1)
|
---|
| 434 | ERREXIT1(cinfo, JERR_BAD_PROG_SCRIPT, scanno);
|
---|
| 435 | }
|
---|
| 436 | last_bitpos_ptr[coefi] = Al;
|
---|
| 437 | }
|
---|
| 438 | }
|
---|
| 439 | #endif
|
---|
| 440 | } else {
|
---|
| 441 | /* For sequential JPEG, all progression parameters must be these: */
|
---|
| 442 | if (Ss != 0 || Se != DCTSIZE2-1 || Ah != 0 || Al != 0)
|
---|
| 443 | ERREXIT1(cinfo, JERR_BAD_PROG_SCRIPT, scanno);
|
---|
| 444 | /* Make sure components are not sent twice */
|
---|
| 445 | for (ci = 0; ci < ncomps; ci++) {
|
---|
| 446 | thisi = scanptr->component_index[ci];
|
---|
| 447 | if (component_sent[thisi])
|
---|
| 448 | ERREXIT1(cinfo, JERR_BAD_SCAN_SCRIPT, scanno);
|
---|
| 449 | component_sent[thisi] = TRUE;
|
---|
| 450 | }
|
---|
| 451 | }
|
---|
| 452 | }
|
---|
| 453 |
|
---|
| 454 | /* Now verify that everything got sent. */
|
---|
| 455 | if (cinfo->progressive_mode) {
|
---|
| 456 | #ifdef C_PROGRESSIVE_SUPPORTED
|
---|
| 457 | /* For progressive mode, we only check that at least some DC data
|
---|
| 458 | * got sent for each component; the spec does not require that all bits
|
---|
| 459 | * of all coefficients be transmitted. Would it be wiser to enforce
|
---|
| 460 | * transmission of all coefficient bits??
|
---|
| 461 | */
|
---|
| 462 | for (ci = 0; ci < cinfo->num_components; ci++) {
|
---|
| 463 | if (last_bitpos[ci][0] < 0)
|
---|
| 464 | ERREXIT(cinfo, JERR_MISSING_DATA);
|
---|
| 465 | }
|
---|
| 466 | #endif
|
---|
| 467 | } else {
|
---|
| 468 | for (ci = 0; ci < cinfo->num_components; ci++) {
|
---|
| 469 | if (! component_sent[ci])
|
---|
| 470 | ERREXIT(cinfo, JERR_MISSING_DATA);
|
---|
| 471 | }
|
---|
| 472 | }
|
---|
| 473 | }
|
---|
| 474 |
|
---|
[846] | 475 |
|
---|
| 476 | LOCAL(void)
|
---|
| 477 | reduce_script (j_compress_ptr cinfo)
|
---|
| 478 | /* Adapt scan script for use with reduced block size;
|
---|
| 479 | * assume that script has been validated before.
|
---|
| 480 | */
|
---|
| 481 | {
|
---|
| 482 | jpeg_scan_info * scanptr;
|
---|
| 483 | int idxout, idxin;
|
---|
| 484 |
|
---|
| 485 | /* Circumvent const declaration for this function */
|
---|
| 486 | scanptr = (jpeg_scan_info *) cinfo->scan_info;
|
---|
| 487 | idxout = 0;
|
---|
| 488 |
|
---|
| 489 | for (idxin = 0; idxin < cinfo->num_scans; idxin++) {
|
---|
| 490 | /* After skipping, idxout becomes smaller than idxin */
|
---|
| 491 | if (idxin != idxout)
|
---|
| 492 | /* Copy rest of data;
|
---|
| 493 | * note we stay in given chunk of allocated memory.
|
---|
| 494 | */
|
---|
| 495 | scanptr[idxout] = scanptr[idxin];
|
---|
| 496 | if (scanptr[idxout].Ss > cinfo->lim_Se)
|
---|
| 497 | /* Entire scan out of range - skip this entry */
|
---|
| 498 | continue;
|
---|
| 499 | if (scanptr[idxout].Se > cinfo->lim_Se)
|
---|
| 500 | /* Limit scan to end of block */
|
---|
| 501 | scanptr[idxout].Se = cinfo->lim_Se;
|
---|
| 502 | idxout++;
|
---|
| 503 | }
|
---|
| 504 |
|
---|
| 505 | cinfo->num_scans = idxout;
|
---|
| 506 | }
|
---|
| 507 |
|
---|
[2] | 508 | #endif /* C_MULTISCAN_FILES_SUPPORTED */
|
---|
| 509 |
|
---|
| 510 |
|
---|
| 511 | LOCAL(void)
|
---|
| 512 | select_scan_parameters (j_compress_ptr cinfo)
|
---|
| 513 | /* Set up the scan parameters for the current scan */
|
---|
| 514 | {
|
---|
| 515 | int ci;
|
---|
| 516 |
|
---|
| 517 | #ifdef C_MULTISCAN_FILES_SUPPORTED
|
---|
| 518 | if (cinfo->scan_info != NULL) {
|
---|
| 519 | /* Prepare for current scan --- the script is already validated */
|
---|
| 520 | my_master_ptr master = (my_master_ptr) cinfo->master;
|
---|
| 521 | const jpeg_scan_info * scanptr = cinfo->scan_info + master->scan_number;
|
---|
| 522 |
|
---|
| 523 | cinfo->comps_in_scan = scanptr->comps_in_scan;
|
---|
| 524 | for (ci = 0; ci < scanptr->comps_in_scan; ci++) {
|
---|
| 525 | cinfo->cur_comp_info[ci] =
|
---|
| 526 | &cinfo->comp_info[scanptr->component_index[ci]];
|
---|
| 527 | }
|
---|
[846] | 528 | if (cinfo->progressive_mode) {
|
---|
| 529 | cinfo->Ss = scanptr->Ss;
|
---|
| 530 | cinfo->Se = scanptr->Se;
|
---|
| 531 | cinfo->Ah = scanptr->Ah;
|
---|
| 532 | cinfo->Al = scanptr->Al;
|
---|
| 533 | return;
|
---|
| 534 | }
|
---|
[2] | 535 | }
|
---|
| 536 | else
|
---|
| 537 | #endif
|
---|
| 538 | {
|
---|
| 539 | /* Prepare for single sequential-JPEG scan containing all components */
|
---|
| 540 | if (cinfo->num_components > MAX_COMPS_IN_SCAN)
|
---|
| 541 | ERREXIT2(cinfo, JERR_COMPONENT_COUNT, cinfo->num_components,
|
---|
| 542 | MAX_COMPS_IN_SCAN);
|
---|
| 543 | cinfo->comps_in_scan = cinfo->num_components;
|
---|
| 544 | for (ci = 0; ci < cinfo->num_components; ci++) {
|
---|
| 545 | cinfo->cur_comp_info[ci] = &cinfo->comp_info[ci];
|
---|
| 546 | }
|
---|
| 547 | }
|
---|
[846] | 548 | cinfo->Ss = 0;
|
---|
| 549 | cinfo->Se = cinfo->block_size * cinfo->block_size - 1;
|
---|
| 550 | cinfo->Ah = 0;
|
---|
| 551 | cinfo->Al = 0;
|
---|
[2] | 552 | }
|
---|
| 553 |
|
---|
| 554 |
|
---|
| 555 | LOCAL(void)
|
---|
| 556 | per_scan_setup (j_compress_ptr cinfo)
|
---|
| 557 | /* Do computations that are needed before processing a JPEG scan */
|
---|
| 558 | /* cinfo->comps_in_scan and cinfo->cur_comp_info[] are already set */
|
---|
| 559 | {
|
---|
| 560 | int ci, mcublks, tmp;
|
---|
| 561 | jpeg_component_info *compptr;
|
---|
| 562 |
|
---|
| 563 | if (cinfo->comps_in_scan == 1) {
|
---|
| 564 |
|
---|
| 565 | /* Noninterleaved (single-component) scan */
|
---|
| 566 | compptr = cinfo->cur_comp_info[0];
|
---|
| 567 |
|
---|
| 568 | /* Overall image size in MCUs */
|
---|
| 569 | cinfo->MCUs_per_row = compptr->width_in_blocks;
|
---|
| 570 | cinfo->MCU_rows_in_scan = compptr->height_in_blocks;
|
---|
| 571 |
|
---|
| 572 | /* For noninterleaved scan, always one block per MCU */
|
---|
| 573 | compptr->MCU_width = 1;
|
---|
| 574 | compptr->MCU_height = 1;
|
---|
| 575 | compptr->MCU_blocks = 1;
|
---|
[846] | 576 | compptr->MCU_sample_width = compptr->DCT_h_scaled_size;
|
---|
[2] | 577 | compptr->last_col_width = 1;
|
---|
| 578 | /* For noninterleaved scans, it is convenient to define last_row_height
|
---|
| 579 | * as the number of block rows present in the last iMCU row.
|
---|
| 580 | */
|
---|
| 581 | tmp = (int) (compptr->height_in_blocks % compptr->v_samp_factor);
|
---|
| 582 | if (tmp == 0) tmp = compptr->v_samp_factor;
|
---|
| 583 | compptr->last_row_height = tmp;
|
---|
| 584 |
|
---|
| 585 | /* Prepare array describing MCU composition */
|
---|
| 586 | cinfo->blocks_in_MCU = 1;
|
---|
| 587 | cinfo->MCU_membership[0] = 0;
|
---|
| 588 |
|
---|
| 589 | } else {
|
---|
| 590 |
|
---|
| 591 | /* Interleaved (multi-component) scan */
|
---|
| 592 | if (cinfo->comps_in_scan <= 0 || cinfo->comps_in_scan > MAX_COMPS_IN_SCAN)
|
---|
| 593 | ERREXIT2(cinfo, JERR_COMPONENT_COUNT, cinfo->comps_in_scan,
|
---|
| 594 | MAX_COMPS_IN_SCAN);
|
---|
| 595 |
|
---|
| 596 | /* Overall image size in MCUs */
|
---|
| 597 | cinfo->MCUs_per_row = (JDIMENSION)
|
---|
[846] | 598 | jdiv_round_up((long) cinfo->jpeg_width,
|
---|
| 599 | (long) (cinfo->max_h_samp_factor * cinfo->block_size));
|
---|
[2] | 600 | cinfo->MCU_rows_in_scan = (JDIMENSION)
|
---|
[846] | 601 | jdiv_round_up((long) cinfo->jpeg_height,
|
---|
| 602 | (long) (cinfo->max_v_samp_factor * cinfo->block_size));
|
---|
[2] | 603 |
|
---|
| 604 | cinfo->blocks_in_MCU = 0;
|
---|
| 605 |
|
---|
| 606 | for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
---|
| 607 | compptr = cinfo->cur_comp_info[ci];
|
---|
| 608 | /* Sampling factors give # of blocks of component in each MCU */
|
---|
| 609 | compptr->MCU_width = compptr->h_samp_factor;
|
---|
| 610 | compptr->MCU_height = compptr->v_samp_factor;
|
---|
| 611 | compptr->MCU_blocks = compptr->MCU_width * compptr->MCU_height;
|
---|
[846] | 612 | compptr->MCU_sample_width = compptr->MCU_width * compptr->DCT_h_scaled_size;
|
---|
[2] | 613 | /* Figure number of non-dummy blocks in last MCU column & row */
|
---|
| 614 | tmp = (int) (compptr->width_in_blocks % compptr->MCU_width);
|
---|
| 615 | if (tmp == 0) tmp = compptr->MCU_width;
|
---|
| 616 | compptr->last_col_width = tmp;
|
---|
| 617 | tmp = (int) (compptr->height_in_blocks % compptr->MCU_height);
|
---|
| 618 | if (tmp == 0) tmp = compptr->MCU_height;
|
---|
| 619 | compptr->last_row_height = tmp;
|
---|
| 620 | /* Prepare array describing MCU composition */
|
---|
| 621 | mcublks = compptr->MCU_blocks;
|
---|
| 622 | if (cinfo->blocks_in_MCU + mcublks > C_MAX_BLOCKS_IN_MCU)
|
---|
| 623 | ERREXIT(cinfo, JERR_BAD_MCU_SIZE);
|
---|
| 624 | while (mcublks-- > 0) {
|
---|
| 625 | cinfo->MCU_membership[cinfo->blocks_in_MCU++] = ci;
|
---|
| 626 | }
|
---|
| 627 | }
|
---|
| 628 |
|
---|
| 629 | }
|
---|
| 630 |
|
---|
| 631 | /* Convert restart specified in rows to actual MCU count. */
|
---|
| 632 | /* Note that count must fit in 16 bits, so we provide limiting. */
|
---|
| 633 | if (cinfo->restart_in_rows > 0) {
|
---|
| 634 | long nominal = (long) cinfo->restart_in_rows * (long) cinfo->MCUs_per_row;
|
---|
| 635 | cinfo->restart_interval = (unsigned int) MIN(nominal, 65535L);
|
---|
| 636 | }
|
---|
| 637 | }
|
---|
| 638 |
|
---|
| 639 |
|
---|
| 640 | /*
|
---|
| 641 | * Per-pass setup.
|
---|
| 642 | * This is called at the beginning of each pass. We determine which modules
|
---|
| 643 | * will be active during this pass and give them appropriate start_pass calls.
|
---|
| 644 | * We also set is_last_pass to indicate whether any more passes will be
|
---|
| 645 | * required.
|
---|
| 646 | */
|
---|
| 647 |
|
---|
| 648 | METHODDEF(void)
|
---|
| 649 | prepare_for_pass (j_compress_ptr cinfo)
|
---|
| 650 | {
|
---|
| 651 | my_master_ptr master = (my_master_ptr) cinfo->master;
|
---|
| 652 |
|
---|
| 653 | switch (master->pass_type) {
|
---|
| 654 | case main_pass:
|
---|
| 655 | /* Initial pass: will collect input data, and do either Huffman
|
---|
| 656 | * optimization or data output for the first scan.
|
---|
| 657 | */
|
---|
| 658 | select_scan_parameters(cinfo);
|
---|
| 659 | per_scan_setup(cinfo);
|
---|
| 660 | if (! cinfo->raw_data_in) {
|
---|
| 661 | (*cinfo->cconvert->start_pass) (cinfo);
|
---|
| 662 | (*cinfo->downsample->start_pass) (cinfo);
|
---|
| 663 | (*cinfo->prep->start_pass) (cinfo, JBUF_PASS_THRU);
|
---|
| 664 | }
|
---|
| 665 | (*cinfo->fdct->start_pass) (cinfo);
|
---|
| 666 | (*cinfo->entropy->start_pass) (cinfo, cinfo->optimize_coding);
|
---|
| 667 | (*cinfo->coef->start_pass) (cinfo,
|
---|
| 668 | (master->total_passes > 1 ?
|
---|
| 669 | JBUF_SAVE_AND_PASS : JBUF_PASS_THRU));
|
---|
| 670 | (*cinfo->main->start_pass) (cinfo, JBUF_PASS_THRU);
|
---|
| 671 | if (cinfo->optimize_coding) {
|
---|
| 672 | /* No immediate data output; postpone writing frame/scan headers */
|
---|
| 673 | master->pub.call_pass_startup = FALSE;
|
---|
| 674 | } else {
|
---|
| 675 | /* Will write frame/scan headers at first jpeg_write_scanlines call */
|
---|
| 676 | master->pub.call_pass_startup = TRUE;
|
---|
| 677 | }
|
---|
| 678 | break;
|
---|
| 679 | #ifdef ENTROPY_OPT_SUPPORTED
|
---|
| 680 | case huff_opt_pass:
|
---|
| 681 | /* Do Huffman optimization for a scan after the first one. */
|
---|
| 682 | select_scan_parameters(cinfo);
|
---|
| 683 | per_scan_setup(cinfo);
|
---|
[846] | 684 | if (cinfo->Ss != 0 || cinfo->Ah == 0) {
|
---|
[2] | 685 | (*cinfo->entropy->start_pass) (cinfo, TRUE);
|
---|
| 686 | (*cinfo->coef->start_pass) (cinfo, JBUF_CRANK_DEST);
|
---|
| 687 | master->pub.call_pass_startup = FALSE;
|
---|
| 688 | break;
|
---|
| 689 | }
|
---|
| 690 | /* Special case: Huffman DC refinement scans need no Huffman table
|
---|
| 691 | * and therefore we can skip the optimization pass for them.
|
---|
| 692 | */
|
---|
| 693 | master->pass_type = output_pass;
|
---|
| 694 | master->pass_number++;
|
---|
| 695 | /*FALLTHROUGH*/
|
---|
| 696 | #endif
|
---|
| 697 | case output_pass:
|
---|
| 698 | /* Do a data-output pass. */
|
---|
| 699 | /* We need not repeat per-scan setup if prior optimization pass did it. */
|
---|
| 700 | if (! cinfo->optimize_coding) {
|
---|
| 701 | select_scan_parameters(cinfo);
|
---|
| 702 | per_scan_setup(cinfo);
|
---|
| 703 | }
|
---|
| 704 | (*cinfo->entropy->start_pass) (cinfo, FALSE);
|
---|
| 705 | (*cinfo->coef->start_pass) (cinfo, JBUF_CRANK_DEST);
|
---|
| 706 | /* We emit frame/scan headers now */
|
---|
| 707 | if (master->scan_number == 0)
|
---|
| 708 | (*cinfo->marker->write_frame_header) (cinfo);
|
---|
| 709 | (*cinfo->marker->write_scan_header) (cinfo);
|
---|
| 710 | master->pub.call_pass_startup = FALSE;
|
---|
| 711 | break;
|
---|
| 712 | default:
|
---|
| 713 | ERREXIT(cinfo, JERR_NOT_COMPILED);
|
---|
| 714 | }
|
---|
| 715 |
|
---|
| 716 | master->pub.is_last_pass = (master->pass_number == master->total_passes-1);
|
---|
| 717 |
|
---|
| 718 | /* Set up progress monitor's pass info if present */
|
---|
| 719 | if (cinfo->progress != NULL) {
|
---|
| 720 | cinfo->progress->completed_passes = master->pass_number;
|
---|
| 721 | cinfo->progress->total_passes = master->total_passes;
|
---|
| 722 | }
|
---|
| 723 | }
|
---|
| 724 |
|
---|
| 725 |
|
---|
| 726 | /*
|
---|
| 727 | * Special start-of-pass hook.
|
---|
| 728 | * This is called by jpeg_write_scanlines if call_pass_startup is TRUE.
|
---|
| 729 | * In single-pass processing, we need this hook because we don't want to
|
---|
| 730 | * write frame/scan headers during jpeg_start_compress; we want to let the
|
---|
| 731 | * application write COM markers etc. between jpeg_start_compress and the
|
---|
| 732 | * jpeg_write_scanlines loop.
|
---|
| 733 | * In multi-pass processing, this routine is not used.
|
---|
| 734 | */
|
---|
| 735 |
|
---|
| 736 | METHODDEF(void)
|
---|
| 737 | pass_startup (j_compress_ptr cinfo)
|
---|
| 738 | {
|
---|
| 739 | cinfo->master->call_pass_startup = FALSE; /* reset flag so call only once */
|
---|
| 740 |
|
---|
| 741 | (*cinfo->marker->write_frame_header) (cinfo);
|
---|
| 742 | (*cinfo->marker->write_scan_header) (cinfo);
|
---|
| 743 | }
|
---|
| 744 |
|
---|
| 745 |
|
---|
| 746 | /*
|
---|
| 747 | * Finish up at end of pass.
|
---|
| 748 | */
|
---|
| 749 |
|
---|
| 750 | METHODDEF(void)
|
---|
| 751 | finish_pass_master (j_compress_ptr cinfo)
|
---|
| 752 | {
|
---|
| 753 | my_master_ptr master = (my_master_ptr) cinfo->master;
|
---|
| 754 |
|
---|
| 755 | /* The entropy coder always needs an end-of-pass call,
|
---|
| 756 | * either to analyze statistics or to flush its output buffer.
|
---|
| 757 | */
|
---|
| 758 | (*cinfo->entropy->finish_pass) (cinfo);
|
---|
| 759 |
|
---|
| 760 | /* Update state for next pass */
|
---|
| 761 | switch (master->pass_type) {
|
---|
| 762 | case main_pass:
|
---|
| 763 | /* next pass is either output of scan 0 (after optimization)
|
---|
| 764 | * or output of scan 1 (if no optimization).
|
---|
| 765 | */
|
---|
| 766 | master->pass_type = output_pass;
|
---|
| 767 | if (! cinfo->optimize_coding)
|
---|
| 768 | master->scan_number++;
|
---|
| 769 | break;
|
---|
| 770 | case huff_opt_pass:
|
---|
| 771 | /* next pass is always output of current scan */
|
---|
| 772 | master->pass_type = output_pass;
|
---|
| 773 | break;
|
---|
| 774 | case output_pass:
|
---|
| 775 | /* next pass is either optimization or output of next scan */
|
---|
| 776 | if (cinfo->optimize_coding)
|
---|
| 777 | master->pass_type = huff_opt_pass;
|
---|
| 778 | master->scan_number++;
|
---|
| 779 | break;
|
---|
| 780 | }
|
---|
| 781 |
|
---|
| 782 | master->pass_number++;
|
---|
| 783 | }
|
---|
| 784 |
|
---|
| 785 |
|
---|
| 786 | /*
|
---|
| 787 | * Initialize master compression control.
|
---|
| 788 | */
|
---|
| 789 |
|
---|
| 790 | GLOBAL(void)
|
---|
| 791 | jinit_c_master_control (j_compress_ptr cinfo, boolean transcode_only)
|
---|
| 792 | {
|
---|
| 793 | my_master_ptr master;
|
---|
| 794 |
|
---|
| 795 | master = (my_master_ptr)
|
---|
| 796 | (*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
---|
| 797 | SIZEOF(my_comp_master));
|
---|
| 798 | cinfo->master = (struct jpeg_comp_master *) master;
|
---|
| 799 | master->pub.prepare_for_pass = prepare_for_pass;
|
---|
| 800 | master->pub.pass_startup = pass_startup;
|
---|
| 801 | master->pub.finish_pass = finish_pass_master;
|
---|
| 802 | master->pub.is_last_pass = FALSE;
|
---|
| 803 |
|
---|
| 804 | /* Validate parameters, determine derived values */
|
---|
[846] | 805 | initial_setup(cinfo, transcode_only);
|
---|
[2] | 806 |
|
---|
| 807 | if (cinfo->scan_info != NULL) {
|
---|
| 808 | #ifdef C_MULTISCAN_FILES_SUPPORTED
|
---|
| 809 | validate_script(cinfo);
|
---|
[846] | 810 | if (cinfo->block_size < DCTSIZE)
|
---|
| 811 | reduce_script(cinfo);
|
---|
[2] | 812 | #else
|
---|
| 813 | ERREXIT(cinfo, JERR_NOT_COMPILED);
|
---|
| 814 | #endif
|
---|
| 815 | } else {
|
---|
| 816 | cinfo->progressive_mode = FALSE;
|
---|
| 817 | cinfo->num_scans = 1;
|
---|
| 818 | }
|
---|
| 819 |
|
---|
[846] | 820 | if ((cinfo->progressive_mode || cinfo->block_size < DCTSIZE) &&
|
---|
| 821 | !cinfo->arith_code) /* TEMPORARY HACK ??? */
|
---|
| 822 | /* assume default tables no good for progressive or downscale mode */
|
---|
| 823 | cinfo->optimize_coding = TRUE;
|
---|
[2] | 824 |
|
---|
| 825 | /* Initialize my private state */
|
---|
| 826 | if (transcode_only) {
|
---|
| 827 | /* no main pass in transcoding */
|
---|
| 828 | if (cinfo->optimize_coding)
|
---|
| 829 | master->pass_type = huff_opt_pass;
|
---|
| 830 | else
|
---|
| 831 | master->pass_type = output_pass;
|
---|
| 832 | } else {
|
---|
| 833 | /* for normal compression, first pass is always this type: */
|
---|
| 834 | master->pass_type = main_pass;
|
---|
| 835 | }
|
---|
| 836 | master->scan_number = 0;
|
---|
| 837 | master->pass_number = 0;
|
---|
| 838 | if (cinfo->optimize_coding)
|
---|
| 839 | master->total_passes = cinfo->num_scans * 2;
|
---|
| 840 | else
|
---|
| 841 | master->total_passes = cinfo->num_scans;
|
---|
| 842 | }
|
---|