| 1 | /* | 
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| 2 | * jcdctmgr.c | 
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| 3 | * | 
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| 4 | * Copyright (C) 1994-1996, Thomas G. Lane. | 
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| 5 | * This file is part of the Independent JPEG Group's software. | 
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| 6 | * For conditions of distribution and use, see the accompanying README file. | 
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| 7 | * | 
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| 8 | * This file contains the forward-DCT management logic. | 
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| 9 | * This code selects a particular DCT implementation to be used, | 
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| 10 | * and it performs related housekeeping chores including coefficient | 
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| 11 | * quantization. | 
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| 12 | */ | 
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| 13 |  | 
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| 14 | #define JPEG_INTERNALS | 
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| 15 | #include "jinclude.h" | 
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| 16 | #include "jpeglib.h" | 
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| 17 | #include "jdct.h"               /* Private declarations for DCT subsystem */ | 
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| 18 |  | 
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| 19 |  | 
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| 20 | /* Private subobject for this module */ | 
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| 21 |  | 
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| 22 | typedef struct { | 
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| 23 | struct jpeg_forward_dct pub;  /* public fields */ | 
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| 24 |  | 
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| 25 | /* Pointer to the DCT routine actually in use */ | 
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| 26 | forward_DCT_method_ptr do_dct[MAX_COMPONENTS]; | 
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| 27 |  | 
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| 28 | /* The actual post-DCT divisors --- not identical to the quant table | 
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| 29 | * entries, because of scaling (especially for an unnormalized DCT). | 
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| 30 | * Each table is given in normal array order. | 
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| 31 | */ | 
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| 32 | DCTELEM * divisors[NUM_QUANT_TBLS]; | 
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| 33 |  | 
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| 34 | #ifdef DCT_FLOAT_SUPPORTED | 
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| 35 | /* Same as above for the floating-point case. */ | 
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| 36 | float_DCT_method_ptr do_float_dct[MAX_COMPONENTS]; | 
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| 37 | FAST_FLOAT * float_divisors[NUM_QUANT_TBLS]; | 
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| 38 | #endif | 
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| 39 | } my_fdct_controller; | 
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| 40 |  | 
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| 41 | typedef my_fdct_controller * my_fdct_ptr; | 
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| 42 |  | 
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| 43 |  | 
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| 44 | /* The current scaled-DCT routines require ISLOW-style divisor tables, | 
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| 45 | * so be sure to compile that code if either ISLOW or SCALING is requested. | 
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| 46 | */ | 
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| 47 | #ifdef DCT_ISLOW_SUPPORTED | 
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| 48 | #define PROVIDE_ISLOW_TABLES | 
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| 49 | #else | 
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| 50 | #ifdef DCT_SCALING_SUPPORTED | 
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| 51 | #define PROVIDE_ISLOW_TABLES | 
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| 52 | #endif | 
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| 53 | #endif | 
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| 54 |  | 
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| 55 |  | 
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| 56 | /* | 
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| 57 | * Perform forward DCT on one or more blocks of a component. | 
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| 58 | * | 
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| 59 | * The input samples are taken from the sample_data[] array starting at | 
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| 60 | * position start_row/start_col, and moving to the right for any additional | 
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| 61 | * blocks. The quantized coefficients are returned in coef_blocks[]. | 
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| 62 | */ | 
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| 63 |  | 
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| 64 | METHODDEF(void) | 
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| 65 | forward_DCT (j_compress_ptr cinfo, jpeg_component_info * compptr, | 
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| 66 | JSAMPARRAY sample_data, JBLOCKROW coef_blocks, | 
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| 67 | JDIMENSION start_row, JDIMENSION start_col, | 
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| 68 | JDIMENSION num_blocks) | 
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| 69 | /* This version is used for integer DCT implementations. */ | 
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| 70 | { | 
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| 71 | /* This routine is heavily used, so it's worth coding it tightly. */ | 
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| 72 | my_fdct_ptr fdct = (my_fdct_ptr) cinfo->fdct; | 
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| 73 | forward_DCT_method_ptr do_dct = fdct->do_dct[compptr->component_index]; | 
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| 74 | DCTELEM * divisors = fdct->divisors[compptr->quant_tbl_no]; | 
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| 75 | DCTELEM workspace[DCTSIZE2];  /* work area for FDCT subroutine */ | 
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| 76 | JDIMENSION bi; | 
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| 77 |  | 
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| 78 | sample_data += start_row;     /* fold in the vertical offset once */ | 
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| 79 |  | 
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| 80 | for (bi = 0; bi < num_blocks; bi++, start_col += compptr->DCT_h_scaled_size) { | 
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| 81 | /* Perform the DCT */ | 
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| 82 | (*do_dct) (workspace, sample_data, start_col); | 
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| 83 |  | 
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| 84 | /* Quantize/descale the coefficients, and store into coef_blocks[] */ | 
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| 85 | { register DCTELEM temp, qval; | 
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| 86 | register int i; | 
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| 87 | register JCOEFPTR output_ptr = coef_blocks[bi]; | 
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| 88 |  | 
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| 89 | for (i = 0; i < DCTSIZE2; i++) { | 
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| 90 | qval = divisors[i]; | 
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| 91 | temp = workspace[i]; | 
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| 92 | /* Divide the coefficient value by qval, ensuring proper rounding. | 
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| 93 | * Since C does not specify the direction of rounding for negative | 
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| 94 | * quotients, we have to force the dividend positive for portability. | 
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| 95 | * | 
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| 96 | * In most files, at least half of the output values will be zero | 
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| 97 | * (at default quantization settings, more like three-quarters...) | 
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| 98 | * so we should ensure that this case is fast.  On many machines, | 
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| 99 | * a comparison is enough cheaper than a divide to make a special test | 
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| 100 | * a win.  Since both inputs will be nonnegative, we need only test | 
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| 101 | * for a < b to discover whether a/b is 0. | 
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| 102 | * If your machine's division is fast enough, define FAST_DIVIDE. | 
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| 103 | */ | 
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| 104 | #ifdef FAST_DIVIDE | 
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| 105 | #define DIVIDE_BY(a,b)  a /= b | 
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| 106 | #else | 
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| 107 | #define DIVIDE_BY(a,b)  if (a >= b) a /= b; else a = 0 | 
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| 108 | #endif | 
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| 109 | if (temp < 0) { | 
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| 110 | temp = -temp; | 
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| 111 | temp += qval>>1;      /* for rounding */ | 
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| 112 | DIVIDE_BY(temp, qval); | 
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| 113 | temp = -temp; | 
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| 114 | } else { | 
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| 115 | temp += qval>>1;      /* for rounding */ | 
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| 116 | DIVIDE_BY(temp, qval); | 
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| 117 | } | 
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| 118 | output_ptr[i] = (JCOEF) temp; | 
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| 119 | } | 
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| 120 | } | 
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| 121 | } | 
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| 122 | } | 
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| 123 |  | 
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| 124 |  | 
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| 125 | #ifdef DCT_FLOAT_SUPPORTED | 
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| 126 |  | 
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| 127 | METHODDEF(void) | 
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| 128 | forward_DCT_float (j_compress_ptr cinfo, jpeg_component_info * compptr, | 
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| 129 | JSAMPARRAY sample_data, JBLOCKROW coef_blocks, | 
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| 130 | JDIMENSION start_row, JDIMENSION start_col, | 
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| 131 | JDIMENSION num_blocks) | 
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| 132 | /* This version is used for floating-point DCT implementations. */ | 
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| 133 | { | 
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| 134 | /* This routine is heavily used, so it's worth coding it tightly. */ | 
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| 135 | my_fdct_ptr fdct = (my_fdct_ptr) cinfo->fdct; | 
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| 136 | float_DCT_method_ptr do_dct = fdct->do_float_dct[compptr->component_index]; | 
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| 137 | FAST_FLOAT * divisors = fdct->float_divisors[compptr->quant_tbl_no]; | 
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| 138 | FAST_FLOAT workspace[DCTSIZE2]; /* work area for FDCT subroutine */ | 
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| 139 | JDIMENSION bi; | 
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| 140 |  | 
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| 141 | sample_data += start_row;     /* fold in the vertical offset once */ | 
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| 142 |  | 
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| 143 | for (bi = 0; bi < num_blocks; bi++, start_col += compptr->DCT_h_scaled_size) { | 
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| 144 | /* Perform the DCT */ | 
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| 145 | (*do_dct) (workspace, sample_data, start_col); | 
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| 146 |  | 
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| 147 | /* Quantize/descale the coefficients, and store into coef_blocks[] */ | 
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| 148 | { register FAST_FLOAT temp; | 
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| 149 | register int i; | 
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| 150 | register JCOEFPTR output_ptr = coef_blocks[bi]; | 
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| 151 |  | 
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| 152 | for (i = 0; i < DCTSIZE2; i++) { | 
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| 153 | /* Apply the quantization and scaling factor */ | 
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| 154 | temp = workspace[i] * divisors[i]; | 
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| 155 | /* Round to nearest integer. | 
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| 156 | * Since C does not specify the direction of rounding for negative | 
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| 157 | * quotients, we have to force the dividend positive for portability. | 
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| 158 | * The maximum coefficient size is +-16K (for 12-bit data), so this | 
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| 159 | * code should work for either 16-bit or 32-bit ints. | 
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| 160 | */ | 
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| 161 | output_ptr[i] = (JCOEF) ((int) (temp + (FAST_FLOAT) 16384.5) - 16384); | 
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| 162 | } | 
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| 163 | } | 
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| 164 | } | 
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| 165 | } | 
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| 166 |  | 
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| 167 | #endif /* DCT_FLOAT_SUPPORTED */ | 
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| 168 |  | 
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| 169 |  | 
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| 170 | /* | 
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| 171 | * Initialize for a processing pass. | 
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| 172 | * Verify that all referenced Q-tables are present, and set up | 
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| 173 | * the divisor table for each one. | 
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| 174 | * In the current implementation, DCT of all components is done during | 
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| 175 | * the first pass, even if only some components will be output in the | 
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| 176 | * first scan.  Hence all components should be examined here. | 
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| 177 | */ | 
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| 178 |  | 
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| 179 | METHODDEF(void) | 
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| 180 | start_pass_fdctmgr (j_compress_ptr cinfo) | 
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| 181 | { | 
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| 182 | my_fdct_ptr fdct = (my_fdct_ptr) cinfo->fdct; | 
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| 183 | int ci, qtblno, i; | 
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| 184 | jpeg_component_info *compptr; | 
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| 185 | int method = 0; | 
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| 186 | JQUANT_TBL * qtbl; | 
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| 187 | DCTELEM * dtbl; | 
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| 188 |  | 
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| 189 | for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components; | 
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| 190 | ci++, compptr++) { | 
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| 191 | /* Select the proper DCT routine for this component's scaling */ | 
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| 192 | switch ((compptr->DCT_h_scaled_size << 8) + compptr->DCT_v_scaled_size) { | 
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| 193 | #ifdef DCT_SCALING_SUPPORTED | 
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| 194 | case ((1 << 8) + 1): | 
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| 195 | fdct->do_dct[ci] = jpeg_fdct_1x1; | 
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| 196 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 197 | break; | 
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| 198 | case ((2 << 8) + 2): | 
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| 199 | fdct->do_dct[ci] = jpeg_fdct_2x2; | 
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| 200 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 201 | break; | 
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| 202 | case ((3 << 8) + 3): | 
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| 203 | fdct->do_dct[ci] = jpeg_fdct_3x3; | 
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| 204 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 205 | break; | 
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| 206 | case ((4 << 8) + 4): | 
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| 207 | fdct->do_dct[ci] = jpeg_fdct_4x4; | 
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| 208 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 209 | break; | 
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| 210 | case ((5 << 8) + 5): | 
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| 211 | fdct->do_dct[ci] = jpeg_fdct_5x5; | 
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| 212 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 213 | break; | 
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| 214 | case ((6 << 8) + 6): | 
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| 215 | fdct->do_dct[ci] = jpeg_fdct_6x6; | 
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| 216 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 217 | break; | 
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| 218 | case ((7 << 8) + 7): | 
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| 219 | fdct->do_dct[ci] = jpeg_fdct_7x7; | 
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| 220 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 221 | break; | 
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| 222 | case ((9 << 8) + 9): | 
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| 223 | fdct->do_dct[ci] = jpeg_fdct_9x9; | 
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| 224 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 225 | break; | 
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| 226 | case ((10 << 8) + 10): | 
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| 227 | fdct->do_dct[ci] = jpeg_fdct_10x10; | 
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| 228 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 229 | break; | 
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| 230 | case ((11 << 8) + 11): | 
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| 231 | fdct->do_dct[ci] = jpeg_fdct_11x11; | 
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| 232 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 233 | break; | 
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| 234 | case ((12 << 8) + 12): | 
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| 235 | fdct->do_dct[ci] = jpeg_fdct_12x12; | 
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| 236 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 237 | break; | 
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| 238 | case ((13 << 8) + 13): | 
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| 239 | fdct->do_dct[ci] = jpeg_fdct_13x13; | 
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| 240 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 241 | break; | 
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| 242 | case ((14 << 8) + 14): | 
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| 243 | fdct->do_dct[ci] = jpeg_fdct_14x14; | 
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| 244 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 245 | break; | 
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| 246 | case ((15 << 8) + 15): | 
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| 247 | fdct->do_dct[ci] = jpeg_fdct_15x15; | 
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| 248 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 249 | break; | 
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| 250 | case ((16 << 8) + 16): | 
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| 251 | fdct->do_dct[ci] = jpeg_fdct_16x16; | 
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| 252 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 253 | break; | 
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| 254 | case ((16 << 8) + 8): | 
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| 255 | fdct->do_dct[ci] = jpeg_fdct_16x8; | 
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| 256 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 257 | break; | 
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| 258 | case ((14 << 8) + 7): | 
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| 259 | fdct->do_dct[ci] = jpeg_fdct_14x7; | 
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| 260 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 261 | break; | 
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| 262 | case ((12 << 8) + 6): | 
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| 263 | fdct->do_dct[ci] = jpeg_fdct_12x6; | 
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| 264 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 265 | break; | 
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| 266 | case ((10 << 8) + 5): | 
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| 267 | fdct->do_dct[ci] = jpeg_fdct_10x5; | 
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| 268 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 269 | break; | 
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| 270 | case ((8 << 8) + 4): | 
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| 271 | fdct->do_dct[ci] = jpeg_fdct_8x4; | 
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| 272 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 273 | break; | 
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| 274 | case ((6 << 8) + 3): | 
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| 275 | fdct->do_dct[ci] = jpeg_fdct_6x3; | 
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| 276 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 277 | break; | 
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| 278 | case ((4 << 8) + 2): | 
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| 279 | fdct->do_dct[ci] = jpeg_fdct_4x2; | 
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| 280 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 281 | break; | 
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| 282 | case ((2 << 8) + 1): | 
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| 283 | fdct->do_dct[ci] = jpeg_fdct_2x1; | 
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| 284 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 285 | break; | 
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| 286 | case ((8 << 8) + 16): | 
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| 287 | fdct->do_dct[ci] = jpeg_fdct_8x16; | 
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| 288 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 289 | break; | 
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| 290 | case ((7 << 8) + 14): | 
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| 291 | fdct->do_dct[ci] = jpeg_fdct_7x14; | 
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| 292 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 293 | break; | 
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| 294 | case ((6 << 8) + 12): | 
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| 295 | fdct->do_dct[ci] = jpeg_fdct_6x12; | 
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| 296 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 297 | break; | 
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| 298 | case ((5 << 8) + 10): | 
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| 299 | fdct->do_dct[ci] = jpeg_fdct_5x10; | 
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| 300 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 301 | break; | 
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| 302 | case ((4 << 8) + 8): | 
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| 303 | fdct->do_dct[ci] = jpeg_fdct_4x8; | 
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| 304 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 305 | break; | 
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| 306 | case ((3 << 8) + 6): | 
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| 307 | fdct->do_dct[ci] = jpeg_fdct_3x6; | 
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| 308 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 309 | break; | 
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| 310 | case ((2 << 8) + 4): | 
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| 311 | fdct->do_dct[ci] = jpeg_fdct_2x4; | 
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| 312 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 313 | break; | 
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| 314 | case ((1 << 8) + 2): | 
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| 315 | fdct->do_dct[ci] = jpeg_fdct_1x2; | 
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| 316 | method = JDCT_ISLOW;      /* jfdctint uses islow-style table */ | 
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| 317 | break; | 
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| 318 | #endif | 
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| 319 | case ((DCTSIZE << 8) + DCTSIZE): | 
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| 320 | switch (cinfo->dct_method) { | 
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| 321 | #ifdef DCT_ISLOW_SUPPORTED | 
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| 322 | case JDCT_ISLOW: | 
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| 323 | fdct->do_dct[ci] = jpeg_fdct_islow; | 
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| 324 | method = JDCT_ISLOW; | 
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| 325 | break; | 
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| 326 | #endif | 
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| 327 | #ifdef DCT_IFAST_SUPPORTED | 
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| 328 | case JDCT_IFAST: | 
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| 329 | fdct->do_dct[ci] = jpeg_fdct_ifast; | 
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| 330 | method = JDCT_IFAST; | 
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| 331 | break; | 
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| 332 | #endif | 
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| 333 | #ifdef DCT_FLOAT_SUPPORTED | 
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| 334 | case JDCT_FLOAT: | 
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| 335 | fdct->do_float_dct[ci] = jpeg_fdct_float; | 
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| 336 | method = JDCT_FLOAT; | 
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| 337 | break; | 
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| 338 | #endif | 
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| 339 | default: | 
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| 340 | ERREXIT(cinfo, JERR_NOT_COMPILED); | 
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| 341 | break; | 
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| 342 | } | 
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| 343 | break; | 
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| 344 | default: | 
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| 345 | ERREXIT2(cinfo, JERR_BAD_DCTSIZE, | 
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| 346 | compptr->DCT_h_scaled_size, compptr->DCT_v_scaled_size); | 
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| 347 | break; | 
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| 348 | } | 
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| 349 | qtblno = compptr->quant_tbl_no; | 
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| 350 | /* Make sure specified quantization table is present */ | 
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| 351 | if (qtblno < 0 || qtblno >= NUM_QUANT_TBLS || | 
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| 352 | cinfo->quant_tbl_ptrs[qtblno] == NULL) | 
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| 353 | ERREXIT1(cinfo, JERR_NO_QUANT_TABLE, qtblno); | 
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| 354 | qtbl = cinfo->quant_tbl_ptrs[qtblno]; | 
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| 355 | /* Compute divisors for this quant table */ | 
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| 356 | /* We may do this more than once for same table, but it's not a big deal */ | 
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| 357 | switch (method) { | 
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| 358 | #ifdef PROVIDE_ISLOW_TABLES | 
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| 359 | case JDCT_ISLOW: | 
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| 360 | /* For LL&M IDCT method, divisors are equal to raw quantization | 
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| 361 | * coefficients multiplied by 8 (to counteract scaling). | 
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| 362 | */ | 
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| 363 | if (fdct->divisors[qtblno] == NULL) { | 
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| 364 | fdct->divisors[qtblno] = (DCTELEM *) | 
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| 365 | (*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE, | 
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| 366 | DCTSIZE2 * SIZEOF(DCTELEM)); | 
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| 367 | } | 
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| 368 | dtbl = fdct->divisors[qtblno]; | 
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| 369 | for (i = 0; i < DCTSIZE2; i++) { | 
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| 370 | dtbl[i] = ((DCTELEM) qtbl->quantval[i]) << 3; | 
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| 371 | } | 
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| 372 | fdct->pub.forward_DCT[ci] = forward_DCT; | 
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| 373 | break; | 
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| 374 | #endif | 
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| 375 | #ifdef DCT_IFAST_SUPPORTED | 
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| 376 | case JDCT_IFAST: | 
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| 377 | { | 
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| 378 | /* For AA&N IDCT method, divisors are equal to quantization | 
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| 379 | * coefficients scaled by scalefactor[row]*scalefactor[col], where | 
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| 380 | *   scalefactor[0] = 1 | 
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| 381 | *   scalefactor[k] = cos(k*PI/16) * sqrt(2)    for k=1..7 | 
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| 382 | * We apply a further scale factor of 8. | 
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| 383 | */ | 
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| 384 | #define CONST_BITS 14 | 
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| 385 | static const INT16 aanscales[DCTSIZE2] = { | 
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| 386 | /* precomputed values scaled up by 14 bits */ | 
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| 387 | 16384, 22725, 21407, 19266, 16384, 12873,  8867,  4520, | 
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| 388 | 22725, 31521, 29692, 26722, 22725, 17855, 12299,  6270, | 
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| 389 | 21407, 29692, 27969, 25172, 21407, 16819, 11585,  5906, | 
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| 390 | 19266, 26722, 25172, 22654, 19266, 15137, 10426,  5315, | 
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| 391 | 16384, 22725, 21407, 19266, 16384, 12873,  8867,  4520, | 
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| 392 | 12873, 17855, 16819, 15137, 12873, 10114,  6967,  3552, | 
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| 393 | 8867, 12299, 11585, 10426,  8867,  6967,  4799,  2446, | 
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| 394 | 4520,  6270,  5906,  5315,  4520,  3552,  2446,  1247 | 
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| 395 | }; | 
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| 396 | SHIFT_TEMPS | 
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| 397 |  | 
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| 398 | if (fdct->divisors[qtblno] == NULL) { | 
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| 399 | fdct->divisors[qtblno] = (DCTELEM *) | 
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| 400 | (*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE, | 
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| 401 | DCTSIZE2 * SIZEOF(DCTELEM)); | 
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| 402 | } | 
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| 403 | dtbl = fdct->divisors[qtblno]; | 
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| 404 | for (i = 0; i < DCTSIZE2; i++) { | 
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| 405 | dtbl[i] = (DCTELEM) | 
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| 406 | DESCALE(MULTIPLY16V16((INT32) qtbl->quantval[i], | 
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| 407 | (INT32) aanscales[i]), | 
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| 408 | CONST_BITS-3); | 
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| 409 | } | 
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| 410 | } | 
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| 411 | fdct->pub.forward_DCT[ci] = forward_DCT; | 
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| 412 | break; | 
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| 413 | #endif | 
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| 414 | #ifdef DCT_FLOAT_SUPPORTED | 
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| 415 | case JDCT_FLOAT: | 
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| 416 | { | 
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| 417 | /* For float AA&N IDCT method, divisors are equal to quantization | 
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| 418 | * coefficients scaled by scalefactor[row]*scalefactor[col], where | 
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| 419 | *   scalefactor[0] = 1 | 
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| 420 | *   scalefactor[k] = cos(k*PI/16) * sqrt(2)    for k=1..7 | 
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| 421 | * We apply a further scale factor of 8. | 
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| 422 | * What's actually stored is 1/divisor so that the inner loop can | 
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| 423 | * use a multiplication rather than a division. | 
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| 424 | */ | 
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| 425 | FAST_FLOAT * fdtbl; | 
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| 426 | int row, col; | 
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| 427 | static const double aanscalefactor[DCTSIZE] = { | 
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| 428 | 1.0, 1.387039845, 1.306562965, 1.175875602, | 
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| 429 | 1.0, 0.785694958, 0.541196100, 0.275899379 | 
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| 430 | }; | 
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| 431 |  | 
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| 432 | if (fdct->float_divisors[qtblno] == NULL) { | 
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| 433 | fdct->float_divisors[qtblno] = (FAST_FLOAT *) | 
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| 434 | (*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE, | 
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| 435 | DCTSIZE2 * SIZEOF(FAST_FLOAT)); | 
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| 436 | } | 
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| 437 | fdtbl = fdct->float_divisors[qtblno]; | 
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| 438 | i = 0; | 
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| 439 | for (row = 0; row < DCTSIZE; row++) { | 
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| 440 | for (col = 0; col < DCTSIZE; col++) { | 
|---|
| 441 | fdtbl[i] = (FAST_FLOAT) | 
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| 442 | (1.0 / (((double) qtbl->quantval[i] * | 
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| 443 | aanscalefactor[row] * aanscalefactor[col] * 8.0))); | 
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| 444 | i++; | 
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| 445 | } | 
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| 446 | } | 
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| 447 | } | 
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| 448 | fdct->pub.forward_DCT[ci] = forward_DCT_float; | 
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| 449 | break; | 
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| 450 | #endif | 
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| 451 | default: | 
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| 452 | ERREXIT(cinfo, JERR_NOT_COMPILED); | 
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| 453 | break; | 
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| 454 | } | 
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| 455 | } | 
|---|
| 456 | } | 
|---|
| 457 |  | 
|---|
| 458 |  | 
|---|
| 459 | /* | 
|---|
| 460 | * Initialize FDCT manager. | 
|---|
| 461 | */ | 
|---|
| 462 |  | 
|---|
| 463 | GLOBAL(void) | 
|---|
| 464 | jinit_forward_dct (j_compress_ptr cinfo) | 
|---|
| 465 | { | 
|---|
| 466 | my_fdct_ptr fdct; | 
|---|
| 467 | int i; | 
|---|
| 468 |  | 
|---|
| 469 | fdct = (my_fdct_ptr) | 
|---|
| 470 | (*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE, | 
|---|
| 471 | SIZEOF(my_fdct_controller)); | 
|---|
| 472 | cinfo->fdct = (struct jpeg_forward_dct *) fdct; | 
|---|
| 473 | fdct->pub.start_pass = start_pass_fdctmgr; | 
|---|
| 474 |  | 
|---|
| 475 | /* Mark divisor tables unallocated */ | 
|---|
| 476 | for (i = 0; i < NUM_QUANT_TBLS; i++) { | 
|---|
| 477 | fdct->divisors[i] = NULL; | 
|---|
| 478 | #ifdef DCT_FLOAT_SUPPORTED | 
|---|
| 479 | fdct->float_divisors[i] = NULL; | 
|---|
| 480 | #endif | 
|---|
| 481 | } | 
|---|
| 482 | } | 
|---|