Upgrade libjpeg 8c -> 9e
This commit is contained in:
Vendored
+208
-66
@@ -2,6 +2,7 @@
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* jccolor.c
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*
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* Copyright (C) 1991-1996, Thomas G. Lane.
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* Modified 2011-2019 by Guido Vollbeding.
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* This file is part of the Independent JPEG Group's software.
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* For conditions of distribution and use, see the accompanying README file.
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*
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@@ -28,13 +29,25 @@ typedef my_color_converter * my_cconvert_ptr;
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/**************** RGB -> YCbCr conversion: most common case **************/
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/*
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* YCbCr is defined per CCIR 601-1, except that Cb and Cr are
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* normalized to the range 0..MAXJSAMPLE rather than -0.5 .. 0.5.
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* The conversion equations to be implemented are therefore
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* Y = 0.29900 * R + 0.58700 * G + 0.11400 * B
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* Cb = -0.16874 * R - 0.33126 * G + 0.50000 * B + CENTERJSAMPLE
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* Cr = 0.50000 * R - 0.41869 * G - 0.08131 * B + CENTERJSAMPLE
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* (These numbers are derived from TIFF 6.0 section 21, dated 3-June-92.)
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* YCbCr is defined per Recommendation ITU-R BT.601-7 (03/2011),
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* previously known as Recommendation CCIR 601-1, except that Cb and Cr
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* are normalized to the range 0..MAXJSAMPLE rather than -0.5 .. 0.5.
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* sRGB (standard RGB color space) is defined per IEC 61966-2-1:1999.
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* sYCC (standard luma-chroma-chroma color space with extended gamut)
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* is defined per IEC 61966-2-1:1999 Amendment A1:2003 Annex F.
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* bg-sRGB and bg-sYCC (big gamut standard color spaces)
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* are defined per IEC 61966-2-1:1999 Amendment A1:2003 Annex G.
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* Note that the derived conversion coefficients given in some of these
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* documents are imprecise. The general conversion equations are
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* Y = Kr * R + (1 - Kr - Kb) * G + Kb * B
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* Cb = 0.5 * (B - Y) / (1 - Kb)
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* Cr = 0.5 * (R - Y) / (1 - Kr)
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* With Kr = 0.299 and Kb = 0.114 (derived according to SMPTE RP 177-1993
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* from the 1953 FCC NTSC primaries and CIE Illuminant C),
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* the conversion equations to be implemented are therefore
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* Y = 0.299 * R + 0.587 * G + 0.114 * B
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* Cb = -0.168735892 * R - 0.331264108 * G + 0.5 * B + CENTERJSAMPLE
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* Cr = 0.5 * R - 0.418687589 * G - 0.081312411 * B + CENTERJSAMPLE
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* Note: older versions of the IJG code used a zero offset of MAXJSAMPLE/2,
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* rather than CENTERJSAMPLE, for Cb and Cr. This gave equal positive and
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* negative swings for Cb/Cr, but meant that grayscale values (Cb=Cr=0)
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@@ -48,9 +61,9 @@ typedef my_color_converter * my_cconvert_ptr;
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* For even more speed, we avoid doing any multiplications in the inner loop
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* by precalculating the constants times R,G,B for all possible values.
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* For 8-bit JSAMPLEs this is very reasonable (only 256 entries per table);
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* for 12-bit samples it is still acceptable. It's not very reasonable for
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* 16-bit samples, but if you want lossless storage you shouldn't be changing
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* colorspace anyway.
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* for 9-bit to 12-bit samples it is still acceptable. It's not very
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* reasonable for 16-bit samples, but if you want lossless storage you
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* shouldn't be changing colorspace anyway.
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* The CENTERJSAMPLE offsets and the rounding fudge-factor of 0.5 are included
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* in the tables to save adding them separately in the inner loop.
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*/
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@@ -92,24 +105,24 @@ rgb_ycc_start (j_compress_ptr cinfo)
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/* Allocate and fill in the conversion tables. */
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cconvert->rgb_ycc_tab = rgb_ycc_tab = (INT32 *)
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(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
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(TABLE_SIZE * SIZEOF(INT32)));
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TABLE_SIZE * SIZEOF(INT32));
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for (i = 0; i <= MAXJSAMPLE; i++) {
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rgb_ycc_tab[i+R_Y_OFF] = FIX(0.29900) * i;
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rgb_ycc_tab[i+G_Y_OFF] = FIX(0.58700) * i;
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rgb_ycc_tab[i+B_Y_OFF] = FIX(0.11400) * i + ONE_HALF;
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rgb_ycc_tab[i+R_CB_OFF] = (-FIX(0.16874)) * i;
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rgb_ycc_tab[i+G_CB_OFF] = (-FIX(0.33126)) * i;
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rgb_ycc_tab[i+R_Y_OFF] = FIX(0.299) * i;
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rgb_ycc_tab[i+G_Y_OFF] = FIX(0.587) * i;
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rgb_ycc_tab[i+B_Y_OFF] = FIX(0.114) * i + ONE_HALF;
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rgb_ycc_tab[i+R_CB_OFF] = (- FIX(0.168735892)) * i;
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rgb_ycc_tab[i+G_CB_OFF] = (- FIX(0.331264108)) * i;
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/* We use a rounding fudge-factor of 0.5-epsilon for Cb and Cr.
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* This ensures that the maximum output will round to MAXJSAMPLE
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* not MAXJSAMPLE+1, and thus that we don't have to range-limit.
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*/
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rgb_ycc_tab[i+B_CB_OFF] = FIX(0.50000) * i + CBCR_OFFSET + ONE_HALF-1;
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rgb_ycc_tab[i+B_CB_OFF] = FIX(0.5) * i + CBCR_OFFSET + ONE_HALF-1;
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/* B=>Cb and R=>Cr tables are the same
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rgb_ycc_tab[i+R_CR_OFF] = FIX(0.50000) * i + CBCR_OFFSET + ONE_HALF-1;
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rgb_ycc_tab[i+R_CR_OFF] = FIX(0.5) * i + CBCR_OFFSET + ONE_HALF-1;
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*/
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rgb_ycc_tab[i+G_CR_OFF] = (-FIX(0.41869)) * i;
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rgb_ycc_tab[i+B_CR_OFF] = (-FIX(0.08131)) * i;
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rgb_ycc_tab[i+G_CR_OFF] = (- FIX(0.418687589)) * i;
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rgb_ycc_tab[i+B_CR_OFF] = (- FIX(0.081312411)) * i;
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}
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}
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@@ -118,12 +131,12 @@ rgb_ycc_start (j_compress_ptr cinfo)
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* Convert some rows of samples to the JPEG colorspace.
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*
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* Note that we change from the application's interleaved-pixel format
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* to our internal noninterleaved, one-plane-per-component format.
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* The input buffer is therefore three times as wide as the output buffer.
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* to our internal noninterleaved, one-plane-per-component format. The
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* input buffer is therefore three times as wide as the output buffer.
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*
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* A starting row offset is provided only for the output buffer. The caller
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* can easily adjust the passed input_buf value to accommodate any row
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* offset required on that side.
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* A starting row offset is provided only for the output buffer. The
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* caller can easily adjust the passed input_buf value to accommodate
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* any row offset required on that side.
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*/
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METHODDEF(void)
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@@ -197,8 +210,7 @@ rgb_gray_convert (j_compress_ptr cinfo,
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while (--num_rows >= 0) {
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inptr = *input_buf++;
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outptr = output_buf[0][output_row];
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output_row++;
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outptr = output_buf[0][output_row++];
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for (col = 0; col < num_cols; col++) {
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r = GETJSAMPLE(inptr[RGB_RED]);
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g = GETJSAMPLE(inptr[RGB_GREEN]);
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@@ -216,8 +228,8 @@ rgb_gray_convert (j_compress_ptr cinfo,
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/*
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* Convert some rows of samples to the JPEG colorspace.
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* This version handles Adobe-style CMYK->YCCK conversion,
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* where we convert R=1-C, G=1-M, and B=1-Y to YCbCr using the same
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* conversion as above, while passing K (black) unchanged.
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* where we convert R=1-C, G=1-M, and B=1-Y to YCbCr using the
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* same conversion as above, while passing K (black) unchanged.
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* We assume rgb_ycc_start has been called.
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*/
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@@ -270,10 +282,52 @@ cmyk_ycck_convert (j_compress_ptr cinfo,
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}
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/*
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* Convert some rows of samples to the JPEG colorspace.
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* [R,G,B] to [R-G,G,B-G] conversion with modulo calculation
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* (forward reversible color transform).
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* This can be seen as an adaption of the general RGB->YCbCr
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* conversion equation with Kr = Kb = 0, while replacing the
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* normalization by modulo calculation.
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*/
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METHODDEF(void)
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rgb_rgb1_convert (j_compress_ptr cinfo,
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JSAMPARRAY input_buf, JSAMPIMAGE output_buf,
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JDIMENSION output_row, int num_rows)
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{
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register int r, g, b;
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register JSAMPROW inptr;
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register JSAMPROW outptr0, outptr1, outptr2;
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register JDIMENSION col;
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JDIMENSION num_cols = cinfo->image_width;
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while (--num_rows >= 0) {
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inptr = *input_buf++;
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outptr0 = output_buf[0][output_row];
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outptr1 = output_buf[1][output_row];
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outptr2 = output_buf[2][output_row];
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output_row++;
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for (col = 0; col < num_cols; col++) {
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r = GETJSAMPLE(inptr[RGB_RED]);
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g = GETJSAMPLE(inptr[RGB_GREEN]);
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b = GETJSAMPLE(inptr[RGB_BLUE]);
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inptr += RGB_PIXELSIZE;
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/* Assume that MAXJSAMPLE+1 is a power of 2, so that the MOD
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* (modulo) operator is equivalent to the bitmask operator AND.
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*/
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outptr0[col] = (JSAMPLE) ((r - g + CENTERJSAMPLE) & MAXJSAMPLE);
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outptr1[col] = (JSAMPLE) g;
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outptr2[col] = (JSAMPLE) ((b - g + CENTERJSAMPLE) & MAXJSAMPLE);
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}
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}
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}
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/*
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* Convert some rows of samples to the JPEG colorspace.
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* This version handles grayscale output with no conversion.
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* The source can be either plain grayscale or YCbCr (since Y == gray).
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* The source can be either plain grayscale or YCC (since Y == gray).
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*/
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METHODDEF(void)
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@@ -283,17 +337,49 @@ grayscale_convert (j_compress_ptr cinfo,
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{
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register JSAMPROW inptr;
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register JSAMPROW outptr;
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register JDIMENSION col;
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register JDIMENSION count;
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register int instride = cinfo->input_components;
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JDIMENSION num_cols = cinfo->image_width;
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int instride = cinfo->input_components;
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while (--num_rows >= 0) {
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inptr = *input_buf++;
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outptr = output_buf[0][output_row];
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outptr = output_buf[0][output_row++];
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for (count = num_cols; count > 0; count--) {
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*outptr++ = *inptr; /* don't need GETJSAMPLE() here */
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inptr += instride;
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}
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}
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}
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/*
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* Convert some rows of samples to the JPEG colorspace.
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* No colorspace conversion, but change from interleaved
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* to separate-planes representation.
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*/
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METHODDEF(void)
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rgb_convert (j_compress_ptr cinfo,
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JSAMPARRAY input_buf, JSAMPIMAGE output_buf,
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JDIMENSION output_row, int num_rows)
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{
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register JSAMPROW inptr;
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register JSAMPROW outptr0, outptr1, outptr2;
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register JDIMENSION col;
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JDIMENSION num_cols = cinfo->image_width;
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while (--num_rows >= 0) {
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inptr = *input_buf++;
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outptr0 = output_buf[0][output_row];
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outptr1 = output_buf[1][output_row];
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outptr2 = output_buf[2][output_row];
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output_row++;
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for (col = 0; col < num_cols; col++) {
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outptr[col] = inptr[0]; /* don't need GETJSAMPLE() here */
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inptr += instride;
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/* We can dispense with GETJSAMPLE() here */
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outptr0[col] = inptr[RGB_RED];
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outptr1[col] = inptr[RGB_GREEN];
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outptr2[col] = inptr[RGB_BLUE];
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inptr += RGB_PIXELSIZE;
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}
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}
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}
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@@ -312,19 +398,19 @@ null_convert (j_compress_ptr cinfo,
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{
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register JSAMPROW inptr;
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register JSAMPROW outptr;
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register JDIMENSION col;
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register int ci;
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int nc = cinfo->num_components;
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register JDIMENSION count;
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register int num_comps = cinfo->num_components;
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JDIMENSION num_cols = cinfo->image_width;
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int ci;
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while (--num_rows >= 0) {
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/* It seems fastest to make a separate pass for each component. */
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for (ci = 0; ci < nc; ci++) {
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inptr = *input_buf;
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for (ci = 0; ci < num_comps; ci++) {
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inptr = input_buf[0] + ci;
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outptr = output_buf[ci][output_row];
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for (col = 0; col < num_cols; col++) {
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outptr[col] = inptr[ci]; /* don't need GETJSAMPLE() here */
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inptr += nc;
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for (count = num_cols; count > 0; count--) {
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*outptr++ = *inptr; /* don't need GETJSAMPLE() here */
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inptr += num_comps;
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}
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}
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input_buf++;
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@@ -353,10 +439,9 @@ jinit_color_converter (j_compress_ptr cinfo)
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{
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my_cconvert_ptr cconvert;
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cconvert = (my_cconvert_ptr)
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(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
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SIZEOF(my_color_converter));
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cinfo->cconvert = (struct jpeg_color_converter *) cconvert;
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cconvert = (my_cconvert_ptr) (*cinfo->mem->alloc_small)
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((j_common_ptr) cinfo, JPOOL_IMAGE, SIZEOF(my_color_converter));
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cinfo->cconvert = &cconvert->pub;
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/* set start_pass to null method until we find out differently */
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cconvert->pub.start_pass = null_method;
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@@ -368,6 +453,7 @@ jinit_color_converter (j_compress_ptr cinfo)
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break;
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case JCS_RGB:
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case JCS_BG_RGB:
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#if RGB_PIXELSIZE != 3
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if (cinfo->input_components != RGB_PIXELSIZE)
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ERREXIT(cinfo, JERR_BAD_IN_COLORSPACE);
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@@ -375,6 +461,7 @@ jinit_color_converter (j_compress_ptr cinfo)
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#endif /* else share code with YCbCr */
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case JCS_YCbCr:
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case JCS_BG_YCC:
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if (cinfo->input_components != 3)
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ERREXIT(cinfo, JERR_BAD_IN_COLORSPACE);
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break;
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@@ -388,65 +475,121 @@ jinit_color_converter (j_compress_ptr cinfo)
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default: /* JCS_UNKNOWN can be anything */
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if (cinfo->input_components < 1)
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ERREXIT(cinfo, JERR_BAD_IN_COLORSPACE);
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break;
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}
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/* Support color transform only for RGB colorspaces */
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if (cinfo->color_transform &&
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cinfo->jpeg_color_space != JCS_RGB &&
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cinfo->jpeg_color_space != JCS_BG_RGB)
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ERREXIT(cinfo, JERR_CONVERSION_NOTIMPL);
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/* Check num_components, set conversion method based on requested space */
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switch (cinfo->jpeg_color_space) {
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case JCS_GRAYSCALE:
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if (cinfo->num_components != 1)
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ERREXIT(cinfo, JERR_BAD_J_COLORSPACE);
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if (cinfo->in_color_space == JCS_GRAYSCALE)
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switch (cinfo->in_color_space) {
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case JCS_GRAYSCALE:
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case JCS_YCbCr:
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case JCS_BG_YCC:
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cconvert->pub.color_convert = grayscale_convert;
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else if (cinfo->in_color_space == JCS_RGB) {
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break;
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case JCS_RGB:
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cconvert->pub.start_pass = rgb_ycc_start;
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cconvert->pub.color_convert = rgb_gray_convert;
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} else if (cinfo->in_color_space == JCS_YCbCr)
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cconvert->pub.color_convert = grayscale_convert;
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else
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break;
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default:
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ERREXIT(cinfo, JERR_CONVERSION_NOTIMPL);
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}
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break;
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case JCS_RGB:
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case JCS_BG_RGB:
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if (cinfo->num_components != 3)
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ERREXIT(cinfo, JERR_BAD_J_COLORSPACE);
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if (cinfo->in_color_space == JCS_RGB && RGB_PIXELSIZE == 3)
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cconvert->pub.color_convert = null_convert;
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else
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if (cinfo->in_color_space != cinfo->jpeg_color_space)
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ERREXIT(cinfo, JERR_CONVERSION_NOTIMPL);
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switch (cinfo->color_transform) {
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case JCT_NONE:
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cconvert->pub.color_convert = rgb_convert;
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break;
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case JCT_SUBTRACT_GREEN:
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cconvert->pub.color_convert = rgb_rgb1_convert;
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break;
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default:
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ERREXIT(cinfo, JERR_CONVERSION_NOTIMPL);
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}
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break;
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case JCS_YCbCr:
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if (cinfo->num_components != 3)
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ERREXIT(cinfo, JERR_BAD_J_COLORSPACE);
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if (cinfo->in_color_space == JCS_RGB) {
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switch (cinfo->in_color_space) {
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case JCS_RGB:
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cconvert->pub.start_pass = rgb_ycc_start;
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cconvert->pub.color_convert = rgb_ycc_convert;
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} else if (cinfo->in_color_space == JCS_YCbCr)
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break;
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case JCS_YCbCr:
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cconvert->pub.color_convert = null_convert;
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else
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break;
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default:
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ERREXIT(cinfo, JERR_CONVERSION_NOTIMPL);
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}
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break;
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case JCS_BG_YCC:
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if (cinfo->num_components != 3)
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ERREXIT(cinfo, JERR_BAD_J_COLORSPACE);
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switch (cinfo->in_color_space) {
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case JCS_RGB:
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/* For conversion from normal RGB input to BG_YCC representation,
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* the Cb/Cr values are first computed as usual, and then
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* quantized further after DCT processing by a factor of
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* 2 in reference to the nominal quantization factor.
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*/
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/* need quantization scale by factor of 2 after DCT */
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cinfo->comp_info[1].component_needed = TRUE;
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cinfo->comp_info[2].component_needed = TRUE;
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/* compute normal YCC first */
|
||||
cconvert->pub.start_pass = rgb_ycc_start;
|
||||
cconvert->pub.color_convert = rgb_ycc_convert;
|
||||
break;
|
||||
case JCS_YCbCr:
|
||||
/* need quantization scale by factor of 2 after DCT */
|
||||
cinfo->comp_info[1].component_needed = TRUE;
|
||||
cinfo->comp_info[2].component_needed = TRUE;
|
||||
/*FALLTHROUGH*/
|
||||
case JCS_BG_YCC:
|
||||
/* Pass through for BG_YCC input */
|
||||
cconvert->pub.color_convert = null_convert;
|
||||
break;
|
||||
default:
|
||||
ERREXIT(cinfo, JERR_CONVERSION_NOTIMPL);
|
||||
}
|
||||
break;
|
||||
|
||||
case JCS_CMYK:
|
||||
if (cinfo->num_components != 4)
|
||||
ERREXIT(cinfo, JERR_BAD_J_COLORSPACE);
|
||||
if (cinfo->in_color_space == JCS_CMYK)
|
||||
cconvert->pub.color_convert = null_convert;
|
||||
else
|
||||
if (cinfo->in_color_space != JCS_CMYK)
|
||||
ERREXIT(cinfo, JERR_CONVERSION_NOTIMPL);
|
||||
cconvert->pub.color_convert = null_convert;
|
||||
break;
|
||||
|
||||
case JCS_YCCK:
|
||||
if (cinfo->num_components != 4)
|
||||
ERREXIT(cinfo, JERR_BAD_J_COLORSPACE);
|
||||
if (cinfo->in_color_space == JCS_CMYK) {
|
||||
switch (cinfo->in_color_space) {
|
||||
case JCS_CMYK:
|
||||
cconvert->pub.start_pass = rgb_ycc_start;
|
||||
cconvert->pub.color_convert = cmyk_ycck_convert;
|
||||
} else if (cinfo->in_color_space == JCS_YCCK)
|
||||
break;
|
||||
case JCS_YCCK:
|
||||
cconvert->pub.color_convert = null_convert;
|
||||
else
|
||||
break;
|
||||
default:
|
||||
ERREXIT(cinfo, JERR_CONVERSION_NOTIMPL);
|
||||
}
|
||||
break;
|
||||
|
||||
default: /* allow null conversion of JCS_UNKNOWN */
|
||||
@@ -454,6 +597,5 @@ jinit_color_converter (j_compress_ptr cinfo)
|
||||
cinfo->num_components != cinfo->input_components)
|
||||
ERREXIT(cinfo, JERR_CONVERSION_NOTIMPL);
|
||||
cconvert->pub.color_convert = null_convert;
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
Reference in New Issue
Block a user