Update libjpeg to release 8d
This commit is contained in:
147
3rdparty/libjpeg/jdsample.c
vendored
147
3rdparty/libjpeg/jdsample.c
vendored
@@ -2,13 +2,14 @@
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* jdsample.c
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*
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* Copyright (C) 1991-1996, Thomas G. Lane.
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* Modified 2002-2008 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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* This file contains upsampling routines.
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*
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* Upsampling input data is counted in "row groups". A row group
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* is defined to be (v_samp_factor * DCT_scaled_size / min_DCT_scaled_size)
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* is defined to be (v_samp_factor * DCT_v_scaled_size / min_DCT_v_scaled_size)
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* sample rows of each component. Upsampling will normally produce
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* max_v_samp_factor pixel rows from each row group (but this could vary
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* if the upsampler is applying a scale factor of its own).
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@@ -237,11 +238,11 @@ h2v1_upsample (j_decompress_ptr cinfo, jpeg_component_info * compptr,
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register JSAMPROW inptr, outptr;
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register JSAMPLE invalue;
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JSAMPROW outend;
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int inrow;
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int outrow;
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for (inrow = 0; inrow < cinfo->max_v_samp_factor; inrow++) {
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inptr = input_data[inrow];
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outptr = output_data[inrow];
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for (outrow = 0; outrow < cinfo->max_v_samp_factor; outrow++) {
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inptr = input_data[outrow];
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outptr = output_data[outrow];
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outend = outptr + cinfo->output_width;
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while (outptr < outend) {
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invalue = *inptr++; /* don't need GETJSAMPLE() here */
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@@ -285,112 +286,6 @@ h2v2_upsample (j_decompress_ptr cinfo, jpeg_component_info * compptr,
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}
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/*
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* Fancy processing for the common case of 2:1 horizontal and 1:1 vertical.
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*
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* The upsampling algorithm is linear interpolation between pixel centers,
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* also known as a "triangle filter". This is a good compromise between
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* speed and visual quality. The centers of the output pixels are 1/4 and 3/4
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* of the way between input pixel centers.
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*
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* A note about the "bias" calculations: when rounding fractional values to
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* integer, we do not want to always round 0.5 up to the next integer.
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* If we did that, we'd introduce a noticeable bias towards larger values.
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* Instead, this code is arranged so that 0.5 will be rounded up or down at
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* alternate pixel locations (a simple ordered dither pattern).
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*/
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METHODDEF(void)
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h2v1_fancy_upsample (j_decompress_ptr cinfo, jpeg_component_info * compptr,
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JSAMPARRAY input_data, JSAMPARRAY * output_data_ptr)
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{
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JSAMPARRAY output_data = *output_data_ptr;
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register JSAMPROW inptr, outptr;
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register int invalue;
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register JDIMENSION colctr;
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int inrow;
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for (inrow = 0; inrow < cinfo->max_v_samp_factor; inrow++) {
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inptr = input_data[inrow];
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outptr = output_data[inrow];
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/* Special case for first column */
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invalue = GETJSAMPLE(*inptr++);
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*outptr++ = (JSAMPLE) invalue;
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*outptr++ = (JSAMPLE) ((invalue * 3 + GETJSAMPLE(*inptr) + 2) >> 2);
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for (colctr = compptr->downsampled_width - 2; colctr > 0; colctr--) {
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/* General case: 3/4 * nearer pixel + 1/4 * further pixel */
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invalue = GETJSAMPLE(*inptr++) * 3;
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*outptr++ = (JSAMPLE) ((invalue + GETJSAMPLE(inptr[-2]) + 1) >> 2);
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*outptr++ = (JSAMPLE) ((invalue + GETJSAMPLE(*inptr) + 2) >> 2);
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}
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/* Special case for last column */
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invalue = GETJSAMPLE(*inptr);
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*outptr++ = (JSAMPLE) ((invalue * 3 + GETJSAMPLE(inptr[-1]) + 1) >> 2);
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*outptr++ = (JSAMPLE) invalue;
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}
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}
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/*
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* Fancy processing for the common case of 2:1 horizontal and 2:1 vertical.
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* Again a triangle filter; see comments for h2v1 case, above.
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*
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* It is OK for us to reference the adjacent input rows because we demanded
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* context from the main buffer controller (see initialization code).
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*/
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METHODDEF(void)
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h2v2_fancy_upsample (j_decompress_ptr cinfo, jpeg_component_info * compptr,
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JSAMPARRAY input_data, JSAMPARRAY * output_data_ptr)
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{
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JSAMPARRAY output_data = *output_data_ptr;
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register JSAMPROW inptr0, inptr1, outptr;
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#if BITS_IN_JSAMPLE == 8
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register int thiscolsum, lastcolsum, nextcolsum;
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#else
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register INT32 thiscolsum, lastcolsum, nextcolsum;
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#endif
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register JDIMENSION colctr;
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int inrow, outrow, v;
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inrow = outrow = 0;
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while (outrow < cinfo->max_v_samp_factor) {
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for (v = 0; v < 2; v++) {
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/* inptr0 points to nearest input row, inptr1 points to next nearest */
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inptr0 = input_data[inrow];
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if (v == 0) /* next nearest is row above */
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inptr1 = input_data[inrow-1];
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else /* next nearest is row below */
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inptr1 = input_data[inrow+1];
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outptr = output_data[outrow++];
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/* Special case for first column */
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thiscolsum = GETJSAMPLE(*inptr0++) * 3 + GETJSAMPLE(*inptr1++);
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nextcolsum = GETJSAMPLE(*inptr0++) * 3 + GETJSAMPLE(*inptr1++);
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*outptr++ = (JSAMPLE) ((thiscolsum * 4 + 8) >> 4);
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*outptr++ = (JSAMPLE) ((thiscolsum * 3 + nextcolsum + 7) >> 4);
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lastcolsum = thiscolsum; thiscolsum = nextcolsum;
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for (colctr = compptr->downsampled_width - 2; colctr > 0; colctr--) {
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/* General case: 3/4 * nearer pixel + 1/4 * further pixel in each */
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/* dimension, thus 9/16, 3/16, 3/16, 1/16 overall */
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nextcolsum = GETJSAMPLE(*inptr0++) * 3 + GETJSAMPLE(*inptr1++);
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*outptr++ = (JSAMPLE) ((thiscolsum * 3 + lastcolsum + 8) >> 4);
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*outptr++ = (JSAMPLE) ((thiscolsum * 3 + nextcolsum + 7) >> 4);
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lastcolsum = thiscolsum; thiscolsum = nextcolsum;
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}
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/* Special case for last column */
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*outptr++ = (JSAMPLE) ((thiscolsum * 3 + lastcolsum + 8) >> 4);
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*outptr++ = (JSAMPLE) ((thiscolsum * 4 + 7) >> 4);
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}
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inrow++;
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}
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}
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/*
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* Module initialization routine for upsampling.
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*/
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@@ -401,7 +296,7 @@ jinit_upsampler (j_decompress_ptr cinfo)
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my_upsample_ptr upsample;
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int ci;
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jpeg_component_info * compptr;
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boolean need_buffer, do_fancy;
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boolean need_buffer;
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int h_in_group, v_in_group, h_out_group, v_out_group;
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upsample = (my_upsample_ptr)
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@@ -415,11 +310,6 @@ jinit_upsampler (j_decompress_ptr cinfo)
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if (cinfo->CCIR601_sampling) /* this isn't supported */
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ERREXIT(cinfo, JERR_CCIR601_NOTIMPL);
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/* jdmainct.c doesn't support context rows when min_DCT_scaled_size = 1,
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* so don't ask for it.
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*/
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do_fancy = cinfo->do_fancy_upsampling && cinfo->min_DCT_scaled_size > 1;
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/* Verify we can handle the sampling factors, select per-component methods,
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* and create storage as needed.
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*/
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@@ -428,10 +318,10 @@ jinit_upsampler (j_decompress_ptr cinfo)
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/* Compute size of an "input group" after IDCT scaling. This many samples
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* are to be converted to max_h_samp_factor * max_v_samp_factor pixels.
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*/
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h_in_group = (compptr->h_samp_factor * compptr->DCT_scaled_size) /
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cinfo->min_DCT_scaled_size;
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v_in_group = (compptr->v_samp_factor * compptr->DCT_scaled_size) /
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cinfo->min_DCT_scaled_size;
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h_in_group = (compptr->h_samp_factor * compptr->DCT_h_scaled_size) /
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cinfo->min_DCT_h_scaled_size;
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v_in_group = (compptr->v_samp_factor * compptr->DCT_v_scaled_size) /
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cinfo->min_DCT_v_scaled_size;
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h_out_group = cinfo->max_h_samp_factor;
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v_out_group = cinfo->max_v_samp_factor;
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upsample->rowgroup_height[ci] = v_in_group; /* save for use later */
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@@ -446,19 +336,12 @@ jinit_upsampler (j_decompress_ptr cinfo)
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need_buffer = FALSE;
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} else if (h_in_group * 2 == h_out_group &&
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v_in_group == v_out_group) {
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/* Special cases for 2h1v upsampling */
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if (do_fancy && compptr->downsampled_width > 2)
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upsample->methods[ci] = h2v1_fancy_upsample;
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else
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upsample->methods[ci] = h2v1_upsample;
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/* Special case for 2h1v upsampling */
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upsample->methods[ci] = h2v1_upsample;
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} else if (h_in_group * 2 == h_out_group &&
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v_in_group * 2 == v_out_group) {
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/* Special cases for 2h2v upsampling */
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if (do_fancy && compptr->downsampled_width > 2) {
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upsample->methods[ci] = h2v2_fancy_upsample;
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upsample->pub.need_context_rows = TRUE;
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} else
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upsample->methods[ci] = h2v2_upsample;
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/* Special case for 2h2v upsampling */
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upsample->methods[ci] = h2v2_upsample;
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} else if ((h_out_group % h_in_group) == 0 &&
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(v_out_group % v_in_group) == 0) {
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/* Generic integral-factors upsampling method */
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