mirror of https://github.com/axmolengine/axmol.git
456 lines
14 KiB
C
456 lines
14 KiB
C
/*
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* Loongson MMI optimizations for libjpeg-turbo
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*
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* Copyright 2009 Pierre Ossman <ossman@cendio.se> for Cendio AB
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* Copyright (C) 2014-2015, 2019, D. R. Commander. All Rights Reserved.
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* Copyright (C) 2016-2018, Loongson Technology Corporation Limited, BeiJing.
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* All Rights Reserved.
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* Authors: ZhuChen <zhuchen@loongson.cn>
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* SunZhangzhi <sunzhangzhi-cq@loongson.cn>
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* CaiWanwei <caiwanwei@loongson.cn>
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* ZhangLixia <zhanglixia-hf@loongson.cn>
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*
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* Based on the x86 SIMD extension for IJG JPEG library
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* Copyright (C) 1999-2006, MIYASAKA Masaru.
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*
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* This software is provided 'as-is', without any express or implied
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* warranty. In no event will the authors be held liable for any damages
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* arising from the use of this software.
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*
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* Permission is granted to anyone to use this software for any purpose,
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* including commercial applications, and to alter it and redistribute it
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* freely, subject to the following restrictions:
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*
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* 1. The origin of this software must not be misrepresented; you must not
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* claim that you wrote the original software. If you use this software
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* in a product, an acknowledgment in the product documentation would be
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* appreciated but is not required.
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* 2. Altered source versions must be plainly marked as such, and must not be
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* misrepresented as being the original software.
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* 3. This notice may not be removed or altered from any source distribution.
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*/
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/* This file is included by jccolor-mmi.c */
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#if RGB_RED == 0
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#define mmA re
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#define mmB ro
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#elif RGB_GREEN == 0
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#define mmA ge
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#define mmB go
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#elif RGB_BLUE == 0
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#define mmA be
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#define mmB bo
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#else
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#define mmA xe
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#define mmB xo
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#endif
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#if RGB_RED == 1
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#define mmC re
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#define mmD ro
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#elif RGB_GREEN == 1
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#define mmC ge
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#define mmD go
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#elif RGB_BLUE == 1
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#define mmC be
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#define mmD bo
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#else
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#define mmC xe
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#define mmD xo
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#endif
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#if RGB_RED == 2
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#define mmE re
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#define mmF ro
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#elif RGB_GREEN == 2
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#define mmE ge
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#define mmF go
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#elif RGB_BLUE == 2
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#define mmE be
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#define mmF bo
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#else
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#define mmE xe
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#define mmF xo
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#endif
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#if RGB_RED == 3
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#define mmG re
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#define mmH ro
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#elif RGB_GREEN == 3
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#define mmG ge
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#define mmH go
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#elif RGB_BLUE == 3
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#define mmG be
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#define mmH bo
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#else
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#define mmG xe
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#define mmH xo
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#endif
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void jsimd_rgb_ycc_convert_mmi(JDIMENSION image_width, JSAMPARRAY input_buf,
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JSAMPIMAGE output_buf, JDIMENSION output_row,
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int num_rows)
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{
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JSAMPROW inptr, outptr0, outptr1, outptr2;
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int num_cols, col;
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__m64 re, ro, ge, go, be, bo, xe;
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#if RGB_PIXELSIZE == 4
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__m64 xo;
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#endif
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__m64 rgle, rghe, rglo, rgho, bgle, bghe, bglo, bgho;
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__m64 ble, halfble, bhe, halfbhe, blo, halfblo, bho, halfbho;
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__m64 rle, halfrle, rhe, halfrhe, rlo, halfrlo, rho, halfrho;
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__m64 yle_rg, yhe_rg, yle_bg, yhe_bg, yle, yhe, ye;
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__m64 ylo_rg, yho_rg, ylo_bg, yho_bg, ylo, yho, yo, y;
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__m64 cble, cbhe, cbe, cblo, cbho, cbo, cb;
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__m64 crle, crhe, cre, crlo, crho, cro, cr;
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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 (num_cols = image_width; num_cols > 0; num_cols -= 8,
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outptr0 += 8, outptr1 += 8, outptr2 += 8) {
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#if RGB_PIXELSIZE == 3
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if (num_cols < 8) {
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col = num_cols * 3;
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asm(".set noreorder\r\n"
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"li $8, 1\r\n"
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"move $9, %3\r\n"
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"and $10, $9, $8\r\n"
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"beqz $10, 1f\r\n"
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"nop \r\n"
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"subu $9, $9, 1\r\n"
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"xor $12, $12, $12\r\n"
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"move $13, %5\r\n"
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PTR_ADDU "$13, $13, $9\r\n"
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"lbu $12, 0($13)\r\n"
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"1: \r\n"
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"li $8, 2\r\n"
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"and $10, $9, $8\r\n"
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"beqz $10, 2f\r\n"
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"nop \r\n"
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"subu $9, $9, 2\r\n"
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"xor $11, $11, $11\r\n"
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"move $13, %5\r\n"
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PTR_ADDU "$13, $13, $9\r\n"
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"lhu $11, 0($13)\r\n"
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"sll $12, $12, 16\r\n"
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"or $12, $12, $11\r\n"
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"2: \r\n"
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"dmtc1 $12, %0\r\n"
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"li $8, 4\r\n"
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"and $10, $9, $8\r\n"
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"beqz $10, 3f\r\n"
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"nop \r\n"
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"subu $9, $9, 4\r\n"
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"move $13, %5\r\n"
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PTR_ADDU "$13, $13, $9\r\n"
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"lwu $14, 0($13)\r\n"
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"dmtc1 $14, %1\r\n"
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"dsll32 $12, $12, 0\r\n"
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"or $12, $12, $14\r\n"
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"dmtc1 $12, %0\r\n"
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"3: \r\n"
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"li $8, 8\r\n"
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"and $10, $9, $8\r\n"
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"beqz $10, 4f\r\n"
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"nop \r\n"
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"mov.s %1, %0\r\n"
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"ldc1 %0, 0(%5)\r\n"
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"li $9, 8\r\n"
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"j 5f\r\n"
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"nop \r\n"
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"4: \r\n"
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"li $8, 16\r\n"
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"and $10, $9, $8\r\n"
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"beqz $10, 5f\r\n"
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"nop \r\n"
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"mov.s %2, %0\r\n"
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"ldc1 %0, 0(%5)\r\n"
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"ldc1 %1, 8(%5)\r\n"
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"5: \r\n"
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"nop \r\n"
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".set reorder\r\n"
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: "=f" (mmA), "=f" (mmG), "=f" (mmF)
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: "r" (col), "r" (num_rows), "r" (inptr)
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: "$f0", "$f2", "$f4", "$8", "$9", "$10", "$11", "$12", "$13",
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"$14", "memory"
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);
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} else {
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if (!(((long)inptr) & 7)) {
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mmA = _mm_load_si64((__m64 *)&inptr[0]);
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mmG = _mm_load_si64((__m64 *)&inptr[8]);
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mmF = _mm_load_si64((__m64 *)&inptr[16]);
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} else {
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mmA = _mm_loadu_si64((__m64 *)&inptr[0]);
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mmG = _mm_loadu_si64((__m64 *)&inptr[8]);
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mmF = _mm_loadu_si64((__m64 *)&inptr[16]);
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}
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inptr += RGB_PIXELSIZE * 8;
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}
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mmD = _mm_srli_si64(mmA, 4 * BYTE_BIT);
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mmA = _mm_slli_si64(mmA, 4 * BYTE_BIT);
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mmA = _mm_unpackhi_pi8(mmA, mmG);
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mmG = _mm_slli_si64(mmG, 4 * BYTE_BIT);
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mmD = _mm_unpacklo_pi8(mmD, mmF);
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mmG = _mm_unpackhi_pi8(mmG, mmF);
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mmE = _mm_srli_si64(mmA, 4 * BYTE_BIT);
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mmA = _mm_slli_si64(mmA, 4 * BYTE_BIT);
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mmA = _mm_unpackhi_pi8(mmA, mmD);
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mmD = _mm_slli_si64(mmD, 4 * BYTE_BIT);
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mmE = _mm_unpacklo_pi8(mmE, mmG);
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mmD = _mm_unpackhi_pi8(mmD, mmG);
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mmC = _mm_loadhi_pi8_f(mmA);
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mmA = _mm_loadlo_pi8_f(mmA);
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mmB = _mm_loadhi_pi8_f(mmE);
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mmE = _mm_loadlo_pi8_f(mmE);
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mmF = _mm_loadhi_pi8_f(mmD);
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mmD = _mm_loadlo_pi8_f(mmD);
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#else /* RGB_PIXELSIZE == 4 */
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if (num_cols < 8) {
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col = num_cols;
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asm(".set noreorder\r\n"
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"li $8, 1\r\n"
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"move $9, %4\r\n"
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"and $10, $9, $8\r\n"
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"beqz $10, 1f\r\n"
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"nop \r\n"
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"subu $9, $9, 1\r\n"
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PTR_SLL "$11, $9, 2\r\n"
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"move $13, %5\r\n"
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PTR_ADDU "$13, $13, $11\r\n"
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"lwc1 %0, 0($13)\r\n"
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"1: \r\n"
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"li $8, 2\r\n"
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"and $10, $9, $8\r\n"
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"beqz $10, 2f\r\n"
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"nop \r\n"
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"subu $9, $9, 2\r\n"
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PTR_SLL "$11, $9, 2\r\n"
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"move $13, %5\r\n"
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PTR_ADDU "$13, $13, $11\r\n"
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"mov.s %1, %0\r\n"
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"ldc1 %0, 0($13)\r\n"
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"2: \r\n"
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"li $8, 4\r\n"
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"and $10, $9, $8\r\n"
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"beqz $10, 3f\r\n"
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"nop \r\n"
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"mov.s %2, %0\r\n"
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"mov.s %3, %1\r\n"
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"ldc1 %0, 0(%5)\r\n"
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"ldc1 %1, 8(%5)\r\n"
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"3: \r\n"
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"nop \r\n"
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".set reorder\r\n"
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: "=f" (mmA), "=f" (mmF), "=f" (mmD), "=f" (mmC)
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: "r" (col), "r" (inptr)
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: "$f0", "$f2", "$8", "$9", "$10", "$11", "$13", "memory"
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);
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} else {
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if (!(((long)inptr) & 7)) {
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mmA = _mm_load_si64((__m64 *)&inptr[0]);
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mmF = _mm_load_si64((__m64 *)&inptr[8]);
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mmD = _mm_load_si64((__m64 *)&inptr[16]);
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mmC = _mm_load_si64((__m64 *)&inptr[24]);
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} else {
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mmA = _mm_loadu_si64((__m64 *)&inptr[0]);
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mmF = _mm_loadu_si64((__m64 *)&inptr[8]);
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mmD = _mm_loadu_si64((__m64 *)&inptr[16]);
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mmC = _mm_loadu_si64((__m64 *)&inptr[24]);
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}
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inptr += RGB_PIXELSIZE * 8;
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}
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mmB = _mm_unpackhi_pi8(mmA, mmF);
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mmA = _mm_unpacklo_pi8(mmA, mmF);
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mmG = _mm_unpackhi_pi8(mmD, mmC);
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mmD = _mm_unpacklo_pi8(mmD, mmC);
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mmE = _mm_unpackhi_pi16(mmA, mmD);
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mmA = _mm_unpacklo_pi16(mmA, mmD);
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mmH = _mm_unpackhi_pi16(mmB, mmG);
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mmB = _mm_unpacklo_pi16(mmB, mmG);
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mmC = _mm_loadhi_pi8_f(mmA);
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mmA = _mm_loadlo_pi8_f(mmA);
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mmD = _mm_loadhi_pi8_f(mmB);
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mmB = _mm_loadlo_pi8_f(mmB);
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mmG = _mm_loadhi_pi8_f(mmE);
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mmE = _mm_loadlo_pi8_f(mmE);
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mmF = _mm_unpacklo_pi8(mmH, mmH);
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mmH = _mm_unpackhi_pi8(mmH, mmH);
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mmF = _mm_srli_pi16(mmF, BYTE_BIT);
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mmH = _mm_srli_pi16(mmH, BYTE_BIT);
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#endif
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/* re=(R0 R2 R4 R6), ge=(G0 G2 G4 G6), be=(B0 B2 B4 B6)
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* ro=(R1 R3 R5 R7), go=(G1 G3 G5 G7), bo=(B1 B3 B5 B7)
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*
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* (Original)
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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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*
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* (This implementation)
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* Y = 0.29900 * R + 0.33700 * G + 0.11400 * B + 0.25000 * G
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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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*/
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rglo = _mm_unpacklo_pi16(ro, go);
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rgho = _mm_unpackhi_pi16(ro, go);
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ylo_rg = _mm_madd_pi16(rglo, PW_F0299_F0337);
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yho_rg = _mm_madd_pi16(rgho, PW_F0299_F0337);
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cblo = _mm_madd_pi16(rglo, PW_MF016_MF033);
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cbho = _mm_madd_pi16(rgho, PW_MF016_MF033);
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blo = _mm_loadlo_pi16_f(bo);
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bho = _mm_loadhi_pi16_f(bo);
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halfblo = _mm_srli_pi32(blo, 1);
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halfbho = _mm_srli_pi32(bho, 1);
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cblo = _mm_add_pi32(cblo, halfblo);
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cbho = _mm_add_pi32(cbho, halfbho);
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cblo = _mm_add_pi32(cblo, PD_ONEHALFM1_CJ);
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cbho = _mm_add_pi32(cbho, PD_ONEHALFM1_CJ);
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cblo = _mm_srli_pi32(cblo, SCALEBITS);
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cbho = _mm_srli_pi32(cbho, SCALEBITS);
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cbo = _mm_packs_pi32(cblo, cbho);
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rgle = _mm_unpacklo_pi16(re, ge);
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rghe = _mm_unpackhi_pi16(re, ge);
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yle_rg = _mm_madd_pi16(rgle, PW_F0299_F0337);
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yhe_rg = _mm_madd_pi16(rghe, PW_F0299_F0337);
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cble = _mm_madd_pi16(rgle, PW_MF016_MF033);
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cbhe = _mm_madd_pi16(rghe, PW_MF016_MF033);
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ble = _mm_loadlo_pi16_f(be);
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bhe = _mm_loadhi_pi16_f(be);
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halfble = _mm_srli_pi32(ble, 1);
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halfbhe = _mm_srli_pi32(bhe, 1);
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cble = _mm_add_pi32(cble, halfble);
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cbhe = _mm_add_pi32(cbhe, halfbhe);
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cble = _mm_add_pi32(cble, PD_ONEHALFM1_CJ);
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cbhe = _mm_add_pi32(cbhe, PD_ONEHALFM1_CJ);
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cble = _mm_srli_pi32(cble, SCALEBITS);
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cbhe = _mm_srli_pi32(cbhe, SCALEBITS);
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cbe = _mm_packs_pi32(cble, cbhe);
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cbo = _mm_slli_pi16(cbo, BYTE_BIT);
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cb = _mm_or_si64(cbe, cbo);
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bglo = _mm_unpacklo_pi16(bo, go);
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bgho = _mm_unpackhi_pi16(bo, go);
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ylo_bg = _mm_madd_pi16(bglo, PW_F0114_F0250);
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yho_bg = _mm_madd_pi16(bgho, PW_F0114_F0250);
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crlo = _mm_madd_pi16(bglo, PW_MF008_MF041);
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crho = _mm_madd_pi16(bgho, PW_MF008_MF041);
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ylo = _mm_add_pi32(ylo_bg, ylo_rg);
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yho = _mm_add_pi32(yho_bg, yho_rg);
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ylo = _mm_add_pi32(ylo, PD_ONEHALF);
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yho = _mm_add_pi32(yho, PD_ONEHALF);
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ylo = _mm_srli_pi32(ylo, SCALEBITS);
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yho = _mm_srli_pi32(yho, SCALEBITS);
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yo = _mm_packs_pi32(ylo, yho);
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rlo = _mm_loadlo_pi16_f(ro);
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rho = _mm_loadhi_pi16_f(ro);
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halfrlo = _mm_srli_pi32(rlo, 1);
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halfrho = _mm_srli_pi32(rho, 1);
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crlo = _mm_add_pi32(crlo, halfrlo);
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crho = _mm_add_pi32(crho, halfrho);
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crlo = _mm_add_pi32(crlo, PD_ONEHALFM1_CJ);
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crho = _mm_add_pi32(crho, PD_ONEHALFM1_CJ);
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crlo = _mm_srli_pi32(crlo, SCALEBITS);
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crho = _mm_srli_pi32(crho, SCALEBITS);
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cro = _mm_packs_pi32(crlo, crho);
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bgle = _mm_unpacklo_pi16(be, ge);
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bghe = _mm_unpackhi_pi16(be, ge);
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yle_bg = _mm_madd_pi16(bgle, PW_F0114_F0250);
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yhe_bg = _mm_madd_pi16(bghe, PW_F0114_F0250);
|
|
crle = _mm_madd_pi16(bgle, PW_MF008_MF041);
|
|
crhe = _mm_madd_pi16(bghe, PW_MF008_MF041);
|
|
|
|
yle = _mm_add_pi32(yle_bg, yle_rg);
|
|
yhe = _mm_add_pi32(yhe_bg, yhe_rg);
|
|
yle = _mm_add_pi32(yle, PD_ONEHALF);
|
|
yhe = _mm_add_pi32(yhe, PD_ONEHALF);
|
|
yle = _mm_srli_pi32(yle, SCALEBITS);
|
|
yhe = _mm_srli_pi32(yhe, SCALEBITS);
|
|
ye = _mm_packs_pi32(yle, yhe);
|
|
|
|
yo = _mm_slli_pi16(yo, BYTE_BIT);
|
|
y = _mm_or_si64(ye, yo);
|
|
|
|
rle = _mm_loadlo_pi16_f(re);
|
|
rhe = _mm_loadhi_pi16_f(re);
|
|
halfrle = _mm_srli_pi32(rle, 1);
|
|
halfrhe = _mm_srli_pi32(rhe, 1);
|
|
|
|
crle = _mm_add_pi32(crle, halfrle);
|
|
crhe = _mm_add_pi32(crhe, halfrhe);
|
|
crle = _mm_add_pi32(crle, PD_ONEHALFM1_CJ);
|
|
crhe = _mm_add_pi32(crhe, PD_ONEHALFM1_CJ);
|
|
crle = _mm_srli_pi32(crle, SCALEBITS);
|
|
crhe = _mm_srli_pi32(crhe, SCALEBITS);
|
|
cre = _mm_packs_pi32(crle, crhe);
|
|
|
|
cro = _mm_slli_pi16(cro, BYTE_BIT);
|
|
cr = _mm_or_si64(cre, cro);
|
|
|
|
_mm_store_si64((__m64 *)&outptr0[0], y);
|
|
_mm_store_si64((__m64 *)&outptr1[0], cb);
|
|
_mm_store_si64((__m64 *)&outptr2[0], cr);
|
|
}
|
|
}
|
|
}
|
|
|
|
#undef mmA
|
|
#undef mmB
|
|
#undef mmC
|
|
#undef mmD
|
|
#undef mmE
|
|
#undef mmF
|
|
#undef mmG
|
|
#undef mmH
|