mirror of
https://github.com/hrydgard/ppsspp.git
synced 2025-04-02 11:01:50 -04:00
724 lines
19 KiB
C++
724 lines
19 KiB
C++
// Copyright (c) 2012- PPSSPP Project.
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// This program is free software: you can redistribute it and/or modify
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// it under the terms of the GNU General Public License as published by
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// the Free Software Foundation, version 2.0 or later versions.
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// This program is distributed in the hope that it will be useful,
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// but WITHOUT ANY WARRANTY; without even the implied warranty of
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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// GNU General Public License 2.0 for more details.
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// A copy of the GPL 2.0 should have been included with the program.
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// If not, see http://www.gnu.org/licenses/
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// Official git repository and contact information can be found at
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// https://github.com/hrydgard/ppsspp and http://www.ppsspp.org/.
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#include "ext/xxhash.h"
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#include "Common/CPUDetect.h"
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#include "Common/ColorConv.h"
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#include "GPU/GPU.h"
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#include "GPU/GPUState.h"
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#include "GPU/Common/TextureDecoder.h"
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// NEON is in a separate file so that it can be compiled with a runtime check.
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#include "GPU/Common/TextureDecoderNEON.h"
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// TODO: Move some common things into here.
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#ifdef _M_SSE
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#include <emmintrin.h>
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#if _M_SSE >= 0x401
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#include <smmintrin.h>
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#endif
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u32 QuickTexHashSSE2(const void *checkp, u32 size) {
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u32 check = 0;
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if (((intptr_t)checkp & 0xf) == 0 && (size & 0x3f) == 0) {
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__m128i cursor = _mm_set1_epi32(0);
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__m128i cursor2 = _mm_set_epi16(0x0001U, 0x0083U, 0x4309U, 0x4d9bU, 0xb651U, 0x4b73U, 0x9bd9U, 0xc00bU);
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__m128i update = _mm_set1_epi16(0x2455U);
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const __m128i *p = (const __m128i *)checkp;
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for (u32 i = 0; i < size / 16; i += 4) {
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__m128i chunk = _mm_mullo_epi16(_mm_load_si128(&p[i]), cursor2);
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cursor = _mm_add_epi16(cursor, chunk);
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cursor = _mm_xor_si128(cursor, _mm_load_si128(&p[i + 1]));
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cursor = _mm_add_epi32(cursor, _mm_load_si128(&p[i + 2]));
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chunk = _mm_mullo_epi16(_mm_load_si128(&p[i + 3]), cursor2);
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cursor = _mm_xor_si128(cursor, chunk);
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cursor2 = _mm_add_epi16(cursor2, update);
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}
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cursor = _mm_add_epi32(cursor, cursor2);
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// Add the four parts into the low i32.
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cursor = _mm_add_epi32(cursor, _mm_srli_si128(cursor, 8));
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cursor = _mm_add_epi32(cursor, _mm_srli_si128(cursor, 4));
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check = _mm_cvtsi128_si32(cursor);
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} else {
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const u32 *p = (const u32 *)checkp;
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for (u32 i = 0; i < size / 8; ++i) {
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check += *p++;
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check ^= *p++;
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}
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}
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return check;
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}
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#endif
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// Masks to downalign bufw to 16 bytes, and wrap at 2048.
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static const u32 textureAlignMask16[16] = {
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0x7FF & ~(((8 * 16) / 16) - 1), //GE_TFMT_5650,
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0x7FF & ~(((8 * 16) / 16) - 1), //GE_TFMT_5551,
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0x7FF & ~(((8 * 16) / 16) - 1), //GE_TFMT_4444,
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0x7FF & ~(((8 * 16) / 32) - 1), //GE_TFMT_8888,
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0x7FF & ~(((8 * 16) / 4) - 1), //GE_TFMT_CLUT4,
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0x7FF & ~(((8 * 16) / 8) - 1), //GE_TFMT_CLUT8,
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0x7FF & ~(((8 * 16) / 16) - 1), //GE_TFMT_CLUT16,
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0x7FF & ~(((8 * 16) / 32) - 1), //GE_TFMT_CLUT32,
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0x7FF, //GE_TFMT_DXT1,
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0x7FF, //GE_TFMT_DXT3,
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0x7FF, //GE_TFMT_DXT5,
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0, // INVALID,
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0, // INVALID,
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0, // INVALID,
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0, // INVALID,
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0, // INVALID,
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};
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u32 GetTextureBufw(int level, u32 texaddr, GETextureFormat format) {
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// This is a hack to allow for us to draw the huge PPGe texture, which is always in kernel ram.
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if (texaddr < PSP_GetKernelMemoryEnd())
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return gstate.texbufwidth[level] & 0x1FFF;
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u32 bufw = gstate.texbufwidth[level] & textureAlignMask16[format];
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if (bufw == 0) {
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// If it's less than 16 bytes, use 16 bytes.
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bufw = (8 * 16) / textureBitsPerPixel[format];
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}
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return bufw;
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}
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u32 QuickTexHashNonSSE(const void *checkp, u32 size) {
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u32 check = 0;
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if (((intptr_t)checkp & 0xf) == 0 && (size & 0x3f) == 0) {
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static const u16 cursor2_initial[8] = {0xc00bU, 0x9bd9U, 0x4b73U, 0xb651U, 0x4d9bU, 0x4309U, 0x0083U, 0x0001U};
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union u32x4_u16x8 {
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u32 x32[4];
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u16 x16[8];
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};
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u32x4_u16x8 cursor{};
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u32x4_u16x8 cursor2;
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static const u16 update[8] = {0x2455U, 0x2455U, 0x2455U, 0x2455U, 0x2455U, 0x2455U, 0x2455U, 0x2455U};
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for (u32 j = 0; j < 8; ++j) {
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cursor2.x16[j] = cursor2_initial[j];
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}
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const u32x4_u16x8 *p = (const u32x4_u16x8 *)checkp;
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for (u32 i = 0; i < size / 16; i += 4) {
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for (u32 j = 0; j < 8; ++j) {
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const u16 temp = p[i + 0].x16[j] * cursor2.x16[j];
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cursor.x16[j] += temp;
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}
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for (u32 j = 0; j < 4; ++j) {
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cursor.x32[j] ^= p[i + 1].x32[j];
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cursor.x32[j] += p[i + 2].x32[j];
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}
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for (u32 j = 0; j < 8; ++j) {
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const u16 temp = p[i + 3].x16[j] * cursor2.x16[j];
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cursor.x16[j] ^= temp;
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}
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for (u32 j = 0; j < 8; ++j) {
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cursor2.x16[j] += update[j];
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}
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}
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for (u32 j = 0; j < 4; ++j) {
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cursor.x32[j] += cursor2.x32[j];
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}
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check = cursor.x32[0] + cursor.x32[1] + cursor.x32[2] + cursor.x32[3];
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} else {
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const u32 *p = (const u32 *)checkp;
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for (u32 i = 0; i < size / 8; ++i) {
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check += *p++;
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check ^= *p++;
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}
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}
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return check;
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}
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static u32 QuickTexHashBasic(const void *checkp, u32 size) {
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#if PPSSPP_ARCH(ARM) && defined(__GNUC__)
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__builtin_prefetch(checkp, 0, 0);
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u32 check;
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asm volatile (
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// Let's change size to the end address.
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"add %1, %1, %2\n"
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"mov r6, #0\n"
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".align 2\n"
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// If we have zero sized input, we'll return garbage. Oh well, shouldn't happen.
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"QuickTexHashBasic_next:\n"
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"ldmia %2!, {r2-r5}\n"
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"add r6, r6, r2\n"
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"eor r6, r6, r3\n"
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"cmp %2, %1\n"
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"add r6, r6, r4\n"
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"eor r6, r6, r5\n"
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"blo QuickTexHashBasic_next\n"
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".align 2\n"
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"QuickTexHashBasic_done:\n"
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"mov %0, r6\n"
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: "=r"(check)
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: "r"(size), "r"(checkp)
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: "r2", "r3", "r4", "r5", "r6"
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);
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#else
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u32 check = 0;
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const u32 size_u32 = size / 4;
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const u32 *p = (const u32 *)checkp;
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for (u32 i = 0; i < size_u32; i += 4) {
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check += p[i + 0];
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check ^= p[i + 1];
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check += p[i + 2];
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check ^= p[i + 3];
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}
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#endif
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return check;
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}
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void DoSwizzleTex16(const u32 *ysrcp, u8 *texptr, int bxc, int byc, u32 pitch) {
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// ysrcp is in 32-bits, so this is convenient.
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const u32 pitchBy32 = pitch >> 2;
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#ifdef _M_SSE
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__m128i *dest = (__m128i *)texptr;
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// The pitch parameter is in bytes, so shift down for 128-bit.
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// Note: it's always aligned to 16 bytes, so this is safe.
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const u32 pitchBy128 = pitch >> 4;
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for (int by = 0; by < byc; by++) {
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const __m128i *xsrc = (const __m128i *)ysrcp;
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for (int bx = 0; bx < bxc; bx++) {
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const __m128i *src = xsrc;
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for (int n = 0; n < 2; n++) {
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// Textures are always 16-byte aligned so this is fine.
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__m128i temp1 = _mm_load_si128(src);
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src += pitchBy128;
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__m128i temp2 = _mm_load_si128(src);
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src += pitchBy128;
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__m128i temp3 = _mm_load_si128(src);
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src += pitchBy128;
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__m128i temp4 = _mm_load_si128(src);
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src += pitchBy128;
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_mm_store_si128(dest, temp1);
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_mm_store_si128(dest + 1, temp2);
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_mm_store_si128(dest + 2, temp3);
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_mm_store_si128(dest + 3, temp4);
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dest += 4;
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}
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xsrc++;
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}
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ysrcp += pitchBy32 * 8;
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}
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#else
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u32 *dest = (u32 *)texptr;
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for (int by = 0; by < byc; by++) {
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const u32 *xsrc = ysrcp;
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for (int bx = 0; bx < bxc; bx++) {
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const u32 *src = xsrc;
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for (int n = 0; n < 8; n++) {
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memcpy(dest, src, 16);
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src += pitchBy32;
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dest += 4;
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}
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xsrc += 4;
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}
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ysrcp += pitchBy32 * 8;
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}
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#endif
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}
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void DoUnswizzleTex16Basic(const u8 *texptr, u32 *ydestp, int bxc, int byc, u32 pitch) {
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// ydestp is in 32-bits, so this is convenient.
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const u32 pitchBy32 = pitch >> 2;
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#ifdef _M_SSE
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if (((uintptr_t)ydestp & 0xF) == 0) {
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const __m128i *src = (const __m128i *)texptr;
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// The pitch parameter is in bytes, so shift down for 128-bit.
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// Note: it's always aligned to 16 bytes, so this is safe.
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const u32 pitchBy128 = pitch >> 4;
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for (int by = 0; by < byc; by++) {
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__m128i *xdest = (__m128i *)ydestp;
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for (int bx = 0; bx < bxc; bx++) {
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__m128i *dest = xdest;
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for (int n = 0; n < 2; n++) {
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// Textures are always 16-byte aligned so this is fine.
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__m128i temp1 = _mm_load_si128(src);
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__m128i temp2 = _mm_load_si128(src + 1);
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__m128i temp3 = _mm_load_si128(src + 2);
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__m128i temp4 = _mm_load_si128(src + 3);
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_mm_store_si128(dest, temp1);
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dest += pitchBy128;
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_mm_store_si128(dest, temp2);
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dest += pitchBy128;
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_mm_store_si128(dest, temp3);
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dest += pitchBy128;
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_mm_store_si128(dest, temp4);
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dest += pitchBy128;
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src += 4;
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}
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xdest++;
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}
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ydestp += pitchBy32 * 8;
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}
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} else
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#endif
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{
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const u32 *src = (const u32 *)texptr;
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for (int by = 0; by < byc; by++) {
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u32 *xdest = ydestp;
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for (int bx = 0; bx < bxc; bx++) {
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u32 *dest = xdest;
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for (int n = 0; n < 8; n++) {
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memcpy(dest, src, 16);
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dest += pitchBy32;
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src += 4;
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}
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xdest += 4;
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}
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ydestp += pitchBy32 * 8;
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}
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}
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}
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#ifndef _M_SSE
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#if !PPSSPP_ARCH(ARM64)
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QuickTexHashFunc DoQuickTexHash = &QuickTexHashBasic;
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QuickTexHashFunc StableQuickTexHash = &QuickTexHashNonSSE;
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UnswizzleTex16Func DoUnswizzleTex16 = &DoUnswizzleTex16Basic;
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ReliableHash32Func DoReliableHash32 = &XXH32;
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ReliableHash64Func DoReliableHash64 = &XXH64;
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#endif
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#endif
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// This has to be done after CPUDetect has done its magic.
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void SetupTextureDecoder() {
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#if PPSSPP_ARCH(ARM_NEON) && !PPSSPP_ARCH(ARM64)
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if (cpu_info.bNEON) {
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DoQuickTexHash = &QuickTexHashNEON;
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StableQuickTexHash = &QuickTexHashNEON;
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DoUnswizzleTex16 = &DoUnswizzleTex16NEON;
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#if !PPSSPP_PLATFORM(IOS)
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// Not sure if this is safe on iOS, it's had issues with xxhash.
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DoReliableHash32 = &ReliableHash32NEON;
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#endif
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}
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#endif
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}
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static inline u32 makecol(int r, int g, int b, int a) {
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return (a << 24) | (r << 16) | (g << 8) | b;
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}
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// This could probably be done faster by decoding two or four blocks at a time with SSE/NEON.
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void DecodeDXT1Block(u32 *dst, const DXT1Block *src, int pitch, int height, bool ignore1bitAlpha) {
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// S3TC Decoder
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// Needs more speed and debugging.
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u16 c1 = (src->color1);
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u16 c2 = (src->color2);
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int red1 = Convert5To8(c1 & 0x1F);
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int red2 = Convert5To8(c2 & 0x1F);
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int green1 = Convert6To8((c1 >> 5) & 0x3F);
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int green2 = Convert6To8((c2 >> 5) & 0x3F);
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int blue1 = Convert5To8((c1 >> 11) & 0x1F);
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int blue2 = Convert5To8((c2 >> 11) & 0x1F);
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u32 colors[4];
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colors[0] = makecol(red1, green1, blue1, 255);
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colors[1] = makecol(red2, green2, blue2, 255);
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if (c1 > c2 || ignore1bitAlpha) {
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int blue3 = ((blue2 - blue1) >> 1) - ((blue2 - blue1) >> 3);
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int green3 = ((green2 - green1) >> 1) - ((green2 - green1) >> 3);
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int red3 = ((red2 - red1) >> 1) - ((red2 - red1) >> 3);
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colors[2] = makecol(red1 + red3, green1 + green3, blue1 + blue3, 255);
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colors[3] = makecol(red2 - red3, green2 - green3, blue2 - blue3, 255);
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} else {
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colors[2] = makecol((red1 + red2 + 1) / 2, // Average
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(green1 + green2 + 1) / 2,
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(blue1 + blue2 + 1) / 2, 255);
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colors[3] = makecol(red2, green2, blue2, 0); // Color2 but transparent
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}
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for (int y = 0; y < height; y++) {
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int val = src->lines[y];
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for (int x = 0; x < 4; x++) {
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dst[x] = colors[val & 3];
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val >>= 2;
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}
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dst += pitch;
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}
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}
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void DecodeDXT3Block(u32 *dst, const DXT3Block *src, int pitch, int height)
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{
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DecodeDXT1Block(dst, &src->color, pitch, height, true);
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for (int y = 0; y < height; y++) {
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u32 line = src->alphaLines[y];
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for (int x = 0; x < 4; x++) {
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const u8 a4 = line & 0xF;
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dst[x] = (dst[x] & 0xFFFFFF) | (a4 << 24) | (a4 << 28);
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line >>= 4;
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}
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dst += pitch;
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}
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}
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static inline u8 lerp8(const DXT5Block *src, int n) {
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float d = n / 7.0f;
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return (u8)(src->alpha1 + (src->alpha2 - src->alpha1) * d);
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}
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static inline u8 lerp6(const DXT5Block *src, int n) {
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float d = n / 5.0f;
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return (u8)(src->alpha1 + (src->alpha2 - src->alpha1) * d);
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}
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// The alpha channel is not 100% correct
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void DecodeDXT5Block(u32 *dst, const DXT5Block *src, int pitch, int height) {
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DecodeDXT1Block(dst, &src->color, pitch, height, true);
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u8 alpha[8];
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alpha[0] = src->alpha1;
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alpha[1] = src->alpha2;
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if (alpha[0] > alpha[1]) {
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alpha[2] = lerp8(src, 1);
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alpha[3] = lerp8(src, 2);
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alpha[4] = lerp8(src, 3);
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alpha[5] = lerp8(src, 4);
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alpha[6] = lerp8(src, 5);
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alpha[7] = lerp8(src, 6);
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} else {
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alpha[2] = lerp6(src, 1);
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alpha[3] = lerp6(src, 2);
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alpha[4] = lerp6(src, 3);
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alpha[5] = lerp6(src, 4);
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alpha[6] = 0;
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alpha[7] = 255;
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}
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u64 data = ((u64)(u16)src->alphadata1 << 32) | (u32)src->alphadata2;
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for (int y = 0; y < height; y++) {
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for (int x = 0; x < 4; x++) {
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dst[x] = (dst[x] & 0xFFFFFF) | (alpha[data & 7] << 24);
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data >>= 3;
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}
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dst += pitch;
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}
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}
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#ifdef _M_SSE
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static inline u32 CombineSSEBitsToDWORD(const __m128i &v) {
|
|
__m128i temp;
|
|
temp = _mm_or_si128(v, _mm_srli_si128(v, 8));
|
|
temp = _mm_or_si128(temp, _mm_srli_si128(temp, 4));
|
|
return _mm_cvtsi128_si32(temp);
|
|
}
|
|
|
|
CheckAlphaResult CheckAlphaRGBA8888SSE2(const u32 *pixelData, int stride, int w, int h) {
|
|
const __m128i mask = _mm_set1_epi32(0xFF000000);
|
|
|
|
const __m128i *p = (const __m128i *)pixelData;
|
|
const int w4 = w / 4;
|
|
const int stride4 = stride / 4;
|
|
|
|
__m128i bits = mask;
|
|
for (int y = 0; y < h; ++y) {
|
|
for (int i = 0; i < w4; ++i) {
|
|
const __m128i a = _mm_load_si128(&p[i]);
|
|
bits = _mm_and_si128(bits, a);
|
|
}
|
|
|
|
__m128i result = _mm_xor_si128(bits, mask);
|
|
if (CombineSSEBitsToDWORD(result) != 0) {
|
|
return CHECKALPHA_ANY;
|
|
}
|
|
|
|
p += stride4;
|
|
}
|
|
|
|
return CHECKALPHA_FULL;
|
|
}
|
|
|
|
CheckAlphaResult CheckAlphaABGR4444SSE2(const u32 *pixelData, int stride, int w, int h) {
|
|
const __m128i mask = _mm_set1_epi16((short)0x000F);
|
|
|
|
const __m128i *p = (const __m128i *)pixelData;
|
|
const int w8 = w / 8;
|
|
const int stride8 = stride / 8;
|
|
|
|
__m128i bits = mask;
|
|
for (int y = 0; y < h; ++y) {
|
|
for (int i = 0; i < w8; ++i) {
|
|
const __m128i a = _mm_load_si128(&p[i]);
|
|
bits = _mm_and_si128(bits, a);
|
|
}
|
|
|
|
__m128i result = _mm_xor_si128(bits, mask);
|
|
if (CombineSSEBitsToDWORD(result) != 0) {
|
|
return CHECKALPHA_ANY;
|
|
}
|
|
|
|
p += stride8;
|
|
}
|
|
|
|
return CHECKALPHA_FULL;
|
|
}
|
|
|
|
CheckAlphaResult CheckAlphaABGR1555SSE2(const u32 *pixelData, int stride, int w, int h) {
|
|
const __m128i mask = _mm_set1_epi16((short)0x0001);
|
|
|
|
const __m128i *p = (const __m128i *)pixelData;
|
|
const int w8 = w / 8;
|
|
const int stride8 = stride / 8;
|
|
|
|
__m128i bits = mask;
|
|
for (int y = 0; y < h; ++y) {
|
|
for (int i = 0; i < w8; ++i) {
|
|
const __m128i a = _mm_load_si128(&p[i]);
|
|
bits = _mm_and_si128(bits, a);
|
|
}
|
|
|
|
__m128i result = _mm_xor_si128(bits, mask);
|
|
if (CombineSSEBitsToDWORD(result) != 0) {
|
|
return CHECKALPHA_ANY;
|
|
}
|
|
|
|
p += stride8;
|
|
}
|
|
|
|
return CHECKALPHA_FULL;
|
|
}
|
|
|
|
CheckAlphaResult CheckAlphaRGBA4444SSE2(const u32 *pixelData, int stride, int w, int h) {
|
|
const __m128i mask = _mm_set1_epi16((short)0xF000);
|
|
|
|
const __m128i *p = (const __m128i *)pixelData;
|
|
const int w8 = w / 8;
|
|
const int stride8 = stride / 8;
|
|
|
|
__m128i bits = mask;
|
|
for (int y = 0; y < h; ++y) {
|
|
for (int i = 0; i < w8; ++i) {
|
|
const __m128i a = _mm_load_si128(&p[i]);
|
|
bits = _mm_and_si128(bits, a);
|
|
}
|
|
|
|
__m128i result = _mm_xor_si128(bits, mask);
|
|
if (CombineSSEBitsToDWORD(result) != 0) {
|
|
return CHECKALPHA_ANY;
|
|
}
|
|
|
|
p += stride8;
|
|
}
|
|
|
|
return CHECKALPHA_FULL;
|
|
}
|
|
|
|
CheckAlphaResult CheckAlphaRGBA5551SSE2(const u32 *pixelData, int stride, int w, int h) {
|
|
const __m128i mask = _mm_set1_epi16((short)0x8000);
|
|
|
|
const __m128i *p = (const __m128i *)pixelData;
|
|
const int w8 = w / 8;
|
|
const int stride8 = stride / 8;
|
|
|
|
__m128i bits = mask;
|
|
for (int y = 0; y < h; ++y) {
|
|
for (int i = 0; i < w8; ++i) {
|
|
const __m128i a = _mm_load_si128(&p[i]);
|
|
bits = _mm_and_si128(bits, a);
|
|
}
|
|
|
|
__m128i result = _mm_xor_si128(bits, mask);
|
|
if (CombineSSEBitsToDWORD(result) != 0) {
|
|
return CHECKALPHA_ANY;
|
|
}
|
|
|
|
p += stride8;
|
|
}
|
|
|
|
return CHECKALPHA_FULL;
|
|
}
|
|
#endif
|
|
|
|
CheckAlphaResult CheckAlphaRGBA8888Basic(const u32 *pixelData, int stride, int w, int h) {
|
|
// Use SIMD if aligned to 16 bytes / 4 pixels (almost always the case.)
|
|
if ((w & 3) == 0 && (stride & 3) == 0) {
|
|
#ifdef _M_SSE
|
|
return CheckAlphaRGBA8888SSE2(pixelData, stride, w, h);
|
|
#elif PPSSPP_ARCH(ARMV7) || PPSSPP_ARCH(ARM64)
|
|
if (cpu_info.bNEON) {
|
|
return CheckAlphaRGBA8888NEON(pixelData, stride, w, h);
|
|
}
|
|
#endif
|
|
}
|
|
|
|
const u32 *p = pixelData;
|
|
for (int y = 0; y < h; ++y) {
|
|
u32 bits = 0xFF000000;
|
|
for (int i = 0; i < w; ++i) {
|
|
bits &= p[i];
|
|
}
|
|
|
|
if (bits != 0xFF000000) {
|
|
// We're done, we hit non-full alpha.
|
|
return CHECKALPHA_ANY;
|
|
}
|
|
|
|
p += stride;
|
|
}
|
|
|
|
return CHECKALPHA_FULL;
|
|
}
|
|
|
|
CheckAlphaResult CheckAlphaABGR4444Basic(const u32 *pixelData, int stride, int w, int h) {
|
|
// Use SIMD if aligned to 16 bytes / 8 pixels (usually the case.)
|
|
if ((w & 7) == 0 && (stride & 7) == 0) {
|
|
#ifdef _M_SSE
|
|
return CheckAlphaABGR4444SSE2(pixelData, stride, w, h);
|
|
#elif PPSSPP_ARCH(ARMV7) || PPSSPP_ARCH(ARM64)
|
|
if (cpu_info.bNEON) {
|
|
return CheckAlphaABGR4444NEON(pixelData, stride, w, h);
|
|
}
|
|
#endif
|
|
}
|
|
|
|
const u32 *p = pixelData;
|
|
const int w2 = (w + 1) / 2;
|
|
const int stride2 = (stride + 1) / 2;
|
|
|
|
for (int y = 0; y < h; ++y) {
|
|
u32 bits = 0x000F000F;
|
|
for (int i = 0; i < w2; ++i) {
|
|
bits &= p[i];
|
|
}
|
|
|
|
if (bits != 0x000F000F) {
|
|
// We're done, we hit non-full alpha.
|
|
return CHECKALPHA_ANY;
|
|
}
|
|
|
|
p += stride2;
|
|
}
|
|
|
|
return CHECKALPHA_FULL;
|
|
}
|
|
|
|
CheckAlphaResult CheckAlphaABGR1555Basic(const u32 *pixelData, int stride, int w, int h) {
|
|
// Use SIMD if aligned to 16 bytes / 8 pixels (usually the case.)
|
|
if ((w & 7) == 0 && (stride & 7) == 0) {
|
|
#ifdef _M_SSE
|
|
return CheckAlphaABGR1555SSE2(pixelData, stride, w, h);
|
|
#elif PPSSPP_ARCH(ARMV7) || PPSSPP_ARCH(ARM64)
|
|
if (cpu_info.bNEON) {
|
|
return CheckAlphaABGR1555NEON(pixelData, stride, w, h);
|
|
}
|
|
#endif
|
|
}
|
|
|
|
const u32 *p = pixelData;
|
|
const int w2 = (w + 1) / 2;
|
|
const int stride2 = (stride + 1) / 2;
|
|
|
|
for (int y = 0; y < h; ++y) {
|
|
u32 bits = 0x00010001;
|
|
for (int i = 0; i < w2; ++i) {
|
|
bits &= p[i];
|
|
}
|
|
|
|
if (bits != 0x00010001) {
|
|
return CHECKALPHA_ANY;
|
|
}
|
|
|
|
p += stride2;
|
|
}
|
|
|
|
return CHECKALPHA_FULL;
|
|
}
|
|
|
|
CheckAlphaResult CheckAlphaRGBA4444Basic(const u32 *pixelData, int stride, int w, int h) {
|
|
// Use SSE if aligned to 16 bytes / 8 pixels (usually the case.)
|
|
if ((w & 7) == 0 && (stride & 7) == 0) {
|
|
#ifdef _M_SSE
|
|
return CheckAlphaRGBA4444SSE2(pixelData, stride, w, h);
|
|
#elif PPSSPP_ARCH(ARMV7) || PPSSPP_ARCH(ARM64)
|
|
if (cpu_info.bNEON) {
|
|
return CheckAlphaRGBA4444NEON(pixelData, stride, w, h);
|
|
}
|
|
#endif
|
|
}
|
|
|
|
const u32 *p = pixelData;
|
|
const int w2 = (w + 1) / 2;
|
|
const int stride2 = (stride + 1) / 2;
|
|
|
|
for (int y = 0; y < h; ++y) {
|
|
u32 bits = 0xF000F000;
|
|
for (int i = 0; i < w2; ++i) {
|
|
bits &= p[i];
|
|
}
|
|
|
|
if (bits != 0xF000F000) {
|
|
// We're done, we hit non-full alpha.
|
|
return CHECKALPHA_ANY;
|
|
}
|
|
|
|
p += stride2;
|
|
}
|
|
|
|
return CHECKALPHA_FULL;
|
|
}
|
|
|
|
CheckAlphaResult CheckAlphaRGBA5551Basic(const u32 *pixelData, int stride, int w, int h) {
|
|
// Use SSE if aligned to 16 bytes / 8 pixels (usually the case.)
|
|
if ((w & 7) == 0 && (stride & 7) == 0) {
|
|
#ifdef _M_SSE
|
|
return CheckAlphaRGBA5551SSE2(pixelData, stride, w, h);
|
|
#elif PPSSPP_ARCH(ARMV7) || PPSSPP_ARCH(ARM64)
|
|
if (cpu_info.bNEON) {
|
|
return CheckAlphaRGBA5551NEON(pixelData, stride, w, h);
|
|
}
|
|
#endif
|
|
}
|
|
|
|
const u32 *p = pixelData;
|
|
const int w2 = (w + 1) / 2;
|
|
const int stride2 = (stride + 1) / 2;
|
|
|
|
for (int y = 0; y < h; ++y) {
|
|
u32 bits = 0x80008000;
|
|
for (int i = 0; i < w2; ++i) {
|
|
bits &= p[i];
|
|
}
|
|
|
|
if (bits != 0x80008000) {
|
|
return CHECKALPHA_ANY;
|
|
}
|
|
|
|
p += stride2;
|
|
}
|
|
|
|
return CHECKALPHA_FULL;
|
|
}
|