mirror of
https://github.com/hrydgard/ppsspp.git
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575 lines
21 KiB
C++
575 lines
21 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 <stdio.h>
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#include <locale.h>
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#if defined(_WIN32) && defined(_DEBUG)
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#include "Common/CommonWindows.h"
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#endif
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#include "base/stringutil.h"
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#include "GPU/ge_constants.h"
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#include "GPU/GPUState.h"
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#include "Core/Config.h"
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#include "GPU/Directx9/VertexShaderGeneratorDX9.h"
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#include "GPU/Common/VertexDecoderCommon.h"
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#undef WRITE
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#define WRITE p+=sprintf
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namespace DX9 {
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static const char * const boneWeightAttrDecl[9] = {
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"#ERROR#",
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"float a_w1:TEXCOORD1;\n",
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"float2 a_w1:TEXCOORD1;\n",
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"float3 a_w1:TEXCOORD1;\n",
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"float4 a_w1:TEXCOORD1;\n",
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"float4 a_w1:TEXCOORD1;\n float a_w2:TEXCOORD2;\n",
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"float4 a_w1:TEXCOORD1;\n float2 a_w2:TEXCOORD2;\n",
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"float4 a_w1:TEXCOORD1;\n float3 a_w2:TEXCOORD2;\n",
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"float4 a_w1:TEXCOORD1;\n float4 a_w2:TEXCOORD2;\n",
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};
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enum DoLightComputation {
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LIGHT_OFF,
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LIGHT_SHADE,
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LIGHT_FULL,
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};
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void GenerateVertexShaderDX9(const ShaderID &id, char *buffer) {
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char *p = buffer;
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const u32 vertType = gstate.vertType;
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bool isModeThrough = id.Bit(VS_BIT_IS_THROUGH);
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bool lmode = id.Bit(VS_BIT_LMODE) && !isModeThrough; // TODO: Different expression than in shaderIDgen
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bool doTexture = id.Bit(VS_BIT_DO_TEXTURE);
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bool doTextureProjection = id.Bit(VS_BIT_DO_TEXTURE_PROJ);
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GETexMapMode uvGenMode = static_cast<GETexMapMode>(id.Bits(VS_BIT_UVGEN_MODE, 2));
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// this is only valid for some settings of uvGenMode
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GETexProjMapMode uvProjMode = static_cast<GETexProjMapMode>(id.Bits(VS_BIT_UVPROJ_MODE, 2));
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bool doShadeMapping = uvGenMode == GE_TEXMAP_ENVIRONMENT_MAP;
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bool doFlatShading = id.Bit(VS_BIT_FLATSHADE);
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bool useHWTransform = id.Bit(VS_BIT_USE_HW_TRANSFORM);
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bool hasColor = id.Bit(VS_BIT_HAS_COLOR) || !useHWTransform;
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bool hasNormal = id.Bit(VS_BIT_HAS_NORMAL) && useHWTransform;
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bool hasTexcoord = id.Bit(VS_BIT_HAS_TEXCOORD) || !useHWTransform;
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bool enableFog = id.Bit(VS_BIT_ENABLE_FOG);
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bool throughmode = id.Bit(VS_BIT_IS_THROUGH);
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bool flipNormal = id.Bit(VS_BIT_NORM_REVERSE);
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int ls0 = id.Bits(VS_BIT_LS0, 2);
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int ls1 = id.Bits(VS_BIT_LS1, 2);
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bool enableBones = id.Bit(VS_BIT_ENABLE_BONES);
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bool enableLighting = id.Bit(VS_BIT_LIGHTING_ENABLE);
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int matUpdate = id.Bits(VS_BIT_MATERIAL_UPDATE, 3);
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bool scaleUV = !throughmode && (uvGenMode == GE_TEXMAP_TEXTURE_COORDS || uvGenMode == GE_TEXMAP_UNKNOWN);
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DoLightComputation doLight[4] = { LIGHT_OFF, LIGHT_OFF, LIGHT_OFF, LIGHT_OFF };
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if (useHWTransform) {
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int shadeLight0 = doShadeMapping ? ls0 : -1;
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int shadeLight1 = doShadeMapping ? ls1 : -1;
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for (int i = 0; i < 4; i++) {
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if (i == shadeLight0 || i == shadeLight1)
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doLight[i] = LIGHT_SHADE;
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if (id.Bit(VS_BIT_LIGHTING_ENABLE) && id.Bit(VS_BIT_LIGHT0_ENABLE + i))
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doLight[i] = LIGHT_FULL;
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}
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}
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int numBoneWeights = 0;
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int boneWeightScale = id.Bits(VS_BIT_WEIGHT_FMTSCALE, 2);
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if (enableBones) {
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numBoneWeights = 1 + id.Bits(VS_BIT_BONES, 3);
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}
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WRITE(p, "#pragma warning( disable : 3571 )\n");
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if (isModeThrough) {
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WRITE(p, "float4x4 u_proj_through : register(c%i);\n", CONST_VS_PROJ_THROUGH);
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} else {
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WRITE(p, "float4x4 u_proj : register(c%i);\n", CONST_VS_PROJ);
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// Add all the uniforms we'll need to transform properly.
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}
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if (enableFog) {
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WRITE(p, "float2 u_fogcoef : register(c%i);\n", CONST_VS_FOGCOEF);
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}
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if (useHWTransform || !hasColor)
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WRITE(p, "float4 u_matambientalpha : register(c%i);\n", CONST_VS_MATAMBIENTALPHA); // matambient + matalpha
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if (useHWTransform) {
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// When transforming by hardware, we need a great deal more uniforms...
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WRITE(p, "float4x3 u_world : register(c%i);\n", CONST_VS_WORLD);
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WRITE(p, "float4x3 u_view : register(c%i);\n", CONST_VS_VIEW);
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if (doTextureProjection)
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WRITE(p, "float4x3 u_texmtx : register(c%i);\n", CONST_VS_TEXMTX);
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if (enableBones) {
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#ifdef USE_BONE_ARRAY
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WRITE(p, "float4x3 u_bone[%i] : register(c%i);\n", numBones, CONST_VS_BONE0);
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#else
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for (int i = 0; i < numBoneWeights; i++) {
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WRITE(p, "float4x3 u_bone%i : register(c%i);\n", i, CONST_VS_BONE0 + i * 3);
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}
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#endif
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}
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if (doTexture) {
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WRITE(p, "float4 u_uvscaleoffset : register(c%i);\n", CONST_VS_UVSCALEOFFSET);
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}
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for (int i = 0; i < 4; i++) {
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if (doLight[i] != LIGHT_OFF) {
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// This is needed for shade mapping
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WRITE(p, "float3 u_lightpos%i : register(c%i);\n", i, CONST_VS_LIGHTPOS + i);
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}
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if (doLight[i] == LIGHT_FULL) {
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GELightType type = static_cast<GELightType>(id.Bits(VS_BIT_LIGHT0_TYPE + 4 * i, 2));
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GELightComputation comp = static_cast<GELightComputation>(id.Bits(VS_BIT_LIGHT0_COMP + 4 * i, 2));
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if (type != GE_LIGHTTYPE_DIRECTIONAL)
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WRITE(p, "float3 u_lightatt%i : register(c%i);\n", i, CONST_VS_LIGHTATT + i);
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if (type == GE_LIGHTTYPE_SPOT || type == GE_LIGHTTYPE_UNKNOWN) {
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WRITE(p, "float3 u_lightdir%i : register(c%i);\n", i, CONST_VS_LIGHTDIR + i);
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WRITE(p, "float u_lightangle%i : register(c%i);\n", i, CONST_VS_LIGHTANGLE + i);
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WRITE(p, "float u_lightspotCoef%i : register(c%i);\n", i, CONST_VS_LIGHTSPOTCOEF + i);
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}
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WRITE(p, "float3 u_lightambient%i : register(c%i);\n", i, CONST_VS_LIGHTAMBIENT + i);
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WRITE(p, "float3 u_lightdiffuse%i : register(c%i);\n", i, CONST_VS_LIGHTDIFFUSE + i);
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if (comp != GE_LIGHTCOMP_ONLYDIFFUSE) {
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WRITE(p, "float3 u_lightspecular%i : register(c%i);\n", i, CONST_VS_LIGHTSPECULAR + i);
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}
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}
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}
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if (enableLighting) {
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WRITE(p, "float4 u_ambient : register(c%i);\n", CONST_VS_AMBIENT);
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if ((gstate.materialupdate & 2) == 0 || !hasColor)
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WRITE(p, "float3 u_matdiffuse : register(c%i);\n", CONST_VS_MATDIFFUSE);
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// if ((gstate.materialupdate & 4) == 0)
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WRITE(p, "float4 u_matspecular : register(c%i);\n", CONST_VS_MATSPECULAR); // Specular coef is contained in alpha
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WRITE(p, "float3 u_matemissive : register(c%i);\n", CONST_VS_MATEMISSIVE);
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}
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}
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if (!isModeThrough && gstate_c.Supports(GPU_ROUND_DEPTH_TO_16BIT)) {
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WRITE(p, "float4 u_depthRange : register(c%i);\n", CONST_VS_DEPTHRANGE);
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}
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// And the "varyings".
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if (useHWTransform) {
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WRITE(p, "struct VS_IN { \n");
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if (enableBones) {
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WRITE(p, "%s", boneWeightAttrDecl[numBoneWeights]);
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}
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if (doTexture && hasTexcoord) {
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WRITE(p, " float2 texcoord : TEXCOORD0;\n");
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}
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if (hasColor) {
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WRITE(p, " float4 color0 : COLOR0;\n");
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}
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if (hasNormal) {
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WRITE(p, " float3 normal : NORMAL;\n");
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}
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WRITE(p, " float3 position : POSITION;\n");
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WRITE(p, "};\n");
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} else {
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WRITE(p, "struct VS_IN {\n");
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WRITE(p, " float4 position : POSITION;\n");
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if (doTexture && hasTexcoord) {
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if (doTextureProjection && !throughmode)
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WRITE(p, " float3 texcoord : TEXCOORD0;\n");
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else
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WRITE(p, " float2 texcoord : TEXCOORD0;\n");
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}
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if (hasColor) {
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WRITE(p, " float4 color0 : COLOR0;\n");
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}
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// only software transform supplies color1 as vertex data
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if (lmode) {
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WRITE(p, " float4 color1 : COLOR1;\n");
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}
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WRITE(p, "};\n");
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}
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WRITE(p, "struct VS_OUT {\n");
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WRITE(p, " float4 gl_Position : POSITION;\n");
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if (doTexture) {
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if (doTextureProjection)
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WRITE(p, " float3 v_texcoord: TEXCOORD0;\n");
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else
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WRITE(p, " float2 v_texcoord: TEXCOORD0;\n");
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}
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WRITE(p, " float4 v_color0 : COLOR0;\n");
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if (lmode)
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WRITE(p, " float3 v_color1 : COLOR1;\n");
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if (enableFog) {
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WRITE(p, " float2 v_fogdepth: TEXCOORD1;\n");
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}
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WRITE(p, "};\n");
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// Confirmed: Through mode gets through exactly the same in GL and D3D in Phantasy Star: Text is 38023.0 in the test scene.
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if (!isModeThrough && gstate_c.Supports(GPU_ROUND_DEPTH_TO_16BIT)) {
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// Apply the projection and viewport to get the Z buffer value, floor to integer, undo the viewport and projection.
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// The Z range in D3D is different but we compensate for that using parameters.
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WRITE(p, "\nfloat4 depthRoundZVP(float4 v) {\n");
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WRITE(p, " float z = v.z / v.w;\n");
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WRITE(p, " z = (z * u_depthRange.x + u_depthRange.y);\n");
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WRITE(p, " z = floor(z);\n");
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WRITE(p, " z = (z - u_depthRange.z) * u_depthRange.w;\n");
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WRITE(p, " return float4(v.x, v.y, z * v.w, v.w);\n");
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WRITE(p, "}\n\n");
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}
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WRITE(p, "VS_OUT main(VS_IN In) {\n");
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WRITE(p, " VS_OUT Out = (VS_OUT)0; \n");
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if (!useHWTransform) {
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// Simple pass-through of vertex data to fragment shader
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if (doTexture) {
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if (doTextureProjection) {
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if (throughmode) {
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WRITE(p, " Out.v_texcoord = float3(In.texcoord.x, In.texcoord.y, 1.0);\n");
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} else {
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WRITE(p, " Out.v_texcoord = In.texcoord;\n");
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}
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} else {
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WRITE(p, " Out.v_texcoord = In.texcoord.xy;\n");
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}
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}
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if (hasColor) {
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WRITE(p, " Out.v_color0 = In.color0;\n");
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if (lmode)
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WRITE(p, " Out.v_color1 = In.color1.rgb;\n");
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} else {
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WRITE(p, " Out.v_color0 = In.u_matambientalpha;\n");
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if (lmode)
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WRITE(p, " Out.v_color1 = float3(0.0);\n");
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}
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if (enableFog) {
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WRITE(p, " Out.v_fogdepth.x = In.position.w;\n");
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}
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if (gstate.isModeThrough()) {
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WRITE(p, " Out.gl_Position = mul(float4(In.position.xyz, 1.0), u_proj_through);\n");
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} else {
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if (gstate_c.Supports(GPU_ROUND_DEPTH_TO_16BIT)) {
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WRITE(p, " Out.gl_Position = depthRoundZVP(mul(float4(In.position.xyz, 1.0), u_proj));\n");
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} else {
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WRITE(p, " Out.gl_Position = mul(float4(In.position.xyz, 1.0), u_proj);\n");
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}
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}
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} else {
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// Step 1: World Transform / Skinning
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if (!enableBones) {
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// No skinning, just standard T&L.
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WRITE(p, " float3 worldpos = mul(float4(In.position.xyz, 1.0), u_world);\n");
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if (hasNormal)
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WRITE(p, " float3 worldnormal = normalize( mul(float4(%sIn.normal, 0.0), u_world));\n", flipNormal ? "-" : "");
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else
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WRITE(p, " float3 worldnormal = float3(0.0, 0.0, 1.0);\n");
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} else {
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static const char * const boneWeightAttr[8] = {
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"a_w1.x", "a_w1.y", "a_w1.z", "a_w1.w",
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"a_w2.x", "a_w2.y", "a_w2.z", "a_w2.w",
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};
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#if defined(USE_FOR_LOOP) && defined(USE_BONE_ARRAY)
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// To loop through the weights, we unfortunately need to put them in a float array.
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// GLSL ES sucks - no way to directly initialize an array!
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switch (numBoneWeights) {
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case 1: WRITE(p, " float w[1]; w[0] = a_w1;\n"); break;
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case 2: WRITE(p, " float w[2]; w[0] = a_w1.x; w[1] = a_w1.y;\n"); break;
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case 3: WRITE(p, " float w[3]; w[0] = a_w1.x; w[1] = a_w1.y; w[2] = a_w1.z;\n"); break;
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case 4: WRITE(p, " float w[4]; w[0] = a_w1.x; w[1] = a_w1.y; w[2] = a_w1.z; w[3] = a_w1.w;\n"); break;
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case 5: WRITE(p, " float w[5]; w[0] = a_w1.x; w[1] = a_w1.y; w[2] = a_w1.z; w[3] = a_w1.w; w[4] = a_w2;\n"); break;
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case 6: WRITE(p, " float w[6]; w[0] = a_w1.x; w[1] = a_w1.y; w[2] = a_w1.z; w[3] = a_w1.w; w[4] = a_w2.x; w[5] = a_w2.y;\n"); break;
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case 7: WRITE(p, " float w[7]; w[0] = a_w1.x; w[1] = a_w1.y; w[2] = a_w1.z; w[3] = a_w1.w; w[4] = a_w2.x; w[5] = a_w2.y; w[6] = a_w2.z;\n"); break;
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case 8: WRITE(p, " float w[8]; w[0] = a_w1.x; w[1] = a_w1.y; w[2] = a_w1.z; w[3] = a_w1.w; w[4] = a_w2.x; w[5] = a_w2.y; w[6] = a_w2.z; w[7] = a_w2.w;\n"); break;
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}
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WRITE(p, " mat4 skinMatrix = w[0] * u_bone[0];\n");
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if (numBoneWeights > 1) {
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WRITE(p, " for (int i = 1; i < %i; i++) {\n", numBoneWeights);
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WRITE(p, " skinMatrix += w[i] * u_bone[i];\n");
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WRITE(p, " }\n");
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}
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#else
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#ifdef USE_BONE_ARRAY
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if (numBoneWeights == 1)
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WRITE(p, " float4x3 skinMatrix = a_w1 * u_bone[0]");
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else
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WRITE(p, " float4x3 skinMatrix = a_w1.x * u_bone[0]");
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for (int i = 1; i < numBoneWeights; i++) {
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const char *weightAttr = boneWeightAttr[i];
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// workaround for "cant do .x of scalar" issue
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if (numBoneWeights == 1 && i == 0) weightAttr = "a_w1";
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if (numBoneWeights == 5 && i == 4) weightAttr = "a_w2";
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WRITE(p, " + %s * u_bone[%i]", weightAttr, i);
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}
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#else
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// Uncomment this to screw up bone shaders to check the vertex shader software fallback
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// WRITE(p, "THIS SHOULD ERROR! #error");
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if (numBoneWeights == 1)
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WRITE(p, " float4x3 skinMatrix = mul(In.a_w1, u_bone0)");
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else
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WRITE(p, " float4x3 skinMatrix = mul(In.a_w1.x, u_bone0)");
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for (int i = 1; i < numBoneWeights; i++) {
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const char *weightAttr = boneWeightAttr[i];
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// workaround for "cant do .x of scalar" issue
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if (numBoneWeights == 1 && i == 0) weightAttr = "a_w1";
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if (numBoneWeights == 5 && i == 4) weightAttr = "a_w2";
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WRITE(p, " + mul(In.%s, u_bone%i)", weightAttr, i);
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}
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#endif
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#endif
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WRITE(p, ";\n");
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// Trying to simplify this results in bugs in LBP...
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WRITE(p, " float3 skinnedpos = mul(float4(In.position.xyz, 1.0), skinMatrix);\n");
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WRITE(p, " float3 worldpos = mul(float4(skinnedpos, 1.0), u_world);\n");
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if (hasNormal) {
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WRITE(p, " float3 skinnednormal = mul(float4(%sIn.normal, 0.0), skinMatrix);\n", flipNormal ? "-" : "");
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} else {
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WRITE(p, " float3 skinnednormal = mul(float4(0.0, 0.0, %s1.0, 0.0), skinMatrix);\n", flipNormal ? "-" : "");
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}
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WRITE(p, " float3 worldnormal = normalize(mul(float4(skinnednormal, 0.0), u_world));\n");
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}
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WRITE(p, " float4 viewPos = float4(mul(float4(worldpos, 1.0), u_view), 1.0);\n");
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// Final view and projection transforms.
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if (gstate_c.Supports(GPU_ROUND_DEPTH_TO_16BIT)) {
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WRITE(p, " Out.gl_Position = depthRoundZVP(mul(viewPos, u_proj));\n");
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} else {
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WRITE(p, " Out.gl_Position = mul(viewPos, u_proj);\n");
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|
}
|
|
|
|
// TODO: Declare variables for dots for shade mapping if needed.
|
|
|
|
const char *ambientStr = (gstate.materialupdate & 1) && hasColor ? "In.color0" : "u_matambientalpha";
|
|
const char *diffuseStr = (gstate.materialupdate & 2) && hasColor ? "In.color0.rgb" : "u_matdiffuse";
|
|
const char *specularStr = (gstate.materialupdate & 4) && hasColor ? "In.color0.rgb" : "u_matspecular.rgb";
|
|
|
|
bool diffuseIsZero = true;
|
|
bool specularIsZero = true;
|
|
bool distanceNeeded = false;
|
|
|
|
if (enableLighting) {
|
|
WRITE(p, " float4 lightSum0 = u_ambient * %s + float4(u_matemissive, 0.0);\n", ambientStr);
|
|
|
|
for (int i = 0; i < 4; i++) {
|
|
GELightType type = static_cast<GELightType>(id.Bits(VS_BIT_LIGHT0_TYPE + 4 * i, 2));
|
|
GELightComputation comp = static_cast<GELightComputation>(id.Bits(VS_BIT_LIGHT0_COMP + 4 * i, 2));
|
|
if (doLight[i] != LIGHT_FULL)
|
|
continue;
|
|
diffuseIsZero = false;
|
|
if (comp != GE_LIGHTCOMP_ONLYDIFFUSE)
|
|
specularIsZero = false;
|
|
if (type != GE_LIGHTTYPE_DIRECTIONAL)
|
|
distanceNeeded = true;
|
|
}
|
|
|
|
if (!specularIsZero) {
|
|
WRITE(p, " float3 lightSum1 = 0;\n");
|
|
}
|
|
if (!diffuseIsZero) {
|
|
WRITE(p, " float3 toLight;\n");
|
|
WRITE(p, " float3 diffuse;\n");
|
|
}
|
|
if (distanceNeeded) {
|
|
WRITE(p, " float distance;\n");
|
|
WRITE(p, " float lightScale;\n");
|
|
}
|
|
}
|
|
|
|
// Calculate lights if needed. If shade mapping is enabled, lights may need to be
|
|
// at least partially calculated.
|
|
for (int i = 0; i < 4; i++) {
|
|
if (doLight[i] != LIGHT_FULL)
|
|
continue;
|
|
|
|
GELightType type = static_cast<GELightType>(id.Bits(VS_BIT_LIGHT0_TYPE + 4 * i, 2));
|
|
GELightComputation comp = static_cast<GELightComputation>(id.Bits(VS_BIT_LIGHT0_COMP + 4 * i, 2));
|
|
|
|
if (type == GE_LIGHTTYPE_DIRECTIONAL) {
|
|
// We prenormalize light positions for directional lights.
|
|
WRITE(p, " toLight = u_lightpos%i;\n", i);
|
|
} else {
|
|
WRITE(p, " toLight = u_lightpos%i - worldpos;\n", i);
|
|
WRITE(p, " distance = length(toLight);\n");
|
|
WRITE(p, " toLight /= distance;\n");
|
|
}
|
|
|
|
bool doSpecular = comp != GE_LIGHTCOMP_ONLYDIFFUSE;
|
|
bool poweredDiffuse = comp == GE_LIGHTCOMP_BOTHWITHPOWDIFFUSE;
|
|
|
|
if (poweredDiffuse) {
|
|
WRITE(p, " float dot%i = pow(dot(toLight, worldnormal), u_matspecular.a);\n", i);
|
|
// TODO: Somehow the NaN check from GLES seems unnecessary here?
|
|
// If it returned 0, it'd be wrong, so that's strange.
|
|
} else {
|
|
WRITE(p, " float dot%i = dot(toLight, worldnormal);\n", i);
|
|
}
|
|
|
|
const char *timesLightScale = " * lightScale";
|
|
|
|
// Attenuation
|
|
switch (type) {
|
|
case GE_LIGHTTYPE_DIRECTIONAL:
|
|
timesLightScale = "";
|
|
break;
|
|
case GE_LIGHTTYPE_POINT:
|
|
WRITE(p, " lightScale = clamp(1.0 / dot(u_lightatt%i, float3(1.0, distance, distance*distance)), 0.0, 1.0);\n", i);
|
|
break;
|
|
case GE_LIGHTTYPE_SPOT:
|
|
case GE_LIGHTTYPE_UNKNOWN:
|
|
WRITE(p, " float angle%i = dot(normalize(u_lightdir%i), toLight);\n", i, i);
|
|
WRITE(p, " if (angle%i >= u_lightangle%i) {\n", i, i);
|
|
WRITE(p, " lightScale = clamp(1.0 / dot(u_lightatt%i, float3(1.0, distance, distance*distance)), 0.0, 1.0) * pow(angle%i, u_lightspotCoef%i);\n", i, i, i);
|
|
WRITE(p, " } else {\n");
|
|
WRITE(p, " lightScale = 0.0;\n");
|
|
WRITE(p, " }\n");
|
|
break;
|
|
default:
|
|
// ILLEGAL
|
|
break;
|
|
}
|
|
|
|
WRITE(p, " diffuse = (u_lightdiffuse%i * %s) * max(dot%i, 0.0);\n", i, diffuseStr, i);
|
|
if (doSpecular) {
|
|
WRITE(p, " dot%i = dot(normalize(toLight + float3(0.0, 0.0, 1.0)), worldnormal);\n", i);
|
|
WRITE(p, " if (dot%i > 0.0)\n", i);
|
|
WRITE(p, " lightSum1 += u_lightspecular%i * %s * (pow(dot%i, u_matspecular.a) %s);\n", i, specularStr, i, timesLightScale);
|
|
}
|
|
WRITE(p, " lightSum0.rgb += (u_lightambient%i * %s.rgb + diffuse)%s;\n", i, ambientStr, timesLightScale);
|
|
}
|
|
|
|
if (enableLighting) {
|
|
// Sum up ambient, emissive here.
|
|
if (lmode) {
|
|
WRITE(p, " Out.v_color0 = clamp(lightSum0, 0.0, 1.0);\n");
|
|
// v_color1 only exists when lmode = 1.
|
|
if (specularIsZero) {
|
|
WRITE(p, " Out.v_color1 = float3(0, 0, 0);\n");
|
|
} else {
|
|
WRITE(p, " Out.v_color1 = clamp(lightSum1, 0.0, 1.0);\n");
|
|
}
|
|
} else {
|
|
if (specularIsZero) {
|
|
WRITE(p, " Out.v_color0 = clamp(lightSum0, 0.0, 1.0);\n");
|
|
} else {
|
|
WRITE(p, " Out.v_color0 = clamp(clamp(lightSum0, 0.0, 1.0) + float4(lightSum1, 0.0), 0.0, 1.0);\n");
|
|
}
|
|
}
|
|
} else {
|
|
// Lighting doesn't affect color.
|
|
if (hasColor) {
|
|
WRITE(p, " Out.v_color0 = In.color0;\n");
|
|
} else {
|
|
WRITE(p, " Out.v_color0 = u_matambientalpha;\n");
|
|
}
|
|
if (lmode)
|
|
WRITE(p, " Out.v_color1 = float3(0, 0, 0);\n");
|
|
}
|
|
|
|
// Step 3: UV generation
|
|
if (doTexture) {
|
|
switch (uvGenMode) {
|
|
case GE_TEXMAP_TEXTURE_COORDS: // Scale-offset. Easy.
|
|
case GE_TEXMAP_UNKNOWN: // Not sure what this is, but Riviera uses it. Treating as coords works.
|
|
if (scaleUV) {
|
|
if (hasTexcoord) {
|
|
WRITE(p, " Out.v_texcoord = In.texcoord * u_uvscaleoffset.xy;\n");
|
|
} else {
|
|
WRITE(p, " Out.v_texcoord = float2(0.0, 0.0);\n");
|
|
}
|
|
} else {
|
|
if (hasTexcoord) {
|
|
WRITE(p, " Out.v_texcoord = In.texcoord * u_uvscaleoffset.xy + u_uvscaleoffset.zw;\n");
|
|
} else {
|
|
WRITE(p, " Out.v_texcoord = u_uvscaleoffset.zw;\n");
|
|
}
|
|
}
|
|
break;
|
|
|
|
case GE_TEXMAP_TEXTURE_MATRIX: // Projection mapping.
|
|
{
|
|
std::string temp_tc;
|
|
switch (uvProjMode) {
|
|
case GE_PROJMAP_POSITION: // Use model space XYZ as source
|
|
temp_tc = "float4(In.position.xyz, 1.0)";
|
|
break;
|
|
case GE_PROJMAP_UV: // Use unscaled UV as source
|
|
{
|
|
if (hasTexcoord) {
|
|
temp_tc = StringFromFormat("float4(In.texcoord.xy, 0.0, 1.0)");
|
|
} else {
|
|
temp_tc = "float4(0.0, 0.0, 0.0, 1.0)";
|
|
}
|
|
}
|
|
break;
|
|
case GE_PROJMAP_NORMALIZED_NORMAL: // Use normalized transformed normal as source
|
|
if (hasNormal)
|
|
temp_tc = flipNormal ? "float4(normalize(-In.normal), 1.0)" : "float4(normalize(In.normal), 1.0)";
|
|
else
|
|
temp_tc = "float4(0.0, 0.0, 1.0, 1.0)";
|
|
break;
|
|
case GE_PROJMAP_NORMAL: // Use non-normalized transformed normal as source
|
|
if (hasNormal)
|
|
temp_tc = flipNormal ? "float4(-In.normal, 1.0)" : "float4(In.normal, 1.0)";
|
|
else
|
|
temp_tc = "float4(0.0, 0.0, 1.0, 1.0)";
|
|
break;
|
|
}
|
|
// Transform by texture matrix. XYZ as we are doing projection mapping.
|
|
WRITE(p, " Out.v_texcoord.xyz = mul(%s,u_texmtx) * float3(u_uvscaleoffset.xy, 1.0);\n", temp_tc.c_str());
|
|
}
|
|
break;
|
|
|
|
case GE_TEXMAP_ENVIRONMENT_MAP: // Shade mapping - use dots from light sources.
|
|
WRITE(p, " Out.v_texcoord.xy = u_uvscaleoffset.xy * float2(1.0 + dot(normalize(u_lightpos%i), worldnormal), 1.0 + dot(normalize(u_lightpos%i), worldnormal)) * 0.5;\n", ls0, ls1);
|
|
break;
|
|
|
|
default:
|
|
// ILLEGAL
|
|
break;
|
|
}
|
|
}
|
|
|
|
// Compute fogdepth
|
|
if (enableFog)
|
|
WRITE(p, " Out.v_fogdepth.x = (viewPos.z + u_fogcoef.x) * u_fogcoef.y;\n");
|
|
}
|
|
|
|
WRITE(p, " return Out;\n");
|
|
WRITE(p, "}\n");
|
|
}
|
|
|
|
};
|