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https://github.com/yuzu-emu/sirit.git
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Add some types
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c2215fca0e
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@ -16,6 +16,8 @@ namespace Sirit {
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static const std::uint32_t GeneratorMagicNumber = 0;
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static const std::uint32_t GeneratorMagicNumber = 0;
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static const std::uint32_t Undefined = UINT32_MAX;
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class Op;
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class Op;
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class Module {
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class Module {
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@ -49,7 +51,7 @@ public:
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/**
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/**
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* Adds an instruction to module's code
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* Adds an instruction to module's code
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* @param op Instruction to insert into code. Types must not be emitted
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* @param op Instruction to insert into code. Types and constants must not be emitted.
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* @return Returns op.
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* @return Returns op.
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*/
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*/
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const Op* Emit(const Op* op);
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const Op* Emit(const Op* op);
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@ -59,6 +61,32 @@ public:
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/// Returns type void.
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/// Returns type void.
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const Op* TypeVoid();
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const Op* TypeVoid();
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/// Returns type bool.
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const Op* TypeBool();
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/// Returns type integer.
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const Op* TypeInt(int width, bool is_signed);
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/// Returns type float.
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const Op* TypeFloat(int width);
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/// Returns type vector.
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const Op* TypeVector(const Op* component_type, int component_count);
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/// Returns type matrix.
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const Op* TypeMatrix(const Op* column_type, int column_count);
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/// Returns type image.
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const Op* TypeImage(const Op* sampled_type, spv::Dim dim, int depth, bool arrayed, bool ms,
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int sampled, spv::ImageFormat image_format,
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spv::AccessQualifier access_qualifier = static_cast<spv::AccessQualifier>(Undefined));
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/// Returns type sampler.
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const Op* TypeSampler();
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/// Returns type sampled image.
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const Op* TypeSampledImage(const Op* image_type);
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/// Returns a function type.
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/// Returns a function type.
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const Op* TypeFunction(const Op* return_type, const std::vector<const Op*>& arguments = {});
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const Op* TypeFunction(const Op* return_type, const std::vector<const Op*>& arguments = {});
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@ -4,6 +4,7 @@
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* General Public License version 2 or any later version.
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* General Public License version 2 or any later version.
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*/
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*/
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#include <cassert>
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#include "sirit/sirit.h"
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#include "sirit/sirit.h"
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#include "opcodes.h"
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#include "opcodes.h"
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@ -13,6 +14,140 @@ const Op* Module::TypeVoid() {
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return AddDeclaration(new Op(spv::Op::OpTypeVoid, bound));
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return AddDeclaration(new Op(spv::Op::OpTypeVoid, bound));
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}
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}
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const Op* Module::TypeBool() {
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return AddDeclaration(new Op(spv::Op::OpTypeBool, bound));
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}
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const Op* Module::TypeInt(int width, bool is_signed) {
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if (width == 8) {
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AddCapability(spv::Capability::Int8);
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} else if (width == 16) {
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AddCapability(spv::Capability::Int16);
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} else if (width == 64) {
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AddCapability(spv::Capability::Int64);
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}
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Op* op{new Op(spv::Op::OpTypeInt, bound)};
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op->Add(width);
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op->Add(is_signed ? 1 : 0);
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return AddDeclaration(op);
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}
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const Op* Module::TypeFloat(int width) {
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if (width == 16) {
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AddCapability(spv::Capability::Float16);
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} else if (width == 64) {
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AddCapability(spv::Capability::Float64);
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}
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Op* op{new Op(spv::Op::OpTypeFloat, bound)};
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op->Add(width);
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return AddDeclaration(op);
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}
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const Op* Module::TypeVector(const Op* component_type, int component_count) {
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assert(component_count >= 2);
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Op* op{new Op(spv::Op::OpTypeVector, bound)};
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op->Add(component_type);
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op->Add(component_count);
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return AddDeclaration(op);
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}
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const Op* Module::TypeMatrix(const Op* column_type, int column_count) {
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assert(column_count >= 2);
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AddCapability(spv::Capability::Matrix);
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Op* op{new Op(spv::Op::OpTypeMatrix, bound)};
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op->Add(column_type);
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op->Add(column_count);
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return AddDeclaration(op);
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}
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const Op* Module::TypeImage(const Op* sampled_type, spv::Dim dim, int depth, bool arrayed, bool ms,
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int sampled, spv::ImageFormat image_format,
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spv::AccessQualifier access_qualifier) {
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switch (dim) {
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case spv::Dim::Dim1D:
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AddCapability(spv::Capability::Sampled1D);
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break;
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case spv::Dim::Cube:
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AddCapability(spv::Capability::Shader);
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break;
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case spv::Dim::Rect:
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AddCapability(spv::Capability::SampledRect);
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break;
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case spv::Dim::Buffer:
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AddCapability(spv::Capability::SampledBuffer);
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break;
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case spv::Dim::SubpassData:
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AddCapability(spv::Capability::InputAttachment);
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break;
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}
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switch (image_format) {
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case spv::ImageFormat::Rgba32f:
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case spv::ImageFormat::Rgba16f:
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case spv::ImageFormat::R32f:
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case spv::ImageFormat::Rgba8:
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case spv::ImageFormat::Rgba8Snorm:
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case spv::ImageFormat::Rgba32i:
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case spv::ImageFormat::Rgba16i:
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case spv::ImageFormat::Rgba8i:
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case spv::ImageFormat::R32i:
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case spv::ImageFormat::Rgba32ui:
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case spv::ImageFormat::Rgba16ui:
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case spv::ImageFormat::Rgba8ui:
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case spv::ImageFormat::R32ui:
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AddCapability(spv::Capability::Shader);
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break;
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case spv::ImageFormat::Rg32f:
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case spv::ImageFormat::Rg16f:
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case spv::ImageFormat::R11fG11fB10f:
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case spv::ImageFormat::R16f:
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case spv::ImageFormat::Rgba16:
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case spv::ImageFormat::Rgb10A2:
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case spv::ImageFormat::Rg16:
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case spv::ImageFormat::Rg8:
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case spv::ImageFormat::R16:
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case spv::ImageFormat::R8:
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case spv::ImageFormat::Rgba16Snorm:
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case spv::ImageFormat::Rg16Snorm:
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case spv::ImageFormat::Rg8Snorm:
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case spv::ImageFormat::Rg32i:
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case spv::ImageFormat::Rg16i:
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case spv::ImageFormat::Rg8i:
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case spv::ImageFormat::R16i:
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case spv::ImageFormat::R8i:
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case spv::ImageFormat::Rgb10a2ui:
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case spv::ImageFormat::Rg32ui:
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case spv::ImageFormat::Rg16ui:
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case spv::ImageFormat::Rg8ui:
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case spv::ImageFormat::R16ui:
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case spv::ImageFormat::R8ui:
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AddCapability(spv::Capability::StorageImageExtendedFormats);
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break;
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}
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Op* op{new Op(spv::Op::OpTypeImage, bound)};
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op->Add(sampled_type);
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op->Add(static_cast<u32>(dim));
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op->Add(depth);
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op->Add(arrayed ? 1 : 0);
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op->Add(ms ? 1 : 0);
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op->Add(sampled);
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op->Add(static_cast<u32>(image_format));
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if (static_cast<u32>(access_qualifier) != Undefined) {
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AddCapability(spv::Capability::Kernel);
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op->Add(static_cast<u32>(access_qualifier));
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}
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return AddDeclaration(op);
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}
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const Op* Module::TypeSampler() {
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return AddDeclaration(new Op(spv::Op::OpTypeSampler, bound));
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}
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const Op* Module::TypeSampledImage(const Op* image_type) {
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Op* op{new Op(spv::Op::OpTypeSampledImage, bound)};
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op->Add(image_type);
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return AddDeclaration(op);
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}
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const Op* Module::TypeFunction(const Op* return_type, const std::vector<const Op*>& arguments) {
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const Op* Module::TypeFunction(const Op* return_type, const std::vector<const Op*>& arguments) {
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Op* type_func{new Op(spv::Op::OpTypeFunction, bound)};
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Op* type_func{new Op(spv::Op::OpTypeFunction, bound)};
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type_func->Add(return_type);
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type_func->Add(return_type);
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@ -17,6 +17,25 @@ public:
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AddCapability(spv::Capability::Shader);
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AddCapability(spv::Capability::Shader);
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SetMemoryModel(spv::AddressingModel::Logical, spv::MemoryModel::GLSL450);
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SetMemoryModel(spv::AddressingModel::Logical, spv::MemoryModel::GLSL450);
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// Type testing
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TypeBool();
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TypeBool();
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TypeInt(64, true);
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TypeInt(64, false);
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TypeInt(16, false);
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TypeFloat(16);
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TypeFloat(32);
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TypeFloat(64);
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TypeVector(TypeBool(), 4);
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TypeVector(TypeBool(), 3);
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TypeVector(TypeVector(TypeFloat(32), 4), 3);
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TypeVector(TypeVector(TypeFloat(32), 4), 3);
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TypeMatrix(TypeVector(TypeFloat(32), 4), 4);
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TypeImage(TypeFloat(32), spv::Dim::Dim2D, 0, false, false, 0,
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spv::ImageFormat::Rg32f, spv::AccessQualifier::ReadOnly);
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TypeSampledImage(TypeImage(TypeFloat(32), spv::Dim::Rect, 0, false, false, 0,
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spv::ImageFormat::Rg32f, spv::AccessQualifier::ReadOnly));
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auto main_type{TypeFunction(TypeVoid())};
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auto main_type{TypeFunction(TypeVoid())};
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auto main_func{Emit(Function(TypeVoid(), spv::FunctionControlMask::MaskNone, main_type))};
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auto main_func{Emit(Function(TypeVoid(), spv::FunctionControlMask::MaskNone, main_type))};
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Emit(Label());
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Emit(Label());
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