mirror of
https://github.com/GreemDev/Ryujinx
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650cc41c02
* Implement remaining shader double-precision instructions * Shader cache version bump
235 lines
No EOL
8.7 KiB
C#
235 lines
No EOL
8.7 KiB
C#
using Ryujinx.Graphics.Shader.IntermediateRepresentation;
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using Ryujinx.Graphics.Shader.StructuredIr;
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using System;
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using static Ryujinx.Graphics.Shader.CodeGen.Glsl.Instructions.InstGenBallot;
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using static Ryujinx.Graphics.Shader.CodeGen.Glsl.Instructions.InstGenCall;
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using static Ryujinx.Graphics.Shader.CodeGen.Glsl.Instructions.InstGenFSI;
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using static Ryujinx.Graphics.Shader.CodeGen.Glsl.Instructions.InstGenHelper;
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using static Ryujinx.Graphics.Shader.CodeGen.Glsl.Instructions.InstGenMemory;
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using static Ryujinx.Graphics.Shader.CodeGen.Glsl.Instructions.InstGenPacking;
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using static Ryujinx.Graphics.Shader.StructuredIr.InstructionInfo;
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namespace Ryujinx.Graphics.Shader.CodeGen.Glsl.Instructions
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{
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static class InstGen
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{
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public static string GetExpression(CodeGenContext context, IAstNode node)
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{
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if (node is AstOperation operation)
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{
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return GetExpression(context, operation);
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}
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else if (node is AstOperand operand)
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{
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return context.OperandManager.GetExpression(operand, context.Config);
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}
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throw new ArgumentException($"Invalid node type \"{node?.GetType().Name ?? "null"}\".");
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}
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public static string Negate(CodeGenContext context, AstOperation operation, InstInfo info)
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{
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IAstNode src = operation.GetSource(0);
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VariableType type = GetSrcVarType(operation.Inst, 0);
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string srcExpr = GetSoureExpr(context, src, type);
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string zero;
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if (type == VariableType.F64)
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{
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zero = "0.0";
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}
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else
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{
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NumberFormatter.TryFormat(0, type, out zero);
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}
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// Starting in the 496.13 NVIDIA driver, there's an issue with assigning variables to negated expressions.
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// (-expr) does not work, but (0.0 - expr) does. This should be removed once the issue is resolved.
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return $"{zero} - {Enclose(srcExpr, src, operation.Inst, info, false)}";
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}
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private static string GetExpression(CodeGenContext context, AstOperation operation)
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{
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Instruction inst = operation.Inst;
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InstInfo info = GetInstructionInfo(inst);
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if ((info.Type & InstType.Call) != 0)
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{
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bool atomic = (info.Type & InstType.Atomic) != 0;
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int arity = (int)(info.Type & InstType.ArityMask);
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string args = string.Empty;
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for (int argIndex = 0; argIndex < arity; argIndex++)
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{
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// For shared memory access, the second argument is unused and should be ignored.
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// It is there to make both storage and shared access have the same number of arguments.
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// For storage, both inputs are consumed when the argument index is 0, so we should skip it here.
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if (argIndex == 1 && (atomic || (inst & Instruction.MrMask) == Instruction.MrShared))
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{
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continue;
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}
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if (argIndex != 0)
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{
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args += ", ";
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}
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if (argIndex == 0 && atomic)
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{
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Instruction memRegion = inst & Instruction.MrMask;
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switch (memRegion)
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{
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case Instruction.MrShared: args += LoadShared(context, operation); break;
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case Instruction.MrStorage: args += LoadStorage(context, operation); break;
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default: throw new InvalidOperationException($"Invalid memory region \"{memRegion}\".");
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}
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}
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else
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{
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VariableType dstType = GetSrcVarType(inst, argIndex);
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args += GetSoureExpr(context, operation.GetSource(argIndex), dstType);
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}
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}
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return info.OpName + '(' + args + ')';
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}
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else if ((info.Type & InstType.Op) != 0)
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{
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string op = info.OpName;
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// Return may optionally have a return value (and in this case it is unary).
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if (inst == Instruction.Return && operation.SourcesCount != 0)
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{
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return $"{op} {GetSoureExpr(context, operation.GetSource(0), context.CurrentFunction.ReturnType)}";
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}
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int arity = (int)(info.Type & InstType.ArityMask);
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string[] expr = new string[arity];
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for (int index = 0; index < arity; index++)
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{
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IAstNode src = operation.GetSource(index);
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string srcExpr = GetSoureExpr(context, src, GetSrcVarType(inst, index));
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bool isLhs = arity == 2 && index == 0;
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expr[index] = Enclose(srcExpr, src, inst, info, isLhs);
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}
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switch (arity)
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{
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case 0:
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return op;
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case 1:
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return op + expr[0];
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case 2:
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return $"{expr[0]} {op} {expr[1]}";
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case 3:
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return $"{expr[0]} {op[0]} {expr[1]} {op[1]} {expr[2]}";
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}
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}
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else if ((info.Type & InstType.Special) != 0)
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{
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switch (inst & Instruction.Mask)
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{
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case Instruction.Ballot:
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return Ballot(context, operation);
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case Instruction.Call:
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return Call(context, operation);
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case Instruction.FSIBegin:
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return FSIBegin(context);
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case Instruction.FSIEnd:
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return FSIEnd(context);
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case Instruction.ImageLoad:
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case Instruction.ImageStore:
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case Instruction.ImageAtomic:
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return ImageLoadOrStore(context, operation);
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case Instruction.LoadAttribute:
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return LoadAttribute(context, operation);
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case Instruction.LoadConstant:
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return LoadConstant(context, operation);
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case Instruction.LoadLocal:
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return LoadLocal(context, operation);
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case Instruction.LoadShared:
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return LoadShared(context, operation);
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case Instruction.LoadStorage:
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return LoadStorage(context, operation);
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case Instruction.Lod:
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return Lod(context, operation);
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case Instruction.Negate:
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return Negate(context, operation, info);
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case Instruction.PackDouble2x32:
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return PackDouble2x32(context, operation);
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case Instruction.PackHalf2x16:
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return PackHalf2x16(context, operation);
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case Instruction.StoreAttribute:
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return StoreAttribute(context, operation);
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case Instruction.StoreLocal:
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return StoreLocal(context, operation);
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case Instruction.StoreShared:
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return StoreShared(context, operation);
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case Instruction.StoreShared16:
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return StoreShared16(context, operation);
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case Instruction.StoreShared8:
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return StoreShared8(context, operation);
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case Instruction.StoreStorage:
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return StoreStorage(context, operation);
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case Instruction.StoreStorage16:
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return StoreStorage16(context, operation);
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case Instruction.StoreStorage8:
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return StoreStorage8(context, operation);
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case Instruction.TextureSample:
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return TextureSample(context, operation);
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case Instruction.TextureSize:
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return TextureSize(context, operation);
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case Instruction.UnpackDouble2x32:
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return UnpackDouble2x32(context, operation);
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case Instruction.UnpackHalf2x16:
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return UnpackHalf2x16(context, operation);
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}
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}
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throw new InvalidOperationException($"Unexpected instruction type \"{info.Type}\".");
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}
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}
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} |