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300 lines
10 KiB
300 lines
10 KiB
// Copyright (c) 2018 Daniel Grunwald
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//
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// Permission is hereby granted, free of charge, to any person obtaining a copy of this
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// software and associated documentation files (the "Software"), to deal in the Software
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// without restriction, including without limitation the rights to use, copy, modify, merge,
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// publish, distribute, sublicense, and/or sell copies of the Software, and to permit persons
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// to whom the Software is furnished to do so, subject to the following conditions:
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//
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// The above copyright notice and this permission notice shall be included in all copies or
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// substantial portions of the Software.
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//
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// THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR IMPLIED,
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// INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, FITNESS FOR A PARTICULAR
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// PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE
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// FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR
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// OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
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// DEALINGS IN THE SOFTWARE.
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using System;
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using System.Collections.Generic;
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using System.Diagnostics;
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using System.Linq;
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using System.Text;
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using ICSharpCode.Decompiler.TypeSystem;
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using ICSharpCode.Decompiler.Util;
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namespace ICSharpCode.Decompiler.IL.Transforms
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{
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public class UserDefinedLogicTransform : IStatementTransform
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{
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void IStatementTransform.Run(Block block, int pos, StatementTransformContext context)
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{
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if (LegacyPattern(block, pos, context))
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return;
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if (RoslynOptimized(block, pos, context))
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return;
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}
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bool RoslynOptimized(Block block, int pos, StatementTransformContext context)
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{
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// Roslyn, optimized pattern in combination with return statement:
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// if (logic.not(call op_False(ldloc lhsVar))) leave IL_0000 (call op_BitwiseAnd(ldloc lhsVar, rhsInst))
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// leave IL_0000(ldloc lhsVar)
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// ->
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// user.logic op_BitwiseAnd(ldloc lhsVar, rhsInst)
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if (!block.Instructions[pos].MatchIfInstructionPositiveCondition(out var condition, out var trueInst, out var falseInst))
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return false;
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if (trueInst.OpCode == OpCode.Nop)
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{
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trueInst = block.Instructions[pos + 1];
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}
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else if (falseInst.OpCode == OpCode.Nop)
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{
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falseInst = block.Instructions[pos + 1];
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}
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else
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{
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return false;
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}
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if (trueInst.MatchReturn(out var trueValue) && falseInst.MatchReturn(out var falseValue))
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{
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var transformed = Transform(condition, trueValue, falseValue);
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if (transformed == null)
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{
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transformed = TransformDynamic(condition, trueValue, falseValue);
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}
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if (transformed != null)
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{
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context.Step("User-defined short-circuiting logic operator (optimized return)", condition);
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((Leave)block.Instructions[pos + 1]).Value = transformed;
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block.Instructions.RemoveAt(pos);
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return true;
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}
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}
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return false;
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}
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bool LegacyPattern(Block block, int pos, StatementTransformContext context)
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{
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// Legacy csc pattern:
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// stloc s(lhsInst)
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// if (logic.not(call op_False(ldloc s))) Block {
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// stloc s(call op_BitwiseAnd(ldloc s, rhsInst))
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// }
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// ->
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// stloc s(user.logic op_BitwiseAnd(lhsInst, rhsInst))
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if (!block.Instructions[pos].MatchStLoc(out var s, out var lhsInst))
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return false;
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if (!(s.Kind == VariableKind.StackSlot))
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return false;
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if (!(block.Instructions[pos + 1] is IfInstruction ifInst))
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return false;
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if (!ifInst.Condition.MatchLogicNot(out var condition))
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return false;
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if (!(MatchCondition(condition, out var s2, out string conditionMethodName) && s2 == s))
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return false;
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if (ifInst.FalseInst.OpCode != OpCode.Nop)
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return false;
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var trueInst = Block.Unwrap(ifInst.TrueInst);
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if (!trueInst.MatchStLoc(s, out var storeValue))
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return false;
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if (storeValue is Call call)
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{
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if (!MatchBitwiseCall(call, s, conditionMethodName))
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return false;
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if (s.IsUsedWithin(call.Arguments[1]))
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return false;
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context.Step("User-defined short-circuiting logic operator (legacy pattern)", condition);
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((StLoc)block.Instructions[pos]).Value = new UserDefinedLogicOperator(call.Method, lhsInst, call.Arguments[1])
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.WithILRange(call);
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block.Instructions.RemoveAt(pos + 1);
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context.RequestRerun(); // the 'stloc s' may now be eligible for inlining
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return true;
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}
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return false;
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}
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static bool MatchCondition(ILInstruction condition, out ILVariable v, out string name)
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{
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v = null;
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name = null;
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if (!(condition is Call call && call.Method.IsOperator && call.Arguments.Count == 1 && !call.IsLifted))
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return false;
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name = call.Method.Name;
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if (!(name == "op_True" || name == "op_False"))
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return false;
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return call.Arguments[0].MatchLdLoc(out v);
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}
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static bool MatchBitwiseCall(Call call, ILVariable v, string conditionMethodName)
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{
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if (!(call != null && call.Method.IsOperator && call.Arguments.Count == 2 && !call.IsLifted))
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return false;
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if (!call.Arguments[0].MatchLdLoc(v))
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return false;
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return conditionMethodName == "op_False" && call.Method.Name == "op_BitwiseAnd"
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|| conditionMethodName == "op_True" && call.Method.Name == "op_BitwiseOr";
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}
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/// <summary>
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/// if (call op_False(ldloc lhsVar)) ldloc lhsVar else call op_BitwiseAnd(ldloc lhsVar, rhsInst)
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/// -> user.logic op_BitwiseAnd(ldloc lhsVar, rhsInst)
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/// or
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/// if (call op_True(ldloc lhsVar)) ldloc lhsVar else call op_BitwiseOr(ldloc lhsVar, rhsInst)
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/// -> user.logic op_BitwiseOr(ldloc lhsVar, rhsInst)
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/// </summary>
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public static ILInstruction Transform(ILInstruction condition, ILInstruction trueInst, ILInstruction falseInst)
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{
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if (!MatchCondition(condition, out var lhsVar, out var conditionMethodName))
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return null;
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if (!trueInst.MatchLdLoc(lhsVar))
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return null;
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var call = falseInst as Call;
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if (!MatchBitwiseCall(call, lhsVar, conditionMethodName))
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return null;
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var result = new UserDefinedLogicOperator(call.Method, call.Arguments[0], call.Arguments[1]);
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result.AddILRange(condition);
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result.AddILRange(trueInst);
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result.AddILRange(call);
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return result;
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}
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public static ILInstruction TransformDynamic(ILInstruction condition, ILInstruction trueInst, ILInstruction falseInst)
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{
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// Check condition:
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System.Linq.Expressions.ExpressionType unaryOp;
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if (condition.MatchLdLoc(out var lhsVar))
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{
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// if (ldloc lhsVar) box bool(ldloc lhsVar) else dynamic.binary.operator.logic Or(ldloc lhsVar, rhsInst)
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// -> dynamic.logic.operator OrElse(ldloc lhsVar, rhsInst)
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if (trueInst is Box box && box.Type.IsKnownType(KnownTypeCode.Boolean))
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{
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unaryOp = System.Linq.Expressions.ExpressionType.IsTrue;
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trueInst = box.Argument;
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}
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else if (falseInst is Box box2 && box2.Type.IsKnownType(KnownTypeCode.Boolean))
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{
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// negate condition and swap true/false
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unaryOp = System.Linq.Expressions.ExpressionType.IsFalse;
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falseInst = trueInst;
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trueInst = box2.Argument;
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}
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else
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{
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return null;
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}
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}
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else if (condition is DynamicUnaryOperatorInstruction unary)
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{
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// if (dynamic.unary.operator IsFalse(ldloc lhsVar)) ldloc lhsVar else dynamic.binary.operator.logic And(ldloc lhsVar, rhsInst)
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// -> dynamic.logic.operator AndAlso(ldloc lhsVar, rhsInst)
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unaryOp = unary.Operation;
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if (!unary.Operand.MatchLdLoc(out lhsVar))
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return null;
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}
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else if (MatchCondition(condition, out lhsVar, out string operatorMethodName))
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{
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// if (call op_False(ldloc s)) box S(ldloc s) else dynamic.binary.operator.logic And(ldloc s, rhsInst))
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if (operatorMethodName == "op_True")
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{
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unaryOp = System.Linq.Expressions.ExpressionType.IsTrue;
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}
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else
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{
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Debug.Assert(operatorMethodName == "op_False");
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unaryOp = System.Linq.Expressions.ExpressionType.IsFalse;
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}
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var callParamType = ((Call)condition).Method.Parameters.Single().Type.SkipModifiers();
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if (callParamType.IsReferenceType == false)
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{
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// If lhs is a value type, eliminate the boxing instruction.
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if (trueInst is Box box && NormalizeTypeVisitor.TypeErasure.EquivalentTypes(box.Type, callParamType))
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{
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trueInst = box.Argument;
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}
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else if (trueInst.OpCode == OpCode.LdcI4)
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{
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// special case, handled below in 'check trueInst'
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}
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else
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{
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return null;
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}
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}
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}
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else
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{
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return null;
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}
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// Check trueInst:
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DynamicUnaryOperatorInstruction rhsUnary;
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if (trueInst.MatchLdLoc(lhsVar))
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{
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// OK, typical pattern where the expression evaluates to 'dynamic'
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rhsUnary = null;
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}
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else if (trueInst.MatchLdcI4(1) && unaryOp == System.Linq.Expressions.ExpressionType.IsTrue)
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{
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// logic.or(IsTrue(lhsVar), IsTrue(lhsVar | rhsInst))
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// => IsTrue(lhsVar || rhsInst)
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rhsUnary = falseInst as DynamicUnaryOperatorInstruction;
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if (rhsUnary != null)
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{
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if (rhsUnary.Operation != System.Linq.Expressions.ExpressionType.IsTrue)
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return null;
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falseInst = rhsUnary.Operand;
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}
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else
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{
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return null;
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}
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}
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else
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{
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return null;
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}
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System.Linq.Expressions.ExpressionType expectedBitop;
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System.Linq.Expressions.ExpressionType logicOp;
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if (unaryOp == System.Linq.Expressions.ExpressionType.IsFalse)
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{
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expectedBitop = System.Linq.Expressions.ExpressionType.And;
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logicOp = System.Linq.Expressions.ExpressionType.AndAlso;
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}
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else if (unaryOp == System.Linq.Expressions.ExpressionType.IsTrue)
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{
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expectedBitop = System.Linq.Expressions.ExpressionType.Or;
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logicOp = System.Linq.Expressions.ExpressionType.OrElse;
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}
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else
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{
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return null;
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}
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// Check falseInst:
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if (!(falseInst is DynamicBinaryOperatorInstruction binary))
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return null;
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if (binary.Operation != expectedBitop)
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return null;
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if (!binary.Left.MatchLdLoc(lhsVar))
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return null;
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var logicInst = new DynamicLogicOperatorInstruction(binary.BinderFlags, logicOp, binary.CallingContext,
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binary.LeftArgumentInfo, binary.Left, binary.RightArgumentInfo, binary.Right)
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.WithILRange(binary);
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if (rhsUnary != null)
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{
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rhsUnary.Operand = logicInst;
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return rhsUnary;
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}
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else
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{
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return logicInst;
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}
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}
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}
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}
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