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450 lines
15 KiB
450 lines
15 KiB
// Copyright (c) 2014 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.Collections.Immutable;
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using ICSharpCode.Decompiler.IL.Transforms;
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using ICSharpCode.Decompiler.TypeSystem;
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using ICSharpCode.Decompiler.Util;
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namespace ICSharpCode.Decompiler.IL
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{
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partial class ILFunction
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{
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/// <summary>
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/// Gets the method definition from metadata.
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/// May be null for functions that were not constructed from metadata,
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/// e.g., expression trees.
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/// </summary>
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public readonly IMethod Method;
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/// <summary>
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/// Gets the generic context of this function.
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/// </summary>
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public readonly GenericContext GenericContext;
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/// <summary>
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/// Gets the name of this function, usually this returns the name from metadata.
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/// <para>
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/// For local functions:
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/// This is the name that is used to declare and use the function.
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/// It may not conflict with the names of local variables of ancestor functions
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/// and may be overwritten by the AssignVariableNames step.
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///
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/// For top-level functions, delegates and expressions trees modifying this usually
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/// has no effect, as the name should not be used in the final AST construction.
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/// </para>
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/// </summary>
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public string Name;
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/// <summary>
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/// Size of the IL code in this function.
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/// Note: after async/await transform, this is the code size of the MoveNext function.
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/// </summary>
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public int CodeSize;
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/// <summary>
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/// List of ILVariables used in this function.
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/// </summary>
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public readonly ILVariableCollection Variables;
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/// <summary>
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/// Gets the scope in which the local function is declared.
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/// Returns null, if this is not a local function.
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/// </summary>
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public BlockContainer DeclarationScope { get; internal set; }
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/// <summary>
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/// List of warnings of ILReader.
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/// </summary>
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public List<string> Warnings { get; } = new List<string>();
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/// <summary>
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/// Gets whether this function is a decompiled iterator (is using yield).
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/// This flag gets set by the YieldReturnDecompiler.
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///
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/// If set, the 'return' instruction has the semantics of 'yield break;'
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/// instead of a normal return.
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/// </summary>
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public bool IsIterator;
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/// <summary>
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/// Gets whether the YieldReturnDecompiler determined that the Mono C# compiler was used to compile this function.
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/// </summary>
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public bool StateMachineCompiledWithMono;
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/// <summary>
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/// Gets whether this function is async.
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/// This flag gets set by the AsyncAwaitDecompiler.
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/// </summary>
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public bool IsAsync => AsyncReturnType != null;
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/// <summary>
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/// Return element type -- if the async method returns Task{T}, this field stores T.
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/// If the async method returns Task or void, this field stores void.
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/// </summary>
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public IType AsyncReturnType;
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/// <summary>
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/// If this function is an iterator/async, this field stores the compiler-generated MoveNext() method.
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/// </summary>
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public IMethod MoveNextMethod;
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/// <summary>
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/// If this function is a local function, this field stores the reduced version of the function.
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/// </summary>
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internal TypeSystem.Implementation.LocalFunctionMethod ReducedMethod;
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public DebugInfo.AsyncDebugInfo AsyncDebugInfo;
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int ctorCallStart = int.MinValue;
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/// <summary>
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/// Returns the IL offset of the constructor call, -1 if this is not a constructor or no chained constructor call was found.
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/// </summary>
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internal int ChainedConstructorCallILOffset {
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get {
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if (ctorCallStart == int.MinValue) {
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if (!this.Method.IsConstructor || this.Method.IsStatic)
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ctorCallStart = -1;
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else {
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ctorCallStart = this.Descendants.FirstOrDefault(d => d is CallInstruction call && !(call is NewObj)
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&& call.Method.IsConstructor
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&& call.Method.DeclaringType.IsReferenceType == true
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&& call.Parent is Block)?.StartILOffset ?? -1;
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}
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}
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return ctorCallStart;
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}
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}
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/// <summary>
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/// If this is an expression tree or delegate, returns the expression tree type Expression{T} or T.
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/// T is the delegate type that matches the signature of this method.
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/// Otherwise this must be null.
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/// </summary>
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public IType DelegateType;
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ILFunctionKind kind;
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/// <summary>
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/// Gets which kind of function this is.
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/// </summary>
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public ILFunctionKind Kind {
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get => kind;
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internal set {
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if (kind == ILFunctionKind.TopLevelFunction || kind == ILFunctionKind.LocalFunction)
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throw new InvalidOperationException("ILFunction.Kind of a top-level or local function may not be changed.");
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kind = value;
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}
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}
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/// <summary>
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/// Return type of this function.
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/// Might be null, if this function was not created from metadata.
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/// </summary>
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public readonly IType ReturnType;
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/// <summary>
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/// List of parameters of this function.
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/// Might be null, if this function was not created from metadata.
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/// </summary>
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public readonly IReadOnlyList<IParameter> Parameters;
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/// <summary>
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/// List of candidate locations for sequence points. Includes any offset
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/// where the stack is empty, nop instructions, and the instruction following
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/// a call instruction
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/// </summary>
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public List<int> SequencePointCandidates { get; set; }
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/// <summary>
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/// Constructs a new ILFunction from the given metadata and with the given ILAst body.
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/// </summary>
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/// <remarks>
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/// Use <see cref="ILReader"/> to create ILAst.
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/// <paramref name="method"/> may be null.
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/// </remarks>
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public ILFunction(IMethod method, int codeSize, GenericContext genericContext, ILInstruction body, ILFunctionKind kind = ILFunctionKind.TopLevelFunction) : base(OpCode.ILFunction)
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{
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this.Method = method;
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this.Name = Method?.Name;
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this.CodeSize = codeSize;
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this.GenericContext = genericContext;
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this.Body = body;
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this.ReturnType = Method?.ReturnType;
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this.Parameters = Method?.Parameters;
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this.Variables = new ILVariableCollection(this);
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this.LocalFunctions = new InstructionCollection<ILFunction>(this, 1);
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this.kind = kind;
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}
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/// <summary>
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/// This constructor is only to be used by the TransformExpressionTrees step.
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/// </summary>
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internal ILFunction(IType returnType, IReadOnlyList<IParameter> parameters, GenericContext genericContext, ILInstruction body) : base(OpCode.ILFunction)
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{
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this.GenericContext = genericContext;
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this.Body = body;
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this.ReturnType = returnType;
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this.Parameters = parameters;
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this.Variables = new ILVariableCollection(this);
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this.LocalFunctions = new InstructionCollection<ILFunction>(this, 1);
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this.kind = ILFunctionKind.ExpressionTree;
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}
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internal override void CheckInvariant(ILPhase phase)
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{
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switch (kind) {
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case ILFunctionKind.TopLevelFunction:
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Debug.Assert(Parent == null);
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Debug.Assert(DelegateType == null);
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Debug.Assert(DeclarationScope == null);
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Debug.Assert(Method != null);
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break;
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case ILFunctionKind.Delegate:
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Debug.Assert(DelegateType != null);
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Debug.Assert(DeclarationScope == null);
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Debug.Assert(!(DelegateType?.FullName == "System.Linq.Expressions.Expression" && DelegateType.TypeParameterCount == 1));
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break;
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case ILFunctionKind.ExpressionTree:
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Debug.Assert(DelegateType != null);
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Debug.Assert(DeclarationScope == null);
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Debug.Assert(DelegateType?.FullName == "System.Linq.Expressions.Expression" && DelegateType.TypeParameterCount == 1);
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break;
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case ILFunctionKind.LocalFunction:
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Debug.Assert(Parent is ILFunction && SlotInfo == ILFunction.LocalFunctionsSlot);
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Debug.Assert(DeclarationScope != null);
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Debug.Assert(DelegateType == null);
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Debug.Assert(Method != null);
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break;
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}
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for (int i = 0; i < Variables.Count; i++) {
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Debug.Assert(Variables[i].Function == this);
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Debug.Assert(Variables[i].IndexInFunction == i);
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Variables[i].CheckInvariant();
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}
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base.CheckInvariant(phase);
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}
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void CloneVariables()
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{
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throw new NotSupportedException("ILFunction.CloneVariables is currently not supported!");
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}
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public override void WriteTo(ITextOutput output, ILAstWritingOptions options)
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{
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WriteILRange(output, options);
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output.Write(OpCode);
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if (Method != null) {
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output.Write(' ');
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Method.WriteTo(output);
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}
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switch (kind) {
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case ILFunctionKind.ExpressionTree:
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output.Write(".ET");
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break;
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case ILFunctionKind.LocalFunction:
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output.Write(".local");
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break;
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}
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if (DelegateType != null) {
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output.Write("[");
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DelegateType.WriteTo(output);
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output.Write("]");
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}
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output.WriteLine(" {");
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output.Indent();
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if (IsAsync) {
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output.WriteLine(".async");
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}
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if (IsIterator) {
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output.WriteLine(".iterator");
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}
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if (DeclarationScope != null) {
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output.Write("declared as " + Name + " in ");
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output.WriteLocalReference(DeclarationScope.EntryPoint.Label, DeclarationScope);
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output.WriteLine();
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}
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output.MarkFoldStart(Variables.Count + " variable(s)", true);
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foreach (var variable in Variables) {
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variable.WriteDefinitionTo(output);
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output.WriteLine();
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}
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output.MarkFoldEnd();
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output.WriteLine();
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foreach (string warning in Warnings) {
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output.WriteLine("//" + warning);
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}
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body.WriteTo(output, options);
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output.WriteLine();
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foreach (var localFunction in LocalFunctions) {
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output.WriteLine();
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localFunction.WriteTo(output, options);
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}
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if (options.ShowILRanges) {
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var unusedILRanges = FindUnusedILRanges();
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if (!unusedILRanges.IsEmpty) {
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output.Write("// Unused IL Ranges: ");
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output.Write(string.Join(", ", unusedILRanges.Intervals.Select(
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range => $"[{range.Start:x4}..{range.InclusiveEnd:x4}]")));
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output.WriteLine();
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}
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}
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output.Unindent();
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output.WriteLine("}");
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}
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LongSet FindUnusedILRanges()
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{
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var usedILRanges = new List<LongInterval>();
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MarkUsedILRanges(body);
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return new LongSet(new LongInterval(0, CodeSize)).ExceptWith(new LongSet(usedILRanges));
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void MarkUsedILRanges(ILInstruction inst)
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{
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if (CSharp.SequencePointBuilder.HasUsableILRange(inst)) {
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usedILRanges.Add(new LongInterval(inst.StartILOffset, inst.EndILOffset));
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}
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if (!(inst is ILFunction)) {
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foreach (var child in inst.Children) {
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MarkUsedILRanges(child);
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}
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}
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}
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}
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protected override InstructionFlags ComputeFlags()
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{
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// Creating a lambda may throw OutOfMemoryException
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// We intentionally don't propagate any flags from the lambda body!
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return InstructionFlags.MayThrow | InstructionFlags.ControlFlow;
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}
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public override InstructionFlags DirectFlags {
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get {
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return InstructionFlags.MayThrow | InstructionFlags.ControlFlow;
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}
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}
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/// <summary>
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/// Apply a list of transforms to this function.
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/// </summary>
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public void RunTransforms(IEnumerable<IILTransform> transforms, ILTransformContext context)
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{
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this.CheckInvariant(ILPhase.Normal);
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foreach (var transform in transforms) {
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context.CancellationToken.ThrowIfCancellationRequested();
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if (transform is BlockILTransform blockTransform) {
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context.StepStartGroup(blockTransform.ToString());
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} else {
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context.StepStartGroup(transform.GetType().Name);
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}
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transform.Run(this, context);
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this.CheckInvariant(ILPhase.Normal);
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context.StepEndGroup(keepIfEmpty: true);
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}
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}
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int helperVariableCount;
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public ILVariable RegisterVariable(VariableKind kind, IType type, string name = null)
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{
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return RegisterVariable(kind, type, type.GetStackType(), name);
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}
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public ILVariable RegisterVariable(VariableKind kind, StackType stackType, string name = null)
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{
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var type = Method.Compilation.FindType(stackType.ToKnownTypeCode());
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return RegisterVariable(kind, type, stackType, name);
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}
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ILVariable RegisterVariable(VariableKind kind, IType type, StackType stackType, string name = null)
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{
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var variable = new ILVariable(kind, type, stackType);
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if (string.IsNullOrWhiteSpace(name)) {
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name = "I_" + (helperVariableCount++);
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variable.HasGeneratedName = true;
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}
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variable.Name = name;
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Variables.Add(variable);
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return variable;
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}
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/// <summary>
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/// Recombine split variables by replacing all occurrences of variable2 with variable1.
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/// </summary>
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internal void RecombineVariables(ILVariable variable1, ILVariable variable2)
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{
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if (variable1 == variable2)
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return;
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Debug.Assert(ILVariableEqualityComparer.Instance.Equals(variable1, variable2));
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foreach (var ldloc in variable2.LoadInstructions.ToArray()) {
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ldloc.Variable = variable1;
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}
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foreach (var store in variable2.StoreInstructions.ToArray()) {
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store.Variable = variable1;
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}
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foreach (var ldloca in variable2.AddressInstructions.ToArray()) {
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ldloca.Variable = variable1;
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}
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bool ok = Variables.Remove(variable2);
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Debug.Assert(ok);
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}
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}
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public enum ILFunctionKind
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{
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/// <summary>
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/// ILFunction is a "top-level" function, i.e., method, accessor, constructor, destructor or operator.
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/// </summary>
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TopLevelFunction,
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/// <summary>
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/// ILFunction is a delegate or lambda expression.
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/// </summary>
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/// <remarks>
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/// This kind is introduced by the DelegateConstruction and TransformExpressionTrees steps in the decompiler pipeline.
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/// </remarks>
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Delegate,
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/// <summary>
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/// ILFunction is an expression tree lambda.
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/// </summary>
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/// <remarks>
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/// This kind is introduced by the TransformExpressionTrees step in the decompiler pipeline.
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/// </remarks>
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ExpressionTree,
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/// <summary>
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/// ILFunction is a C# 7.0 local function.
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/// </summary>
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/// <remarks>
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/// This kind is introduced by the LocalFunctionDecompiler step in the decompiler pipeline.
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/// </remarks>
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LocalFunction
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}
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}
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