OpCodes.Switch Champ
Définition
Important
Certaines informations portent sur la préversion du produit qui est susceptible d’être en grande partie modifiée avant sa publication. Microsoft exclut toute garantie, expresse ou implicite, concernant les informations fournies ici.
Implémente un tableau de saut.
public: static initonly System::Reflection::Emit::OpCode Switch;
public static readonly System.Reflection.Emit.OpCode Switch;
staticval mutable Switch : System.Reflection.Emit.OpCode
Public Shared ReadOnly Switch As OpCode
Valeur de champ
Exemples
L’exemple de code suivant illustre l’utilisation de l’opcode Switch
pour générer une table de rebond à l’aide d’un tableau de Label.
using namespace System;
using namespace System::Threading;
using namespace System::Reflection;
using namespace System::Reflection::Emit;
Type^ BuildMyType()
{
AppDomain^ myDomain = Thread::GetDomain();
AssemblyName^ myAsmName = gcnew AssemblyName;
myAsmName->Name = "MyDynamicAssembly";
AssemblyBuilder^ myAsmBuilder = myDomain->DefineDynamicAssembly( myAsmName, AssemblyBuilderAccess::Run );
ModuleBuilder^ myModBuilder = myAsmBuilder->DefineDynamicModule( "MyJumpTableDemo" );
TypeBuilder^ myTypeBuilder = myModBuilder->DefineType( "JumpTableDemo", TypeAttributes::Public );
array<Type^>^temp0 = {int::typeid};
MethodBuilder^ myMthdBuilder = myTypeBuilder->DefineMethod( "SwitchMe", static_cast<MethodAttributes>(MethodAttributes::Public | MethodAttributes::Static), String::typeid, temp0 );
ILGenerator^ myIL = myMthdBuilder->GetILGenerator();
Label defaultCase = myIL->DefineLabel();
Label endOfMethod = myIL->DefineLabel();
// We are initializing our jump table. Note that the labels
// will be placed later using the MarkLabel method.
array<Label>^jumpTable = gcnew array<Label>(5);
jumpTable[ 0 ] = myIL->DefineLabel();
jumpTable[ 1 ] = myIL->DefineLabel();
jumpTable[ 2 ] = myIL->DefineLabel();
jumpTable[ 3 ] = myIL->DefineLabel();
jumpTable[ 4 ] = myIL->DefineLabel();
// arg0, the number we passed, is pushed onto the stack.
// In this case, due to the design of the code sample,
// the value pushed onto the stack happens to match the
// index of the label (in IL terms, the index of the offset
// in the jump table). If this is not the case, such as
// when switching based on non-integer values, rules for the correspondence
// between the possible case values and each index of the offsets
// must be established outside of the ILGenerator::Emit calls,
// much as a compiler would.
myIL->Emit( OpCodes::Ldarg_0 );
myIL->Emit( OpCodes::Switch, jumpTable );
// Branch on default case
myIL->Emit( OpCodes::Br_S, defaultCase );
// Case arg0 = 0
myIL->MarkLabel( jumpTable[ 0 ] );
myIL->Emit( OpCodes::Ldstr, "are no bananas" );
myIL->Emit( OpCodes::Br_S, endOfMethod );
// Case arg0 = 1
myIL->MarkLabel( jumpTable[ 1 ] );
myIL->Emit( OpCodes::Ldstr, "is one banana" );
myIL->Emit( OpCodes::Br_S, endOfMethod );
// Case arg0 = 2
myIL->MarkLabel( jumpTable[ 2 ] );
myIL->Emit( OpCodes::Ldstr, "are two bananas" );
myIL->Emit( OpCodes::Br_S, endOfMethod );
// Case arg0 = 3
myIL->MarkLabel( jumpTable[ 3 ] );
myIL->Emit( OpCodes::Ldstr, "are three bananas" );
myIL->Emit( OpCodes::Br_S, endOfMethod );
// Case arg0 = 4
myIL->MarkLabel( jumpTable[ 4 ] );
myIL->Emit( OpCodes::Ldstr, "are four bananas" );
myIL->Emit( OpCodes::Br_S, endOfMethod );
// Default case
myIL->MarkLabel( defaultCase );
myIL->Emit( OpCodes::Ldstr, "are many bananas" );
myIL->MarkLabel( endOfMethod );
myIL->Emit( OpCodes::Ret );
return myTypeBuilder->CreateType();
}
int main()
{
Type^ myType = BuildMyType();
Console::Write( "Enter an integer between 0 and 5: " );
int theValue = Convert::ToInt32( Console::ReadLine() );
Console::WriteLine( "---" );
Object^ myInstance = Activator::CreateInstance( myType, gcnew array<Object^>(0) );
array<Object^>^temp1 = {theValue};
Console::WriteLine( "Yes, there {0} today!", myType->InvokeMember( "SwitchMe", BindingFlags::InvokeMethod, nullptr, myInstance, temp1 ) );
}
using System;
using System.Threading;
using System.Reflection;
using System.Reflection.Emit;
class DynamicJumpTableDemo
{
public static Type BuildMyType()
{
AppDomain myDomain = Thread.GetDomain();
AssemblyName myAsmName = new AssemblyName();
myAsmName.Name = "MyDynamicAssembly";
AssemblyBuilder myAsmBuilder = myDomain.DefineDynamicAssembly(
myAsmName,
AssemblyBuilderAccess.Run);
ModuleBuilder myModBuilder = myAsmBuilder.DefineDynamicModule(
"MyJumpTableDemo");
TypeBuilder myTypeBuilder = myModBuilder.DefineType("JumpTableDemo",
TypeAttributes.Public);
MethodBuilder myMthdBuilder = myTypeBuilder.DefineMethod("SwitchMe",
MethodAttributes.Public |
MethodAttributes.Static,
typeof(string),
new Type[] {typeof(int)});
ILGenerator myIL = myMthdBuilder.GetILGenerator();
Label defaultCase = myIL.DefineLabel();
Label endOfMethod = myIL.DefineLabel();
// We are initializing our jump table. Note that the labels
// will be placed later using the MarkLabel method.
Label[] jumpTable = new Label[] { myIL.DefineLabel(),
myIL.DefineLabel(),
myIL.DefineLabel(),
myIL.DefineLabel(),
myIL.DefineLabel() };
// arg0, the number we passed, is pushed onto the stack.
// In this case, due to the design of the code sample,
// the value pushed onto the stack happens to match the
// index of the label (in IL terms, the index of the offset
// in the jump table). If this is not the case, such as
// when switching based on non-integer values, rules for the correspondence
// between the possible case values and each index of the offsets
// must be established outside of the ILGenerator.Emit calls,
// much as a compiler would.
myIL.Emit(OpCodes.Ldarg_0);
myIL.Emit(OpCodes.Switch, jumpTable);
// Branch on default case
myIL.Emit(OpCodes.Br_S, defaultCase);
// Case arg0 = 0
myIL.MarkLabel(jumpTable[0]);
myIL.Emit(OpCodes.Ldstr, "are no bananas");
myIL.Emit(OpCodes.Br_S, endOfMethod);
// Case arg0 = 1
myIL.MarkLabel(jumpTable[1]);
myIL.Emit(OpCodes.Ldstr, "is one banana");
myIL.Emit(OpCodes.Br_S, endOfMethod);
// Case arg0 = 2
myIL.MarkLabel(jumpTable[2]);
myIL.Emit(OpCodes.Ldstr, "are two bananas");
myIL.Emit(OpCodes.Br_S, endOfMethod);
// Case arg0 = 3
myIL.MarkLabel(jumpTable[3]);
myIL.Emit(OpCodes.Ldstr, "are three bananas");
myIL.Emit(OpCodes.Br_S, endOfMethod);
// Case arg0 = 4
myIL.MarkLabel(jumpTable[4]);
myIL.Emit(OpCodes.Ldstr, "are four bananas");
myIL.Emit(OpCodes.Br_S, endOfMethod);
// Default case
myIL.MarkLabel(defaultCase);
myIL.Emit(OpCodes.Ldstr, "are many bananas");
myIL.MarkLabel(endOfMethod);
myIL.Emit(OpCodes.Ret);
return myTypeBuilder.CreateType();
}
public static void Main()
{
Type myType = BuildMyType();
Console.Write("Enter an integer between 0 and 5: ");
int theValue = Convert.ToInt32(Console.ReadLine());
Console.WriteLine("---");
Object myInstance = Activator.CreateInstance(myType, new object[0]);
Console.WriteLine("Yes, there {0} today!", myType.InvokeMember("SwitchMe",
BindingFlags.InvokeMethod,
null,
myInstance,
new object[] {theValue}));
}
}
Imports System.Threading
Imports System.Reflection
Imports System.Reflection.Emit
_
Class DynamicJumpTableDemo
Public Shared Function BuildMyType() As Type
Dim myDomain As AppDomain = Thread.GetDomain()
Dim myAsmName As New AssemblyName()
myAsmName.Name = "MyDynamicAssembly"
Dim myAsmBuilder As AssemblyBuilder = myDomain.DefineDynamicAssembly(myAsmName, _
AssemblyBuilderAccess.Run)
Dim myModBuilder As ModuleBuilder = myAsmBuilder.DefineDynamicModule("MyJumpTableDemo")
Dim myTypeBuilder As TypeBuilder = myModBuilder.DefineType("JumpTableDemo", _
TypeAttributes.Public)
Dim myMthdBuilder As MethodBuilder = myTypeBuilder.DefineMethod("SwitchMe", _
MethodAttributes.Public Or MethodAttributes.Static, _
GetType(String), New Type() {GetType(Integer)})
Dim myIL As ILGenerator = myMthdBuilder.GetILGenerator()
Dim defaultCase As Label = myIL.DefineLabel()
Dim endOfMethod As Label = myIL.DefineLabel()
' We are initializing our jump table. Note that the labels
' will be placed later using the MarkLabel method.
Dim jumpTable() As Label = {myIL.DefineLabel(), _
myIL.DefineLabel(), _
myIL.DefineLabel(), _
myIL.DefineLabel(), _
myIL.DefineLabel()}
' arg0, the number we passed, is pushed onto the stack.
' In this case, due to the design of the code sample,
' the value pushed onto the stack happens to match the
' index of the label (in IL terms, the index of the offset
' in the jump table). If this is not the case, such as
' when switching based on non-integer values, rules for the correspondence
' between the possible case values and each index of the offsets
' must be established outside of the ILGenerator.Emit calls,
' much as a compiler would.
myIL.Emit(OpCodes.Ldarg_0)
myIL.Emit(OpCodes.Switch, jumpTable)
' Branch on default case
myIL.Emit(OpCodes.Br_S, defaultCase)
' Case arg0 = 0
myIL.MarkLabel(jumpTable(0))
myIL.Emit(OpCodes.Ldstr, "are no bananas")
myIL.Emit(OpCodes.Br_S, endOfMethod)
' Case arg0 = 1
myIL.MarkLabel(jumpTable(1))
myIL.Emit(OpCodes.Ldstr, "is one banana")
myIL.Emit(OpCodes.Br_S, endOfMethod)
' Case arg0 = 2
myIL.MarkLabel(jumpTable(2))
myIL.Emit(OpCodes.Ldstr, "are two bananas")
myIL.Emit(OpCodes.Br_S, endOfMethod)
' Case arg0 = 3
myIL.MarkLabel(jumpTable(3))
myIL.Emit(OpCodes.Ldstr, "are three bananas")
myIL.Emit(OpCodes.Br_S, endOfMethod)
' Case arg0 = 4
myIL.MarkLabel(jumpTable(4))
myIL.Emit(OpCodes.Ldstr, "are four bananas")
myIL.Emit(OpCodes.Br_S, endOfMethod)
' Default case
myIL.MarkLabel(defaultCase)
myIL.Emit(OpCodes.Ldstr, "are many bananas")
myIL.MarkLabel(endOfMethod)
myIL.Emit(OpCodes.Ret)
Return myTypeBuilder.CreateType()
End Function 'BuildMyType
Public Shared Sub Main()
Dim myType As Type = BuildMyType()
Console.Write("Enter an integer between 0 and 5: ")
Dim theValue As Integer = Convert.ToInt32(Console.ReadLine())
Console.WriteLine("---")
Dim myInstance As [Object] = Activator.CreateInstance(myType, New Object() {})
Console.WriteLine("Yes, there {0} today!", myType.InvokeMember("SwitchMe", _
BindingFlags.InvokeMethod, Nothing, _
myInstance, New Object() {theValue}))
End Sub
End Class
Remarques
Le tableau suivant répertorie le format d’assembly MSIL et hexadécimal de l’instruction, ainsi qu’un bref résumé des références :
Format | Format d’assembly | Description |
---|---|---|
45 <int32 unsigned int32 <>>...<int32 > |
switch (N , t1 , t2 ... tN ) |
Passe à l’une des N valeurs. |
Le comportement transitionnel de la pile, dans l’ordre séquentiel, est le suivant :
Une valeur est envoyée dans la pile.
La valeur est extraite de la pile et l’exécution est transférée à l’instruction au décalage indexé par la valeur, où la valeur est inférieure
N
à .
L’instruction switch
implémente une table de rebond. Le format de l’instruction est un unsigned int32
représentant le nombre de cibles N
, suivi N
de valeurs int32 spécifiant des cibles de saut. Ces cibles sont représentées sous forme de décalages (positifs ou négatifs) à partir du début de l’instruction qui suit cette switch
instruction.
L’instruction switch
fait apparaître une valeur hors de la pile et la compare, en tant qu’entier non signé, à N
. Si la valeur est inférieure à , l’exécution est transférée à la cible indexée par valeur, où les cibles sont numérotées N
à partir de 0 (par exemple, une valeur de 0 prend la première cible, une valeur de 1 prend la deuxième cible, et ainsi de suite). Si la valeur est supérieure ou égale à N
, l’exécution se poursuit à l’instruction suivante (fall through).
Si l’instruction cible a un ou plusieurs codes de préfixe, le contrôle ne peut être transféré qu’au premier de ces préfixes.
Les transferts de contrôle vers et hors des try
blocs , catch
, filter
et finally
ne peuvent pas être effectués par cette instruction. (Ces transferts sont fortement limités et doivent utiliser l’instruction de congé à la place).
La surcharge de méthode suivante Emit peut utiliser l’opcode switch
. L’argument Label[]
est un tableau d’étiquettes représentant des décalages 32 bits.