14

如果我有类型参数约束new()

void Foo<T>() where T : new()
{
    var t = new T();
}

是否new T()会在内部使用该Activator.CreateInstance方法(即反射)?

4

2 回答 2

11

是的,这是真的。编辑2:这里很好地解释了如何以及为什么。

http://www.simple-talk.com/community/blogs/simonc/archive/2010/11/17/95700.aspx

为了验证,我编译了以下方法:

public static T Create<T>() where T: new() {
    return new T();
}

这是使用 .NET 3.5 SP1 中的 C# 编译器编译时生成的 IL:

.method public hidebysig static !!T Create<.ctor T>() cil managed
{
    .maxstack 2
    .locals init (
        [0] !!T local,
        [1] !!T local2)
    L_0000: ldloca.s local
    L_0002: initobj !!T
    L_0008: ldloc.0 
    L_0009: box !!T
    L_000e: brfalse.s L_001a
    L_0010: ldloca.s local2
    L_0012: initobj !!T
    L_0018: ldloc.1 
    L_0019: ret 
    L_001a: call !!0 [mscorlib]System.Activator::CreateInstance<!!T>()
    L_001f: ret 
}

编辑: C# 4 编译器创建略有不同但相似的代码:

.method public hidebysig static !!T Create<.ctor T>() cil managed
{
    .maxstack 2
    .locals init (
        [0] !!T CS$1$0000,
        [1] !!T CS$0$0001)
    L_0000: nop 
    L_0001: ldloca.s CS$0$0001
    L_0003: initobj !!T
    L_0009: ldloc.1 
    L_000a: box !!T
    L_000f: brfalse.s L_001c
    L_0011: ldloca.s CS$0$0001
    L_0013: initobj !!T
    L_0019: ldloc.1 
    L_001a: br.s L_0021
    L_001c: call !!0 [mscorlib]System.Activator::CreateInstance<!!T>()
    L_0021: stloc.0 
    L_0022: br.s L_0024
    L_0024: ldloc.0 
    L_0025: ret 
}

在值类型的情况下,它不使用激活器,而只是返回default(T)值,否则它调用Activator.CreateInstance方法。

于 2011-07-15T14:27:53.300 回答
1

是的。它适用于引用类型。

在以下发布编译的代码上使用 ILSpy:

    public static void DoWork<T>() where T: new()
    {
        T t = new T();
        Console.WriteLine(t.ToString());
    }

产量

.method public hidebysig 
    instance void DoWork<.ctor T> () cil managed 
{
    // Method begins at RVA 0x2064
    // Code size 52 (0x34)
    .maxstack 2
    .locals init (
        [0] !!T t,
        [1] !!T CS$0$0000,
        [2] !!T CS$0$0001
    )

    IL_0000: ldloca.s CS$0$0000
    IL_0002: initobj !!T
    IL_0008: ldloc.1
    IL_0009: box !!T
    IL_000e: brfalse.s IL_001b

    IL_0010: ldloca.s CS$0$0001
    IL_0012: initobj !!T
    IL_0018: ldloc.2
    IL_0019: br.s IL_0020

    IL_001b: call !!0 [mscorlib]System.Activator::CreateInstance<!!T>()

    IL_0020: stloc.0
    IL_0021: ldloca.s t
    IL_0023: constrained. !!T
    IL_0029: callvirt instance string [mscorlib]System.Object::ToString()
    IL_002e: call void [mscorlib]System.Console::WriteLine(string)
    IL_0033: ret
} // end of method Program::DoWork

或者在 C# 中:

public void DoWork<T>() where T : new()
{
    T t = (default(T) == null) ? Activator.CreateInstance<T>() : default(T);
    Console.WriteLine(t.ToString());
}

JIT 将为传入的每个不同的值类型参数创建不同的编译指令,但将对引用类型使用相同的指令——因此 Activator.CreateInstance()

于 2011-07-15T14:26:34.763 回答