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struct MyClass {
  int foo () { return 0; }
};

unsigned int size = sizeof(MyClass::foo);  // obviously error

Can we apply sizeof() to member methods from outside the class ? Do we need to declare object to get it ?

Edit: I know that above code will give error (that's why word 'obviously'). Wanted to know if we can at all apply the sizeof() to a member method. I don't want to describe the use case for that in length.

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6  
Why do you need the size of a function? –  Jesus Ramos Jul 25 '11 at 6:53
2  
Note that you can't apply sizeof to a static member as it has function type anyway. –  Luc Danton Jul 25 '11 at 6:56
5  
@iammilind: That's nonsense code. You might want to explain what you are trying to do, rather that asking how to pursue your current attempt at doing it. That said, I don't see how the downvotes are justified. (The same goes for the close-vote.) –  sbi Jul 25 '11 at 6:59
4  
5.3.3 [expr.sizeof] "The sizeof operator shall not be applied to an expression that has function or incomplete type, or to an enumeration type before all its enumerators have been declared, or to the parenthesized name of such types, or to an lvalue that designates a bit-field." ... "The sizeof operator can be applied to a pointer to a function, but shall not be applied directly to a function." ... "The lvalue-to-rvalue (4.1), array-to-pointer (4.2), and function-to-pointer (4.3) standard conversions are not applied to the operand of sizeof." –  Charles Bailey Jul 25 '11 at 7:01
4  
@iammilind: That tends to happen with arbitrary nonsense code. Which is exactly why I was asking what you, actually, tried to achieve. –  sbi Jul 25 '11 at 7:02

4 Answers 4

up vote 6 down vote accepted

You cannot obtain the size of a member-function, but you can obtain the sizeof a pointer-to-member-function:

int size = sizeof( &MyClass::foo );

The same goes for non-member functions (and static member functions), the size of the function cannot be obtained. It might be misleading because in most contexts, the name of the function decays automatically into a pointer to the function basically in the same way that an array decays to a pointer to the first element, but as in the case of arrays, sizeof does not trigger the decay and that in turn means that you have to ask for the pointer explicitly.

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I think it's more helpful to refer to &MyClass::foo as a pointer-to-member. Pointers to member functions are a special case of pointer to members and are very different to "normal" function pointers. –  Charles Bailey Jul 25 '11 at 7:18
    
Actually, I meant to applying sizeof() operator to the function. In my edit I misspelled as sizeof function. Which I have edited now. –  iammilind Jul 25 '11 at 7:18
2  
@Charles: I do agree that in general pointer-to-member, but in this particular case the special case is not because it is a member, but because it is a function, the same issue would arise with a non-member function sizeof( f ) would fail to compile in the same way. I don't think the standard makes a distinction when dealing with functions versus member-functions with respect to the sizeof operator. I have edited anyway hoping that it might be clear, if it is not feel free to edit or telling me. And thanks! –  David Rodríguez - dribeas Jul 25 '11 at 7:38

iirc this would return size of function pointer anyways, so why do that? Or am I mistaken?

Edit: I was mistaken, this is invalid code, event if function were out of class. All you can do with sizeof and function is get size of function pointer(which you need to make first). If you want to get size occupied by function code you'll need some other way to get that.

Some further reading: http://msdn.microsoft.com/en-us/library/4s7x1k91(v=vs.71).aspx

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Use

sizeof(int (MyClass::*)())

since you're taking the "size of a member function pointer of MyClass that returns int and takes no arguments".

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+1. I think its correct. –  Nawaz Jul 25 '11 at 7:01
    
So do we need to mention the return type explicitly; that's same as sizeof(int). Is there a way by which we can write the name of the function and find it ? –  iammilind Jul 25 '11 at 7:04
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@iammilind: No (unless you have C++0x), because the entire point of member function pointers is to avoid naming them. :) In C++0x you can infer the type, though, but I don't know exactly how to do it. –  Mehrdad Jul 25 '11 at 7:05
4  
@iammilind: You can just do sizeof(&MyClass::foo) if you're happy knowing the size of the pointer-to-member object. –  Charles Bailey Jul 25 '11 at 7:05

Wanted to know if we can at all find the sizeof() a member method.

No, because the C++ language doesn't have such a concept. Or the size of any kind of function.

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If you see my original post, I mentioned applying sizeof() to function –  iammilind Jul 25 '11 at 7:17
    
@iammilind I have no idea what you mean. –  Luc Danton Jul 25 '11 at 7:20
    
See how is_base_of::value is defined here: stackoverflow.com/questions/2910979/how-is-base-of-works –  iammilind Jul 25 '11 at 7:22
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@iammilind sizeof is never applied to any function there. It's applied to a function call. –  Luc Danton Jul 25 '11 at 7:24
    
@iammilind: many traits templates use the size of the return type of a function call to determine their truth or falseness... combining this with SFINAE, or the allowed implicit conversion of false but not true to a pointer, is particularly useful in that varying which function is matched, and hence the return type, varies the size of the return type.... –  Tony D Jul 25 '11 at 8:01

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