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I cannot find information about a behavior of sizeof (at least in gcc 4.6+). The following code works and produces the "expected" result (4, 1, 8), but I'm wondering why. I checked several questions but none show an example like this one.

#include<iostream>

int f1(int) {
  return 0;
}

char f2(char) {
  return 0;
}

double f3() {
  return 0;
}

int main() {
  std::cout << sizeof(f1(0)) << std::endl;
  std::cout << sizeof(f2('0')) << std::endl;
  std::cout << sizeof(f3()) << std::endl;

  return 0;
}

An answer would be much appreciated. Thanks.

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4 Answers 4

up vote 4 down vote accepted

The sizeof operator can take a type or an expression as an argument and returns the size of its argument. You're using expressions, so it returns the size of those expressions. The expression is not evaluated at run-time — so the functions are never invoked. But the correct (overloaded) function is used to determine the size of the result.

In a (now-deleted) comment, user1919074 said:

sizeof(f1) would not work

Brain fart

In C, sizeof(f1) would work since it would return the size of a pointer to function.

The sizeof() operator can't be applied direct to a function name. It has special rules, and when applied to an array, the normal 'decay' to a pointer doesn't occur. Similarly, the change of a function name to a function pointer doesn't occur with sizeof(). (Of course, you have to poke GCC hard with -pedantic to get it to give the warning/error; otherwise, it returns 1 as the size of the function.)

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That's right. I found a description of the behavior in en.cppreference.com/w/cpp/language/sizeof .Still, the syntax looks funny to me, since the function is, of course, never called. Thanks. –  user1919074 May 10 '13 at 14:37
    
Uhmm, not really. sizeof(f1) wiuld produce an error like "error: ISO C++ forbids applying ‘sizeof’ to an expression of function type [-fpermissive]", as explained also in other answers in this forum –  user1919074 May 10 '13 at 14:46
    
Actually this reference en.cppreference.com/w/cpp/language/sizeof clearly states sizeof cannot be used with function types and it does indeed produce the error mentioned above coliru.stacked-crooked.com/… –  Shafik Yaghmour May 10 '13 at 14:55
    
@ShafikYaghmour: I goofed, and was fixing up my answer when you commented. –  Jonathan Leffler May 10 '13 at 15:10
    
No problem, you still got my +1 yours was the first answer that actually explained how it works –  Shafik Yaghmour May 10 '13 at 15:12

What is happening in the functions

int f1(int) {
  return int(0);
}

char f1(char) {
  return char(0);
}

double f1() {
  return double(0);
}

What is happening later.

std::cout << sizeof(int(0)) << std::endl;
std::cout << sizeof(char('0')) << std::endl;
std::cout << sizeof(double(0)) << std::endl;

Because you are printing the sizeof the value of what is returned from the function

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I don't think this is what's happening. "std::cout << sizeof(double(U())) <<std::endl;" where U is some class gives an error. The expression is evaluated (compile time) and the right function is found. It's not 'char('0'), it's 'return of f1(char)'. –  user1919074 May 10 '13 at 15:04

ISO/IEC 14882 on C++ says (section 5.3.3 - page 79): says

"The size operator shall not be applied to an expression that has function or incomplete type,..."

Also notice the compilation warning with the -pedantic option enabled...

warning: invalid application of 'sizeof' to a function type
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f1 returns an integer which takes 4 bytes.
f2 returns a character which takes 1 byte.
f3 returns a double which takes 8 bytes.

So all sizeof() does is return the size of its argument.

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