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Hi guys I'm new to C++ (and SO) and was wondering why I'm always getting output as 1 when I print this function. Okay here's the code:

#include <iostream>
using namespace std;

int main() {
    int x(int());
    cout << x; // 1
}

It always prints out one. Why? I was expecting it to output 0 as ints are defaulted to 0. So why 1?

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3  
You do know that x is not an int, right? You seem to, but its not entirely clear from your question... –  K-ballo Dec 29 '12 at 1:23
    
@K-ballo i know that. It's a function right? –  Me myself and I Dec 29 '12 at 1:25
    
Then why would you expect it to print 0? What does value initialization of ints have to do with that? –  K-ballo Dec 29 '12 at 1:26
    
@K-ballo I was thinking maybe int functions are 0 by default –  Me myself and I Dec 29 '12 at 1:29
1  
In fact, your code should not even link... There is no definition for that function declaration. –  K-ballo Dec 29 '12 at 1:31

2 Answers 2

up vote 1 down vote accepted
int x(int());

is a case of "most vexing parse"; you think it's a declaration of an int (int x) initialized to the default value for ints (int()); instead, the compiler interpret it as a declaration of a function returning an int which takes as a parameter a (pointer to) function that takes no parameters and returns an int (you can get hairy declarations explained by this site, or gain some more understanding about C type declarations here).

Then, when you do:

cout << x;

x here decays to function pointer, but there's no overload of operator<< that takes a function pointer; the simplest implicit conversion that gives some valid overload of operator<< is to bool, and, since a function pointer cannot have a 0 (NULL) value, it is evaluated to true, which is printed as 1.

Notice that I'm not entirely sure that such a code should be compiled without errors - you are taking the address of a function that is only declared and not defined; it is true that it cannot be evaluated to anything other than true, but in line of principle you should get a linker error (here masked by the optimizer, that removes any reference to x, since it isn't actually used).


What you actually wanted is:

int x=int();
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The function is being converted to bool and is being printed as a bool value. The function is at a non-zero address, and so the conversion produces true.

This is a standard conversion sequence consisting of a function-to-pointer conversion followed by a boolean conversion.

The sequence is followed because there is no better overloaded operator<<.

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Why would that happen? int() returns 0 (just tested), which would be casted to false anyway. –  slugonamission Dec 29 '12 at 1:23
3  
@slugonamission: int x(int()); declares x as a function (returning int and taking an int(*)() argument). In this situation, x is not an int, and int() is not an int temporary. –  Mankarse Dec 29 '12 at 1:27
    
Time for me to go back to read the language spec. Cheers :) –  slugonamission Dec 29 '12 at 1:28

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