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I wrote my own atexit method, the problem is, everything passed in is 1. When I attempted to print the address before providing it to my atexit, the compiler generated the following warning:

void dummy() will always evaluate as 'true'

void atexit(void(*func)(void))
{
   cerr << func << endl; // prints 1
   // store func for later
}

void dummy()
{
   cout << "dummy()\n";
}

cerr << &dummy << endl; // prints 1, generates warning
atexit(&dummy);

Why is it always trying to pass true instead of the address? Note: if it matters, the real code is trying to pass the address of a class' static private member function (singleton).

EDIT

I don't care what the address is printed as, this is an example. What I am trying to figure out is why the address is passed as a boolean to atexit and thus is always 1.

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closed as too localized by steveo225, Drew Dormann, Adrian Panasiuk, nvoigt, Roman C Jun 7 '13 at 7:20

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1  
You should call your function something else because cstdlib already defines an atexit function. –  Praetorian Jun 6 '13 at 15:06
    
it is under a namespace, so it won't collide. Why doesn't anybody ever understand simple examples –  steveo225 Jun 6 '13 at 15:08
1  
cast the function pointer to void*, if your implementation supports that –  Balog Pal Jun 6 '13 at 15:11
1  
Umm, stdlib.h defines atexit under the global namespace. Including cstdlib doesn't automatically guarantee that is no longer the case. But, by all means, feel free to ignore advice. –  Praetorian Jun 6 '13 at 15:12
    
No, I made a namespace and added my own atexit within it –  steveo225 Jun 6 '13 at 15:13

1 Answer 1

operator<< for ostream doesn't have an overload that takes a function pointer, so the bool overload is selected. The function pointer is passed fine, it's only converted to 1 for printing (which is why the warning relates to the line where you print it, not the line where you pass it).

AFAIK there is no portable way to print a function pointer, other than to print the bytes of its object representation.

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That maybe true, but printing an address does not default to printing 1 (like when I do in atexit where it is clearly not a boolean), and if I try to use 'func,' the application seg faults, because 1 is not a valid address. This isn't about printing, this is really about the address being passed as 1 –  steveo225 Jun 6 '13 at 15:06
1  
@steveo225: you'll have to show real code. In your example code, func is not equal to 1 and it can be called no problem. –  Steve Jessop Jun 6 '13 at 15:08
    
The real code is thousands of lines of code, I can show a better example, but I can't guarantee it will behave like what I am seeing. –  steveo225 Jun 6 '13 at 15:10
3  
@steveo225: then you're going to have to do some work before the question can be answered. Unless someone is able to guess what mistake you've made without seeing your real code, which happens surprisingly frequently. If you can produce an SSCCE (sscce.org) then people can look at what you've done wrong instead of guessing. If there's a bug somewhere in your thousands of lines of code, then for all we know it's because of memory corruption, the problem could be almost anything. –  Steve Jessop Jun 6 '13 at 15:12
3  
@steveo225: And how many of those addresses are function pointers? Printing an ordinary pointer works just fine, it's only function pointers and the like which don't. –  Grizzly Jun 6 '13 at 16:03

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