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I am trying to take a pointer to an instance of function template and cast it to void*:

#include <stdio.h>

void plainFunction(int *param) {}

template <typename T>
void templateFunction(T *param) {}

int main() {
    void *addr1=&plainFunction; //OK
    void *addr2=&templateFunction<int>; //Compile error
}

I get the following error (in Visual Studio 2008)

main.cu(10) : error C2440: 'initializing' : cannot convert from 'void (__cdecl *)(T *)' to 'void *'
Context does not allow for disambiguation of overloaded function

Why is it happening? Function templateFunction (for concrete type T=int) is not overloaded. It is possible to deduct which instance of the function I am refering to.

If I replace the erroneus line with:

void (*foo)(int*)=&templateFunction<int>;
void *addr2=foo;

It compiles without a problem.

Thank you!


Update:

When normal pointer void* is replaced by dummy function pointer void(*)(), as suggested by James (thank you), it makes the error go away:

void (*addr1)()=(void(*)())&plainFunction;
void (*addr2)()=(void(*)())(&templateFunction<int>);

However, if the error was caused by casting a function-pointer to a normal pointer, the compiler should complain in both cases. It does not however, so I continue to assume that it is correct at least for this compiler. If I am not mistaken, the standard just says that function pointers don't have to be represented like normal pointers, but it does not forbid that.

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Concerning your update, it doesn't matter whether pointers to functions and pointers to objects have the same size and representation: conversion from a function pointer to void* is simply not allowed. Note that with your update, you can't call either of the functions through a void(*)() because that isn't the type of either function; you would have to cast addr1 or addr2 back to the correct type (void(*)(int*)) to make the call, otherwise the behavior is undefined. –  James McNellis Mar 11 '11 at 20:07
    
What I really need is a "function entry point" which is later passed to CUDA library. The function, I am actually taking pointer to never even exists as CPU-executable piece of code, it resides on GPU. I just stripped of CUDA-specific stuff to make my example as simple as possible and get some input from people who work with C++ but not necessairly with CUDA. And I was not mistaken to do so - your answer opened my eyes on the aspect of function pointers that I was not aware of, despite using them many times already. Thank you. –  CygnusX1 Mar 11 '11 at 20:14

2 Answers 2

up vote 11 down vote accepted

Both are technically wrong: in C++, you can't convert a function pointer to a void*.

Pointer-to-function types (like void (*)(int*) here) are a completely different class of types than pointer-to-object types (like void* here).

Visual C++ allowing the conversion at all (e.g. in void* addr1 = &plainFunction;) is a language extension (compiling with the /Za flag, which disables language extensions, causes both lines to be rejected).

The error is a bit misleading, for sure, though some other compilers are equally unhelpful (Comeau reports "error: no instance of function template "templateFunction" matches the required type").

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You are right, although usually function pointers can be casted to normal function. Correcting the question to match the standard. –  CygnusX1 Mar 11 '11 at 19:50
    
@CygnusX1: I'm not sure I understand your comment. As you've demonstrated, Visual C++ does allow you to assign the address of a function template instantiation to a function pointer. –  James McNellis Mar 11 '11 at 20:02
    
Because I meant "You are right, although usually function pointers can be casted to normal pointers". My fault. Sorry. I think one thing and write another. –  CygnusX1 Mar 11 '11 at 20:06

Compiler should generate error in both cases. Function pointers are not convertible to void* according to the Standard §4.10/2 since functions are not objects (§1.8/1). Visual Studio 2008 allows this as an extension, check this bug.

Use typedef to avoid misunderstanding:

typedef void(func)(int*); // declare func type
func* addr1 = &plainFunction;         // OK
func* addr2 = &templateFunction<int>; // OK
share|improve this answer
    
Well, VS2008 does not generate the error in the latter case. –  CygnusX1 Mar 11 '11 at 19:55
    
Oh. So you say, casting to void* is against the standard and not that its merely "doesn't have to, but may"? –  CygnusX1 Mar 11 '11 at 20:09
1  
"are not convertible" means that Standard forbids that. VS2008 is not Standard conformant compiler. You shouldn't use that bug in VS2008 if you want to keep your code portable. –  Kirill V. Lyadvinsky Mar 11 '11 at 20:15
    
I didn't know it is actually a bug. Now I know. Thank you. –  CygnusX1 Mar 11 '11 at 20:16

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