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Asked: 2026-05-25T18:58:06+00:00

I want to create a function prototype in C++ so that there is a

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I want to create a function prototype in C++ so that there is a void * argument that can take pointers of any type. I know that this is possible in C. Is it possible in C++?

[EDIT] Here is a simplified version of the code that I am trying to get to work:

#include <stdio.h>

void func(void (f)(const void *))
{
    int i = 3;
    (*f)(&i);
}

void func_i(const int *i)
{
    printf("i=%p\n",i);
}

void func_f(const float *f)
{
    printf("f=%p\n",f);
}

void bar()
{
    func(func_i);
}

And here is the compiler output:

$ g++ -c -Wall x.cpp
x.cpp: In function ‘void bar()’:
x.cpp:21: error: invalid conversion from ‘void (*)(const int*)’ to ‘void (*)(const void*)’
x.cpp:21: error:   initializing argument 1 of ‘void func(void (*)(const void*))’
$ %
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1 Answer

  1. Editorial Team

    Yes.

    int i = 345;
void * ptr = &i;
int k = *static_cast&lt int* &gt(ptr);


    UPDATE ::
What you have shown in the code certainly cannot be done in C++.
Casting between void and any other must always be explicitly done.

Check these SO link for more details on what the C -standard has to say:
1) http://stackoverflow.com/questions/188839/function-pointer-cast-to-different-signature
2) http://stackoverflow.com/questions/559581/casting-a-function-pointer-to-another-type

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