5

I have this piece of code that works in C but not C++, is that any way to make it work on both C and C++ ?

void foo(void* b)
{
   int *c = b;
   printf("%d\n",*c); 

}

int main ()
{
 int a = 1000;

 foo(&a);
 return 0;
}

output:

C++:

1 In function 'void foo(void*)':
2 Line 3: error: invalid conversion from 'void*' to 'int*'
3 compilation terminated due to -Wfatal-errors.

C:

1000

Please help

  • 1
    int *c = static_cast<int*>(b); – Henri Menke Apr 3 '17 at 3:39
  • 1
    You could explicitly cast it from void* to int* but that would be unnecessary in C. – Ajay Brahmakshatriya Apr 3 '17 at 3:39
  • 2
    C and C++ are different programming languages. Why do you expect to be able to write the same code working on both? – Basile Starynkevitch Apr 3 '17 at 4:31
  • Note that (even using the cast) this will cause silent undefined behaviour if you pass it a pointer that wasn't originally an int * (more or less) – M.M Apr 3 '17 at 4:54
  • You also have a (silent) error in your C code (don't know about C++). Calling a function accepting a variable number of arguments (printf) without a prototype in scope invokes undefined behaviour. Increase the warning level of your compiler(s) and mind the warnings! – pmg Apr 3 '17 at 8:26
10

invalid conversion from void* to int*

In order to make an conversion from void* to int* you will need to cast b as int* when assigning it to c. Do:

int *c = (int*) b;

This works in C++ and in C.

|improve this answer|||||
  • Yet necessary for the OP @HenriMenke . He wants C/C++ compatible code. Plus 1 vote. – Santiago Varela Apr 3 '17 at 3:41
  • @HenriMenke Thanks for pointing that out! Will do that, just give me a sec. – BusyProgrammer Apr 3 '17 at 3:42
  • Don't @ABusyProgrammer. The OP specifically said "is that any way to make it work on both C and C++ ?"... – Santiago Varela Apr 3 '17 at 3:43
  • 1
    @user54264611634646244 Thanks for the backup :) – BusyProgrammer Apr 3 '17 at 3:53
  • 1
    @David C. Rankin: This piece of code is obviously intended to serve as an experiment intended to target this very specific feature: conversion to and from void * pointers. – AnT Apr 3 '17 at 3:57
4

C allows implicit conversion between void* and any pointer to object type, C++ does not. To make your code compatible with both languages, you could type foo( (void*)&a );.

However, using void pointers is discouraged in both languages - they should only be used as a last resort. If you want the function to be type-generic in C, you'd use the _Generic keyword. In C++ you'd use templates.

|improve this answer|||||
1

Considering all the casting issues with both the languages, the correct way would be -

#ifdef __cplusplus
#define cast_to_intp(x) static_cast<int*>(x)
#else
#define cast_to_intp(x) (x)
#endif

And then use

int *c = cast_to_intp(b);
|improve this answer|||||
  • The static_cast<int> was an obvious typo. About the inherent unsafe cast, that is what is required here. I don't see how one can get around it. We can assume OP knows what he is doing and using the cast appropriately. – Ajay Brahmakshatriya Apr 3 '17 at 4:09
  • @AnT Which part do you think wont compile? – Ajay Brahmakshatriya Apr 3 '17 at 4:10
  • Casts from void * to other pointer types are inherently unsafe. And static_cast can do nothing to improve the safety of this cast. The above will only pointlessly clutter the code with unnecessary preprocessor branching and macro names. So, what does this achieve then? – AnT Apr 3 '17 at 4:14
  • If the user has made sure that the cast is correct (using some other parameter containing the enum of the type or something similar, not in this case because this is just an experimental setup), the cast would be safe. The behavior of the cast will be completely defined. – Ajay Brahmakshatriya Apr 3 '17 at 4:18
  • My question is: what is the point of your macro then and what does it achieve compared to plain and simple int *c = (int *) b;, which works in both languages? (You are still missing #endif, BTW). – AnT Apr 3 '17 at 4:26

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