Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

From what I've read so far, using the FFI with C++ is very hard to accomplish. One of the biggest reasons seems to be converting C++ objects to Haskell. My problem now is that I don't have any experience with C, but a few years with C++, and also I prefer OOP. Therefore, I would naturally like to benefit from C++.

So can I write C++ programs designed to be used by the Haskell FFI to get around these problems? C++ could do anything under the hood, but the API would be C-like, i.e. I'm not exchanging objects, don't have overloaded top-level functions and so on. Are there any pitfalls to look out for?

(To compare my project with something you may be familiar with: Think of using SciPy's Weave to speed up Python code.)

share|improve this question
    
If you want to use C++, then use C++, not Haskell. Otherwise reserve FFI for interfacing with native libraries and maaaaaybe really-performance-critical code. –  Cat Plus Plus Sep 18 '12 at 11:11
1  
@CatPlusPlus Performance-critical code would be exactly what I'd be using C++ for. –  David Sep 18 '12 at 11:13
    
Except FFI is used as last resort in that. –  Cat Plus Plus Sep 18 '12 at 11:14
2  
Yes. Can we focus on my question now? –  David Sep 18 '12 at 11:19
1  
The answer is 'yes, you can use extern "C"-d functions if you're careful', and not really related to Haskell. –  Cat Plus Plus Sep 18 '12 at 11:30

1 Answer 1

up vote 10 down vote accepted

Yes, you can use C++ code via the FFI if you expose a C API on top of that C++ code.

A common pattern is to simply wrap all of a class's "methods" as C procedures, such that objects of that class can be treated as opaque pointers that those functions can be applied to.

For example, given the code (foo.h):

class foo
{
public:
  foo(int a) : _a(a) {}
  ~foo() { _a = 0; } // Not really necessary, just an example

  int get_a() { return _a; }
  void set_a(int a) { _a = a; }

private:
  int _a;
}

...you can easily create C versions of all of these methods (foo_c.h):

#ifdef __cplusplus
typedef foo *foo_ptr;
extern "C"
{
#else
typedef void *foo_ptr;
#endif

foo_ptr foo_ctor(int a);
void foo_dtor(foo_ptr self);

int foo_get_a(foo_ptr self);
void foo_set_a(foo_ptr self, int a);
#ifdef __cplusplus
} /* extern "C" */
#endif

Then, there must be some adapter code that implements the C interface via the C++ interface (foo_c.cpp):

#include "foo.h"
#include "foo_c.h"

foo_ptr foo_ctor(int a) { return new foo(a); }
void foo_dtor(foo_ptr self) { delete self; }

int foo_get_a(foo_ptr self) { return self->get_a(); }
void foo_set_a(foo_ptr self, int a) { self->set_a(a); }

The header foo_c.h can now be included in a Haskell FFI definition.

share|improve this answer
    
why void * in C? typedef struct foo* foo_ptr; works in both. –  Öö Tiib Sep 18 '12 at 23:50
    
Because foo is a class and not a struct, and if you have a C++-aware C-compiler that lets you do that, it's extremely non-standard. –  dflemstr Oct 7 '12 at 14:19
    
Every standard-compliant C++ compiler has to compile it when you address class foo as struct foo in some typedef. –  Öö Tiib Oct 8 '12 at 6:11
    
Yes, but I won't be compiling C code with a C++ compiler, especially not when the C compiler is automatically invoked by Cabal. –  dflemstr Oct 8 '12 at 9:38
    
You apparently have #ifdef __cplusplus in code so you apparently compile it with both compilers and typedef struct foo* foo_ptr; compiles into a pointer of foo in both compilers. You can not define foo in C and so you can not dereference the pointer to foo in C (or to do pointer arithmetics with it) but that you can't do with void* either. –  Öö Tiib Oct 8 '12 at 15:10

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.