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Using Boost::Python, the normal mechanism for wrapping functions works correctly with C++ functions returning void. Unfortunately, the normal mechanism also has limitations, specifically with regards to the function arity it supports. So I need to use boost::python::raw_function to wrap my function, but it doesn't compile when my function returns void. Here's a simple test case:

#include <boost/python.hpp>
#include <boost/python/raw_function.hpp>

void entry_point(boost::python::tuple args, boost::python::dict kwargs) {  }

  boost::python::def("entry_point", boost::python::raw_function(&entry_point));

Which gives the error:

/usr/local/include/boost/python/raw_function.hpp: In member function ‘PyObject* boost::python::detail::raw_dispatcher::operator()(PyObject*, PyObject*) [with F = void (*)(boost::python::tuple, boost::python::dict)]’:

/usr/local/include/boost/python/object/py_function.hpp:94: instantiated from ‘PyObject* boost::python::objects::full_py_function_impl::operator()(PyObject*, PyObject*) [with Caller = boost::python::detail::raw_dispatcher, Sig = boost::mpl::vector1]’

void.cpp:8: instantiated from here

/usr/local/include/boost/python/raw_function.hpp:36: error: invalid use of void expression

For the moment, I can work around this by having my function return a dummy value, but that's somewhat unsatisfying. Have other people run into this problem?

share|improve this question
You can get around the arity issues with the normal method by #define-ing the BOOST_PYTHON_MAX_ARITY macro. –  Matthew Scouten Nov 8 '10 at 19:32
Thanks for pointing this out. I'm doing this now instead of raw_function, it turns out to be faster on my machine. –  Bryan Catanzaro Nov 29 '10 at 5:57

1 Answer 1

up vote 1 down vote accepted

I think this is the way that raw_function() works. It expects your function to return a Python object.

In Python the closest thing you will get to a function returning void is a function returning None. I think that approach would be best (and not even that ugly) in your case:

#include <boost/python.hpp>
#include <boost/python/raw_function.hpp>

using namespace boost::python;

  object entry_point(tuple args, dict kwargs) 
    return object();

  def("entry_point", raw_function(&entry_point));
share|improve this answer
Thanks, this is exactly what I was hoping to see. –  Bryan Catanzaro Nov 6 '10 at 22:14

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