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.

I have some C++ data structures where a templated outer struct has an internal struct. Depending on the template parameter the internal structs may or may not be the same type. When I expose the structures to python using boost.python I want to be able to refer to the inner classes as Outer.Inner. In my boost.python exposing code I should only expose each distinct inner type once. I can query the boost.python registry to avoid exposing the same inner class more than once but what should I do to make a previously exposed inner class an attribute of its outer class? The question might be clearer given this stripped down example:

#include <boost/python.hpp>

struct inner {
};

template< typename T >
struct outer {
    typedef inner inner_t;

    static const char * name();

    static
    void expose() {
        using namespace boost::python;

        class_< outer< T > > outer_class( name() );

        // check if inner type is in registry already
        const type_info inner_info = boost::python::type_id< inner_t >();
        const converter::registration * inner_registration
            = boost::python::converter::registry::query( inner_info );
        if( inner_registration == 0 || inner_registration->m_to_python == 0 ) {
            // not already in registry
            scope outer_scope( outer_class );
            class_< inner_t > inner_class( "Inner" );
        } else {
            // already in registry because exposed via different outer
            // what to put here? In python we need Outer.Inner to exist
        }
    }
};

template<>
const char *
outer< int >::name() { return "IntOuter"; }

template<>
const char *
outer< double >::name() { return "DoubleOuter"; }

BOOST_PYTHON_MODULE( inner_classes )
{
    outer< int >::expose();
    outer< double >::expose();
}

Here's the python code that I would like to run:

import inner_classes as IC

IC.IntOuter.Inner
IC.DoubleOuter.Inner

For completeness here's a Jamroot to compile the above:

import python ;
use-project boost : $(BOOST_ROOT) ;

project : requirements <library>/boost/python//boost_python ;

python-extension inner_classes : inner-classes.cpp ;

install install
  : inner_classes 
  : <install-dependencies>on <install-type>SHARED_LIB <install-type>PYTHON_EXTENSION 
    <location>. 
  ;

local rule run-test ( test-name : sources + )
{
    import testing ;
    testing.make-test run-pyd : $(sources) : : $(test-name) ;
}
run-test test : inner_classes test_inner_classes.py ;
share|improve this question

1 Answer 1

up vote 0 down vote accepted

Turns out it is quite straightforward once you know how as is the usual case with boost.python. In python this worked:

IC.DoubleOuter.Inner = IC.IntOuter.Inner

but wasn't the solution I was looking for. In C++ this works:

scope outer_scope( outer_class );
outer_scope.attr( "Inner" ) = handle<>( inner_registration->m_class_object );

which I had already tried but hadn't realised that I needed to wrap the class object in a handle<>.

share|improve this answer

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.