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i want to embed a function written in python into c++ code.
My python code is:test.py

def func(x=None, y=None, z=None):  
  print x,y,z  

My c++ code is:

module = import("test");  
namespace = module.attr("__dict__");  

//then i want to know how to pass value 'y' only.  
module.attr("func")("y=1") // is that right?
share|improve this question

I'm not sure Boost.Python implements the ** dereference operator as claimed, but you can still use the Python C-API to execute the method you are intested on, as described here.

Here is a prototype of the solution:

//I'm starting from where you should change
boost::python::object callable = module.attr("func");

//Build your keyword argument dictionary using boost.python
boost::python::dict kw;
kw["x"] = 1;
kw["y"] = 3.14;
kw["z"] = "hello, world!";

//Note: This will return a **new** reference
PyObject* c_retval = PyObject_Call(callable.ptr(), NULL, kw.ptr());

//Converts a new (C) reference to a formal boost::python::object
boost::python::object retval(boost::python::handle<>(c_retval));

After you have converted the return value from PyObject_Call to a formal boost::python::object, you can either return it from your function or you can just forget it and the new reference returned by PyObject_Call will be auto-deleted.

For more information about wrapping PyObject* as boost::python::object, have a look at the Boost.Python tutorial. More precisely, at this link, end of the page.

share|improve this answer

a theoretical answer (no time to try myself :-| ):

boost::python::dict kw;
kw["y"]=1;
module.attr("func")(**kw); 
share|improve this answer
    
It seems not ok. i can't understand what the '**kw' really means. but i have solved this problem by a little trick by calling like this 'module.attr("func")('',"1")'. thanks anyway! – yelo Jul 8 '11 at 9:27
    
boost::python imitates the ** operator on dictionary which unpacks dictionary into function arguments (see tutorial) The problem with your solution is that you depend on position of that particular argument, and need to have both parts of code in sync. – eudoxos Jul 10 '11 at 17:13
    
@eudoxos Can you point to the boost-python doc which mentions this? I couldn't find at boost.org/doc/libs/1_54_0/libs/python/doc/v2/dict.html – balki Aug 30 '13 at 23:24
1  
They don't seem to be documented, though you find object_core::operator* returning args_proxy, and args_proxy::operator* returning kwds_proxy in boost/python/object_core.hpp. The call operator is then defined as object operator()(detail::args_proxy const &args) const; and object operator()(detail::args_proxy const &args, detail::kwds_proxy const &kwds) const;, which corresponds to func(*args) and func(*args,**kw) in python respectively. (Whoever downvoted my correct answer, can I get some explanation? I can improve it.) – eudoxos Sep 1 '13 at 19:38
3  
PS the credit for me discovering * and ** in boost::python goes to stackoverflow.com/a/6526185/761090. – eudoxos Sep 1 '13 at 19:41

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