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Ive been working with Python and C++ together for some time, but never tried to implement what follows:

Id like the python user to be able to write something like:

def foo(a,b):
    return a+b

myclass.myfunc(foo)

where myclass is a c++ class exposed to python with Boost.Python, with one of its methods (myfunc) that takes a function with:

int func(int,int)

signature, and only that.

Is this possible?

Im thinking about declaring:

myclass::myfunc(boost::python::object)

and extracting the typedef'ed function signature, but im just guessing..

maybe there's a better/feasible way to do this, maybe with some 'function' object?

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maybe a better title would have been 'python function as parameter to boost::python c++ exposed class' –  user815129 Nov 20 '11 at 8:46
1  
This is an interesting question and I'm curious to see the answer. –  Omnifarious Nov 20 '11 at 9:19
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1 Answer 1

up vote 2 down vote accepted

You pretty much guessed the answer. Python functions are indeed just boost::python::object instances. You can then just have a boost::function<int (int, int)> and put the Python object inside that.

I just installed my OS and I don't have Boost yet, so I can't test it, but I think it will work if you just do this (without any wrapper functions):

void function(boost::function<int (int, int)> func) {
    // ...
}

// And then you expose the function as you normally would

I expect the above to work; if it doesn't this surely will:

void function_wrap(boost::python::object func)
{
    auto lambda = [func](int a, int b) -> int {
        return boost::python::extract<int>(func(a, b));
    };
    function(boost::function<int (int, int)>(lambda));
}

// And then you expose the wrapper, not the original function
share|improve this answer
    
that is what i was after.. ill test it asap and post results, thank you –  user815129 Nov 20 '11 at 10:06
    
Interesting. What does ::boost::python do if func is not a callable? I presume ::boost::python::object has a templated version of operator () to make this work. –  Omnifarious Nov 20 '11 at 11:32
    
@Omnifarious Yes, there's a templated operator(). In case the object is not callable there's an exception thrown (I can't remember what it was called) — pretty much the same thing that happens when you try to call an uncallable object in Python. –  Paul Manta Nov 20 '11 at 11:36
    
@PaulManta: ::boost::python is almost scary in how well it's put together. –  Omnifarious Nov 20 '11 at 11:43
    
@Omnifarious Indeed. I guess you could call it inspiring how hard it it is use the Python C API and yet how easy it is to use Boost.Python. –  Paul Manta Nov 20 '11 at 11:52
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