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How do I access a variable in C++ that has been wrapped in Python via BoostPython method like below(in this case I want to access y):

boost::python::exec("y = x", main_namespace);

Thanks in advance.

EDIT: Assume y is an integer.

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1 Answer 1

up vote 1 down vote accepted

All Python classes, functions, variables, etc. are contained in dicts. Since you seem to already have the main_namespace dict, you can just do this:

using namespace boost::python;

// .................................................

object y = main_namespace["y"];
std::string yString = extract<char const*>(y);
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Could you suggest if I want to use boost::python::ptr to accomplish the task? –  alfa_80 Aug 1 '12 at 12:30
    
No, not for something this simple. boost::python::ptr is a reference to a boost::python::object. If you just want to get a value of a variable, just go straight for the object. –  Aleksey Vitebskiy Jan 19 '13 at 3:32

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