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 am embedding python in my C++ application, using boost python.

I would like to be able to call a boost python function object, and associate a global name space with that function call. Specifically, the simplified relevant code is:

bp::object main = bp::import("__main__");
bp::object main_namespace = main.attr("__dict__");


//Put the function name runPyProg in the main_namespace

bp::object PyProg = exec(
        "import cStringIO\n"
        "import sys\n"
        "sys.stderr = cStringIO.StringIO()\n"
        "def runPyProg(exp):\n"
        "    print exp\n"
        "    exec(exp)\n"
        "    return\n"
        "\n",main_namespace);

//Now call the python function runPyProg with an argument

bp::object py_fn = main.attr("runPyProg");
py_fn(expStr)

I know that when I use the boost python exec() function, I can send in the global namespace, as shown above. My question is how do I associate main_namespace with the python function when I call py_fn? My final goal is that local variables from runPyProg will be placed in the main_namespace.

Thank you.

share|improve this question

1 Answer 1

up vote 2 down vote accepted

If I understand the question correctly, then it should be as simple as specifying the context in which exec will execute. A function or method can access the namespace in which it is defined via globals(). Thus, calling globals() from within runPyProg() will return the Python equivalent of main_namespace. Additionally, exec takes two optional arguments:

  • The first argument specifies the dictionary that will be used for globals(). If the second argument is omitted, then it is also used for locals().
  • The second argument specifies the dictionary that will be used for locals(). Variable changes occurring within exec are applied to locals().

Therefore, change:

exec exp

to

exec exp in globals()

and it should provide the desired behavior, where exp can interact with global variables in main_namespace.


Here is a basic example:

#include <boost/python.hpp>

int main()
{
  Py_Initialize();

  namespace python = boost::python;
  python::object main = python::import("__main__");
  python::object main_namespace = main.attr("__dict__");

  //Put the function name runPyProg in the main_namespace
  python::exec(
    "def runPyProg(exp):\n"
    "    print exp\n"
    "    exec exp in globals()\n"
    "    return\n"
    "\n", main_namespace);

  // Now call the python function runPyProg with an argument
  python::object runPyProg = main.attr("runPyProg");

  // Set x in python and access from C++.
  runPyProg("x = 42");
  std::cout << python::extract<int>(main.attr("x")) << std::endl;

  // Set y from C++ and access within python.
  main.attr("y") = 100;
  runPyProg("print y");

  // Access and modify x in python, then access from C++.
  runPyProg("x += y");
  std::cout << python::extract<int>(main.attr("x")) << std::endl;
}

Commented output:

x = 42          // set from python
42              // print from C++
                // y set to 100 from C++
print y         // print y from python
100             //
x += y          // access and modify from python
142             // print x from C++
share|improve this answer
    
Thank you Tanner, that solution worked well! –  user773494 May 13 '13 at 21:39
    
So I've realized that if I have a C++ class PyExpression, and each instance of the class calls boost python exec() to execute its own expression, then all instances are actually using the same global namespace. Is there a way to keep the scope of the namespace to each C++ instance of PyExpression? When I try passing in a boost::python::object that is not initialized to main.attr("dict"), the exec() throws an error. –  user773494 May 14 '13 at 14:45
    
@user773494: Namespaces are just dictionaries in Python. Either update runPyProg to accept the namespace in which it will execute the expression (likely the __dict__ object on the PyExpression instance), or use the inspect module to extract the desired namespace from the stack. –  Tanner Sansbury May 14 '13 at 15:05
    
Would you be able to point me to a working example of sending in the dict of PyExpression? Having trouble finding anything online. I have essentially exposed the PyExpression class using BOOST_PYTHON_MODULE(PyExpression) { } I am importing the module and obtaining the namespace as such bp::object thisExpModule = bp::object( (bp::handle<>(PyImport_ImportModule("PyExpression"))) ); and bp::object instance_namespace = thisExpModule.attr("__dict__"); When I send in instance_namespace, it works ok as a dictionary namespace, but again all instances of PyExpression modify the same object. Tnx! –  user773494 May 14 '13 at 21:50
    
@user773494: Python modules are essentially singletons due to the import behavior. If you had a Foo class in the PyExpression module, then PyExpression.__dict__ is the module namespace. On the other hand, with a, b = PyExpression.Foo(), PyExpression.Foo(), a.__dict__ and b.__dict__ are namespaces specific to each instance. If you need more help to get a working example, then consider creating a new question with the relevant pieces of code. –  Tanner Sansbury May 15 '13 at 13:29

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.