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Is there a way to wrap a C++ function that returns an object (value not pointer or reference) using move semantics without copying the object?

Example:

I have a function that creates a large object A and returns it using its move constructor:

class A {
public:
  A( A&& );
};

A createA() 
{
  // creates A here
  return std::move(A);
}

In C++, I can avoid copying A by "moving" it out of the function. Now, I need to wrap A and createA in Python using boost python. As far as I can tell, when a function returns an object, boost python would automatically invokes A's copy constructor. If I don't provide a copy constructor for A, compilation fails. My question is whether there is way to "move" the object into Python world without copying.

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please what???? –  Andreas Jung Sep 28 '13 at 2:47
    
Did you want it to a return a reference to the object? –  jab Sep 28 '13 at 2:50
    
Please give a concrete, specific example of what you're looking for. FYI, in return x, Python never copies x. –  Tim Peters Sep 28 '13 at 2:50
    
Can you be more specific, please? Also, posting your code would be helpful. –  Brian Sep 28 '13 at 3:04
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1 Answer

You might be trying to return a value to a new function. For instance:

def get_three():
    value = 3
    return value

def square(x):
    square = x * x
    return square

print square(get_three())

>> 9

You don't have to set the value of get_three temporarily, like this:

three = get_three()
print square(three)

You can just pass the function straight in.

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