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I read here how to wrap this macro FOOBAR in SWIG:

class foobar {
public:
    static void method() {}
};

#define FOOBAR() foobar().method()

The solution is to include this in SWIG interface:

void FOOBAR();

However, suppose I drop () so that my macro is

#define FOOBAR foobar().method()

This is still perfectly legitimate macro I can use in C++. How do I wrap this, so I can say on Python command line:

>>>FOOBAR

To clarify, since this seems to be confusing. I purposely chose the method to return nothing. I did that, so that the irrelevant question of "what is it supposed to return" is not considered. However, people still seem to want to consider it.

OK then, in C++, FOOBAR has meaning - it is a certain object, I can call FOOBAR.someMethod(). I want that on Python command line, it also be an object (the equivalent one), which will behave the same, I also want to call FOOBAR.someMethod() and have it behave the same as in C++.

I am sorry, but I assumed, that in the context of SWIG, the above explanation is obvious and unnecessary, and is contained in the abbreviation "wrap".

share|improve this question
    
You could never call a function with that syntax from Python. Python requires the (). –  Mark Tolonen Nov 9 '13 at 16:43
    
@MarkTolonen I did not say I wanted a Python function. I wrote my question very carefully and spent a lot of time making it "just right". –  Mark Galeck Nov 9 '13 at 22:09
    
From your post above: ...so I can say on Python command line >>> FOOBAR. You'd have to say >>> FOOBAR() to call something in Python. That's all I was referring to. –  Mark Tolonen Nov 9 '13 at 23:13
1  
@MarkGaleck We appreciate your attention to detail, however it is still not clear (whether a question is worded "just right" is determined from people's answers, not your opinion). So, what do you expect to see once you press enter after FOOBAR? Because in the C++ code, writing int main() { FOOBAR; } is a function call, which is why Tolonen commented as he did: in Python, a function requires '()' (in C++ too, but C++ macros can hide this, there is no such thing in Python). –  Schollii Nov 10 '13 at 1:32
    
@MarkTolonen No, I don't have to say FOOBAR(). I can say FOOBAR and as long as that variable had been assigned, no error will happen. –  Mark Galeck Nov 10 '13 at 3:39

1 Answer 1

up vote 1 down vote accepted

%pythoncode may be what you want. Example:

%module x

%inline %{
class foobar {
public:
    static void method() {}
};

#define FOOBAR foobar().method()
%}

%pythoncode %{
FOOBAR = foobar().method
%}

Result:

>>> from x import *
>>> FOOBAR
<built-in function foobar_method>
share|improve this answer
    
May very well be. Thank you. I will check it out as soon as I get to my machine. –  Mark Galeck Nov 11 '13 at 5:35

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