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void ff(int){} 

void Unscribe(const boost::function<void(int)>& f)
{
    std::map<int, boost::function<void(int)> > map;

    map[0] = ff;

    if( map[0] == f)
    {

    }  
}

Unscribe( ff ); 

I would like to be able to compare two boost::function with the same signature. What should I modified to get this code compilable ?

share|improve this question
up vote 15 down vote accepted

You can't. Read the boost function FAQ's first entry:

  1. Why can't I compare boost::function objects with operator== or operator!=?

Comparison between boost::function objects cannot be implemented "well", and therefore will not be implemented. ...

share|improve this answer
    
why this cannot be implemented well? – Guillaume07 Aug 30 '11 at 14:39
3  
@Guillaume07: The rest of the FAQ entry I posted a link to explains that. I thought better of copy-pasting the entire entry into the answer – Armen Tsirunyan Aug 30 '11 at 14:40

Are you looking to compare signatures, or functor equality (that two functors point to the same underlying memory address)? If its the latter, you can use the interface provided by boost/function_equal.hpp:

Boost Function Equal

template<typename F, typename G> bool function_equal(const F& f, const G& g);
share|improve this answer
2  
Wrong answer, function_equal is only useful to allow the comparison of function wrappers (boost::function) with function objects (functors or function pointers) (see Comparing Boost.Function function objects). Comparison of two function wrappers is not possible. (I admit that the documentation is not very clear about that.) – Luc Touraille Aug 30 '11 at 16:38
    
This is what I want. – TruthSerum May 24 at 12:19

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