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.

So there is that great lib called OverLoad (link to downloadable svn directory, lib is header only). it can accept functions of any types into it and automatically decide which one you are calling. It is like boost function but better. Here are 2 code samples (browser can view boost svn) one two. and here is my code that does not compile and is based on them:

#include <string>

#include <boost/detail/lightweight_test.hpp>

#include <boost/overload.hpp>

using boost::overload; 

template<class out, class in>
out foo(in O )
{
    std::cout << "yes we can!";
    return out();
}

int main()
{
    //// works
    //overload<int (int ), int (std::string )> f;
    //// works
    //int (*foo1) (int ) = &foo<int, int>;
    //int (*foo2) (std::string ) = &foo<int, std::string>;
    //f.set(foo1);
    //f.set(foo2);
    // or we can use
    //// does also work
    //f.set<int (int )>(&foo<int, int>);
    //f.set<int (std::string )>(&foo<int, std::string>);
    ////

    overload<int (int ), int (std::string ), std::string (std::string) > f;
    //// but when we do this
    //f.set<int (int )>(&foo<int, int>);
    //f.set<int (std::string )>(&foo<int, std::string>);
    //f.set<int (std::string )>(&foo<std::string, std::string>);
    //// or this:
    int (*foo1) (int ) = &foo<int, int>;
    int (*foo2) (std::string ) = &foo<int, std::string>;
    std::string (*foo3) (std::string ) = &foo<std::string, std::string>;
    f.set(foo1);
    f.set(foo2);
    f.set(foo3);
    //// we get compile error

    BOOST_ASSERT( f(0) == 1 );
    BOOST_ASSERT( f("hi") == 2 ); // here we get Error  1   error C3066: there are multiple ways that an object of this type can be called with these arguments

    return boost::report_errors();
}

So I wonder how to get around this issue?

share|improve this question
1  
@myWallJSON as I'm sure you've noted by now, starting questions with phrases like so there is this grate lib XXXX is not cool on SO. Could you try to put more effort into formatting/presenting your questions? You seem to be asking a lot, without wanting to put in much effort to make the questions palatable. Thanks for your consideration! –  sehe Dec 2 '11 at 0:19

1 Answer 1

up vote 1 down vote accepted

Overload resolution only considers the parameter types; it does not consider the return type. So, during overload resolution, int (std::string) is indistinguishable from std::string(std::string).

Since this library has to rely on the C++ language's overloading capabilities, it too cannot distinguish between the two functions.

share|improve this answer

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.