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I'm trying to write a template which gets the type of a functionpointer as templateargument and the corresponding functionpointer as a function argument, so as a simplyfied example I'm doing this right now:

int myfunc(int a)
{ return a; }

template<typename T, typename Func> struct Test
{
    typedef typeof(myfunc) Fun;
    static T MyFunc(T val, Func f)
    {
        return f(val);
    }
};

int main(void)
{
    std::cout<<Test<int, typeof(myfunc)>::MyFunc(5, myfunc)<<std::endl;
}

However this code instantly crashes. If I change the type of f to Fun it works perfectly. So what am I doing wrong and how can I get this to work?

I'm using mingw under windows vista if that behaviour in case that behaviour is compiler dependent.

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1  
typeof is not part of C++, so that doesn't even compile on my compiler –  Andreas Bonini Dec 19 '09 at 20:42
    
Compiles and runs perfectly here. –  Dark Falcon Dec 19 '09 at 20:44
    
typeof is a GCC extension. I assume it's not available on MSVC. –  ZoogieZork Dec 19 '09 at 20:54
    
What about decltype? –  tstenner Dec 19 '09 at 21:08
    
decltype isn't in the current version of C++, but is due in the next version. gcc generats the expected errors so long as it is in C++ mode (e.g. -std=c++98). –  Charles Bailey Dec 19 '09 at 21:45

3 Answers 3

up vote 2 down vote accepted

You don't really need the Test class for this scenario, and Why use the typeof function here?

template< typename T, typename fT > 
T TestMyFunc( T t, fT f ) {
   return f(t);
};

will do, and no fiddling with function pointer types:

std::cout << TestMyFunc(5,myfunc) << std::endl;

The template arguments are deduced automatically for functions!

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typeof isn't valid C++, but if I replace your two lines involving them with these, then your code works fine with either Fun or Func in the definition of MyFunc.

typedef int (*Fun)(int);

and

std::cout<<Test<int, int(*)(int)>::MyFunc(5, myfunc)<<std::endl;
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I was also doubting the typeof function... –  xtofl Dec 19 '09 at 20:51

That code works just fine for me!

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