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Consider a header file whose contents are either

namespace foo
{
    static bool const exists = false;
}

or

namespace foo
{
    static bool const exists = true;
    typedef some_other_possibly_incomplete_type my_type;
}

(Assume this header file is given to me as-is and cannot be changed.)

Now consider this typedef:

typedef get_my_type_or_default<foo::exists, void>::type my_type_or_default;

The goal is to have my_type_or_default evaluate to foo::my_type if foo::exists, or void otherwise.

Is it possible to define get_my_type_or_default in a way that makes this work, or is this impossible? If this is possible, how can I do it?

share|improve this question
    
@dyp: I can't modify the header, so if you can do that without modifying the header then sure. Otherwise no. –  Mehrdad Aug 1 at 21:17
    
@dyp: Oh, I misunderstood what you meant. That's a good point. The problem is the typedef is not necessarily a complete type, even though I made the mistake of making it so in my example (edit: I fixed it to show what I mean). –  Mehrdad Aug 1 at 21:18
    
@dyp: Well I don't know what its name might be, so I wouldn't know how to refer to it. –  Mehrdad Aug 1 at 21:24
    
@dyp: Ahh! That's a brilliant answer, please post it!! :) –  Mehrdad Aug 1 at 21:30

1 Answer 1

up vote 4 down vote accepted

Using weird name lookup tricks, unfortunately polluting the global namespace :(

namespace foo
{
    //static bool const exists = true; // we don't need this
    struct some_other_possibly_incomplete_type;
    //typedef some_other_possibly_incomplete_type my_type;
}

using my_type = void;
namespace foo
{
    using this_one_surely_exists = my_type; // either foo::my_type or ::my_type
}


#include <iostream>
template<class T>
void print_type()
{ std::cout << __PRETTY_FUNCTION__ << "\n"; }

int main()
{
    using gey_my_type_or_default = foo::this_one_surely_exists;
    print_type<gey_my_type_or_default>();
}
share|improve this answer
    
I think you can even prevent pollution of the global namespace -- use using foo; inside some other detail namespace, and define my_type to be void inside detail. :) –  Mehrdad Aug 1 at 21:34
    
@Mehrdad If you mean using namespace foo;, then I don't think that will work: using-directives behave weirdly, they introduce the names in the smallest enclosing scope that contains the current and the referred namespace (which will be either foo or the global namespace). –  dyp Aug 1 at 21:35
    
Oh wow, that's really bizarre, I didn't realize that. :( bummer. –  Mehrdad Aug 1 at 21:42

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