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Where and why do I have to put the “template” and “typename” keywords?

There appears to be a bug in GCC 4.5.3:

#include <type_traits>

template <bool isFundamentalType, bool isSomething>
struct Foo
{
    template <typename T>
    static inline void* Do(size_t size);
};

template <>
struct Foo<true, false>
{
    template <typename T>
    static inline void* Do(size_t size)
    {
        return NULL;
    }
};

template <>
struct Foo<false, false>
{
    template <typename T>
    static inline void* Do(size_t size)
    {
        return NULL;
    }
};

class Bar
{
};

template <typename T>
int Do(size_t size)
{
    // The following fails
    return (int) Foo<std::is_fundamental<T>::value, false>::Do<T>(size);
    // This works -- why?
    return (int) Foo<false, false>::Do<T>(size);
}

int main()
{
    return Do<Bar>(10);
}

Compiled with g++ bug.cpp -std=c++0x

Errors:

bug.cpp: In function ‘int Do(size_t)’:
bug.cpp:37:65: error: expected primary-expression before ‘>’ token

Is there a known workaround that would allow me to side step this issue?

EDIT: MSVC 2010 managed to compile this just fine.

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marked as duplicate by Xeo, Pubby, iammilind, Bo Persson, j0k Oct 31 '12 at 17:36

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Short answer: Foo<...>::template Do<T>(size). –  Xeo Oct 31 '12 at 4:28

1 Answer 1

up vote 2 down vote accepted

You need to add template:

return (int) Foo<std::is_fundamental<T>::value, false>::template Do<T>(size);

MSVC 2010 compiles the code because it doesn't handle templates correctly.

Side Note

MSVC also injects size_t into the global namespace because of a long withstanding bug. Technically you need to include the proper header on other compilers.

share|improve this answer
    
#include <type_traits> already does that. Someone was trying to be funny and screwed up my post by editing it. –  Zach Saw Oct 31 '12 at 4:37
1  
Why does this work though - return (int) Foo<false, false>::Do<T>(size); –  Zach Saw Oct 31 '12 at 4:37
1  
@ZachSaw Foo isn't dependent on the template parameters there I believe. –  Pubby Oct 31 '12 at 4:39
    
@ZachSaw: In your second example, the compiler knows that Do is a template member function, however in your first example, it doesn't know that Do is a member template because the interpretation depends on std::is_fundamental<T>::value. Also, #include <type_traits> does not have size_t. As seen here: error: 'size_t' was not declared in this scope. –  Jesse Good Oct 31 '12 at 4:46
    
@JesseGood: But GCC 4.5.3 compiles the example perfectly fine? –  Zach Saw Oct 31 '12 at 4:48

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