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I'm wondering what's the proper syntax for calling template method given as:

struct print_ch {
    print_ch(char const& ch) : m_ch(ch) { }
    ~print_ch() { }
    template<typename T>
    void operator()() {
        std::cout << static_cast<T>(m_ch) << std::endl;
    }
    private:
    char m_ch;
};

I came up with sth like this:

print_ch printer('c');
printer.operator()<int>();

And it seems to work (GCC 4.5), but when I use it inside another templated method, e.g.:

struct printer {

    typedef int print_type;

    template<typename T_functor>
    static void print(T_functor& fnct) {
        fnct.operator()<print_type>();
    }

};

Compilation fails with error: expected primary-expression before '>' token. Any idea to get it right? Thanks in advance.

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4  
It's much cleaner to just create a regular function. Operators should be used sparingly and when appropriate. – JoshD Oct 22 '10 at 19:26
    
@JoshD thanks, seems you're right, I'll need to reconsider this – erjot Oct 22 '10 at 19:29
    
Indeed, overloading operator() doesn't make sense here, because it can't be called with the same syntax as a regular function, which completely defeats the purpose. – UncleBens Oct 22 '10 at 20:18
up vote 7 down vote accepted

You have to tell the compiler explicitly that the operator() of the templated fnct is itself a template:

fnct.template operator()<print_type>();

If you don't specify this with the template keyword the compiler will assume that operator() is just a normal method, not a template.

share|improve this answer
    
exactly that, now it looks so obvious - thanks! – erjot Oct 22 '10 at 19:30

Since T_functor is itself a template, the compiler (or parser) assumes to know nothing about it's members, so you have to explicetly tell it you are calling a template methode using:

        fnct.template operator()<print_type>();
share|improve this answer

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