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I have a class that overloads a lot of members for different types as follows:

template<typename T, typename Allocator>
Stream& operator << (Stream &Destination, const std::list<T, Allocator> &Value)

template<typename T, typename Allocator>
Stream& operator << (Stream &Destination, const std::vector<T, Allocator> &Value)

And now I'm trying to specialize it for strings.. I created an is string using:

template<typename T>
struct is_string : public std::integral_constant<bool, std::is_same<char*, typename std::decay<T>::type>::value || std::is_same<const char*, typename std::decay<T>::type>::value> {};

struct is_string<std::string> : std::true_type {};

and then I want to make it specialized as follows:

template<typename T = typename is_string<T>::value_type> //How?
Stream& operator << (Stream &Destination, const typename is_string<T>::value_type &Value)
    return Destination;

//I can do:
template<typename T = std::string> //works fine.
Stream& operator << (Stream &Destination, const typename is_literal<T>::value_type &Value)
    return Destination;

How can I fix the string one so that it works for all string types so that T is whatever string type passed?

EDIT: I'm trying to do this so that it specializes for all string types: char*, const char*, char[], const char[], std::string, etc..

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Why checking if the type is string rather than directly specializing operator << for std::string, char const* ... ? – a.lasram Aug 18 '13 at 23:39
Because I'd have to specialize for every possible type of string? std::string, const char*, char*, char[], const char[], etc..? I thought that if there was a way to do what I'm trying to do, it'd auto specialize for that type. – Brandon Aug 18 '13 at 23:41
I'm sure I'm missing something, You have overrides for Stream& operator <<() fo other types, why not a const std::string& as well? I've not tried it, admittedly, but it seems it would do what you want (I think) ? – WhozCraig Aug 18 '13 at 23:41
I edited the question. Hopefully it makes sense now? Or should I specialize for every string type? – Brandon Aug 18 '13 at 23:43
Making the traits is_string or is_literal is as complicated as overloading operator << – a.lasram Aug 18 '13 at 23:45

1 Answer 1

up vote 2 down vote accepted

I'd use something like this:

#include <type_traits>
#include <ostream>

template <typename T>
typename std::enable_if<is_string<T>::value, std::ostream &>::type
operator<<(std::ostream & o, T const & x)
    return o << x;  // or whatever

This enables the overload only if T satisfies the trait.

(You could also make all the ostream template parameters variable for additional flexibility.)

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