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Considering a template function like below how is it possible to do explicitly specialize one version of function for multiple types:

template <typename T>
void doSomething(){
 //whatever
}

The intention is to have one specialization instead of multiple following ones because //something is the same:

void doSomething<int>(){
 //something
}
void doSomething<float>(){
 //something
}
void doSomething<double>(){
 //something
}

any method to achieve one specialization?

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How would you call these functions to get the desired specialization? –  IfLoop Nov 25 '10 at 19:38
    
@TokenMacGuy_Don't get what you mean! –  Pooria Nov 25 '10 at 21:51

2 Answers 2

You could just have a kind of doSomethingImpl function.

template<typename T> doSomethingImpl() {
    // whatever
}
template<typename T> doSomething() {
    // something else
}
template<> doSomething<float>() {
    doSomethingImpl<float>();
}
template<> doSomething<int>() {
    doSomethingImpl<int>();
}

It's also possible to specialize more generically, using SFINAE and std::is_numeric<T>, for example.

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You're still doing separate specializations per each type. –  Pooria Nov 25 '10 at 19:03
    
@Pooria: But you don't have to maintain the code for each of them separately. I said in my answer that if you were looking for something even more generic, you could try out std::is_numeric<T> –  Puppy Nov 25 '10 at 22:41

You can't make template function specialization. But you could delegate the implementation in a helper class, that can be used from your function. Some skeleton code:

Implement a template class and specialize it:

template< typename T, bool isArithmetic>
struct Something { void operator()() { ... } };

template< typename T, true>
struct Something { void operator()() { ... do something specialized for arithmetic types; } }

Then use it in the template function:

template< typename T>
void myFunction()
{
   Something<T, IsArithmetic<T>::value>()();
}

Where IsArithmetic is a class that provides the information about type T (selector). You can find such type info in boost libraries, for example.

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1  
You absolutely can, using enable_if and overloading. But I agree that delegating to a (specialized) struct is often cleaner. –  Konrad Rudolph Nov 25 '10 at 18:59
    
@Konrad Rudolph_In fact the only way seems to be using enable_if. –  Pooria Nov 25 '10 at 20:36
    
@Pooria: Yes - the “using enable_if and overloading” was referring to one single technique, not two different techniques. It should also be noted that behind the scenes, enable_if is merely using SFINAE in combination with specialized helper struct’s, much like in Cătălin’s example. –  Konrad Rudolph Nov 25 '10 at 20:55

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