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Program to implement the is_same_type type trait in c++

I want my template function to do something differently based on whether the two typenames are equal or not:

template <typename T1, typename T2> f()
{
  if (T1==T2) ...;
  else ...;
}

I know "if(T1==T2)" is not gonna working, but, is there a way to do it?

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marked as duplicate by NPE, Donal Fellows, Pankaj Kumar, Soner Gönül, Ragunath Jawahar Dec 1 '12 at 9:49

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.

1  
1  
@NPE this is not a duplicate IMHO. Properly applying is_same is different from just implementing it. What if he will be doing T2 t; T1 *u = &t; in the true branch? Compilation will fail if he uses above if for types char and int respectively. –  Johannes Schaub - litb Nov 30 '12 at 23:16
    
@JohannesSchaub-litb: You're right. Can't undo the vote, but will cease casting close votes for the rest of the day. :) –  NPE Nov 30 '12 at 23:19

5 Answers 5

You can check the boost::is_same or std::is_same in C++11.

So, it would be something like this:

template <typename T1, typename T2> f()
{
  if (boost::is_same<T1,T2>::value) ...;
  else ...;
}
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Is there a difference between those two that you decided to use boost instead? –  0x499602D2 Nov 30 '12 at 23:48
    
Not really. I am simply more familiar with boost, as it had worked long before C++11. –  CygnusX1 Dec 1 '12 at 8:16

If the types can be inferred and are not being explicitly passed, you could make two separate functions:

template<typename SameType>
void f(SameType x, SameType y)
{
    // ...
}

template<typename T1, typename T2>
void f(T1 x, T2 y)
{
    // ...
}
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Specialize the template

template<typename T1, typename T2>
void f()
{
  //The else part goes here
}

template<typename T>
void f()
{
  //The if part goes here
}
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downvoter wants to elaborate on what's wrong? –  StoryTeller Nov 30 '12 at 22:55
    
For the second one, don't you mean just template<typename T>? The version you just posted does not compile. –  SplinterOfChaos Nov 30 '12 at 22:55
    
@SplinterOfChaos, I do... shuold have proof read it one more time –  StoryTeller Nov 30 '12 at 22:56
    
It is not a specialization, it is overloading. –  demi Nov 30 '12 at 23:34

You can compare the typeid of T1 and T2

#include <typeinfo>

template <typename T1, typename T2> void f()
{
    bool a;
    if (typeid(T1) == typeid(T2))
        a = true;
    else
        a = false;
}
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1  
While it is also a solution, note that typeid is resolved at run time. It introduces performance overhead and both branches will be present in the function. I believe the compile-time evaluation of the condition is preferred. –  CygnusX1 Nov 30 '12 at 22:58
2  
And it will not work for f<int, const int> or f<const int&, int&&> since the typeid for all of them is equal. –  Johannes Schaub - litb Nov 30 '12 at 23:01
#include <type_traits>

template <typename A, typename B> void f() {

    if ( std::is_same<A, B>::value ) {

        //

    }

}

std::is_same returns a typedef of a boolean (true, false) depending on the equlity of the types A and B

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