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Is it possible to prevent a C++ template being used without specialization?

For example, I have

template<class T>
void foo() {}

And I don't want it to be used without being specialized for foo<int> or foo<char>.

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1  
Uh, just don't use a template? –  DarenW Sep 11 '12 at 2:55
1  
@DarenW: You can have specialized templates that are still generic, e.g. template<typename T> void foo<T*>() is specialized for any pointer type. –  Kevin Ballard Sep 11 '12 at 2:56

3 Answers 3

up vote 7 down vote accepted

You should be able to declare the function without actually defining it in the generic case. This will cause a reference to an unspecialized template to emit an Undefined Symbol linker error.

template<class T>
void foo();

template<>
void foo<int>() {
    // do something here
}

This works just fine for me with clang++.

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You can use undefined type in body of function:

template<class T> struct A;  
template<class T>  
void foo()  
{  
   typename A<T>::type a;  //undefined type!!!
   cout << "foo()\n";  
}  
template<>  
void foo<int>()  
{  
   cout << "foo<int>\n";  
}  
template<>  
void foo<char>()  
{  
   cout << "foo<char>\n";  
}  
int main()  
{  
  foo<int>();  
  foo<char>();  
//  foo<double>();   //uncomment and see compilation error!!!
}  
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It's possible when foo function have parameter. for example: template void foo(T param){} now, u can call foo(1), foo('c') without specializing.

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