70

Suppose I've declared:

template <typename T> void foo(T& t);

Now, what is the difference between

template <> void foo<int>(int& t);

and

template void foo<int>(int& t);

semantically? And do template-with-no-brackets and template-with-empty-brackets have other semantics in other contexts?


Related to: How do I force a particular instance of a C++ template to instantiate?

65

template <> void foo<int>(int& t); declares a specialization of the template, with potentially different body.

template void foo<int>(int& t); causes an explicit instantiation of the template, but doesn't introduce a specialization. It just forces the instantiation of the template for a specific type.

  • 2
    That is quite confusing! I assume the meaning of the declaration is that the compiler will not accept the instantiation of the unspecialized template as a candidate, when the specialized definition is not found? – einpoklum Feb 5 '15 at 22:00
  • 2
    Explaining this a bit more: the first one can be used in a header file and it says "foo<int> will have a different body to foo<T>" ; if code elsewhere in the program calls foo<int>() but you don't provide the body then you should get alink error. – M.M Feb 5 '15 at 22:34
  • 3
    The second one should not be used in a header file; using it in one .cpp file makes sure that the body of foo<int> (which uses the foo<T> template to generate it unless you also had the specialization line!) is actually processed (It's somewhat like defining a non-template function) . Normally you don't need to do this as it happens whenever some other code calls foo<int> , but you might want to do it for a few reasons – M.M Feb 5 '15 at 22:36
  • It's less confusing if you see the <> as a special case of an empty template parameter list. In general, you use this syntax to create (possibly partial) specializations. If it happens to not have any parameters (that is, not partial) it gives you that syntax. You are still declaring a template. – JDługosz Feb 6 '15 at 8:05
  • @jdlugosz: I was under the impression that partial specialization is not supoorted... – einpoklum Feb 6 '15 at 8:42
12

With class/struct,

template <typename T> struct foo {};

Following is a specialization:

template <> struct foo<int>{};

Following is an explicit instantiation:

template struct foo<int>;

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