I found such code:

template <typename T, typename T1> auto compose(T a, T1 b) -> decltype(a + b) {
   return a+b;
}

I figured with all details, that were new to me, but one. Tell me please, where can I read about, what does the arrow operator (->) mean in function heading? I guess purely logically, that -> operator determines a type, that will be gotten by auto, but I want to get this straight, but can't find information.

  • 2
    It's part of the trailing return type syntax. See stackoverflow.com/a/4113390/962089 – chris Mar 19 '14 at 18:24
  • 1
    It is not an operator but a part of the syntax. – texasbruce Mar 19 '14 at 18:30
  • In answer to "where can I read?", the C++ Spec is most authoritative. Lacking funds or desire to spend $$, the last working draft is often close enough and no-cost. These specs are highly techo-speak, so lacking familiarity with reading ISO specs, try cplusplus.com or cppreference.com or other such sites which are not authoritative, but are usually very accurate. Note: the trailing return type may be omitted beginning with C++14. – Les Sep 23 '15 at 13:56
up vote 120 down vote accepted

In C++11, there are two syntaxes for function declaration:

    return-type identifier ( argument-declarations... )

and

    auto identifier ( argument-declarations... ) -> return_type

They are equivalent. Now when they are equivalent, why do you ever want to use the latter? Well, C++11 introduced this cool decltype thing that lets you describe type of an expression. So you might want to derive the return type from the argument types. So you try:

template <typename T1, typename T2>
decltype(a + b) compose(T1 a, T2 b);

and the compiler will tell you that it does not know what a and b are in the decltype argument. That is because they are only declared by the argument list.

You could easily work around the problem by using declval and the template parameters that are already declared. Like:

template <typename T1, typename T2>
decltype(std::declval<T1>() + std::declval<T2>())
compose(T1 a, T2 b);

except it's getting really verbose now. So the alternate declaration syntax was proposed and implemented and now you can write

template <typename T1, typename T2>
auto compose(T1 a, T2 b) -> decltype(a + b);

and it's less verbose and the scoping rules didn't need to change.


C++14 update: C++14 also permits just

    auto identifier ( argument-declarations... )

as long as the function is fully defined before use and all return statements deduce to the same type. The -> syntax remains useful for public functions (declared in the header) if you want to hide the body in the source file. Somewhat obviously that can't be done with templates, but there are some concrete types (usually derived via template metaprogramming) that are hard to write otherwise.

  • very good, neat and informative reply @Jan Hudec. Thumps up. Is there something changed in C++14 as I use auto for return type in such function without the need for the -> decltype(a + b) part. Is it redundant by now or does it have other cases where it still should be used? or is it a compiler specific extension? – Shadi Apr 11 '17 at 12:04
  • 1
    @Shadi, C++14 includes N3638, which allows deduction of the return type declared as auto, without the -> notation, as long as the function is fully defined before use and all return statements deduce to the same type. The -> notation is still useful if you want to use deduction for public function while hiding the body in the source file. – Jan Hudec Apr 11 '17 at 17:19

In plain english it tells that the return type is the inferred type of the sum of a and b.

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