53

I found code here that looked something like this:

auto f(T& t, size_t n) -> decltype(t.reserve(n), void()) { .. }

In all the documentation I read I was told that decltype is signed as:

decltype( entity )

or

decltype( expression )

And there is no second argument anywhere. At least that's what's pointed to on cppreference. Is this a second argument to decltype? And if so, what does it do?

71

Since it is an expression that comma is simply the comma operator (meaning the type is the type of the rhs side: void), not another argument.

That code is using SFINAE - it's enabled if t.reserve(n) exists but it wants to keep the return type as void.

  • 5
    @templateboy: The comma operator always springs up in the most unexpected places ;) – Matthieu M. Dec 22 '12 at 14:38
  • 9
    OMG we seriously need language constructs to not have to write such hacky tricks! O__O;;; – Klaim Dec 22 '12 at 16:54
  • 10
    @Klaim: This is a lot nicer than SFINAE usually ended up being before C++11. – Ben Voigt Dec 22 '12 at 17:36
  • 2
    @BenVoigt I agree, but this is more obscure! – Klaim Dec 22 '12 at 18:31
  • 1
    @abigagli Yes, void is an incomplete type so you can't call its "constructor" anywhere outside an unevaluated context like decltype() or sizeof(). – 0x499602D2 Oct 30 '14 at 1:17

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