43

I rarely see decltype(auto) but when I do it confuses me because it seems to do the same thing as auto when returning from a function.

auto g() { return expr; }
decltype(auto) g() { return expr; }

What is the difference between these two syntaxes?

46

auto follows the template argument deduction rules and is always an object type; decltype(auto) follows the decltype rules for deducing reference types based on value categories. So if we have

int x;
int && f();

then

expression    auto       decltype(auto)
----------------------------------------
10            int        int
x             int        int
(x)           int        int &
f()           int        int &&
  • 2
    @templateboy: no, the latter would just be int. Only xvalues become rvalue references. – Kerrek SB Jan 26 '14 at 21:15
  • 2
    @templateboy: If you're just declaring a variable, auto is by far more useful (e.g. if you have auto && for a universal reference). decltype is useful when you mainly want to operate with types (not variables), e.g. in traits that check if some expression has a certain type. – Kerrek SB Jan 26 '14 at 21:18
  • 2
    @templateboy: Yes, it's always the type of the expression, possibly with references added. If the expression is a CV-qualified value, that's retained. For details, see 7.1.6.2/4 ([dcl.type.simple]). – Kerrek SB Jan 26 '14 at 21:55
  • 2
    What about if f() returned an int. Would decltype((f(x))) return int &&? – soandos Jan 26 '14 at 22:13
  • 2
    @soandos: No, then it'd be int. Only xvalues, not prvalues, become rvalue references. – Kerrek SB Jan 26 '14 at 22:30
10

auto returns what value-type would be deduced of you assigned the return clause to an auto variable. decltype(auto) returns what type you would get if you wrapped the return clause in decltype.

auto returns by value, decltype maybe not.

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