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Suppose I have a type T:

typedef ... T;

and then I have these functions:

T f11();
T& f12();
T&& f13();
const T f21();
const T& f22();
const T&& f23();

and then call them like this:

auto x11 = f11();
auto x12 = f12();
auto x13 = f13();
auto x21 = f21();
auto x22 = f22();
auto x23 = f23();

From which sections/clauses of the C++11 standard can it be deduced the equivalent non-auto declarations of x11..x23?

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Now hold on. typedef ... T; makes any normal compiler spits out compilation errors –  BЈовић Sep 3 '12 at 7:01
1  
@BЈовић: ... in this context is a placeholder for any valid type. (not helped by the fact that ... is also valid C++ in some places) –  Andrew Tomazos Sep 3 '12 at 8:16
    
There. That was easily fixed –  sehe Sep 3 '12 at 12:04

1 Answer 1

up vote 5 down vote accepted

It is in §7.1.6.4 auto specifier. In your examples of function return types, the rules of template argument deduction apply.

Paraquoting the relevant example from the standard:

const auto &i = expr;

The type of i is the deduced type of the parameter X in the call f(expr) of the following invented function template:

template <class AUTO> void f(const AUTO& X);

So in your examples, the types of all your variables x11 to x23 are deduced as T.

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That is if template<typename T> g(T t); than g(f()) and auto t = f() would result in the same type of t in both cases? –  Andrew Tomazos Sep 3 '12 at 5:41
    
@AndrewTomazos-Fathomling the example in the standard is const auto&i = expr and template <class U> void f(const U& u);. Here, the type of i is the deduced type of u in f(expr). –  juanchopanza Sep 3 '12 at 5:52
2  
In particular, this means that the type of each deduced variable will be T. –  Luc Danton Sep 3 '12 at 6:06
2  
Maybe you should have written template <class AUTO> to make the point... :-) –  Kerrek SB Sep 3 '12 at 6:16
    
@KerrekSB I have adopted your suggestion. I wasn't to keen on modifying a quote from the standard until I discovered "paraquote". –  juanchopanza Sep 3 '12 at 12:04

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