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What clause in the C++11 Standard does allow me to eliminate the A in the return statement in the A::operator-() below? In other words, if I replace the expression return A{-a.i, -a.j}; by return {-a.i, -a.j}; the code compiles and executes correctly. I'd like to know how does that work, using the Standard, if possible?

#include <iostream>

struct A {
    int i;
    int j;
    A(int n, int m) : i(n), j(m) {}
};


A operator-(A a) { return A{-a.i, -a.j}; }

int main()
{
    A a(1, 2);
    A b = -a;
    std::cout << b.i << "  " << b.j << '\n';
}
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But that doesn't answer how the constructor for A is invoked with the expression return { -a.i, -a.j };. –  user2337207 Jan 18 at 22:27
    
Yes, that's in [stmt.return]/2, see n.m's answer. (N.B. that's not an expression.) –  dyp Jan 18 at 22:29
    
Because you says in the function declaration that you are returning an A object, so the compiler constructs an A object by taking the list. –  texasbruce Jan 18 at 23:13

2 Answers 2

up vote 2 down vote accepted

This is described in paragraph #3 of section 8.5.4 List-initialization of the C++ Standard

— Otherwise, if T is a class type, constructors are considered. The applicable constructors are enumerated and the best one is chosen through overload resolution (13.3, 13.3.1.7). If a narrowing conversion (see below) is required to convert any of the arguments, the program is ill-formed.

End below there is an example

struct S {
// no initializer-list constructors
S(int, double, double); // #1
S(); // #2
// ...
};
S s1 = { 1, 2, 3.0 }; // OK: invoke #1
S s2 { 1.0, 2, 3 }; // error: narrowing
S s3 { }; // OK: invoke #2
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Which bullet point in paragraph 3 are you referring to? –  user2337207 Jan 18 at 22:34
    
Never mind. I've got it. Thanks. –  user2337207 Jan 18 at 22:37
    
It has no number but it has a unique text.:) –  Vlad from Moscow Jan 18 at 22:37
1  
This answer is the detail of what "copy-list-initialization" means. n.m.'s answer tells us why "copy-list-initialization" is used in this code. –  Ben Voigt Jan 18 at 22:47
    
@user2337207 This is not the correct paragraph. It has nothing to do with return statements. As Ben commented, if you look at n.m's answer, you will see the correct answer. –  0x499602D2 Jan 18 at 22:56

6.6.3/2

A return statement with a braced-init-list initializes the object or reference to be returned from the function by copy-list-initialization (8.5.4) from the specified initializer list. [ Example:

    std::pair<std::string,int> f(const char* p, int x) {
      return {p,x};
    }

— end example ]

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+1 This is the right clause. –  0x499602D2 Jan 18 at 22:48

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