6

Where I have this struct,

struct
AAA
{
    AAA() : bbb(2)
    {
        // ccc ???
    }

    int bbb = 1;
    int ccc = bbb;
};

AFAIK, if there's an initialization-list :bbb(2), the expression bbb = 1 will be ignored. And then, it's vague to me what ccc will become finally.

Which one of initialization-list or brace-or-equal initializer would be evaluated first? What's the rule between them?

  • 1
    Why don't you check it? – klm123 Nov 30 '13 at 17:45
  • 4
    @klm123 I don't think specific implementation would guarantee the actual rule. – Eonil Nov 30 '13 at 17:46
  • @KateGregory Hm, knowing of you I'd be daring to imply that you're wrong, but how would that combine with §12.6.2.9? :) – Joachim Isaksson Nov 30 '13 at 18:14
  • 1
    @JoachimIsaksson in a prelease version of VS2013 I got warnings for doing both. However I just checked with the release version and it looks like only the :() one happens and the nonstatic member init does not happen. No substitute for testing :-) – Kate Gregory Nov 30 '13 at 18:21
11

The rule was always that fields are always initialised in order of declaration, and C++11 didn't change that. That means bbb's initialiser runs first, then ccc's initialiser runs. It doesn't matter whether either initialiser is specified on the field or as part of the constructor.

12

The C++11 draft §12.6.2.9 says;

If a given non-static data member has both a brace-or-equal-initializer and a mem-initializer, the initialization specified by the mem-initializer is performed, and the non-static data member’s brace-or-equal-initializer is ignored.

[ Example: Given

struct A {
  int i = /∗ some integer expression with side effects ∗/ ; 
  A(int arg) : i(arg) { }
  // ...
};

the A(int) constructor will simply initialize i to the value of arg, and the side effects in i’s brace-or- equal-initializer will not take place. — end example ]

Since initialization is done in declaration order (§12.6.2.10) with the addition of this rule, the value of bbb and ccc will both be 2.

  • +1 Always a right quote is much better. – deepmax Nov 30 '13 at 18:08
  • I think the paragraph that immediately follows is more relevant. p9 doesn't actually say anything about the order of initialisation between bbb and ccc, it just says bbb isn't initialised twice. – user743382 Nov 30 '13 at 18:11
  • @hvd Quoting the question, Which one of initialization-list or brace-or-equal initializer would be evaluated first?, although I agree both rules are important. – Joachim Isaksson Nov 30 '13 at 18:13
  • @JoachimIsaksson Ah, I see how you read the question. I thought the OP meant the initialization-list (bbb) or brace-or-equal-initializer (ccc), not the initialization-list (bbb) or brace-or-equal-initializer (bbb, ccc). – user743382 Nov 30 '13 at 18:15
  • 1
    @MM. p9 doesn't say "and then", it's p10 that says that. If you reverse the declarations of bbb and ccc, first ccc=bbb runs (undefined behaviour, in practice sets ccc to an unpredictable value), and only then bbb=2. – user743382 Nov 30 '13 at 18:18

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