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Code:

class A {
  std::vector<int> x = {2,3};                 // x[0] = 2 and x[1] = 3
  std::vector<int> y = std::vector<int>(2,3); // x[0] = 3 and x[1] = 3 Too verbose!!  
};

Is there a way that I can call the constructor of std::vector<int> only using brace initializer, or at least shorter version which gives the same effect?

I don't want to repeat std::vector<int>.

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1  
What's wrong with using a constructor initializer list? –  ildjarn Jul 11 '12 at 17:46
    
@ildjarn I think I don't understand what you mean? Could you explain more specifically? My English is not very good. –  Sungmin Jul 11 '12 at 17:48
    
@Sungmin: It would be: class A { std::vector<int> y; public: A() : y(2,3) {} }; –  Ben Voigt Jul 11 '12 at 17:49
    
@Ben Voigt: Thank you, I understand now. It is perfectly fine. But I just want to use non-static member initializer. This will improve the readability of my code a lot :). –  Sungmin Jul 11 '12 at 17:55

2 Answers 2

up vote 4 down vote accepted

Is there any hack I could use?

If your only goal is to not having to "explicitly" specify the type twice you could use decltype to provide some aid in your quest:

class Obj {
  std::vector<int> v1 = decltype(v1) (2,3);
};

Also remember that typedef/using is a great way of not having to type1 so much:

struct Obj {
   using VInt = std::vector<int>;
// typedef std::vector<int> VInt;

   VInt v = VInt (3,2);
};

1. pun not intended


What does the standard say about it?

Sadly the standard says the following about initializing members within the body of your class:

9.2/5 Class members [class.mem]

A member can be initialized using a brace-or-equal-initializer. (For static data members, see 9.4.2; for non-static data members, see 12.6.2).

We've already found a little hint about what is and what is not okay to do when initializing members, but to be 100% sure we should continue reading up on what a brace-or-equal-initializer really is.

8.5/1 Initializers [dcl.init]

... brace-or-equal-initializer: = initializer-clause braced-init-list initializer-clause: assignment-expression braced-init-list initializer-list: initializer-clause ...opt initializer-list , initializer-clause ...opt braced-init-list: { initializer-list ,opt } { }

With the above specification of braced-or-equal-initializer we found that we are faced with two options when initializing members within the body of our class, using either a = together with an initializer-clause, or a braced-init-list on it's own.

The above boils down to either of these two:

struct Obj {
  Type foo = Type (1,2,3); /* example of an initializer-clause */
  Type bar        {1,2,3}; /* example of a  braced-init-list   */
};

braced-init-list looks awesome, let's use it!

Since std::vector<...> accepts a std::initializer_list in one overload of it's constructors we cannot use a braced-init-list to invoke the constructor taking two arguments (size_type count, const T& value), because that will instead be used as the contents of our vector.

We are therefore stuck with using a initializer-clause.

See the previous hack for a confirming, but maybe not so obvious, solution.

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Huh? For default initialization, you don't need any initializer. –  Ben Voigt Jul 11 '12 at 17:55
1  
Members will be default-initialized if they don't appear in the constructor initializer list -- putting them in the constructor initializer list with only () as the initializer is value-initialization, not default-initialization. –  ildjarn Jul 11 '12 at 18:06
1  
@refp : Your wording is extremely confusing then. ;-] –  ildjarn Jul 11 '12 at 18:15
1  
"members set to have a default value in the body of an object requires the use of = when declaring them." sounds like you're referring to default-initialization, so if you think it's clear, you're wrong. –  ildjarn Jul 11 '12 at 18:17
1  
I would have upvoted it if it wouldn't say that it requires =. That's wrong, it just doesn't allow (...). –  Johannes Schaub - litb Jul 11 '12 at 22:09

The dreamy solution..

If you just don't want to repeat std::vector, how about

class A
{
    auto y = std::vector<int>(2,3);
};

This is not allowed, the Standard says (7.1.6.4) [dcl.spec.auto]:

The auto type-specifier can also be used in declaring a variable in the condition of a selection statement or an iteration statement , in the type-specifier-seq in the new-type-id or type-id of a new-expression, in a for-range-declaration, and in declaring a static data member with a brace-or-equal-initializer that appears within the member-specification of a class definition.

Probably they forgot to update this line when brace-or-equal-initializer syntax was added to non-static members.

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1  
Your compiler should throw an error in your face if you try to use the above.. –  Filip Roséen - refp Jul 11 '12 at 17:54
    
@Ben Voigt: Is it valid? Actually gcc 4.7 generates errors. –  Sungmin Jul 11 '12 at 17:57
    
hmm.. are you sure about that? –  Filip Roséen - refp Jul 11 '12 at 17:57
2  
You quoted it yourself; "in declaring a static data member" –  Filip Roséen - refp Jul 11 '12 at 17:58
    
@refp: Oh drat, that looks like a future improvement to the Standard. –  Ben Voigt Jul 11 '12 at 17:59

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