65

It is well known that missing initializers for an array of scalars are defaulted to zero.

int A[5]; // Entries remain uninitialized
int B[5]= { 0 }; // All entries set to zero

But is this (below) guaranteed ?

int C[5]= { }; // All entries set to zero
7
80

The empty braced initialisation performs aggregation-initialization of the array: this leads to zero-initialization of the int elements.

Yes, this is guaranteed.

13
  • 1
    int C[5] is not a class type, so value-initialization is not performed, aggregate initialization is performed. – Holt Aug 11 '16 at 9:40
  • 1
    @Holt: and ? Does this change the conclusion ? – Yves Daoust Aug 11 '16 at 9:49
  • 2
    @Holt whether it's a class type or not does not impact whether aggregate initialization is performed. All array initialization is aggregate initialization. Also, aggregate initialization is defined such that members with no initializer are value-initialized (which is equivalent to zero-initialization, for int) – M.M Aug 11 '16 at 9:52
  • 1
    @M.M int C[5] = {} is list initialization with T = int[5], by the standard this will performs aggregate initialization, but the initial answer was mentioning value-initialization, which would be the case if T was a class type with default constructor. I just pointed out that what was happening here was aggregate initialization, not value-initialization. – Holt Aug 11 '16 at 10:02
  • 1
    I am always wondering how people know that kind of stuff. I mean how do you know that this " aggregation-initialization"? What are your sources, if I may ask? – LandonZeKepitelOfGreytBritn Mar 7 '17 at 1:27
35

Yes, according to the rule of aggregate initialization, it's guaranteed (that all elements of array C will be value-initialized, i.e. zero-initialized to 0 in this case).

(emphasis mine)

If the number of initializer clauses is less than the number of members and bases (since C++17) or initializer list is completely empty, the remaining members and bases (since C++17) are initialized by their default initializers, if provided in the class definition, and otherwise (since C++14) by empty lists, in accordance with the usual list-initialization rules (which performs value-initialization for non-class types and non-aggregate classes with default constructors, and aggregate initialization for aggregates).


PS:

int A[5]; // Entries remain uninitialized

"remain uninitialized" might not be accurate. For int A[5];, all elements of A will be default-initialized. If A is static or thread-local object, the elements will be zero-initialized to 0, otherwise nothing is done, they'll be indeterminate values.

2
  • 1
    Thanks for the PS. – Yves Daoust Aug 11 '16 at 10:14
  • Since you're quoting some formal specification (you should say which one, actually), A[5], properly, is default-initialized. – edmz Aug 11 '16 at 10:23
11

In fact when you sayint A[5] = { 0 }; you are saying: Initialize the first element to zero. All the other positions are initialized to zero because of the aggregate inizialization.

This line is the real responsible for having your array full of zeroes: int A[5] = { };

That is why if you use int A[5] = { 1 }; you will only have the first position inizialized to 1.

3
  • But OP's asking about empty initializer list. – songyuanyao Aug 17 '16 at 7:59
  • @songyuanyao already answered by other users. Just making the point more clear – rain_ Aug 17 '16 at 8:05
  • This should be the correct answer, as arrays have a different behavior for initializer lists. – Mário Feroldi Aug 22 '16 at 14:39

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.