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I understood that int x{}; is a kind of default-initialization, but is it exactly the same as writing int x = 0; ?

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up vote 17 down vote accepted

The result is same in this case.

int x{}; is a kind of default-initialization

Not exactly. See default initialization.

int x{}; is value initialization (since C++11),

This is the initialization performed when a variable is constructed with an empty initializer.

And the effects of value initialization in this case (i.e. neither class type nor array type) are:

4) otherwise, the object is zero-initialized.

Finally the effects of zero initialization in this case are:

If T is a scalar type, the object's initial value is the integral constant zero explicitly converted to T.

As @PaulR mentioned, there's a difference that int x{}; is only supported from c++11, while int x = 0 has not such restriction.

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4  
Isn't it true that int x{} is supported in C++11 and later only though ? For people who need to write portable code that works with older C++ standards might not there be a case for preferring int x = 0 ? – Paul R Mar 10 at 9:13
1  
@PaulR Added as the difference between them. – songyuanyao Mar 10 at 9:21

In this case they are identical. int x{} will initialise x in the same way as static int x would; i.e. to zero. That said, I find int x = 0 clearer and it has the benefit that it works with older C++ standards.

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They are both the exact same thing. They will both be initialized to 0.

#include <iostream>
#include <string>
using namespace std;

int main()
{
  int y{};
  int x = 0;

  cout << "y: " << y << endl;
  cout << "x: " << x << endl;

  return 0;
}

OUTPUT:

y: 0
x: 0
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9  
Please consider improving this answer by adding relevant references, which explain that output of this code follows standard, rather than being caused by undefined behavior. – Ville-Valtteri Tiittanen Mar 10 at 10:09

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