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What a title, suppose I have a map like this:

std::map<int, int> m;

and if I write the following

cout<<m[4];
  • What will be the result (0, uninitialized, compiler specific)?
  • Does the same applies for pointers (i.e. std::map)?

EDIT:
To clarify, in this question I am seeking for standard behavior.

Thanks in advance, Cem

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1 Answer 1

up vote 3 down vote accepted

The value will be what the default constructor for the type creates, because new spots are filled using T(). For int, this is 0. You can see this for yourself:

#include <iostream>

using namespace std;

int main() {
    cout << int() << endl; // prints 0
}

Initializing a type like with empty parentheses like this is called value initialization (see ildjarn's comment below).

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Pedantically, this is called value-initialization. –  ildjarn Aug 5 '11 at 0:00
    
What about pointers? Any ideas? –  Cem Kalyoncu Aug 5 '11 at 0:00
    
@ildjarn which part, exactly, is called that? –  Seth Carnegie Aug 5 '11 at 0:00
3  
@Seth : Initializing a type with an empty set of parenthesis. The concept is defined in §8.5; see this answer for the standardese. –  ildjarn Aug 5 '11 at 0:02
1  
@Cem well, that other answer pretty much says it all. To value-initialize an object of type T means: ...(class types)... otherwise, the object is zero-initialized. Also, implementations don't use T_ x;, they insert T_(), which is value-initializing a new object. –  Seth Carnegie Aug 5 '11 at 0:14
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