0
#include<stdio.h>

int main(void)
{
    int a[3]={1,2,3};
    printf("%d",a[4]);
}

The output of this program is 0 even if I haven't initialized a[4]. As an array which is initialized, I should get an error if i try to it.

What could be the reason for that?

  • 2
    The problem of a[4] is not it's uninitialized. It's outside the bound of the array. – Yu Hao May 31 '14 at 15:25
  • Accessing a position out of bounds for an array is undefined behavior. – Mauren Jun 1 '14 at 23:33
4

You are reading beyond the end of the array. It just happens to have a value of zero. What happens when you do this is undefined by the c language. Your compiler and runtime can do anything they want in this case, including returning 0 or giving you an error.

1

In single line: the result will be indeterminate.

6.7.9 Initialization (p10):

If an object that has automatic storage duration is not initialized explicitly, its value is indeterminate.

3.19.2: indeterminate value

either an unspecified value or a trap representation

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