0

I was trying the below code snippet. Please help me in understanding how the o/p is coming as 2? What does p[-2] mean here?

int main(void){
    int ary[4] = {1, 2, 3, 6};

    int *p = ary + 3; 

    printf("%d\n", p[-2]); 
}
1
5

ary is an array of four ints. This will be put in memory like this:

 |  1  |  2  |  3  |  6  |
    ^     ^           ^
    |     |           |
   ary  p - 2         p

By saying p = ary + 3, you're setting p to the address of the fourth element in the array. So, p is pointing to 6. p[-2] is equal to *(p - 2). That means you point p to the second element in the array, and access its value: 2.

4
  • you mean simple mathematics...p= arr+3; p-2 => arr+3-2 => arr+1 => arr[1].....Correct me If I am wrong.
    – alisha
    Dec 5 '14 at 13:11
  • Exactly, you got it right! Please accept an answer if it helped you.
    – bzeaman
    Dec 5 '14 at 13:13
  • ary is an array of 4 ints, instead of a pointer to an array of 4 ints.
    – mch
    Dec 5 '14 at 14:16
  • Thanks, edited it. Feel free to edit anything if needed.
    – bzeaman
    Dec 5 '14 at 14:19
0

int *p = ary + 3 points to ary[3] so if you move the pointer two steps back you will get ary[1]

1
  • @deviantfan Sorry for the incorrect index. Dec 5 '14 at 13:13

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