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I have a piece of code written in C where some pointer arithmetic is performed. I would like to know how the output comes to be this?

#include <stdio.h>  
int main()
{
    char arr[] = "gookmforgookm";
    char *ptr1 = arr;
    char *ptr2 = ptr1 + 3;
    printf ("ptr2 - ptr1 = %d\n", ptr2 - ptr1);
    printf ("(int*)ptr2 - (int*) ptr1 = %d",  (int*)ptr2 - (int*)ptr1);
    getchar();
    return 0;
}

Output is below:

ptr2 - ptr1 = 3  
(int*)ptr2 - (int*) ptr1 = 0
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1  
interesting. I'll try to find a solution. +1 –  ApprenticeHacker Dec 14 '11 at 7:41

5 Answers 5

up vote 6 down vote accepted

Strictly speaking, you're invoking undefined behaviour and any result that the program produces is OK according to the C standard.

However, you're probably on a machine where sizeof(int) == 4 (as opposed to say, 2). Since there are 4 bytes to an integer, two addresses which are 3 bytes apart are part of the same integer, so the difference between the addresses is 0 * sizeof(int). You might find a different answer if you chose ptr1 = arr + 1;, or you might not. But that's the beauty of undefined behaviour - it would be 'right' either way.

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Wouldn't it rather be wrong either way? :) –  Lundin Dec 14 '11 at 9:53

After the subtraction you need to divide the result in the size of the pointed type.

(int*)ptr2 - (int*)ptr1 == (0x1000003 - 0x1000000) / sizeof(int)
(int*)ptr2 - (int*)ptr1 == (0x1000003 - 0x1000000) / 4 == 0
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Thanks @MByD But suppose my statment is like this printf ("(char*)ptr2 - (char*) ptr1 = %d", (char*)ptr2 - (char*)ptr1); and ptr1 and ptr2 are of type int in start then will we divide or mutliply ? –  Amit Singh Tomar Dec 14 '11 at 8:01

ptr1 and ptr2 are both char * type, that means one byte one pointer.

char *ptr2 = ptr1 + 3;

so

ptr2 - ptr1 = 3

Next, you cast both pointer to type int *, int type need 4 byte, so both pointer aim at the same int, both pointer have the same value through the memory align, you get the 0 result.

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When you subtract two pointers, as long as they point into the same array, the result is the number of elements separating them.

Pointer Subtraction and Comparison

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I am more interested in looking for the answer for second part!! –  Amit Singh Tomar Dec 14 '11 at 7:45

The memory addresses of the elements of the same array are always sequential. i.e if the memory adress of myarray[0] is:

 0x4000000

then the memory address of myarray[2] will definitely be

 0x4000002

So when you store the address of arr into ptr1 assume it to be x , and then when you make the address of ptr2, three units higher than ptr1, it will be x+3. So when you subtract ptr1 from ptr2 the answer will be:

(x+3) - x = 3

Hence the answer.

In the second printf() statement, if you want it to display the same result as above (3), you have to convert the pointer to int and not int*.

char *myvar; // given contents somewhere
int addr = (int)myvar; // addr now = the char pointer

So In your case:

printf ("(int)ptr2 - (int) ptr1 = %d",  (int)ptr2 - (int)ptr1);
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