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Possible Duplicate:
Why do these two pointer subtractions give different results?

char arr[] = "stackoverflow";
char *p1 = arr;
char *p2 = arr + 3;
printf("%d",  (int*)p2 - (int*)p1);

it's answer is 0..Can you explain why is it so ?

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    Please make sure the code is compilable first... – kennytm May 31 '12 at 17:31
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Because p2 - p1 is < sizeof (int). So (int *) p2 - (int *) p1 == 0, the number of int elements between the two pointers.

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  • thnx man ,I got it !! woo I just missed da part :) – vijay Jun 1 '12 at 5:21
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Because you're invoking implementation-defined/undefined behaviour. An int is probably of size 4 on your platform, so at least one of those pointers is not correctly aligned.

In practice, it's probably because the compiler is doing something like (p2 / 4) - (p1 / 4) under the hood.

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  • ...or even (p2-p1) & ~3 :-) – Sergey Kalinichenko May 31 '12 at 17:33
  • Where does ~3 come from? – Kylo May 31 '12 at 17:44
  • Isn't it just flat-out undefined behaviour? You're attempting pointer arithmetic on invalid pointers, period. – Kerrek SB May 31 '12 at 17:44
  • @Kylo: I'm implying that the compiler throws away the 2 lsbs of each value. Although actually division would make more sense here, so I've edited the answer. – Oliver Charlesworth May 31 '12 at 18:21
  • @KerrekSB: Not sure. I'm hedging my bets now! – Oliver Charlesworth May 31 '12 at 18:29
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I think what you probably meant to do is:

printf("%d",  (int)(p2 - p1));

But this does not even require a conversion because the difference between two pointers returns a signed integral type (ptrdiff_t) so you can leave out the typecast and change "%d" to "%td".

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    If you omit the cast you need to use the t length modifier: printf("%td", p2 - p1); The %d is for an int argument. – ouah May 31 '12 at 18:02

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