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Consider the following programm,

#include<stdio.h>
int main()
{
    int marks[]={20,65,45,68,89};
    int *x,*y;
    x=&marks[2];
    y=&marks[4];
    printf("%p\n%p\n"x,y);
    printf("%p\n%p\n",y-x,*y-*x);
    return 0;
} 

When I want to print out the value of y-x, the console should give me a output equal to the difference between the addresses of the corresponding pointers. After all, we know that x and y are having addresses ('some integer value'). However it is not so. Why?

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What is the output you get? –  Felix Kling Mar 29 '11 at 11:46
1  
can you rephrase and remove the blockquote? and why are you calling stackoverflow sir? –  Joseph Le Brech Mar 29 '11 at 11:46

5 Answers 5

up vote 0 down vote accepted

the console must give me a output equal to the difference between the addresses of the corresponding pointers

... and it does. For me, it outputs 2. If you compare the addresses, you see that they are separated by 8 bytes, which is 2 ints, which is the answer you sought.

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Pointer subtraction does not simply subtract the addresses but rather return the distance between two array elements (in terms of arary elements).

So y - x is not a pointer but an integer of the value 2 - and to printf it, you shold use %d formatting, now %p.

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Technically we don't know if the format is %d either, that depends on how big ptrdiff_t is. –  Bo Persson Mar 29 '11 at 12:26

If you print the differences using %p, you will probably get something that's a bit hard to read.

The proper way is probably to use %lu, and cast:

printf("%lu\n", (unsigned long) (y - x));

Printing the integer quantity *y - *x as %p seems totally confused.

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Just for clarification (to the OP): Subtracting two pointers to the same object by definition will yield a intptr_t type R value. So this typecast is not neccesary to convert a pointer to an integer type, but to make sure, that the integer yielding from the pointer arithmetic is properly passed to any interpreted by printf. –  datenwolf Mar 29 '11 at 12:24

The result of subtraction of 2 pointers in the same array is the distance between those pointers in array, so y-x should equal 2 in your example.

To get difference between addresses cast them to some integer before substracting:

printf("%d",(size_t)y-(size_t)x);
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y-x will evaluate to 2 - since the distance in between them is 2 ints.

If you print e.g. (char *) y - (char *) x you will get the distance in characters

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