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I have this code in C:

int tab[10] = {3, 10, 5, 7, 9, 4, 9, 4, 6, 8, 0};
printf("(int*)&tab[0]=%p (int*)&tab[1]=%p (int*)&tab[1]-(int*)&tab[0]=%d\n", (int*)&tab[0], (int*)&tab[1], ((int*)&tab[1]) - ((int*)&tab[0]));

And it returns:

(int*)&tab[0]=0xbf9775c0 (int*)&tab[1]=0xbf9775c4 (int*)&tab[1]-(int*)&tab[0]=1

What I do not understand is that why the difference returned is 1 instead of 4 at the end. Could anyone tell me a way to print them (addresses and their difference) in a coherent way for (int *)?

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2 Answers 2

up vote 2 down vote accepted

Because you're doing pointer arithmetic. And pointer arithmetic is always done in units of whatever the pointer is pointing to (which in this case is 4, because sizeof(int) == 4 on your system).

If you want to know the difference in raw addresses, then either multiply the result of the subtraction by sizeof(int), or cast the pointers to char * before doing the subtraction.

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1  
Or simply cast them to int before subtracting. –  Lundin May 11 '11 at 16:20
    
@Lundin: Assuming sizeof(size_t) < sizeof(int), then yes! –  Oliver Charlesworth May 11 '11 at 16:21
3  
@Oli - I think you mean intptr_t, not size_t, in your comment. –  Carl Norum May 11 '11 at 16:27
    
@Carl: Yes, I suppose I did! –  Oliver Charlesworth May 11 '11 at 16:28
    
Thank you very much... I understand better... –  SoftTimur May 11 '11 at 16:34

Because

((int *) &tab[1]) - ((int *) &tab[0])
=> &tab[1] - &tab[0]
=> (tab + 1) - tab
=> 1

On the other hand

((intptr_t) &tab[1]) - ((intptr_t) &tab[0])
=> ((intptr_t) (tab + 1)) - ((intptr_t) tab)
=> sizeof (int)

where intptr_t is defined in stdint.h (from the C99 standard library).

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