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I was trying to write a simple code which acts as sizeof (specifically for int in this code). But why is it showing 1 as output? It should be 4.

#include<stdio.h>
int SIZEOF(int *);

int main(void)
{
    int a;
    printf("Size is:%d bytes\n",SIZEOF(&a));

    return 0;
}

int SIZEOF(int *p1)
{
    int *p2;
    p2=p1;

    p1++;

    return (p1-p2);
}
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For the same reason p1++ increments by sizeof(int), p1-p2 is the difference in units of sizeof(int). Cast to char* first, which always has a size of 1. –  GManNickG Jul 16 '13 at 18:45
    
+ 1 to pointer makes it pointing to next location of its own type. (this is not increment to address value but logical increment that is very helpful in programming) Pointer arithmetic are different then value arithmetic –  Grijesh Chauhan Jul 16 '13 at 18:55
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3 Answers

up vote 6 down vote accepted

Pointer arithmetic works in units of the size of the pointed-to type. When you do p1 - p2, you get the number of int units, not the number of char units. Add some casts:

return (char *)p1 - (char *)p2;

Editorial note: SIZEOF should probably return ptrdiff_t or size_t.

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Pointer arithmetic hits again. Just like p1++ increments the pointer by 1 * sizeof(pointer), p1-p2 divides the result by sizeof(p1).

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Pointer arithmetic takes the size of the thing being pointed to into account. If you have a pointer p to an array of any data type, ++p will advance the pointer by the size of the data. When you subtract the two, the result is divided by the size.

There is no portable way to implement this without using the sizeof keyword.

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