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I have a question about pointers. I am beginning to grasp the concept, but this particular piece of code is threatening that understanding, and I just want to clear it up.

Please note line "B", which is printf("ptr + %d = %d\n",i, *ptr++); /*<--- B*/

I was under the impression that, since *ptr was initialized to &my_array[0], then *ptr++ (which would translate to "whatever is at the address stored in ptr, add one to it") would print out 23, which is the value at my_array[1].

Yet, it prints out the value at my_array[0], which is 1.

I'm confused as to whether the ++ adds to the address itself (like, 1004 becomes 1005) and, since the integer takes up about 4 bytes of space, it would fall into the range of my_array[0] (because that value, 1, would take up addresses 1001, 1002, 1003, 1004, and since my_array[0] starts out at 1001 and only goes up to 1002, then *ptr++ would still print out my_array[0], which is 1)...

or...

Whether *ptr++ goes from my_array[0] (which is just *ptr) to my_array[1] *ptr++, which is what I originally thought.

Basically, please explain what *ptr++ does to this program in particular. Please explain it to me as though I was a five year old.

I really appreciate it, and here's the code:

#include <stdio.h>

int my_array[] = { 1, 23, 17, 4, -5, 100 };
int *ptr;

int main(void)  
{ 
    int i;
    ptr = &my_array[0];     /* point our pointer to the first
                                  element of the array */
    printf("\n\n");
    for (i = 0; i < 6; i++)
    {
        printf("my_array[%d] = %d   ", i, my_array[i]);   /*<-- A */
        printf("ptr + %d = %d\n", i, *ptr++);   /*<--- B*/
    }
    return 0;
}
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2 Answers 2

up vote 3 down vote accepted

Change this: printf("ptr + %d = %d\n",i, *ptr++); /*<--- B*/

to this: printf("ptr + %d = %d\n",i, *(++ptr)); /*<--- B*/

When you use the postfix version if the increment operator, the value of the object before the increment is returned by value by the expression. The prefix increment operator (which the second set of code in this answer uses) will return the incremented object by reference.

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+1 for correctly describing how postfix actually works. It is honestly surprising how many people think the increment happens after the statement rather than how you described it, returning the prior value. It is one of the reasons they're most expensive to implement in languages like C++, since temp-copies of state must be made. –  WhozCraig Apr 21 '13 at 23:54
    
So *ptr++ increments after the printf, and *(++ptr) increments before the printf, which prints out the modified value. –  user2044189 Apr 22 '13 at 0:05
    
And *++ptr would be the same as *(++ptr). Thanks! –  user2044189 Apr 22 '13 at 0:07
    
For your purposes, that is what the behavior appears like, but more precisely, the expression *(ptr++) returns a copy of object that is pointed to by the unincremented *ptr and the expression *(++ptr) returns the object pointed to by the incremented *ptr by reference. –  user1167662 Apr 22 '13 at 1:24
    
There is a sequence point before the function call, so the arguments to printf() — and any function — are fully evaluated, including side-effects such as increments, before the function call is made. You can't rely on the order of evaluation of the arguments in the call (officially). There's another sequence point when the function returns. –  Jonathan Leffler Apr 22 '13 at 5:15
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*ptr++ will increment after the printf. You should use *(++p).

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