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#include <stdio.h>
#include <stdlib.h>

int main()
{
int k,*ptr=NULL;
int arr[]={1,2,3,4,5,6,7,8,9,10};
ptr=arr;
printf("%d ",*ptr++);
printf("%d ",*(ptr++));
printf("%d ",(*ptr)++);
printf("%d ",*++ptr);
printf("%d ",++*ptr);
}

Why does the second printf print the number 2 ? It should print 3.

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7  
Why should it print 3 exactly? –  Bartek Banachewicz Jun 25 '13 at 13:58
2  
You're doing post-increment instead of pre-increment. That's why it's a good idea to increment separately from doing whatever you want to do with the incremented variable. –  Jack Maney Jun 25 '13 at 13:58

7 Answers 7

up vote 1 down vote accepted

As everyone else said, the distinction is between pre-incrementing (where the increment occurs before the value is fetched) and post-incrementing (where the value is fetched and then the increment occurs). The value 2 should be printed, of course.

Maybe this assertion-laden code will help. The assert() macro stops the program if the condition specified is false when it is executed. The assertions do not fire.

The assertions show how the value of ptr changes, and also how the values in the array change.

#include <assert.h>
#include <stdio.h>

int main(void)
{
    int arr[] = {1,2,3,4,5,6,7,8,9,10};
    int *ptr = arr;

    assert(ptr == &arr[0]);
    printf("%d\n",*ptr++);      // print 1; ptr = &arr[1]
    assert(ptr == &arr[1]);
    printf("%d\n",*(ptr++));    // print 2; ptr = &arr[2]
    assert(ptr == &arr[2]);
    assert(*ptr == 3);
    printf("%d\n",(*ptr)++);    // print 3; ptr = &arr[2]; arr[2] = 4
    assert(ptr == &arr[2]);
    assert(*ptr == 4);
    printf("%d\n",*++ptr);      // print 4; ptr = &arr[3]
    assert(ptr == &arr[3]);
    assert(*ptr == 4);
    printf("%d\n",++*ptr);      // print 5; ptr = &arr[3]; arr[3] = 5
    assert(ptr == &arr[3]);
    assert(*ptr == 5);

    printf("Offset: %d\n", (int)(ptr - arr));
    for (int i = 0; i < 9; i++)
        printf("a[%d] = %d\n", i, arr[i]);
    return 0;
}

Output:

1
2
3
4
5
Offset: 3
a[0] = 1
a[1] = 2
a[2] = 4
a[3] = 5
a[4] = 5
a[5] = 6
a[6] = 7
a[7] = 8
a[8] = 9
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thank you very much for your time .. now i understand it good :) –  Waseem Gabour Jun 25 '13 at 14:28

post increment operator increments the variabl after accessing the value.

So, after getting *ptr, which is 2, ptr increases itself.

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ah ! so its the same as "*ptr++" right? the ( ) is there just to trick us right? –  Waseem Gabour Jun 25 '13 at 14:04
1  
@YuHao No, the precedence of the postfix ++ is higher than that of the indirection operator *. *ptr++ and *(ptr++) are exactly equivalent. –  Daniel Fischer Jun 25 '13 at 14:14

Not, because ptr++ return the value BEFORE the incrementation, so the value is 2.

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ah ! so its the same as "*ptr++" right? the ( ) is there just to trick us right? –  Waseem Gabour Jun 25 '13 at 14:00
    
In this case yes. *(ptr++) -> increment ptr and return a pointer on a "2", so printf display 2. –  Shar Jun 25 '13 at 14:02

*ptr++ first dereferences the pointer which gives 2, then increments the pointer The expression *(ptr++) is a post increment expression so the value of of that expression is ptr and then it is incremented. So the result of the expression is that it still points to the 2

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the * operator applies to the result of p++, which is the value of original p (prior to the increment). So it prints 2. I you want 3 to be printed you should do (++p) which returns the incremented value.

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It should print 2, because the postfix operator ++ first returns the value and then increments it. The fact that you added brackets around it (*(ptr++)) does not influence the increment. The value will be incremented after the whole line.

Looking at disassembly might help you to see what happens at that line.

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The *ptr++ returns the value at ptr and then increments it,so in the second printf() statement it only returns 2 and then increments it to 3.

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