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I am new to C and I would like to know the difference between the below two snippet codes.When I try executing first one it works fine,but when I run the second one it gives me segmentation fault.Whats the reason for this behavior?

        printf("%c\n",*strptr++);

        printf("%c\n",*(strptr+i));

Here is the below code.

#include<stdio.h>

int main(void)
{
        char str[100]="My name is Vutukuri";
        int i=0;
        char *strptr;

        strptr=str;

        while(*strptr != '\0')
        {
                printf("%c\n",*strptr++);
                //printf("%c\n",*(strptr+i));
                //i++;
        }
        return 0;
}
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10  
What's the value of i? –  geekosaur Apr 25 '12 at 21:29
4  
@geekosaur: i = sqrt(-1) –  Thomas Eding Apr 25 '12 at 21:31
1  
i-roll everyone's a comic... –  geekosaur Apr 25 '12 at 21:33
1  
The second line clearly reads out of the imaginary RAM while the first reads from the real one. –  orlp Apr 25 '12 at 21:35
    
I tested them in a while loop for I 0 to n –  SOaddict Apr 25 '12 at 21:50

3 Answers 3

up vote 3 down vote accepted

Entirely different.

The first snippet prints the character at strptr and then increments strptr by one.

The second snippet prints the character at strptr + i.

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1  
Actually it doesn't first print the character at strptr and then increments it by one, it actually increments it by one and then prints the character at the old location trololo –  Seth Carnegie Apr 25 '12 at 21:40
    
@Seth Carnegie: how come? I'm pretty sure that's a post-increment right there. –  orlp Apr 25 '12 at 21:41
    
Well the increment is done before the function is called, and the old value is sent to the function. I was just messing with you picking nits at your wording there. My comment was incorrect in saying that you don't know, since we do know, and the behaviour is well defined. –  Seth Carnegie Apr 25 '12 at 21:44
    
Yeah, actually you do know, I was mistaken. Side effects on arguments are done before functions are called. –  Seth Carnegie Apr 25 '12 at 21:45
    
"I'm pretty sure that's a post-increment right there" -- I'm pretty sure you didn't make any attempt to understand Seth's obvious and correct point and your mistake. That there's a post-increment only determines which char is printed, not when the pointer is incremented ... that depends on the sequence point, which occurs when the function is called. –  Jim Balter Apr 25 '12 at 22:31

Apparently, the address strptr refers to an allocated place in memory, while strptr + i points to an unallocated place. If you allocate a string as

char s[LENGTH];

or

char* s = (char*)malloc(LENGTH * sizeof(char));

then you can only use the characters from s[0] to s[LENGTH - 1] (and the string itself can only be LENGTH - 1 long, so there is place for a null terminator). In your case, the pointer strptr + i is probably not in the range s...s + LENGTH - 1.

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Ah, an intelligent and useful response ... and before the OP even mentioned that s/he was looping i from 0 to n. –  Jim Balter Apr 25 '12 at 22:34

Maybe you want to replace i with 1.

  • ++ operator first uses the initial value, and then it increments it.
  • +operator calculates the new value and then uses it.
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Unless, of course, you're running the two snippets in sequence... In which case i should be 0 to replicate the behavior of the first line. –  Matt B. Apr 25 '12 at 21:35
    
yes, of course :) –  gabitzish Apr 25 '12 at 21:36
    
"Maybe you want to replace i with 1" -- It's very unlikely that the OP wants that. OTOH, loops over either *foo++ or foo[i] (equivalent to *(foo+i)) are interchangeable. The problem here is clearly the value of i, but the OP for some inexplicable reason omitted the context. –  Jim Balter Apr 25 '12 at 22:41

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