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I am stuck with this mystery regarding for loop.

    int abc[3], i, j;
    for(j=0; j<3; j++);
    printf("%d\n", j);
    abc[j] = abc[j] + 3;
    printf("%d \n", j);


Output: 

3
6 

Output should have been 3,3 as I've not changed value of j.

Adding 3 to the jth value of abc has resulted in change of value of j by 3. This happens only while exiting from a for loop and then trying to change the value of abc[j].

Maybe I am missing something pretty obvious. Any help would be much appreciated.

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I am getting 3 3 as the output on my VC++ compiler –  Madhur Ahuja Feb 1 '11 at 7:08
    
What is the array abc initialized to ? –  sameer karjatkar Feb 1 '11 at 7:11
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4 Answers

up vote 14 down vote accepted

You have a buffer overflow since you declared your array to have size 3 int abc[3]; yet you are indexing the 4th element; this is Undefined Behavior.

abc[j] = abc[j] + 3; // j = 3 here, overflow

What you are most likely seeing is that j is located on the stack just past your array abc and so when you overflow one past the array with abc[3], you're actually modifying the memory that contains j.

*Note that nowhere in the C standard does it mention the word stack, this is an implementation detail and can change from system to system. This is partly the reason why it is Undefined Behavior and you are getting responses from people that they see two 3's as output.

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Thank you. It still baffles me why value of j was incremented. –  primpap Feb 1 '11 at 7:10
    
@primalpop refresh my answer =) –  SiegeX Feb 1 '11 at 7:12
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You're indexing past the end of the array (buffer overflow) and reassigning other variables on the stack.

int abc[3], i, j;
// Your stack looks like this (single 'x' is one byte):
// |abc[0]|abc[1]| abc[2]| j  |  i |
// 
// |xxxx  |xxxx  |xxxx   |xxxx|xxxx|
// 
for(j=0; j<3; j++);
printf("%d\n", j);
// j = 3 at this point
// abc[3] points past the end of the array abc, in this case, at j.
// So the next statement increments j by 3.
abc[j] = abc[j] + 3;
printf("%d \n", j);

To verify, try adding the following statements at the end:

printf("%d\n", &i == &abc[3]);
printf("%d\n", &j == &abc[3]);

EDIT

The exact layout of the stack will matter depending on the compiler you're using:

misha@misha-desktop:~/Desktop/stackoverflow$ gcc --version
gcc (Ubuntu 4.4.3-4ubuntu5) 4.4.3
Copyright (C) 2009 Free Software Foundation, Inc.
This is free software; see the source for copying conditions.  There is NO
warranty; not even for MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.
misha@misha-desktop:~/Desktop/stackoverflow$ ./a.out
3
3

Here's why it's working fine on my machine -- the statement:

printf("abc: %x abc[3]: %x i: %x j: %x\n", &abc, &abc[3], &i, &j);

gives the following output:

abc: 4cd0aa70 abc[3]: 4cd0aa7c i: 4cd0aa8c j: 4cd0aa88

So the stack is actually:

//  aa70   aa74     aa78   aa7c            aa88  aa8c
// |abc[0]|abc[1]| abc[2]|      |  ....  |  j  |  i  |

So when it's accessing abc[3], it's accessing 0x4cd0aa7c which is just "dead space".

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I think it's supposed to be there... –  ClosureCowboy Feb 1 '11 at 7:03
    
Sorry, it was my first rushed edit. I deleted it while I went to update, but obviously I wasn't quick enough. –  misha Feb 1 '11 at 7:11
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When J = 3, abc[j] refers to 4th element, since, array indexes begin with 0 and not 1. So, you are trying to access a location which is beyond the memory area of the array abc. Coincidentally this location happens to be that of J. Hence, value of J gets modified. Try changing the order of declaration of variables to better understand this behavior.

Thanks,
Vamyip

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for(j=0; j<3; j++);

You have a semicolon at the end of the for loop. Problem solved.

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2  
Take a closer look at the question –  SiegeX Feb 1 '11 at 10:26
    
A semicolon at the end of a for loop statement is always a bug, either an intentional bug or an unintentional one. Put the semicolon at a line of its own if you intended to use an empty loop. And if you intend to use an empty loop, declare the iterator volatile or there is no guarantee that the loop will be executed at all. –  Lundin Feb 1 '11 at 11:39
1  
See my first comment as nothing you just said is relevant to the issue at hand. There is no need to declare the iterator volatile in this case because even if the loop is optimized away, that doesn't mean the iterator will have an undefined value. The compiler will simply assign the constant 3 to the iterator in this OP's case. –  SiegeX Feb 1 '11 at 18:36
    
@SiegeX Then why would you write a loop for, instead of just j=3? –  Lundin Feb 2 '11 at 7:46
1  
I'm going to guess that the OP wanted to make minimal changes to his existing code while still providing enough that the odd behavior was still present. Most likely he thought the for-loop was relevant, it this case it was not. –  SiegeX Feb 2 '11 at 16:41
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