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I have stumbled upon a piece of code that generates some interesting results while debugging someone else's program.

I have created a small program to illustrate this behavior:

#include <stdio.h>

int main()
{
        char* word = "foobar"; int i, iterator = 0;
        for (i = 0; i < 6; i++ && iterator++)
          printf("%c", word[iterator]);
        return 0;
}

I know that this is not the right way to print a string. This is for demonstration purpose only.

Here I expected the output to be "foobar", obviously, but instead it is "ffooba". Basically it reads the first character twice, as if the first time iterator++ is executed nothing happens.

Can anyone explain why this happens?

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6  
i++ && iterator++ -> i++, iterator++ –  Mysticial Sep 29 '12 at 7:00
2  
This question may be basic but it's asked perfectly. –  Flexo Sep 29 '12 at 7:16
    
Like I said, I know how to do it correctly, I just wanted to find out why the above code didn't work the way I expected. –  Ionut Hulub Sep 29 '12 at 7:17

4 Answers 4

up vote 11 down vote accepted

The thing is iterator++ actually isn't executed the first time. The ++ operator returns the current value of a variable and then increments it, so the first time through, i++ will be equal to 0. && short-circuits, so iterator++ is not executed the first time.

To fix this, you could use the comma operator which unconditionally evaluates both, rather than the short-circuiting &&.

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it's funny, I did know about that the && operator doesn't evaluate the second part of the expression if the first one if false already, but I didn't expect that to apply since it wasn't placed in the condition section of the loop statement. thank you for the answer. I'll approve it after 10 minutes pass. –  Ionut Hulub Sep 29 '12 at 7:03
    
You can read more about short circuit evaluation. There are various rules for &&, || etc. –  fayyazkl Sep 29 '12 at 7:55

The result of i++ is the current value of i which is zero on first iteration. This means iterator++ is not executed on first iteration due to short circuting (the right-hand side of && is only executed if the left-hand side is "true").

To fix you could use the comma operator (as already suggested or) use ++i which will return the value of i after the incremement (though comma operator is more obvious that both must always be evaluated).

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You really should learn to use a debugger like e.g. gdb and to compile with warnings and debugging info like gcc -Wall -g (assuming a Linux system). A recent gcc with -Wall gives you a warning about value computed is not used before the && operation.

The increment part of your for loop is strange. It is i++ && iterator++ (but it should be i++, iterator++ instead).

When i is 0 (on the first iteration), i++ gives 0 as result, so it is false, so the iterator++ is not executed.

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I have used visual studio for a long time but I have recently switched to linux and I haven't learned how to use the console debugger yet, but I will look into that. –  Ionut Hulub Sep 29 '12 at 7:04
1  
The moral of the story is to always pass -Wall to gcc and to improve your code till no warning is given. You could even pass -Wall -Wextra -g to gcc. –  Basile Starynkevitch Sep 29 '12 at 7:12
    
@lonut Hulub you can still use Eclipse for graphical debugger in Linux. However, gdb (console debugger) is a valuable skill nevertheless specially when you are working on a platform with no UI. –  fayyazkl Sep 29 '12 at 7:57
    
+1 for gcc warning regarding short circuit. –  fayyazkl Sep 29 '12 at 7:59
    
AFAIK, Eclipse debugger for C is just a GUI interface to gdb (like ddd is). So learning gdb is still useful. –  Basile Starynkevitch Sep 29 '12 at 9:17

I am reading K&R about logic operators,let me quote the origin words of book,which can explain your question. "Expressions connected by && or || are evaluated left to right, and evaluation stops as soon as the truth or falsehood of the result is known." Have a good understanding of these,the outputs wont puzzle.

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