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int i;
i=0;
for (i=0;i>2;i++)
    {
     repeat((3),"|",var);
     printf("\n");          
    }

For some reason it gets to the "for" and it skips it. I tried to put the int i outside of the for and even initialized it outside of the for and in debug it is zero. all I need it to do is loop through this code twice.

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You can set i = 0, and you can have the loop keep running while i > 2, but you can't do both and expect the loop block to be processed. –  Alex Reynolds Feb 15 '12 at 21:54

4 Answers 4

up vote 5 down vote accepted

Change:

for (i=0;i>2;i++)

to:

for (i=0;i<2;i++)

You're testing if it's > 2 which will fail so it never enters the loop.

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Thanks, I did have at == and that was not working so I changed to > and still no difference –  StephanM Feb 15 '12 at 21:39
for (i=0;i>2;i++)

you want

for (i=0;i<2;i++)

Otherwise your for loop body will never be executed.

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It is because of your loop condition: i > 2

The variable i it is not greater than 2, so the condition i > 2 will evaluate to 0 (FALSE)

Hope it helps

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So lets break down a for loop. There are three pieces for(piece1; piece2; piece3)

piece1 = setting of a variable, this will happen once at the first running of the loop

piece2 = while condition is true, continue to loop

peice3 = at the end of each iteration perform this action.

So your loop right now says first set i=0, while i is greater than 2 (which you just said it isn't)...at this point your compiler has already skipped out, because the condition will never be true.

Because of this, testing == won't work either, because that will make it loop while i is equal to 2, which will never be true because the only place you are updating i is within the loop. The middle condition is not a break condition it is a continuation condition.

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