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Is there a problem with these samples of code? Whenever there is an X in the spot it still is overwriting an O in the spot if a win can be made. Apparently the if not statement is not working? 88 and 79 are 'X' and 'O' in ASCII.

while(i+j<6)
    {
        if (board[i][j]+board[i][j+1] == compXO*2)
        {
            if(board[i][j+2] != (88||79)) 
            {
            board[i][j+2] = compXO;
            won=1;
            break;
            }
        }
        else 
            i++;
    }


if (board[i+1][j+1]+board[i+2][j+2] == compXO*2)
    {   
        if(board[i][j] != (88||79)) 
        {
        board[i][j] = compXO;
        won=1;

        }
    }
share|improve this question
up vote 2 down vote accepted

You can't compare to two different values like that at once, as the expression 88||79 is logical or, and evaluates to 1, the appropriate way is:

if(!(board[i][j] == 88 || board[i][j] == 79)) 

or

if(board[i][j] != 88 && board[i][j] != 79)
share|improve this answer
    
The second one works though I believe the last end parentheses is a mistake. – 0x41414141 Apr 20 '13 at 1:33
    
@bh3244 - you're right - the power of copy & paste :) – MByD Apr 20 '13 at 1:34

This if statement is not doing what you think it is:

if(board[i][j+2] != (88||79)) 

It should be:

if (board[i][j+2] != 88 && board[i][j+2] != 79) 

88||79 is doing a logical or of the values 79 and 88 which will always be true which will be equal to 1, so you are comparing the board element to 1 each time.

share|improve this answer
    
I was wondering if that was it. What does the original statement actually mean? – 0x41414141 Apr 20 '13 at 1:22

88||79 is equivalent to 1. So, your if (board[i][j+2] != (88||79)) is really equivalent to if (board[i][j+2] != 1).

What you probably want is:

if (board[i][j+2] != 88 && board[i][j+2] != 79))
share|improve this answer

The expression

if (board[i][j+2] != (88||79)) 

is comparing board[i][j+2] with 1, because (88 || 79) evaluates to true, aka 1.

Maybe what you're after is:

if (board[i][j+2] != 88 && board[i][j+2] != 79)

It would be better if you gave names to those otherwise non-obvious numbers (or used 'X' and 'O' — there is absolutely no efficiency gain (or loss) from using the character notation, but there is a vast gain in clarity.

if (board[i][j+2] != 'X' && board[i][j+2] != 'O')

If you have a character that's used to represent 'neither X nor O present', which might be ' ' or some other value (0?), then you could simplify the test to:

#define EMPTY ' '

if (board[i][j+2] == EMPTY)

which appears to be what you're testing. If you're not confident that your board is accurate, you should write a validating function which checks that each square has a valid value ('X' or 'O' or EMPTY) and that there are not too many 'X's or 'O's. Call it at any point where you're worried that it might have changed or be invalid.

share|improve this answer
    
I originally did use 'X' and 'O' but wasn't sure if that was causing the problem so I put them in number form. – 0x41414141 Apr 20 '13 at 1:29

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