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I'm using the Binary Method to calculate the GCD of two fractions, the method works perfectly fine, except for when I subtract certain numbers from each other.

I'm assuming it's because, for instance, when I subtract 2/15 from 1/6, the GCD has a repeating number or something like that, though I could be wrong.

        //The following lines calculate the GCD using the binary method

        if (holderNum == 0) 
        {
            gcd = holderDem;
        }
        else if (holderDem == 0) 
        {
            gcd = holderNum;
        }
        else if ( holderNum == holderDem)
        {
            gcd = holderNum;
        }

        // Make "a" and "b" odd, keeping track of common power of 2.
        final int aTwos = Integer.numberOfTrailingZeros(holderNum);
        holderNum >>= aTwos;
        final int bTwos = Integer.numberOfTrailingZeros(holderDem);
        holderDem >>= bTwos;
        final int shift = Math.min(aTwos, bTwos);

        // "a" and "b" are positive.
        // If a > b then "gdc(a, b)" is equal to "gcd(a - b, b)".
        // If a < b then "gcd(a, b)" is equal to "gcd(b - a, a)".
        // Hence, in the successive iterations:
        //  "a" becomes the absolute difference of the current values,
        //  "b" becomes the minimum of the current values.
        if (holderNum != gcd)
        {
            while (holderNum != holderDem) 
            {
                    //debuging
                    String debugv3 = "Beginning GCD binary method";
                    System.out.println(debugv3);
                    //debugging
                    final int delta = holderNum - holderDem;
                    holderNum = Math.min(holderNum, holderDem);
                    holderDem = Math.abs(delta);

                    // Remove any power of 2 in "a" ("b" is guaranteed to be odd).
                    holderNum >>= Integer.numberOfTrailingZeros(holderNum);
                    gcd = holderDem;
            }
        }           

        // Recover the common power of 2.
        gcd <<= shift;

That is the code that I'm using to complete this operation, the debugging message prints out forever.

Is there a way to cheat out of this when it gets stuck, or maybe set up an exception?

share|improve this question
    
Have you tried printing out something useful, like the values of "holderNum" and "holderDem"? That way you could see what the numbers are doing, rather than guessing at it. –  Markku K. Jun 4 '13 at 20:15
    
How is "b" guaranteed to be odd? For what values of holderNum and holderDem is it entering an infinite loop? –  iamnotmaynard Jun 4 '13 at 20:23
    
Yes, when I print those out, using the example given, holderNum stays at -3 while holderDem keeps increasing, 1195095 was where it got before I force quit it. –  Tyberius Seppala Jun 4 '13 at 20:27
    
For what values? It works for me. –  iamnotmaynard Jun 4 '13 at 20:30
    
The example given, for example 2/15 minus 1/6. Or 1/1 minus 1/1. But if I put a break in there, it works just fine, which I guess works? –  Tyberius Seppala Jun 4 '13 at 20:33

1 Answer 1

up vote 1 down vote accepted

The problem is with negative values — when one of them is negative, holderNum will always take on the negative value (being the min); holderDem will become postive, so delta equal to a negative less a positive equals a lesser negative. Then holderDem = abs(delta) is a greater positive and keeps increasing. You should take the absolute value of both of them before entering the loop.

E.g.:

holderNum = -1 and holderDem = 6
Iteration 1:

delta = holderNum - holderDem = -1 - 6 = -7
holderNum = Math.min(holderNum, holderDem) = Math.min(-1, 6) = -1
holderDem = Math.abs(delta) = Math.abs(-7) = 7

Iteration 2:

delta = holderNum - holderDem = -1 - 7 = -8
holderNum = Math.min(holderNum, holderDem) = Math.min(-1, 7) = -1
holderDem = Math.abs(delta) = Math.abs(-7) = 8

etc., etc., etc.

share|improve this answer
    
I can see the problem there, but even if I put in to take the abs vale of Num and Dem, in or out of the loop, it still iterates infinitely. I had to add while (holderDem != 0 && holderNum != holderDem && holderNum != 0) –  Tyberius Seppala Jun 4 '13 at 22:59
1  
Weird. The only reason holderNum or holderDem should ever be 0 is if they start with that value — in which case they should be caught at the beginning (and now I notice that the line if (holderNum != gcd) should also test holderDem) — or if they are equal at the beginning of the loop — in which case the loop should stop. If you're taking the absolute values at the begninning of this code, I don't see why it should be entering an infinite loop. –  iamnotmaynard Jun 5 '13 at 14:16
    
Neither do I. It's really weird, I think some Python got into my Java. –  Tyberius Seppala Jun 6 '13 at 1:51

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