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as we all know, Java doesn't have unsigned types. I have to convert a snippet in C# (uses uint) into Java. My code here:

private const int ROLLING_WINDOW = 7;
private const int HASH_PRIME = 0x01000193;
private unit h1, h2, h3, n;
private byte[] window;

//...

private uint roll_hash(byte c)
{
    h2 -= h1;
    h2 += (uint)ROLLING_WINDOW * c;

    h1 += c;
    h1 -= window[n % ROLLING_WINDOW];

    window[n % ROLLING_WINDOW] = c;
    n++;

    h3 = (h3 << 5);
    h3 ^= c;

    return h1 + h2 + h3;
}

private static uint sum_hash(byte c, uint h)
{
        h *= HASH_PRIME;
        h ^= c;
        return h;
}

In Java I use long instead of uint but the result sometimes gives negative values. Solution is using unsigned operators. Some searching show me about 0xFFFFFFFFL but it is quite complicate while deadline is coming. Wish anybody help me in this problem. Thanks

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2 Answers 2

The code is almost exactly the same. Only the % operation is different.

window[(int)((n & 0xFFFFFFFFL) % ROLLING_WINDOW)]

or you could write

window[n]

and

if(++n == ROLLING_WINDOW) n = 0;

In more detail

private int roll_hash(byte c)
{
    h2 -= h1; // same
    h2 += ROLLING_WINDOW * c; // same, remove (uint)

    h1 += c; // same
    h1 -= window[n];

    window[n] = c;
    if(++n == ROLLING_WINDOW) n = 0; // limit n to 0 to 6 so % is not required.

    h3 = (h3 << 5); // same
    h3 ^= c; // same

    return h1 + h2 + h3; // same
}

private static int sum_hash(byte c, int h)
{
        h *= HASH_PRIME; // same
        h ^= c; // same
        return h;
}
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Could you explain (or link to an explanation) how this solution works? I would like to understand it myself. –  BlackVegetable Jun 28 '12 at 15:22
1  
The first solution converts the n to an unsigned value from 0 to 0xFFFFFFFFL does the % and converts back to an int The second approach just ensures the value is always between 0 and 6 –  Peter Lawrey Jun 28 '12 at 15:24
    
Thank you. That is much clearer to me (and hopefully to other viewers.) –  BlackVegetable Jun 28 '12 at 15:25

If you convert an unsinged integer value to long, you need to mask off the sign-extension bits:

int uintValue = 0x80706050;
long value = 0x00000000FFFFFFFFL & uintValue;
share|improve this answer
    
Perhaps you mean 0xFFFFFFFFL as in the question. 0x00000000FFFFFFFF is an int and equal to -1 –  Peter Lawrey Jun 28 '12 at 15:28
    
Oops, good catch! Fixed. –  rsp Jun 28 '12 at 15:34

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