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I was wondering how to calculate the hash code for a given string by hand. I understand that in Java, you can do something like:

String me = "What you say what you say what?";
long whatever = me.hashCode();

That's all good and dandy, but I was wondering how to do it by hand. I know the given formula for calculating the hash code of a string is something like:

S0 X 31 ^ (n-1) + S1 X 31 ^ (n-2) + .... + S(n-2) X 31 + S(n-1)
Where S indicates the character in the string, and n is the length of the string. Using 16 bit unicode then, the first character from string me would be computed as:

87 X (31 ^ 34)

However, that creates an insanely large number. I can't imagine adding all the characters together like that. So, in order to calculate the lowest-order 32 bits result then, what would I do? Long whatever from above equals -957986661 and I'm not how to calculate that!

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3 Answers 3

up vote 14 down vote accepted

Take a look at the source code of java.lang.String.

/**
 * Returns a hash code for this string. The hash code for a
 * <code>String</code> object is computed as
 * <blockquote><pre>
 * s[0]*31^(n-1) + s[1]*31^(n-2) + ... + s[n-1]
 * </pre></blockquote>
 * using <code>int</code> arithmetic, where <code>s[i]</code> is the
 * <i>i</i>th character of the string, <code>n</code> is the length of
 * the string, and <code>^</code> indicates exponentiation.
 * (The hash value of the empty string is zero.)
 *
 * @return  a hash code value for this object.
 */
public int hashCode() {
int h = hash;
    int len = count;
if (h == 0 && len > 0) {
    int off = offset;
    char val[] = value;

        for (int i = 0; i < len; i++) {
            h = 31*h + val[off++];
        }
        hash = h;
    }
    return h;
}
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@BalusC, thanks for improving my answer! :-) –  dty Sep 25 '10 at 20:33
    
I get the basic idea (I can compute small strings) but when the string gets large I'm unsure as to what to do. –  thomascirca Sep 25 '10 at 21:18
    
@user458346, the size of the string isn't important. This is the values of using a loop, it doesn't matter how long the loop is, it does get any more complicated. –  Peter Lawrey Sep 25 '10 at 22:00

Most hash functions of this sort calculate the hash value modulo some large number (e.g. a large prime). This avoids overflows and keeps the range of values returned by the function within a specified range. But this also means an infinite range of input values will get a hash value from a finite set of possible values (i.e. [0,modulus)), hence the problem of hash collisions.

In this case, the code would look something like this:

   public int hash(String x){
        int hashcode=0;
        int MOD=10007;
        int shift=29;
        for(int i=0;i<x.length();i++){
            hashcode=((shift*hashcode)%MOD+x.charAt(i))%MOD;
        }
        return hashcode; 
    }

Exercise for the reader:

See the code for the hashCode function for java.util.String. Can you see why it does not use a modulus explicitly?

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2  
I can't see... Could You explain it? –  jjczopek Sep 25 '10 at 23:33
1  
@jjczopek: Notice that x%2^n = x&(2^n-1). So if you did arithmetic modulo 2^n, you just need to keep the last n bits of your value, discarding any higher bits. Now think what happens when you just use an int to represent your value. Any arithmetic you do will result in only the last 32 bits being left over. Voila, you have arithmetic modulo 2^32. –  MAK Sep 26 '10 at 20:29
    
Right. How did you not see that jjczopek >_<. –  Daniel Nov 19 '11 at 8:06

At every step you should divide the result modulo MAX_HASH_VALUE.

So imagine you wanna keep your hash below a 100.

result = 0
for each character in the string do
    result = (31 * result) + character # hash code calculation
    result = result % 100               # limiting it to a 100
end
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I don't understand... so what would I do for the first two characters? –  thomascirca Sep 25 '10 at 21:15

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