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I would like to use a HashMap to map (x, y) coordinates to values. What is a good hashCode() function definition? In this case, I am only storing integer coordinates of the form (x, y) where y - x = 0, 1, ..., M - 1 for some parameter M.

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I think the default eclipse hash generator would give 31*x+y –  k_g Apr 3 at 2:00
    
Do you want to find only exact matches or also nearly equal coordinates? –  martinstoeckli Apr 3 at 8:07
    
@martinstoeckli I am only interested in finding exact matches, i.e. getting the value with the key (x,y) and setting the value with the key (x,y). –  I Like to Code Apr 3 at 14:27

3 Answers 3

up vote 1 down vote accepted

To calculate a hash code for objects with several properties, often a generic solution is implemented. This implementation uses a constant factor to combine the properties, the value of the factor is a subject of discussions. It seems that a factor of 33 or 397 will often result in a good distribution of hash codes, so they are suited for dictionaries.

This is a small example in C#, though it should be easily adabtable to Java:

public override int GetHashCode()
{
  unchecked // integer overflows are accepted here
  {
    int hashCode = 0;
    hashCode = (hashCode * 397) ^ this.Hue.GetHashCode();
    hashCode = (hashCode * 397) ^ this.Saturation.GetHashCode();
    hashCode = (hashCode * 397) ^ this.Luminance.GetHashCode();
    return hashCode;
  }
}

This scheme should also work for your coordinates, simply replace the properties with the X and Y value. Note that we should prevent integer overflow exceptions, in DotNet this can be achieved by using the unchecked block.

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it will depend of your data, but for me

KeyValue = y+x

appears to be a good hashCode if m = 3 your options and their hash code are: (0,0) = 0, (1,0) = 1, (1,1) = 2, (2,0) = 2, (2,1) = 3, (2,2) = 4, (3,0) = 3, (3,1) = 4, (3,2) = 5, (3,3) = 6.

with that function you will have at most 2 collisions for each slot in the hash, of course, if you want to limit the size of the hash just change it for

KeyValue = (y+x)%C

with C some desirable value, it will keep his linear behavior.

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To get unique Value from two numbers, you can use bijective algorithm described in here < x; y >= x + (y + ( (( x +1 ) /2) * (( x +1 ) /2) ) )

This will give you unquie value , which can be used for hashcode

public int hashCode()
{
      int tmp = ( y +  ((x+1)/2));
               return x +  ( tmp * tmp);
}
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