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I'm searching for a hash function that takes as input any integer (positive or negative, though it could be constrained to the int range if this makes it easier), and returns a real number between -1 and 1. Is there such a function, or any obvious way to build it from another hash function?

The function doesn't have to be secure, as long as its sufficiently "random". Bonus points if a C/C++ implementation exists.

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4 Answers

up vote 5 down vote accepted
  1. Pick any hash-function for integers, such as boost::hash,
  2. normalize the result to 2 by dividing by half of the maximum value of an integer
  3. Subtract 1.

Here is a quick hack to demonstrate:

#include<stdio.h>

double inthash(unsigned int key)
{
  key += (key << 12);
  key ^= (key >> 22);
  key += (key << 4);
  key ^= (key >> 9);
  key += (key << 10);
  key ^= (key >> 2);
  key += (key << 7);
  key ^= (key >> 12);
  return key / 2147483647.5 - 1;
}

void main()
{
  printf("%f\n", inthash(1));
  printf("%f\n", inthash(2));
  printf("%f\n", inthash(3));
  printf("%f\n", inthash(10000));
  printf("%f\n", inthash(10001));
}

Output:

0.368240
-0.263032
-0.892034
-0.428394
-0.150713
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What do you mean by sufficiently "random"?
You can always divide you integer by max int value and get a value between -1 and 1.

EDIT:

before normalization you can do something like

num = num^397;

and then divide by int max.

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By random I mean that the output of the function should look like a sequence of random numbers, or that similar input should not generate similar output, or any other reasonable definition of randomness. –  Benno Oct 25 '10 at 14:05
    
You can raise you number to some prime number power and then normalize it according to the above, it will be more "random". –  Itay Karo Oct 25 '10 at 14:21
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Nothing simpler than that. Works for any non-negative number. With a few minor modifications, also negative integer numbers can be supported.

double hash(int val)
{
    return val / ((double)INT_MAX / 2.0) - 1.0;
}

EDIT: This should work for all numbers (positive and negative):

double hash(int val)
{
    return val / (double)INT_MAX;
}

Yes, it is as trivial as it looks (It will be more exact if you use -INT_MIN for negative numbers).

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I think this has the same fault as Itay's answer, i.e. the structure of the input is completely preserved (similar input gives similar output), so its not "random" enough. –  Benno Oct 25 '10 at 14:14
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Code snippet double hash(int val) { return val / (double)INT_MAX; } have bug, because INT_MIN is -2147483648 and INT_MAX is 2147483647, so INT_MIN / INT_MAX < -1.

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