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Let's say i have this bit field value: 10101001

How would i test if any other value differs in any n bits. Without considering the positions?

Example:

10101001
10101011 --> 1 bit different 

10101001
10111001 --> 1 bit different

10101001
01101001 --> 2 bits different

10101001
00101011 --> 2 bits different

I need to make a lot of this comparisons so i'm primarily looking for perfomance but any hint is very welcome.

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7 Answers 7

up vote 11 down vote accepted

Take the XOR of the two fields and do a population count of the result.

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Population Count –  Cesar Oct 2 '09 at 7:41
    
Even though the question does point out how many bits are different, as far as I read it, it asks only to tell if two values differ at some bit position, not how many bit positions are different. If this reading is correct, you don't need the final population count, just a straight check for non-zero. –  Dale Hagglund Apr 13 '10 at 22:57

if you XOR the 2 values together, you are left only with the bits that are different.

You then only need to count the bits which are still 1 and you have your answer

in c:

 unsigned char val1=12;
 unsigned char val2=123;
 unsigned char xored = val1 ^ val2;
 int i;
 int numBits=0;
 for(i=0; i<8; i++)
 {
      if(xored&1) numBits++;
      xored>>=1;
 }

although there are probably faster ways to count the bits in a byte (you could for instance use a lookuptable for 256 values)

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Just like everybody else said, use XOR to determine what's different and then use one of these algorithms to count.

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1  
See also: gurmeetsingh.wordpress.com/2008/08/05/… –  James Oct 1 '09 at 7:51

This gets the bit difference between the values and counts the bits three at a time:

public static int BitDifference(int a, int b) {
   int cnt = 0, bits = a ^ b;
   while (bits != 0) {
      cnt += (0xE994 >> ((bits & 7) << 1)) & 3;
      bits >>= 3;
   }
   return cnt;
}
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Very cool trick. Took me awhile to comprehend though ;^) –  Toad Oct 1 '09 at 9:36

XOR the numbers, then the problem becomes a matter of counting the 1s in the result.

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In Java:

Integer.bitCount(a ^ b)
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Comparison is performed with XOR, as others already answered.

counting can be performed in several ways:

  • shift left and addition.
  • lookup in a table.
  • logic formulas that you can find with Karnaugh maps.
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