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I have the following Java code:

long a = Long.parseLong("11001100", 2);
long b = Long.parseLong("11000000", 2);
int npos = 0 ;
int pos = 0 ;
long n = ~(a ^ b) ;
int cnt = 0;
while (n != 0) {
  pos++ ;
  if ((n & 3) == 3) cnt++; // count how many matches
  else{
    npos = pos ;  // position that not matched also giving wrong which should be 2 nd position.
  }
  n >>>= 2;
}

System.out.println(npos + "  " + cnt) ; // also print which two bits are not matched i.e. 00 and 11

I am trying to find how many two-bit sequences match in two integers. I want also to find which two bits are not matched. Can anybody help me how to do that?

PS: I don't have the string in my original code, only have integers. Therefore, I can't do string manipulation.

Edit:

long a = Long.parseLong("11000100", 2);
long b = Long.parseLong("11000000", 2);
long mask = 0x03;
int npos = 0 ;
int cnt = 0;
long p1 = 0;
long p2 = 0;
for (int pos = 0; pos < 64; pos++, mask <<= 2) {

  if ((a & mask) == (b & mask)) {
     cnt++; // count how many matches
  } else {
    npos = pos ;  // *last* position that did not match
    p1 = (a & mask) ; // two bits that not matched
    p2 = (b & mask) ; // two bits that not matched
  }
}

  System.out.println(npos + "  " + cnt + " " + p1 + " " + p2) ; // also print which two bits are not matched i.e. 00 and 01
share|improve this question
1  
Regarding your closing comment - if string manipulation were the best way to solve this, it is trivial to get a String from the ints passed in (String.valueOf(a)). –  Andrzej Doyle Aug 7 '12 at 18:49
    
@AndrzejDoyle fwiw, there's also Integer.toString(a). –  Dennis Meng Aug 7 '12 at 18:51
    
I have no idea what this question is asking for. –  Wug Aug 7 '12 at 18:52
    
Just to get an idea. What is the expected result for your sample a = 11001100 and b = 11000000 ? –  eburgos Aug 7 '12 at 18:53
    
@AndrzejDoyle, string operation will be expensive as I have to do lots of this kind of operations. There is no faster method to do that ? –  Arpssss Aug 7 '12 at 18:54

1 Answer 1

up vote 3 down vote accepted

You parse the integers as base-10 numbers, where you probably wanted to parse them as binary integers, to do that use the method that has a radix parameter:

long a = Long.parseInt("11001100", 2);
long b = Long.parseInt("11000000", 2);

It might be easier to just run a loop comparing the 2 values using a mask:

long mask = 0x03;
int npos = 0 ;
int cnt = 0;

for (int pos = 0; pos < 32; pos++, mask <<= 2) {

  if ((a & mask) == (b & mask)) {
     cnt++; // count how many matches
  } else {
    npos = pos ;  // *last* position that did not match
  }
}
share|improve this answer
    
sorry, that should be. But, how to find position and mismatched value ? –  Arpssss Aug 7 '12 at 19:03
    
if you need to handle the mismatches, you could add their position and mask to a List to inspect after the loop. –  rsp Aug 7 '12 at 19:16
    
As rsp said, a List can come in handy. Also I'd rather see the loop condition as pos < Integer.SIZE (but yeah, 32 should do). And increment pos by 2, not 1, since we're moving two spaces. –  Humungus Aug 7 '12 at 19:21
    
Actually, my code is wrong in that sense that in my example it should give position 2 not matched, but it gives position 5. –  Arpssss Aug 7 '12 at 19:21
    
So, as your code. And I want the two bits also that mismatched. –  Arpssss Aug 7 '12 at 19:24

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