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this may be a bit confusing. I have two numbers, say
x = 56 = 00111000
y = 50 = 00110010
we can see that there a total of 4 different bits between them. we need to take those bits and fill up part of the 8 bit register. and in the same way take another two numbers ( say there are another 4 bits different in them ) then fill up the remaining part of the 8 bit register. Does anyone know how to do this using objective-c ?

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1  
What does "fill up part of the 8bit register" mean? What does "fill up the remaining part of the 8 bit register" mean? Give examples, or better yet, tell us why you are doing it. –  freespace Apr 12 '11 at 3:23
    
So in your example you want to take 01 in bit-2 (assuming you start bit indexing from 1) and 10 bit-4 and push it into a register as 0110 or 1001. Is my understanding correct? –  yasouser Apr 12 '11 at 3:26
    
this 56 and 50 are the outputs of shake events performed in two itouches. so lets take an 8bit register. then the we can see that there are 4 bits different. so we can place those bits in the 8bit register. and then , after shaking the two itouches again, we get two other numbers. the bits which are different are again placed in the remaining places in the 8bit register. I hope that made some sense –  user531 Apr 12 '11 at 3:27
    
@yasouser : yes thats rit. pushing them anyone way will be fine –  user531 Apr 12 '11 at 3:28
    
Tough. The iPhone has 32-bit registers, and some 64-bit ones, and (on armv7) even some 128-bit ones. –  tc. Apr 12 '11 at 4:02
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2 Answers 2

I don't know Objective-C, so wrote it in C and tested it. Hope you don't mind:

unsigned int diffbits(unsigned int x, unsigned int y)
{
  unsigned int xor_xy = x^y;
  unsigned int result = 0;
  unsigned int count = 0;

  while (xor_xy)
  {
    if ( xor_xy & 0x01)
    {
      result |= ((x & (1 << count)) >> count);
      result <<= 1;

      result |= ((y & (1 << count)) >> count);
      result <<= 1;
    }

    ++count;
    xor_xy >>= 1;
  }

  // undo the last left shift of 'result' in the while-loop.
  result >>= 1;

  return result;
}

The logic is: x ^ y (x XOR y) - gives the bit locations in which the numbers x and y are different. Test x with the bit value of x ^ y and push it into result. Repeat it with y and push it into result. Now right shift x ^ y by 1. Repeat until x ^ y != 0.

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yea thats k. I understood this whole code but I myself am kinda new to objective c. So I donno how to convert this into Objective-C –  user531 Apr 12 '11 at 4:52
    
From what I know, Objective-C is a strict superset of C. So the diffbits() function as such should work in Objective-C as well. –  yasouser Apr 12 '11 at 12:20
    
when am tryin to execute the above code, this is coming up. nested functions are disabled, use -fnested-functions to re-enable. do u know what this is? –  user531 Apr 12 '11 at 12:36
    
@user531: See this thread for the nested function problem: stackoverflow.com/questions/1418707/… –  yasouser Apr 12 '11 at 14:50
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you can get difference using

x = 56 = 00111000
y = 50 = 00110010

z = x | y
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4  
Don't you mean XOR (^)? OR is hardly the "difference" as I read the OPs question. –  Yann Ramin Apr 12 '11 at 3:45
    
i dont require the xor. I need the bits which are different when both the numbers are compared. then push them into an 8bit register –  user531 Apr 12 '11 at 3:50
    
@user640599 A bitwise XOR, which stands for exclusive or, means that bits will be set if they are different in the two numbers. –  ughoavgfhw Apr 12 '11 at 4:24
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