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I am wondering how to implement a circular right shift by k of the bitstring represented by the int bits.

public int rtCircShift(int bits, int k)
{
    return bits >> k;
}

All this code does is return 0, how can I make it a circular shift?

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You should consider accepting finnw's answer instead. –  Zoltán Jul 25 at 15:31

3 Answers 3

up vote 15 down vote accepted

This should work:

 return (bits >>> k) | (bits << (Integer.SIZE - k));

Also see the Wikipedia article on circular shifts.

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turned the logical or into a bitwise. –  Femaref Apr 30 '11 at 19:26
    
That's it, thanks. –  john Apr 30 '11 at 19:30
4  
Still not correct, you need to use logical right shift, >>>. Stick this in a method and you have Integer.rotateRight. –  rlibby Apr 30 '11 at 19:33
3  
@rlibby: Thanks, fixed. @john: You should use the rotateLeft/rotateRight code from finnw`s answer. I'll leave this answer as it's the general way to do this, but it's much better to use a built-in function if there is one. –  schnaader Apr 30 '11 at 19:36
6  
+1: You can do return (bits >>> k) | (bits << -k); This will work for int and long because the shift only takes the lowest 5-6 bits i.e. 64-k is the same as -k (which for int is the same as 32-k) –  Peter Lawrey Apr 30 '11 at 20:33

You mean you want the bits rotated off the right-hand side to appear on the left?

return Integer.rotateRight(bits, k);

Example:

int n = 0x55005500; // Binary 01010101000000000101010100000000
int k = 13;
System.err.printf("%08x%n", Integer.rotateRight(n, k));

output:

a802a802 // Binary 10101000000000101010100000000010
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The answer by schnaader is correct:

return (bits >>> k) | (bits << (32-k));

  • 1) the first part (bits >>> k) right-shifts the value stored in bits by k bits and 'the third >' ensures that the leftmost bit is a zero instead of the sign of the bits
  • 2) the second part (bits << (32-k)) left-shifts the value in bits by k-complement number of bits

Now, you have two temporary variables where the first (32-k) bits are stored on the rightmost bits of var (1), and the last k bits are stored on the leftmost bits of var (2). The bitwise or operation simply ORs these two temp vars together (note the use of >>> instead of >>) and you have the circular shift.

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