Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have the bits 101 and 110. I want to compare using some bitwise operator ignoring the first bit like 01 and 10.

Example:

I have:
101
110
===
01 & 10 <- How I want to consider
x00 <- The result I want

or

10110
11011
=====
0110 & 1011 <- How I want to consider
x0010 <- The result I want

How could I achieve this using bitwise operators in java?

Details:

  • The first bit will always be 1.
  • The other bits are variable. Both sides of the comparison will have the same number of bits.
  • I want to detect just how to make the comparison considering the other bits and ignoring the first.

Use case:

  • I have 2 permission values. The first is 5/101 (The permission required) and the second is 6/110 (The permission the user has).
  • Excluding the first block, which will always be 1, I want to compare the third block that represents a certain permission rule in the system (using bitwise).
  • "The permission required" bitmask means:
    • 1 - An always fixed value I use to be able to consider the left padding zeroes (unless there is another way to achieve this);
    • 0 - Another permission rule useless for this comparison (let's call permission 1);
    • 1 - The needed permission for the current permission rule (let's call permission 2).
  • "The permission the user has" means:
    • 1 - A fixed value to be striped out;
    • 1 - Represents the value of the user for the permission 1;
    • 0 - Represents the value of the user for the permission 2. The permission 2 has the value 1 but the user has 0 then he is NOT allowed to the required action. The opposite would be ALLOWED to execute the action.

Any better solution for this case will be considered a correct answer also.

share|improve this question
    
Do you require a fixed number of bits, or is it somehow variable? –  Alnitak Feb 18 '13 at 0:57
    
It can have any number of bits, I just want to consider all the others except the first. –  Fagner Brack Feb 18 '13 at 0:59
    
How do you know the number of bits? Or you want to cut the highest bit of either numbers? Or it is true that the highest bit is equal in both numbers? –  GaborSch Feb 18 '13 at 1:12
    
@FagnerBrack a binary number can have any number of bits. You have to be more specific. –  Alnitak Feb 18 '13 at 1:15
    
@GaborSch that would make the problem far more complex, requiring base 2 log or shifts to determine the first bit that's on. –  Peter Wooster Feb 18 '13 at 1:20
show 15 more comments

3 Answers

up vote 3 down vote accepted

If you know the number of useful bits (e.g numofbits = 5) then the bitmask for the expression is:

bitmask = (1 << numofbits) - 1

If you don't know the numofbits, just make a loop with num = num >> 1, and count the iteration until you got num == 0.

For the use case:

result = (req_roles & user_roles) & (bitmask >> 1)

This simply ands the role bits, ans cuts the upper bit (which is always 1)


Previous answer for previous question :) :

If you know the bitmask for the highest number (e.g. bitmask = 0x1f (11111 in bits)) then you want the result of the following expression:

result = (a ^ b) ^ (bitmask >> 1)

What does it do?

  • Compares all bits, the equal bits will be 0
  • Reverts all lower bits, so equal bits will be 1 (leaves the high bit out, so it will remain 0)
share|improve this answer
    
Note, this will work, but you need to know the number of useful bits, if not the answer is much more complex. You can find the first bit in use by or'ing the arguments and the shifting that to the right in a loop until you get zero. The count is one more than the number of useful bits. –  Peter Wooster Feb 18 '13 at 1:49
add comment

Just 'and' the arguments with a mask that has the first bit off, eg 011 & arg before you compare them.

Edit: after restated question.

The alternative is to use role based permissions, these are far more flexible and easier to understand than Boolean permission strings. They are also self documenting. Bit string based permissions are rarely used except where memory or disk space are at a premium, like when Unix was developed back in the early '80s or in embedded systems.

share|improve this answer
3  
You can also just mask the result of the comparison, so the mask is applied only once. –  Marco Leogrande Feb 18 '13 at 0:57
    
Ok but can I take the first bit off when comparing using bitwise? If I do need to take the first bit off it is quite simple to use an 'and' but I want to try this without messing with the bits as string. –  Fagner Brack Feb 18 '13 at 1:02
    
There is no need to mess with the bits as a string, just use Boolean logic. –  Peter Wooster Feb 18 '13 at 1:04
    
Can you give me a snippet using the examples above? I think I did not understand what you meant. –  Fagner Brack Feb 18 '13 at 1:05
    
If masking the result you will need to use and to make it false or or to make it true, depends on what you want. –  Peter Wooster Feb 18 '13 at 1:05
show 4 more comments

Try this:

// tester 1
int x, y, z, mask;
x = 0x05; // 101
y = 0x06; // 110
mask = getMask(x, y);
z = (mask & (x & y));
System.out.println(String.format("mask: %x result: %x", mask, z));

// tester 2    
int x, y, z, mask;
x = 0x16; // 10110
y = 0x1B; // 11011
mask = getMask(x, y);
z = (mask & (x & y));
System.out.println(String.format("mask: %x result: %x", mask, z));

private int getMask(final int x, final int y) {
    int mask = findHighOrderOnBit(x, 0);
    mask = findHighOrderOnBit(y, mask) - 1;
    return mask;
}

private int findHighOrderOnBit(final int target, final int otherMask) {
    int result = 0x8000;
    for (int x = 0; x != 16; x++) {
        if ((result & target) > 0)
            break;
        result >>= 1;
    }
    if (otherMask > result)
        result = otherMask;
    return result;
}
share|improve this answer
    
What's with longs? –  GaborSch Feb 18 '13 at 1:53
    
@GaborSch - This is an example - change types as necessary - add error checking as necessary etc etc –  Java42 Feb 18 '13 at 1:57
2  
You don't need to call findHighOrderBit twice, just or the arguments. –  Peter Wooster Feb 18 '13 at 1:58
    
@PeterWooster - +1 - Good observation...I didn't think of that. Thanks. –  Java42 Feb 18 '13 at 2:11
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.