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using only bitwise operators (|, &, ~, ^, >>, <<), is it possible to replace the != below?

// ...
if(a != b){
    // Some code
}
/// ...

this is mainly out of self interest, since I saw how to do it with == but not !=.

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a and b are uints? or strings? –  duedl0r Sep 21 '12 at 23:30
    
how does bitwise operation make sense with strings? –  Yossarian Sep 21 '12 at 23:32
    
not bitwise, but still worth mentioning? if(a<b || a>b) –  ajax333221 Sep 21 '12 at 23:36
    
@ajax333221 Incidentally, your solution is not entirely correct for floating point numbers; NaN is neither less than nor greater than any other value. –  willglynn Sep 21 '12 at 23:39
    
they are integers. –  Link Sep 21 '12 at 23:40

6 Answers 6

up vote 6 down vote accepted
if(a ^ b) {
    //some code
}

should work.

You can also use your preferred method for == and add ^ 0xFFFFFFFF behind it (with the right amount of Fs to match the length of the datatype). This negates the value (same as ! in front of it).

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1  
Alternatively one can express (a XOR b) as (((NOT a) AND b) OR (a AND NOT(b))), if XOR is unavailable. –  Alexey Frunze Sep 22 '12 at 0:08

a != b means that there is at least one different bit in the bit representations of a and b. The XOR bit operator returns 1 if both input bit operands are different, 0 otherwise.

So, you can apply a XOR operation to a and b and check if the result is not equal to zero.

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This feels suspiciously like homework, so I'll just lead you most of the way there: "are these two integers not equal" can also be phrased as "are any of the bits in these two integers not equal". How might you test for that?

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This is not homework, I was answering a question before, and saw this: stackoverflow.com/questions/4161656/…, that is when I wondered how it may be done. –  Link Sep 21 '12 at 23:39
if (a ^ b) { }

body must be at least 30 characters; you entered 27

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A bitwise version of the '!=' test could look something like:

if((a - b) | (b - a)) {
    /* code... */
}

which ORs the two subtractions. If the two numbers are the same, the result will be 0. However, if they differ (aka, the '!=' operator) then the result will be 1.

Note: The above snippet will only work with integers (and those integers should probably be unsigned).

If you want to simulate the '==' operator, however, check out Fabian Giesen's answer in Replacing "==" with bitwise operators

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"~" is equaled to NOT so that should work. example would be "a & ~b".

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This is perfect, simple elegant, and works. Great job. –  Link Sep 21 '12 at 23:41
2  
It's also wrong when you pass in zero. –  willglynn Sep 21 '12 at 23:48
    
It works when I do it? –  Link Sep 21 '12 at 23:55
2  
0 & ~0 = 0. 0 & ~1 = 0. –  willglynn Sep 21 '12 at 23:55
    
Well, i'm doing it while(15 & ~0), and it seems to work. –  Link Sep 22 '12 at 0:00

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