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I have the following C statement:

int res = x & (x ^ y);

Is there a way to do the same thing, but using x and y only one time each?

For example:

x | (~x & y) == x | y
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2 Answers 2

up vote 7 down vote accepted

Yes, by expanding the xor (a ^ b == (a & ~b) | (~a & b)), and then simplifying the result, one gets:

res = x & ~y;
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x & (x ^ y) sets the bits that are set on x and set on x^y e.g. not set on y.

So you can do:

int res = x & ~y;
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