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Can anyone show me how this operation works? Index is number and it can be any number from 0 to 128. I just don't understand how (index & 0x88) can be 0 or not.

Any help will be greatly appreciated!

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marked as duplicate by Alexei Levenkov, Raymond Chen, Cody Gray, Chris Lätta, I4V Apr 24 '13 at 6:14

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

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0x88, when written in binary, is 0b10001000. Therefore, index & 0x88 is zero precisely when both the 8th and 4th bits of index are 0. Usually this type of condition is used when you are testing for bit-based flags (in this case, the combination of flags indicated by the 8th and 4th flags being unset.) –  dlev Apr 24 '13 at 5:36
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3 Answers 3

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The & operator is a bitwise AND, if the binary digits of 0x88 and corresponding spot in index are both 1, it will not == 0. In the opposite case, if none of the digits are both 1, then the outcome of the & will be 0

In this case, your hex number 88 is 10001000 in binary, so (index & 10001000) can equal to 0 as long as index has 0 in it's 4th and 8th positions (for example, 01110111)

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0x88 is equivalent to 10001000 in binary. Thus, it will be 0 iff the binary value of the index is 0xxx0xxx, where x is any binary digit.

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& is the bitwise and operator (when applied to numbers).

For example, 110 & 101 = 100

0x88 is 10001000 in binary.

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