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This should be easy for C++ people though. But I was asked how to do it in C#. Shouldnt be much of difference.

How to find out if a long variable has only one bit set?

I cant think anything except some brutal force shifting all bits and counting whats set.

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3 Answers 3

up vote 16 down vote accepted

A non-negative binary integer value x is a power of 2 if (x&(x-1)) is 0 using 2's complement arithmetic.

Powers of 2 would mean a single bit is set.

http://aggregate.org/MAGIC/#Is%20Power%20of%202

EDIT:

To allow for the zero case:

bool singleBit = x>0 && (x&(x-1))==0
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:O this would've saved me tens of lines of coding a while ago! Can't believe I couldn't think of it, +1!! :) –  Mehrdad Jan 7 '11 at 9:55
    
The linked page is one of my favorites. Worth bookmarking. –  spender Jan 7 '11 at 9:57
    
This doesn't work for x = 0, you will have to check for that, too. –  Timbo Jan 7 '11 at 9:57
    
@spender: I just bookmarked it before refreshing this page and seeing your comment!! :) –  Mehrdad Jan 7 '11 at 9:58
2  
+1: Just a side note: for negative values the only one having just 1 bit set is long.MinValue –  digEmAll Jan 7 '11 at 10:23

Just tried it in PHP:

$singleBit = $bits && !($bits & ($bits - 1));
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In C++:

unsigned long v;
bool f; // result
f = v && !(v & (v - 1));

Explanation: v & (v - 1) == 0 if only one bit is set or v == 0.

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