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I need a function like this:

// return true iff 'n' is a power of 2, e.g.
// is_power_of_2(16) => true  is_power_of_2(3) => false
bool is_power_of_2(int n);

Can anyone suggest how I could write this? Can you tell me a good web site where this sort of algorithm can be found?

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9 Answers 9

A power of two will have just one bit set (for unsigned numbers). Something like

bool powerOfTwo = !(x == 0) && !(x & (x - 1));

Will work fine; one less than a power of two is all 1s in the less significant bits, so must AND to 0 bitwise.

As I was assuming unsigned numbers, the == 0 test (that I originally forgot, sorry) is adequate. You may want a > 0 test if you're using signed integers.

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You're missing a '!' or an '==0' –  Mike F Sep 20 '08 at 14:43
    
You're also missing a test for negative value of x. –  Rob Wells Sep 20 '08 at 14:44
    
Neat, how did you edit it without the 'edited x minutes ago' appearing? –  Mike F Sep 20 '08 at 14:45
    
What about when x is 0? –  Ant Sep 20 '08 at 14:47
    
Seriously, how did you just get 120 rep for a demonstrably wrong answer? –  Mike F Sep 20 '08 at 14:50

"(n & (n - 1)) == 0" is best. However, note that it will incorrectly return true for n=0, so if that is possible, you will want to check for it explicitly.

http://www-graphics.stanford.edu/~seander/bithacks.html has a large collection of clever bit-twiddling algorithms, including this one.

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1  
great web site (and answer), thanks –  Ant Sep 20 '08 at 14:54

Powers of two in binary look like this:

1: 0001
2: 0010
4: 0100
8: 1000

Note that there is always exactly 1 bit set. The only exception is with a signed integer. e.g. An 8-bit signed integer with a value of -128 looks like:

10000000

So after checking that the number is greater than zero, we can use a clever little bit hack to test that one and only one bit is set.

bool is_power_of_2(int x) {
    return x > 0 && !(x & (x−1));
}

For more bit twiddling see here.

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1  
small typo - function argument must be x –  Chethan Apr 24 '13 at 17:06
bool is_power_of_2(int i) {
    if ( i <= 0 ) {
        return 0;
    }
    return ! (i & (i-1));
}
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The condition should be <= 0 –  Steve Jessop Sep 20 '08 at 14:48
    
Oh. Yes. Good catch! Thanks (-: –  Rob Wells Sep 20 '08 at 15:01

This isn't the fastest or shortest way, but I think it is very readable. So I would do something like this:

bool is_power_of_2(int n)
  int bitCounter=0;
  while(n) {
    if ((n & 1) == 1) {
      ++bitCounter;
    }
    n >>= 1;
  }
  return (bitCounter == 1);
}

This works since binary is based on powers of two. Any number with only one bit set must be a power of two.

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It may not be fast or short, but it's correct unlike the top answers. –  Mike F Sep 20 '08 at 15:00
    
The top answers are correct. –  Larry Gritz Sep 21 '08 at 6:47
1  
At time of commenting they were all bugged. They have since been edited into an acceptable state. –  Mike F Sep 25 '08 at 4:33

This is the bit-shift method in T-SQL (SQL Server):

SELECT CASE WHEN @X>0 AND (@X) & (@X-1)=0 THEN 1 ELSE 0 END AS IsPowerOfTwo

It is a lot faster than doing a logarithm four times (first set to get decimal result, 2nd set to get integer set & compare)

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1  
It is good to see how the top answer to this question can also be implemented in T-SQL, but that isn't really relevant to the question asked here. An alternative (if you were looking for a solution in T-SQL, found this answered question , implemented it in T-SQL and thought it interesting enough to post this answer) would be to post the question with reference to T-SQL, then answer it yourself, with reference to this answered question. Hope this suggestion is helpful. –  Simon Feb 2 '13 at 2:03

Here is another method, in this case using | instead of & :

bool is_power_of_2(int x) {
    return x > 0 && (x<<1 == (x|(x-1)) +1));
}
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Another way to go (maybe not fastest) is to determine if ln(x) / ln(2) is a whole number.

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1  
There's no maybe about it :-). –  paxdiablo Sep 20 '08 at 15:17
    
This would have problems with floating point inaccuracy. ln(1<<29) / ln(2) comes out to 29.000000000000004. –  Anonymous Sep 20 '08 at 15:19

The very simplest way is to use the modulus operator; please note that it works for negative numbers as well. It's much simpler that bit shift math and it can be used in virtually any language. You asked for simple, here's simple.

bool is_power_of_2(int n)
{
    return (n % 2 == 0);
}

// You can always do it inline to; where x is an int
if (x%2==0) {
    // x is even
}
else {
    // x is odd
}
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This code returns multiples of 2 –  daniel Sep 20 '08 at 20:28
    
Your code checks for even values, not powers of 2. 6 % 2 == 0 is true, however 6 is not a power of 2. (power of 2s are 1, 2, 4, 8, 16, 32, 64, 128, 256, ...) –  kfsone Dec 8 '13 at 9:14

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