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I know this method and it is not efficient enough

(a/2)%2==0;

marked as duplicate by Reto Koradi, Brett Hale, RiaD, Community Aug 10 '15 at 16:25

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  • Depending on the size of a - you could do a single bit compare, checking for the values 2,4,8,16,32,64 etc. – Neil Aug 10 '15 at 16:18
  • 2
    A division and a modulo, that's already pretty efficient! Have you benchmarked and determined this to be a bottleneck? – DarkDust Aug 10 '15 at 16:18
  • 4
    (12 / 2) % 2 = 0. 12 is not integral power of 2. – Eugene Sh. Aug 10 '15 at 16:18
  • actually I am getting Time Limit Exceeded in a competitive programming problem – g.i joe Aug 10 '15 at 16:19
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    @g.ijoe Is that because there's a loop somewhere? – dasblinkenlight Aug 10 '15 at 16:20
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Your method does not check that. It will return true for 12 for example.(and will return false for 2)

To check you may use x != 0 && (x & (x - 1)) == 0

  • Heh.. we came up with the same example... – Eugene Sh. Aug 10 '15 at 16:19
  • @EugenSh. it's smallest multiple of 4, which is not is power of two, so it's quite natural – RiaD Aug 10 '15 at 16:20
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See the Bit Twiddling Hacks :

unsigned int v; // we want to see if v is a power of 2
bool f;         // the result goes here 

f = (v & (v - 1)) == 0;

Note that 0 is incorrectly considered a power of 2 here. To remedy this, use:

f = v && !(v & (v - 1));
3

If you're using gcc and x64 there's an intrinsic that lets you use the CPU instruction that counts bits:

int __builtin_popcount (unsigned int x)
  • How can the population count be used to determine whether a number is to the power of 2? – DarkDust Aug 11 '15 at 6:54
  • @DarkDust values that are a power of 2 have only one bit set – James Aug 11 '15 at 7:26
  • Right. So obvious it hurts… – DarkDust Aug 11 '15 at 7:40

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