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How to check if a number is a power of 2

This question has been asked in an interview.

How to check if a number is in 2^n format {1, 2, 4, 8, 16, 32, ....}

without using *, /, +, -, % operators?

And you can't use loops also.

marked as duplicate by Ozair Kafray, Amber, Ali, Chris, Paul R Aug 6 '12 at 8:07

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15

Check if there is exactly one bit set in the binary representation.

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    aka "Is N & (N-1) zero" if one were actually aiming for efficiency and not random interview question requirements. – Amber Aug 6 '12 at 7:43
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    @ both of you: I'm aware. I'm just pointing out the efficient way of doing it, hence why it's a comment and not an answer. – Amber Aug 6 '12 at 7:45
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    @Cicada unless we're assuming integers, any number greater than or equal to zero is a power of 2. – Amber Aug 6 '12 at 7:47
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    There's an x86 assembly instruction that counts the number of set bits in an integer value. – Wug Aug 6 '12 at 7:48
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    While Amber's comment is correct for the real numbers, it's not correct for any type representable on a computer. For example, for floating point types, you could try the base-2 log rounded either up or down, but when you go back to exponentiate it, you'll raise an inexact exception even if the right result value does come out. Thus conceptually it's not a "power of two" even in the weirdness of the floating point number system. – R.. Aug 6 '12 at 10:01
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Use the good old n & (n - 1) == 0, transformed in a way that does not use operator -.

int powerOfTwo(int number)
{
    int numberMinusOne = --number;
    ++number;

    if (number == 0)
        return 0;

    return (number & numberMinusOne) == 0;
}
  • is there a performance gain by avoiding -? – Chethan Apr 24 '13 at 15:30
  • @Chethan I don't think so. It was just a restriction stated by the OP. – user703016 Apr 25 '13 at 18:59

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