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What is the simplest way to find the smallest power of 2 greater than a given n in python?

For example the smallest power of 2 greater than 6 is 8

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4 Answers 4

up vote 8 down vote accepted

Since the OP apparently posted this just to give his own solution which he believes is faster than other ways to do it, let's test it:

import collections
import math
import timeit

def power_bit_length(x):
    return 2**(x-1).bit_length()

def shift_bit_length(x):
    return 1<<(x-1).bit_length()

def power_log(x):
    return 2**(math.ceil(math.log(x, 2)))

def test(f):
    collections.deque((f(i) for i in range(1, 1000001)), maxlen=0)

def timetest(f):
    print('{}: {}'.format(timeit.timeit(lambda: test(f), number=10),
                          f.__name__))

timetest(power_bit_length)
timetest(shift_bit_length)
timetest(power_log)

The reason I'm using range(1, 1000001) instead of just range(1000000) is that the power_log version will fail on 0. The reason I'm using a small number of reps over a largeish range instead of lots of reps over a small range is because I expect that different versions will have different performance over different domains. (If you expect to be calling this with huge thousand-bit numbers, of course, you want a test that uses those.)

With Apple Python 2.7.2:

4.38817000389: power_bit_length
3.69475698471: shift_bit_length
7.91623902321: power_log

With Python.org Python 3.3.0:

6.566169916652143: power_bit_length
3.098236607853323: shift_bit_length
9.982460380066186: power_log

With pypy 1.9.0/2.7.2:

2.8580930233: power_bit_length
2.49524712563: shift_bit_length
3.4371240139: power_log

I believe this demonstrates that the 2** is the slow part here; using bit_length instead of log does speed things up, but using 1<< instead of 2** is more important.

Also, I think it's clearer. The OP's version requires you to make a mental context-switch from logarithms to bits, and then back to exponents. Either stay in bits the whole time (shift_bit_length), or stay in logs and exponents (power_log).

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Please note that the result is incorrect for x == 0, since (-1).bit_length() == 1 in Python. –  Siu Ching Pong -Asuka Kenji- Mar 16 at 18:35
def next_greater_power_of_2(x):  
    return 2**(x-1).bit_length()
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Isn't that awfully slow for large x? Apart from that, I can't say I understand it. –  delnan Jan 10 '13 at 21:28
    
@delnan -- Why would you expect this to be slow? (not that I understand the code either ...) –  mgilson Jan 10 '13 at 21:33
    
@delnan: First, bit_length is effectively log base 2 rounded up - 1, and very quickly. So, raise 2 to the power of that, and you're done. Maybe doing 1 << instead of 2 ** would be faster, but otherwise, what slowness are you expecting here? –  abarnert Jan 10 '13 at 21:34
    
I'm not sure how python implements bit_length, but it's pretty much instant even for huge values of x. –  jhoyla Jan 10 '13 at 21:35
    
bit_length returns "Number of bits necessary to represent self in binary." –  jhoyla Jan 10 '13 at 21:36

Would this work for you:

In [144]: math.log(6,2)
Out[144]: 2.584962500721156

In [145]: math.log(8,2)
Out[145]: 3.0

In [146]: math.ceil(math.log(6,2))
Out[146]: 3.0

In [147]: math.ceil(math.log(8,2))
Out[147]: 3.0

In [148]: math.ceil(math.log(16,2))
Out[148]: 4.0

In [149]: 2**math.ceil(math.log(6,2))
Out[149]: 8.0
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Requires log, which I think is slower. –  jhoyla Jan 10 '13 at 21:35
    
@jhoyla Performance is very rarely relevant (and the slow part would be looking up two functions and calling them, not log specifically). This is definitely more readable and obvious (for me at least). –  delnan Jan 10 '13 at 21:40
    
The only way to find out if it's slower is to test… but it does have the disadvantage that it says next_power_of_two(0) is a DomainError instead of 1… –  abarnert Jan 10 '13 at 21:40
    
@abarnert: that's what I get for answering SO posts during class - lack of proper testing :P –  inspectorG4dget Jan 10 '13 at 21:41
1  
The bit_length method gives 2 for 0, which is also wrong :P. –  jhoyla Jan 10 '13 at 21:48
v+=(v==0);
v--;
v|=v>>1;
v|=v>>2;
v|=v>>4;
v|=v>>8;
v|=v>>16;
v++;

For a 16-bit integer.

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