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I need to find the smallest power of two that's greater or equal to a given value. So far, I have this:

int value = 3221; // 3221 is just an example, could be any number
int result = 1;

while (result < value) result <<= 1;

It works fine, but feels kind of naive. Is there a better algorithm for that problem?

EDIT. There were some nice Assembler suggestions, so I'm adding those tags to the question.

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What is the language (C, Java)? Do you need pow(2, power) or power? –  J.F. Sebastian Dec 13 '08 at 8:27
    
The application is in C++, but I can take some C# or Java too, so feel free to use your favorite. –  Boyan Dec 13 '08 at 8:30
    
They're good answers too in stackoverflow.com/questions/466204/… –  ydroneaud Mar 11 '13 at 11:55
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16 Answers 16

up vote 36 down vote accepted

Here's my favorite. Other than the initial check for whether it's invalid (<0, which you could skip if you knew you'd only have >=0 numbers passed in), it has no loops or conditionals, and thus will outperform most other methods. This is similar to erickson's answer, but I think that my decrementing x at the beginning and adding 1 at the end is a little less awkward than his answer (and also avoids the conditional at the end).

/// Round up to next higher power of 2 (return x if it's already a power
/// of 2).
inline int
pow2roundup (int x)
{
    if (x < 0)
        return 0;
    --x;
    x |= x >> 1;
    x |= x >> 2;
    x |= x >> 4;
    x |= x >> 8;
    x |= x >> 16;
    return x+1;
}
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4  
Except for minor syntax differences and the additional of that initial check, yours is also nearly identical to the version given in Henry S. Warren, Jr.'s "Hacker's Delight.". –  Boojum Dec 13 '08 at 10:22
    
@Boojum: Thanks for mentioning that book. I've checked it out and it's got the solution I need, plus much more! –  Boyan Dec 13 '08 at 10:36
    
Maybe this solution will be slower than doing it in Assembler, but it has the advantage of being completely portable. –  Boyan Dec 13 '08 at 11:18
    
So was your solution, @Boyan, and I think yours was a little more readable. –  paxdiablo Dec 13 '08 at 11:53
3  
@Boyan: This solution is not portable e.g., how does it work on x64? (it doesn't) –  J.F. Sebastian Dec 13 '08 at 21:45
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On Intel hardware the BSR instruction is close to what you want - it finds the most-significant-set-bit. If you need to be more precise you can then wonder if the remaining bits are precisely zero or not. I tend to assume that other CPU's will have something like BSR - this is a question you want answered to normalize a number. If your number is more than 32 bits then you would do a scan from your most-significant-DWORD to find the first DWORD with ANY bits set. Edsger Dijkstra would likely remark that the above "algorithms" assume that your computer uses Binary Digits, while from his kind of lofty "algorithmic" perspective you should think about Turing machines or something - obviously I am of the more pragmatic style.

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Yes, maybe I'll do some Assembler. After finding the most significant set bit, I think I can do: if (~most_sign_bit & value) to find if I have to left-shift the value once. Is that correct? –  Boyan Dec 13 '08 at 8:46
    
I looked in MSDN and there is a compiler instrinsic called _BitScanReverse() - this is better than assembler because you can't do inline assember in x64 and you don't want to waste a procedure call to an external x64 routine. Assuming you're using MS compilers of course. –  pngaz Dec 13 '08 at 8:52
    
The (~MSB & value ) sounds perfect - of course single-stepping will tell for sure ! –  pngaz Dec 13 '08 at 8:54
    
There is a bit of cleanup to do since both 4 and 5 will return 2 for the MSB, while the right answer for for those values are 4 and 8 respectively. Nevertheless, I like the BSR solution -- I tend to forget about that instruction. –  DocMax Dec 13 '08 at 9:29
    
@DocMax: Yes, that's why I'll use (~MSB & value) after BSR to find out if I need one left shift. –  Boyan Dec 13 '08 at 9:36
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ceil(log2(value))

ilog2() can be calculated in 3 asm instructions e.g., http://www.asterisk.org/doxygen/1.4/log2comp_8h-source.html

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That's something I considered, but won't it be slower than my bit-pushing solution? –  Boyan Dec 13 '08 at 8:20
    
I think this will be slower than the loop mentioned in the question –  Naveen Dec 13 '08 at 8:24
    
There is no slow feature in this but rather, taking the result of log2(value) and rounding it up to the nearest whole number cannot be beaten in efficiency when the log table lookups are all pre-computed –  Supernovah Dec 13 '08 at 8:36
1  
Log-base-2 generally takes a float as an argument. Are you saying you have a lookup table with an entry for every possible float? I hope not... Of course, the fastest way is a lookup table with 2^32 entries but that's a bit memory-expensive. –  paxdiablo Dec 13 '08 at 8:41
    
Yes, quite a bit... –  Boyan Dec 13 '08 at 8:47
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Your implementation is not naive, it's actually the logical one, except that it's wrong - it returns a negative for numbers greater that 1/2 the maximum integer size.

Assuming you can restrict numbers to the range 0 through 2^30 (for 32-bit ints), it'll work just fine, and a lot faster than any mathematical functions involving logarithms.

Unsigned ints would work better but you'd end up with an infinite loop (for numbers greater than 2^31) since you can never reach 2^32 with the << operator.

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Yes, the values would be greater than zero and much less than 2^31. –  Boyan Dec 13 '08 at 8:27
1  
Then what you have is about as fast as it's going to get. I don't doubt there's a boolean algebra solution that'll do it in 2 or three operations, but you'd sacrifice lots of readability for a very small performance gain. –  paxdiablo Dec 13 '08 at 8:29
    
I think you might be able to speed it up using a binary search: Initialize result with the (statically) computed middle of the number range and shift left / right. The more steps you precompute on this search tree, the lower the average shift-amount becomes –  Tetha Dec 13 '08 at 9:56
    
I just dont know if this really will be faster, because for many ranges the solution up there could be faster despite the higher amount of shifts. –  Tetha Dec 13 '08 at 9:56
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In the spirit of Quake II's 0x5f3759df and the Bit Twiddling Hacks' IEEE version - this solution reaches into a double to extract the exponent as a means to calculate floor(lg2(n)). It's a bit faster than the accepted solution and much faster than the Bit Twiddling IEEE version since it avoids floating point math. As coded, it assumes a double is a real*8 IEEE float on a little endian machine.

int nextPow2(int n) 
{ 
    if ( n <= 1 ) return n;
    double d = n-1; 
    return 1 << ((((int*)&d)[1]>>20)-1022); 
}

Edit: Add optimized x86 assembly version with the help of a co-worker. A 4% speed gain but still about 50% slower than a bsr version (6 sec vs 4 on my laptop for n=1..2^31-2).

int nextPow2(int n) 
{ 
    if ( n <= 1 ) return n;
    double d;
    n--;
    __asm {
      fild    n 
      mov     eax,4
      fstp    d 
      mov     ecx, dword ptr d[eax]
      sar     ecx,14h 
      rol     eax,cl 
  }
}
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An exploration of the possible solutions to closely related problem (that is, rounding down instead of up), many of which are significantly faster than the naive approach, is available on the Bit Twiddling Hacks page, an excellent resource for doing the kinds of optimization you are looking for. The fastest solution is to use a lookup table with 256 entries, that reduces the total operation count to around 7, from an average of 62 (by a similar operation counting methodology) for the naive approach. Adapting those solutions to your problem is a matter of a single comparison and increment.

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Thanks for the link, nice stuff there! –  Boyan Dec 17 '08 at 7:58
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You don't really say what you mean by "better algorithm" but as the one you present is perfectly clear (if somewhat flawed), I'll assume you are after a more efficient algorithm.

Larry Gritz has given what is probably the most efficient c/c++ algorithm without the overhead of a look up table and it would suffice in most cases (see http://www.hackersdelight.org for similar algorithms).

As mentioned elsewhere most CPUs these days have machine instructions to count the number of leading zeroes (or equivalently return the ms set bit) however their use is non-portable and - in most cases - not worth the effort.

However most compilers have "intrinsic" functions that allow the use of machine instructions but in a more portable way.

Microsoft C++ has _BitScanReverse() and gcc provides __builtin_clz() to do the bulk of the work efficiently.

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pow ( 2 , ceil( log2(value) );

log2(value) = log(value) / log(2);

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My version of the same:

int pwr2Test(size_t x) {
    return (x & (x - 1))? 0 : 1; 
}

size_t pwr2Floor(size_t x) {
    // A lookup table for rounding up 4 bit numbers to
    // the nearest power of 2.
    static const unsigned char pwr2lut[] = {
        0x00, 0x01, 0x02, 0x02,     //  0,  1,  2,  3
        0x04, 0x04, 0x04, 0x04,     //  4,  5,  6,  7
        0x08, 0x08, 0x08, 0x08,     //  8,  9, 10, 11
        0x08, 0x08, 0x08, 0x08      // 12, 13, 14, 15
    };

    size_t pwr2 = 0;                // The return value
    unsigned int i = 0;             // The nybble interator

    for( i = 0; x != 0; ++i ) {     // Iterate through nybbles
        pwr2 = pwr2lut[x & 0x0f];   // rounding up to powers of 2.
        x >>= 4;                    // (i - 1) will contain the
    }                               // highest non-zero nybble index.

    i = i? (i - 1) : i;
    pwr2 <<= (i * 4);
    return pwr2; 
}

size_t pwr2Size(size_t x) {
    if( pwr2Test(x) ) { return x; }
    return pwr2Floor(x) * 2; 
 }
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The code below repeatedly strips the lowest bit off until the number is a power of two, then doubles the result unless the number is a power of two to begin with. It has the advantage of running in a time proportional to the number of bits set. Unfortunately, it has the disadvantage of requiring more instructions in almost all cases than either the code in the question or the assembly suggestions. I include it only for completeness.

int nextPow(int x) {
  int y = x
  while (x &= (x^(~x+1))) 
    y = x << 1;
  return y
}
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I know this is downvote-bait, but if the number is small enough (like 8 or 16-bits) a direct lookup might be fastest.

// fill in the table
unsigned short tab[65536];
unsigned short bit = tab[i];

It might be possible to extend it to 32 bits by first doing the high word and then the low.

//
unsigned long bitHigh = ((unsigned long)tab[(unsigned short)(i >> 16)]) << 16;
unsigned long bitLow = 0;
if (bitHigh == 0){
    bitLow = tab[(unsigned short)(i & 0xffff)];
}
unsigned long answer = bitHigh | bitLow;

It's probably no better that the shift-or methods, but maybe could be extended to larger word sizes.

(Actually, this gives the highest 1-bit. You'd have to shift it left by 1 to get the next higher power of 2.)

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Using a 256-entry lookup table and using the results for all 4 bytes of a 4-byte word is quite viable. The memory/speed tradeoff to use a 65536 entry table is not great (14% speedup, 25500% memory increase), –  Sparr Dec 18 '08 at 21:52
    
@Sparr. You're right. It's hard to beat the shift-or method, but it's interesting to keep an eye out for more ways to skin cats. –  Mike Dunlavey Dec 18 '08 at 22:24
    
Once I heard a Dijkstra lecture on fun algorithms. He had a student who did an n-bit rotate by doing a sequence of 3 bit-reversals. –  Mike Dunlavey Dec 18 '08 at 22:29
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i love the shift.

i'll settle for

    int bufferPow = 1;
    while ( bufferPow<bufferSize && bufferPow>0) bufferPow <<= 1;

that way the loop always terminates, and the part after && is evaluated almost never. And i do not think two lines are worth a function call. Also you can make a long, or short, depending on your judgment, and it is very readable. (if bufferPow becomes negative, hopefully your main code will exit fast.)

Usually you compute 2-power only once at the start of an algorithm, so optimizing would be silly anyway. However, would be interested if anyone bored enough would care for a speed contest... using the above examples and 255 256 257 .. 4195 4196 4197

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An arbitrary log function can be converted to a log base 2 by dividing by the log of 2:

$ /usr/local/pypy-1.9/bin/pypy
Python 2.7.2 (341e1e3821ff, Jun 07 2012, 15:38:48)
[PyPy 1.9.0 with GCC 4.4.3] on linux2
Type "help", "copyright", "credits" or "license" for more information.
And now for something completely different: ``<arigato> yes but there is not
much sense if I explain all about today's greatest idea if tomorrow it's
completely outdated''
>>>> import math
>>>> print math.log(65535)/math.log(2)
15.9999779861
>>>> print math.log(65536)/math.log(2)
16.0
>>>>

It of course won't be 100% precise, since there is floating point arithmetic involved.

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Here's a template version of the bit shifting technique.

template<typename T> T next_power2(T value)
{
    --value;
    for(size_t i = 1; i < sizeof(T) * CHAR_BIT; i*=2)
        value |= value >> i;
    return value+1;
}

Since the loop only uses constants it gets flattened by the compiler. (I checked) The function is also future proof.

Here's one that uses __builtin_clz. (Also future proof)

template<typename T> T next_power2(T value)
{
    return 1 << ((sizeof(T) * CHAR_BIT) - __builtin_clz(value-1));
}
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How about a recursive template version to generate a compile constant:

template<uint32_t A, uint8_t B = 16>
struct Pow2RoundDown { enum{ value = Pow2RoundDown<(A | (A >> B)), B/2>::value }; };
template<uint32_t A>
struct Pow2RoundDown<A, 1> { enum{ value = (A | (A >> 1)) - ((A | (A >> 1)) >> 1) }; };

template<uint32_t A, uint8_t B = 16>
struct Pow2RoundUp { enum{ value = Pow2RoundUp<((B == 16 ? (A-1) : A) | ((B == 16 ? (A-1) : A) >> B)), B/2>::value }; };
template<uint32_t A >
struct Pow2RoundUp<A, 1> { enum{ value = ((A | (A >> 1)) + 1) }; };

Can be used like so:

Pow2RoundDown<3221>::value, Pow2RoundUp<3221>::value
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This works and is really fast (on my 2.66 GHz Intel Core 2 Duo 64-bit processor).

#include <iostream>
int main(void) {
    int testinput,counter;
    std::cin >> testinput;
    while (testinput > 1) {
        testinput = testinput >> 1;
        counter++;
    }
    int finalnum = testinput << counter+1;
    printf("Is %i\n",finalnum);
    return 0;
}

I tested it on 3, 6, and 65496, and correct answers (4, 8, and 65536) were given.

Sorry if this seems a bit arcane, I was under the influence of a couple of hours of Doom just before writing. :)

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This looks worse than what the OP started with, not to mention some other algorithms presented here –  hirschhornsalz Aug 21 '11 at 10:59
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