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I have a bit array implementation where the 0th index is the MSB of the first byte in an array, the 8th index is the MSB of the second byte, etc...

What's a fast way to find the first bit that is set in this bit array? All the related solutions I have looked up find the first least significant bit, but I need the first most significant one. So, given 0x00A1, I want 8 (since it's the 9th bit from the left).

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Isn't bit 7 the most significant bit set in 0x00a1 (assuming the lsb is bit 0)? –  Michael Burr Apr 6 '10 at 23:50
    
Is your bit array of arbitrary length, or does it fit into a machine word? –  Michael Burr Apr 6 '10 at 23:51
    
I was counting from the left. In binary I get "0000|0000|1010|0001", so that's the 9th bit, with index 8. i did make a mistake though, it should be 8, not 9. –  Claudiu Apr 6 '10 at 23:53
    
What interface do you have to your bit array? What are the operations you can perform on it? –  jemfinch Apr 6 '10 at 23:53
    
@jemfinch: it's a C array of chars –  Claudiu Apr 7 '10 at 1:26

13 Answers 13

up vote 21 down vote accepted

GCC has __builtin_clz that translates to BSR on x86/x64, CLZ on ARM, etc. and emulates the instruction if the hardware does not implement it.
Visual C++ 2005 and up has _BitScanReverse.

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ty for the link –  Claudiu Apr 7 '10 at 1:36

As a performance junkie I have tried a ton of variations for MSB set, the following is the fastest I have come across,

unsigned int msb32(unsigned int x)
{
    static const unsigned int bval[] =
    {0,1,2,2,3,3,3,3,4,4,4,4,4,4,4,4};

    unsigned int r = 0;
    if (x & 0xFFFF0000) { r += 16/1; x >>= 16/1; }
    if (x & 0x0000FF00) { r += 16/2; x >>= 16/2; }
    if (x & 0x000000F0) { r += 16/4; x >>= 16/4; }
    return r + bval[x];
}
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There are multiple ways to do this, and the relative performance of the different implementations is somewhat machine-dependent (I happen to have benchmarked this to some extent for a similar purpose). On some machines there's even a built-in instruction for this (use one if available and portability can be dealt with).

Check out some implementations here (under “integer log base 2”). If you are using GCC, check out the functions __builtin_clz and __builtin_clzl (which do this for non-zero unsigned ints and unsigned longs, respectively). The “clz” stands for “count leading zeros”, which is yet another way to describe the same problem.

Of course, if your bit array does not fit into a suitable machine word, you need to iterate over words in the array to find the first non-zero word and then perform this calculation only on that word.

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Look up the BSR (Bit scan reverse) x86 asm instruction for the fastest way to do this. From Intel's doc: Searches the source operand (second operand) for the most significant set bit (1 bit). If a most significant 1 bit is found, its bit index is stored in the destination operand (first operand).

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Or, on the PowerPC, cntlwi –  Crashworks Apr 7 '10 at 0:01

http://graphics.stanford.edu/~seander/bithacks.html#IntegerLogObvious

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Heh, I have the exact same URL, #IntegerLogObvious included, in my answer. –  Arkku Apr 7 '10 at 0:04

Two best ways I know to do this in pure C:

First linear-search the byte/word array to find the first byte/word that's nonzero, then do an unrolled binary-search of the byte/word you find.

if (b>=0x10)
  if (b>=0x40)
    if (b>=0x80) return 0;
    else return 1;
  else
    if (b>=0x20) return 2;
    else return 3;
else
  if (b>=0x4)
    if (b>=0x8) return 4;
    else return 5;
  else
    if (b>=0x2) return 6;
    else return 7;

3 (BTW that's log2(8)) conditional jumps to get the answer. On modern x86 machines the last one will be optimized to a conditional mov.

Alternatively, use a lookup table to map the byte to the index of the first bit that's set.

A related topic you might want to look up is integer log2 functions. If I recall, ffmpeg has a nice implementation.

Edit: You can actually make the above binary search into a branchless binary search, but I'm not sure if it would be more efficient in this case...

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Here's a code snippet explaining __builtin_clz()

////// go.c ////////
#include <stdio.h>

unsigned NUM_BITS_U = ((sizeof(unsigned) << 3) - 1);
#define POS_OF_HIGHESTBITclz(a) (NUM_BITS_U - __builtin_clz(a)) /* only works for a != 0 */

#define NUM_OF_HIGHESTBITclz(a) ((a)                                \
                             ? (1U << POS_OF_HIGHESTBITclz(a))      \
                             : 0)


int main()
{
  unsigned ui;

  for (ui = 0U; ui < 18U; ++ui)
    printf("%i \t %i\n", ui, NUM_OF_HIGHESTBITclz(ui));

  return 0;
}
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Not the fastest, but it works...

//// C program
#include <math.h>

#define POS_OF_HIGHESTBIT(a) /* 0th position is the Least-Signif-Bit */    \
((unsigned) log2(a))         /* thus: do not use if a <= 0 */  

#define NUM_OF_HIGHESTBIT(a) ((!(a))          \
        ? 0 /* no msb set*/                   \
        : (1 << POS_OF_HIGHESTBIT(a) ))
// could be changed and optimized, if it is known that the following NEVER holds: a <= 0



int main()
{
  unsigned a = 5; // 0b101
  unsigned b = NUM_OF_HIGHESTBIT(a); // 4 since 4 = 0b100
  return 0; 
}
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If you're using x86, you can beat practically any byte-by-byte or word-by-word solution using the SSE2 operations, combined with the find-first-bit instructions, which (in the gcc world) are pronounced "ffs" for the lowest bit and "fls" for the highest bit. Pardon me for having trouble (!@#$%^) formatting "C" code in an answer; check out: http://mischasan.wordpress.com/2011/11/03/sse2-bit-trick-ffsfls-for-xmm-registers/

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Here's a simple, brute force algorithm for an arbitrary-sized array of bytes:

int msb( unsigned char x);  // prototype for function that returns 
                            //  most significant bit set

unsigned char* p;

for (p = arr + num_elements; p != arr;) {
    --p;
    if (*p != 0) break;
}

// p is with pointing to the last byte that has a bit set, or
//  it's pointing to the first byte in the array

if (*p) {
    return ((p - arr) * 8) + msb( *p);
}

// what do you want to return if no bits are set?
return -1;

I'll leave it as a an exercise for the reader to come up with an appropriate msb() function as well as the optimization to work on int or long long sized chinks of data.

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Um, your tag indicates 32bit but it looks like the values that you're using are 16 bit. If you did mean 32 bit, then I think the answer for 0x00a1 ought to be 24 and not 8.

Assuming that you are looking for the MSB bit index from the left hand side and you know that you will only be dealing with uint32_t's, here's the obvious, simple-minded algorithm:

#include <stdlib.h>
#include <stdio.h>
#include <stdint.h>

int main()
{
    uint32_t test_value = 0x00a1;
    int i;

    for (i=0; i<32; ++i)
    {
        if (test_value & (0x80000000 >> i))
        {
            printf("i = %d\n", i);
            exit(0);
        }
    }

    return 0;
}
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yea but it's too slow =( –  Claudiu Apr 7 '10 at 1:35
#define FFS(t)  \
({ \
register int n = 0; \
            \ 
if (!(0xffff & t)) \
    n += 16; \
         \
if (!((0xff << n) & t)) \
    n += 8; \
        \
if (!((0xf << n) & t)) \
    n += 4; \
        \
if (!((0x3 << n) & t)) \
    n += 2; \
        \
if (!((0x1 << n) & t)) \
    n += 1; \
        \
n; \
})
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How about a bit of explanation on that piece of code? –  Jesse Mar 27 '13 at 3:34
    
t should probably be in parentheses here if it's a macro. or better yet put it in a local variable also so it doesn't always get computed. –  Claudiu Mar 27 '13 at 3:47
    
it just uses binary search, I agree with your comments Claudiu, but I think there should be a more efficient way to get the result, and without use clz bsr similar instructions –  Leslie Li Mar 27 '13 at 7:16

I have worked with a number of functions to get the most significant bit, but problems generally arise moving between 32 and 64 bit numbers or moving between x86_64 and x86 boxes. The functions __builtin_clz, __builtin_clzl and __builtin_clzll work well for 32/64 bit numbers and across x86_64 and x86 machines. However, three functions are required. I have found a simple MSB that relies on right-shift that will handle all cases for positive numbers. At least for the use I make of it, it has succeeded where others have failed:

int
getmsb (unsigned long long x)
{
    int r = 0;
    if (x < 1) return 0;
    while (x >>= 1) r++;
    return r;
}

By designating input as unsigned long long it can handle all number classes from unsigned char to unsigned long long and given the standard definition, it is compatible across x86_64 and x86 builds. The case for 0 is defined to return 0, but can be changed as required. A simple test and output are:

int
main (int argc, char *argv[]) {

    unsigned char c0 = 0;
    unsigned char c = 216;
    unsigned short s = 1021;
    unsigned int ui = 32768;
    unsigned long ul = 3297381253;
    unsigned long long ull = 323543844043;

    int i = 32767;

    printf ("  %16u  MSB : %d\n", c0, getmsb (c0));
    printf ("  %16u  MSB : %d\n", c, getmsb (c));
    printf ("  %16u  MSB : %d\n", s, getmsb (s));
    printf ("  %16u  MSB : %d\n", i, getmsb (i));
    printf ("  %16u  MSB : %d\n", ui, getmsb (ui));
    printf ("  %16lu  MSB : %d\n", ul, getmsb (ul));
    printf ("  %16llu  MSB : %d\n", ull, getmsb (ull));

    return 0;
}

Output:

             0  MSB : 0
           216  MSB : 7
          1021  MSB : 9
         32767  MSB : 14
         32768  MSB : 15
    3297381253  MSB : 31
  323543844043  MSB : 38

NOTE: for speed considerations, using a single function to accomplish the same thing centered around __builtin_clzll is still faster by a factor of about 6.

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