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I'm using a fairly new install of Visual C++ 2008 Express.

I'm trying to compile a program that uses the log2 function, which was found by including using Eclipse on a Mac, but this Windows computer can't find the function (error C3861: 'log2': identifier not found).

The way I understood it, include directories are specific to the IDE, right? math.h is not present in my Microsoft SDKs\Windows\v6.0A\Include\ directory, but I did find a math.h in this directory: Microsoft Visual Studio 9.0\VC\include. There is also a cmath in that directory...

Where is log2?

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Much better answers here –  bobobobo Feb 14 '13 at 17:50

3 Answers 3

up vote 33 down vote accepted

From here:

Prototype: double log2(double anumber);
Header File: math.h (C) or cmath (C++)

Alternatively emulate it like here

#include <math.h>  
...  
// Calculates log2 of number.  
double Log2( double n )  
{  
    // log(n)/log(2) is log2.  
    return log( n ) / log( 2 );  
}

Unfortunately Microsoft does not provide it.

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1  
log( 2. ) to avoid compiler complaining about ambigous call –  jirkamat Mar 4 '12 at 10:08
6  
You really should store the value of log(2) as a static double or a precomputed constant (0.30102999566398119521373889472449) so that log() doesn't get called twice every time –  bobobobo Mar 8 '12 at 2:47
2  
log(2) should be optimized out into a const static by a good optimizer. I have verified this using a test case in vc2008 and it is better practice to not use hand written constants. This ensures numeric consistency with other run-time functions, not that a few decimals would be a problem but anyways. –  Crog Feb 4 '13 at 9:35
1  
@bobobobo the base of the natural logarithm is E, not 10, so log(2) ~= 0.69314718055994530943 –  McKelvin Jan 20 at 6:17
1  
There is M_LN2 constant defined in math.h –  user128285 May 10 at 9:14

log2() is only defined in the C99 standard, not the C90 standard. Microsoft Visual C++ is not fully C99 compliant (heck, there isn't a single fully C99 compliant compiler in existence, I believe -- not even GCC fully supports it), so it's not required to provide log2().

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If you're trying to find the log2 of strictly integers, some bitwise can't hurt:

#include <stdio.h>

unsigned int log2( unsigned int x )
{
  unsigned int ans = 0 ;
  while( x>>=1 ) ans++;
  return ans ;
}

int main()
{
  // log(7) = 2 here, log(8)=3.
  //for( int i = 0 ; i < 32 ; i++ )
  //  printf( "log_2( %d ) = %d\n", i, log2( i ) ) ;

  for( unsigned int i = 1 ; i <= (1<<30) ; i <<= 1 )
    printf( "log_2( %d ) = %d\n", i, log2( i ) ) ;
}
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1  
Of course this will work but its performance is so much worse than log2(n). Log2 has a constant time and is always faster. This solution is O(log2n). For a large number log2 is about 500% faster. –  ruralcoder Aug 25 '13 at 1:01
    
Yes, it can hurt performance and quality. More code = more possible sources of bugs. –  Anders Sjögren Jan 21 at 14:24
    
@ruralcoder This is the most efficient way to find log(base2) of an integer. –  bobobobo Jan 21 at 17:30
    
@ruralcoder The compute time for ln is O(M(n) ln n). So this way of computing log_(base2) for integers is log_(base2)( x ), which is more efficient. –  bobobobo Jan 21 at 17:39
    
I actually had this problem in a python app. When i used log2(n), it was way faster. Not sure about the implementation details of ln, but when looking at the time spend for me it was obvious. Also for larger numbers, the above solution was slower, than for smaller numbers - obviously. –  ruralcoder Jan 21 at 21:05

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