Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have this code in order to get a logarithm of a number given a generic base:

#include <boost/math/special_functions/powm1.hpp>
#include <boost/math/special_functions/log1p.hpp>
#include <boost/math/special_functions/sqrt1pm1.hpp>
// ...
// Boost Log returns boost::math::log1p(x) = log(e, x + 1)
double res = (double)(boost::math::log1p(arg - 1));
// Base conversion: log(new, y) = log(old, y) / log(old, new)
// Then ==> log(base, arg) = log(e, arg) / log(e, base)
res = (double)(res / ((double)boost::math::log1p(base - 1)));
return res;

As you can see boot libs define only neperian log and there is also a tricky way to get that log because what that lib gives back to you is not log(x) but log(x+1). As you can see this problem is solved by giving as the argument arg - 1 and everything should work.

WELL It works, but only the neperian log is ok, I mean, If I run this code:

#include <boost/math/special_functions/powm1.hpp>
#include <boost/math/special_functions/log1p.hpp>
#include <boost/math/special_functions/sqrt1pm1.hpp>
// ...
// Boost Log returns boost::math::log1p(x) = log(e, x + 1)
double res = (double)(boost::math::log1p(arg - 1));
// Base conversion: log(new, y) = log(old, y) / log(old, new)
// Then ==> log(base, arg) = log(e, arg) / log(e, base)
//res = (double)(res / ((double)boost::math::log1p(base - 1)));
return res;

Everything is ok, but right when I perform a base change everything is not good, I get back wrong results... I don't know, maybe it's a math issue... I know that log(basea, x) = log(baseb, x)/log(baseb, basea)...

Where do I do wrong??

Well, may be it is a math issue concerning numerical stability and so on... to get a log in a different base, what's the best practice???????

share|improve this question
2  
What's wrong with std::log that you can use by including <cmath>? This is the natural logarithm. You can then apply the change of base formula to get the log in a given base. Keep it simple! –  Luca Martini Dec 2 '10 at 10:45
    
Yes I know... but Log by boost works.... its just when I change base that there are problems... but I really don't know why... –  Andry Dec 2 '10 at 13:12

2 Answers 2

I am not sure what is happening exactly but you may be having a rounding issue. The issue with 1 + delta where delta is small is that doubles are not built to hold the delta to much precision as the 1 dominates enormously and the delta is considered insignificant.

The purpose of the boost library is to allow you to pass in the 1 and the delta separately to not lose the precision of the delta when you take the log, which will give you a number close to 0.

An example is you delta = 0.00000000123456789

If you add that to 1 then subtract 1 again you will not see all those numbers as a double only holds about 15 places of precision but the number above +1 gives requires 17 whereas the numbe I have printed uses just 9 places because the leading zeros don't count.

share|improve this answer
    
Well I understand... but there must be a way to get a damn logarithm of a given number in a GIVEN base, the base is the problem, not the delta in the argument of the function.... –  Andry Dec 2 '10 at 9:43

Why don't you just use log function from the standard library?

share|improve this answer
    
I thought boost provided something more reliable and precise... –  Andry Dec 2 '10 at 13:11

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.