How to program natural log in matlab

2013 11월 25
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업데이트 시간: 2013 11월 26
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I'm trying to write a Matlab function that will compute the natural log for any input within limits I have set. I'm considering the Taylor series expansion of f(x)=ln(1+x). Where the series is only converges for -1< x <=1. I'm also using E<10^-6 for convergence criterion. I wrote a program but its not running correctly. Any suggestions? Thank you in an advance for your help!

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Walter Roberson
Walter Roberson 2013년 11월 25일
What behavior do you observe instead of it "running correctly" ?
Josh
Josh 2013년 11월 25일
The values it gives me are inaccurate.

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John D'Errico
John D'Errico 2013년 11월 26일
편집: John D'Errico 2013년 11월 26일

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You can learn a vast amount by reading what I did in my HPF toolbox, although there is no need for you to write a complete class to do the work. HPF uses series approximations, along with various range reduction schemes for all of the special functions I wrote. There I show how I compute logs that are accurate to many thousands of digits if desired.
Section 4.2 of HPFMod2.pdf describes the tricks I used in computation of the natural log. Find HPF here:
HPF
As an example...
log(hpf(2,100))
ans =
0.6931471805599453094172321214581765680755001343602552541206800094933936219696947156058633269964186875
And for comparison to the symbolic toolbox:
vpa(log(sym(2)),100)
ans =
0.6931471805599453094172321214581765680755001343602552541206800094933936219696947156058633269964186875
Some points to note:
You don't need to use a series to compute the log for all values of x, but only a restricted range, since you have various identities. For example, here is a simple one.
log(e*x) = log(e) + log(x) = 1 + log(x)
log(x/e) = -log(e) + log(x) = -1 + log(x)
So, if x is greater than sqrt(e), you can always divide by e repeatedly until x is not. Likewise, if x is less than 1/sqrt(e), you can always multiply by e until it is in the interval [1/sqrt(e),sqrt(e)].
So you might use a while loop to deal with x outside of the interval of interest.
exp(1/2)
ans =
1.64872127070013
exp(-1/2)
ans =
0.606530659712633
This is a reasonably small range to deal with. Once you get x into that interval, then a series approximation will do reasonably well. You can do a bit more of course, as I show in the pdf.

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질문:

Josh
Josh
2013년 11월 25일

편집:

John D'Errico
John D'Errico
2013년 11월 26일

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