How to solve for 3 parameters for a Weibull distribution

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Isaac Valdez
Isaac Valdez 2020년 6월 26일
댓글: Isaac Valdez 2020년 6월 30일
I am having a difficult time solving for the parameters "a", "b", and "c" for a data set that has a Weibull distribution. I know there is the "wblfit" command that solves for "a" and "b" however I cant seem to figure out a way to solve for all three parameters. Below is my code and the data that I want to find the paramters for.
Build_Array_Final{1}=[214.42,214.99,215.35,215.98,221.08,222.54,214.78,215,215.32,215.75,217.06,215.91,212.30,213.78,217.16,218.39,224.23,221.94...
,215.67,214.04,214.98,215.13]';
custpdf = @(x,a,b,c) (x>c).*(b/a).*(((x-c)/a).^(b-1)).*exp(-((x-c)/a).^b);
opt = statset('MaxIter',1e5,'MaxFunEvals',1e5,'FunValCheck','off');
params = mle(Build_Array_Final{1},'pdf',custpdf,'start',[5 5 5],'Options',opt,'LowerBound',[0 0 0],...
'UpperBound',[Inf Inf min(Build_Array_Final{1})]);
I am also confused on what my initials start values are suppose to be for my parameter if I do not even know what they are.
I know there was a question that was asked similar to this but it was not answered. Any input I would be greatfutl for.
I am using ver 2020a

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Jeff Miller
Jeff Miller 2020년 6월 27일
Here is what I get using Cupid:
Build_Array_Final{1}=[214.42,214.99,215.35,215.98,221.08,222.54,214.78,215,215.32,215.75,217.06,215.91,212.30,213.78,217.16,218.39,224.23,221.94...
,215.67,214.04,214.98,215.13]';
w = Weibull(1,1,210); % Wild guesses for starting parameters
w.EstML(Build_Array_Final{1})
% ans =
% Weibull(5.0394,1.5531,212.1006)
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Jeff Miller
Jeff Miller 2020년 6월 29일
Yes I just used that one line with EstMLE to find the parameters. Cupid did the rest.
Starting values are wild guesses, as I indicated, except I know that the third parameter is always a little less than the minimum data value. If you aren't sure EstMLE found the best parameter values, you can try lots of other starting points and see whether they all end with the same estimates.
"verifying the parameters" Not sure what you mean by that. Of course the estimated parameters are not the true population values because you only have a noisy random sample of data, and you can't perfectly recover the truth from those. If you mean showing that these parameter values do indeed maximize the likelihood, then you can try other parameter values and compare likelihoods with those.
The a and b from the 2-parameter Weibull shouldn't be anything like the first two of the 3-parameter version, at least not when the 3rd parameter is far from zero. If you want to use wblfit, subtract 214 from all of your observations and use wblfit on the difference scores. Then the a,b should be about the same as those that Cupid provided. That third parameter is just an offset of the scores; normally the minimum score in a Weibull distribution is 0.
Isaac Valdez
Isaac Valdez 2020년 6월 30일
Thank you for clarifying everything in such great detail.

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