how to fit exponential distribution function on data?

18 vues (au cours des 30 derniers jours)
Mos_bad
Mos_bad le 25 Jan 2020
Réponse apportée : Image Analyst le 26 Jan 2020
The vector m follows the truncated exponential equation (F_M) and it is shown by solid black line in figure. I intend to fit an exponential distribution function to data and find the parameter lambda (1/mean). Even though I've used fitdist(x,distname), the fitted exp. dist. shown in dashed line which is way different from the data. here is the code:
M_min=4.5; M_max=8.0;
m=M_min:0.0001:M_max;
a=4.56; b=1.0;
alpha=a*log(10);beta=b*log(10);
nu=exp(alpha-beta*M_min);
F_M=(1-exp(-beta*(m-M_min))) / (1-(exp(-beta*(M_max-M_min)))); % CDF of Mag.
pd = fitdist(m','Exponential');
figure(1); plot(m,1-F_M,'-','linewidth',2);
hold on; plot(m,1-cdf(pd,m),'--');
legend('data','fitted dist')
  2 commentaires
Walter Roberson
Walter Roberson le 25 Jan 2020
a and b are not defined in the third line.
Mos_bad
Mos_bad le 25 Jan 2020
just editted. thanks for pointing that out.

Connectez-vous pour commenter.

Connectez-vous pour répondre à cette question.

Réponses (2)

Walter Roberson
Walter Roberson le 26 Jan 2020
You do not have an exponential distribution. (1 minus an exponential) is not an exponential.
On the other hand if you fit using the equation
a*exp(-b*x)+c
instead of
a*exp(-b*x)
then you get pretty much a perfect fit.
  1 commentaire
Mos_bad
Mos_bad le 26 Jan 2020
All I want to do is to devide vertical axis to 1000 intervals and pick a random value of magnitude (horizental axis) at each interval. Kind of Latin hypercube sampling.

Connectez-vous pour commenter.

Image Analyst
Image Analyst le 26 Jan 2020
See my attached demo.
00_Screenshot.png

Catégories

En savoir plus sur Half-Normal Distribution dans Help Center et File Exchange

Tags

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by