a problem while using an anonymous function
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Eliraz Nahum
el 10 de Oct. de 2018
Comentada: Eliraz Nahum
el 11 de Oct. de 2018
hello,
I can't understand what's wrong. I will appreciate any help. I have a problem while trying to using the integral function with the handle of an anonymous function. I am adding a photo of the output error.
clear all
close all
clc
lamda=5;
x=[1:1:30];
p=zeros(1,length(x));
poiss_PDF=zeros(1,length(x));
poiss_int=zeros(1,length(x));
step=0;
poiss_pdf=@(x) (1/factorial(x))*(lamda^x)*exp(-lamda);
for x_i=x
step=step+1;
p(step)=poiss_pdf(x_i);
poiss_PDF(step)=poisspdf(x_i,lamda);
poiss_int(step)=integral(poiss_pdf,x(1),x(end));
end
plot(x,p,'b')
title (['Poisson PDF (calculated) with the parameter lamda= ',num2str(lamda)])
xlabel('x')
ylabel ('Distribution')
xlim([x(1) x(end)])
hold on
plot (lamda,poiss_pdf(lamda),'dr')
figure
plot(x,poiss_PDF,'g')
title (['Poisson PDF (from Matlab) with the parameter lamda= ',num2str(lamda)])
xlabel('x')
ylabel ('Distribution')
xlim([x(1) x(end)])
hold on
plot (lamda,poisspdf(lamda,lamda),'dr')
figure
plot(x,poiss_int,'k')
title (['Poisson integral (calculated) with the parameter lamda= ',num2str(lamda)])
xlabel('x')
ylabel ('Probability')
xlim([x(1) x(end)])
hold on
plot (lamda,poiss_pdf(lamda),'dr')
2 comentarios
Bruno Luong
el 10 de Oct. de 2018
Why you are using integral to handle discrete PDF like Poisson? For discrete you need to do a sum.
Or transform the discrete PDF to a sum of weighted dirac, not sur integral can handle though.
Respuesta aceptada
the cyclist
el 10 de Oct. de 2018
Editada: the cyclist
el 10 de Oct. de 2018
Replace
poiss_pdf=@(x) (1/factorial(x))*(lamda^x)*exp(-lamda);
with
poiss_pdf=@(x) (1./gamma(x+1)).*(lamda.^x).*exp(-lamda);
and your code will execute to completion. I did not try to figure out if the output is sensible.
Note that I did two things here:
- Replaced your factorial with the appropriate gamma function
- Used element-wise operations in the function, which I'm pretty sure is what you intended
3 comentarios
the cyclist
el 10 de Oct. de 2018
Editada: the cyclist
el 10 de Oct. de 2018
Because internally, the integral function creates a vector from x(1) to x(end), and evaluates your function using that vector.
Más respuestas (1)
Jos (10584)
el 10 de Oct. de 2018
You do not show the whole error message!
But I also assume that the problem is indeed in the use of factorial inside the function poiss_pdf that is being passed to integral. The function factorial(x) is only defined for integer values of x. You can use gamma(x+1) instead. See the documentation of gamma for more details.
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