Plz tell why the output is not following the desired ?

2013 7월 25
1 답변
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0 개 추천

clc
close all
clear all
%type1 network fuzzy
yd1=-.1;
yd0=-.07;
u3=0;
u2=0;
u1=0;
u0=0;
for t=1:1000
if t<250
u(t)=sin(pi*t/25);
elseif t<500 && t>249
u(t)=1;
elseif t<750 && t>499
u(t)=-1;
else
u(t)=0.3*sin(pi*t/25)+0.1*sin(pi*t/32)+0.6*sin(pi*t/10);
end
end
yd(1)=0.72*yd0+0.025*yd1*u1+0.01*(u2)^2+0.2*u3;
yd(2)=0.72*yd(1)+0.025*yd0*u0+0.01*(u1)^2+0.2*u2;
yd(3)=0.72*yd(2)+0.025*yd(1)*u(1)+0.01*(u0)^2+0.2*u1;
yd(4)=0.72*yd(3)+0.025*yd(2)*u(2)+0.01*(u(1))^2+0.2*u0;
for t=4:999
yd(t+1)=0.72*yd(t)+0.025*yd(t-1)*u(t-1)+0.01*(u(t-2))^2+0.2*u(t-3);
end
figure
plot(yd);
m=5; %number of input
U=.4; %learning rate
n=length(yd);
c=0.4*ones(m,n); %mean of Gaussian mf
s=0.4*ones(m,n); %variance of Gaussian mf
%defining weight
W = 0.1*ones(m);
for i=1:m
for j=1:n
A(:,i)=exp(-0.5*((u(i)-c(:,i))./s(:,i)).^2); % n no. of mf
R(i)=min(A(:,i)); %fuzzy rule
y(i)=sum(u(i)*W(:,i));
end
for j=1:n
B(i)=((sum(R(i)*y(i))/sum(R(i)))); %output of fuzzy nural structure
e(j) = yd(i)-B(i); %erroe
end
end
%update rule for weight,mean ,variance
for i=1:m
for j=1:n
W(:,i) = W(:,i)+m*e(j)*u(i);
c(:,i) = c(:,i) + (0.5*e(j)*(exp(-(u(i)-c(:,i)./s(:,i)).^2)));
s(:,i) = s(:,i) + (0.5*e(j)*(exp(-(u(i)-c(:,i)./s(:,i)).^2)));
end
MSE(n+1-i) = sum(e.^2);
end
figure;
plot(u,'r') %output plot
figure;
plot(e,'k') %error plot
figure
plot(MSE) % meansquare error plot
e(i)^2
DESCRIPTION This is fuzzy neural network having n input. and by fuzzyfication and rule and defuzzyfication output is obtained. which is compared with desired and error is calculated. and also the weight, mean and variance is updated.
But problem is the out put is not following the desired. PLZ help.

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the cyclist
the cyclist 2013년 7월 25일
I am able to run your code, and see four figures as a result.
Can you please describe in more detail what you mean by "output is not following the desired"?
pinak parida
pinak parida 2013년 7월 27일
편집: pinak parida 2013년 7월 27일
thakyou sir, in the program the 'yd' is the desire output and 'B' is the output of fuzzy block. and the the output 'B' should be look alike 'yd'.
it is like this..... i have given input to fuuzy block whose output is 'B'.compared with the desired output 'yd'. error is obtained and fed to the fuuzy block to update the weights using simple LMS algorithm.
pinak parida
pinak parida 2013년 7월 27일
inside fuuzy block
pinak parida
pinak parida 2013년 8월 29일
x=[1 6]; mu=.004; yd=[15 21]; m=2; n=3; c=[1 2 3;4 5 6] s=[1 2 3;4 5 6] w=[1 2; 3 4; 5 6] %3x2 %A=[1 2 3; 4 5 6] %2x3 epoc=100; while(epoc) for j=1:m for i=1:n A(j,:)=exp(-0.5*((x(j)-c(j,:))./s(j,:)).^2); R(i)=min(A(:,i)); %1x3 y=w*x'; end p=y'*R'; Q=sum(p); V=sum®; B(j)=Q/V e(j)=yd(j)-B(j);
end w=w+mu*x*e'; c=c+mu*x*e'; s=s+mu*x*e'; epoc=epoc-1; plot(B) end
hi friend, what is the problem here that i am not getting the desired that is nearly equal to [15 21]. instead i get both the value same at last step what ever may be the epoc. plz help i could not find out it.

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답변 (1개)

Richard McCulloch
Richard McCulloch 2013년 7월 27일

0 개 추천

I would check your indices. Try this:
clc
close all
clear all
%type1 network fuzzy
yd1=-.1;
yd0=-.07;
u3=0;
u2=0;
u1=0;
u0=0;
for t=1:1000
if t<250
u(t)=sin(pi*t/25);
elseif t<500 && t>249
u(t)=1;
elseif t<750 && t>499
u(t)=-1;
else
u(t)=0.3*sin(pi*t/25)+0.1*sin(pi*t/32)+0.6*sin(pi*t/10);
end
end
yd(1)=0.72*yd0+0.025*yd1*u1+0.01*(u2)^2+0.2*u3;
yd(2)=0.72*yd(1)+0.025*yd0*u0+0.01*(u1)^2+0.2*u2;
yd(3)=0.72*yd(2)+0.025*yd(1)*u(1)+0.01*(u0)^2+0.2*u1;
yd(4)=0.72*yd(3)+0.025*yd(2)*u(2)+0.01*(u(1))^2+0.2*u0;
for t=4:999
yd(t+1)=0.72*yd(t)+0.025*yd(t-1)*u(t-1)+0.01*(u(t-2))^2+0.2*u(t-3);
end
figure
plot(yd);
title('yd')
m=5; %number of input
U=.4; %learning rate
n=length(yd);
c=0.4*ones(m,n); %mean of Gaussian mf
s=0.4*ones(m,n); %variance of Gaussian mf
%defining weight
W = 0.1*ones(m,1);
for i=1:m
for j=1:n
A(:,j)=exp(-0.5*((u(j)-c(:,i))./s(:,i)).^2); % n no. of mf
R(j)=min(A(:,i)); %fuzzy rule
y(j)=sum(u(j)*W(i));
end
for j=1:n
B(j)=((sum(R.*y)./sum(R))); %output of fuzzy nural structure
e(j) = yd(j)-B(j); %erroe
end
end
%update rule for weight,mean ,variance
for i=1:m
for j=1:n
W(i) = W(i)+m*e(j)*u(i);
c(:,i) = c(:,i) + (0.5*e(j)*(exp(-(u(i)-c(:,i)./s(:,i)).^2)));
s(:,i) = s(:,i) + (0.5*e(j)*(exp(-(u(i)-c(:,i)./s(:,i)).^2)));
end
MSE(n+1-i) = sum(e.^2);
end
figure;
plot(u,'r') %output plot
title('u')
figure;
plot(e,'k') %error plot
title('error')
figure
plot(MSE) % meansquare error plot
title('MSE')
figure
plot(B)
title('B')
e(i)^2
It kind of works, but it gives B a value of zero, so your error ends up being yd. If you can reverse that you're set, but try checking the indices, especially in the "j" loops.

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pinak parida
pinak parida 2013년 7월 28일
thanks for your response
but i need 'B' similar to 'yd' but it is zero. i take your advice checking with 'j'.
pinak parida
pinak parida 2013년 7월 30일
CAN'T. can anyone detect the fault of solve.
Jan
Jan 2013년 7월 30일
When you omit the useless clear all you can set some breakpoints in the code and use the debugger to see, what's going on inside.

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pinak parida
pinak parida
2013년 7월 25일

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