As shown in following code. inp contains 10*4 matrix. I am processing each row but i am getting processed output for the first row and for remaining row I am getting NaN value. why I am getting like that? where is the error?
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% I am using this code in simulink model, where Input matrix(10*4) will change for every 1/60 seconds.
%code
function op = fnc(inp)
% define the filter
op = zeros(10,4);
F = [ 1 0 1 0 ; % A
0 1 0 1 ;
0 0 1 0 ;
0 0 0 1 ];
H = [ 1 0 0 0;0 1 0 0;0 0 0 0;0 0 0 0 ] ;
R = [1 0 0 0 ; 0 1 0 0; 0 0 1 0 ; 0 0 1 0];
X = zeros(1,4);
Q = eye(1)*1e-5;
w = 0.2;
P = eye(4)*10;
for i = 1 : 10
x = inp(i,:);
for m = 1
for n = 2
if (x(m,n)==0)
op(i,:) = x;
elseif (0<x(m,n))&&(x(m,n)<70)
X = X*F ; %predicted state (1*4)
S = H'*H*P' + R; %measurement error covariance (4*4)
K = (H*P')/S; %optimal Kalman gain (4*4)
P = P - K*H*P; %(4*4)
P = F*F'*P + Q; % estimate error covariance (4*4)
y = x - X*H; %measurement error/residual (1*4)
X = X + y*K; %updated state estimate (1*4)
X_1 = X*H;
op(i,:) = X_1;
else
%Predictor equations
X = X*F + w; %predicted state (4*1)
P = F*P*F' + Q; % estimate error covariance (4*4)
op(i,:) = X;
end
end
end
end
3 Comments
dbmn
on 7 Oct 2016
Are you sure that the two following lines are correct? (they don't Loop into anything)
for m = 1
for n = 2
Image Analyst
on 7 Oct 2016
No need for loops then. Simply get rid of the two for loops and use the 1,2 index
if (x(1,2)==0)
Accepted Answer
dbmn
on 7 Oct 2016
When I evaluate your code I always get a warning on the following line: (it is between 0 and 70).
K = (H*P')/S; %optimal Kalman gain (4*4)
Warning: Matrix is singular to working precision.
It seems that the divison at that point is no good idea because the rank of those Matrices is not full. If you change the diagonal Elements of the H Matrix to anything not Zero it runs withouth producing NANs.
2 Comments
dbmn
on 7 Oct 2016
Or use the back division Operator with your values of H
K = (H*P')\S;
please cross check if this produces the desired results, as it is a different operation as /
More Answers (1)
Massimo Zanetti
on 7 Oct 2016
In these two lines anything is looping,
x = inp(i,:);
for m = 1
for n = 2
put something like this:
x = inp(i,:);
for m = 1:SOMETHING
for n = 2:SOMETHING ELSE
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