B must have same rows of A

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Kevin van Berkel
Kevin van Berkel on 2 Jun 2013
Hi guys,
I constantly receive these errors:
Error using lscov (line 105)
B must have the same number of rows as A.
Error in bisquare (line 10)
beta(:,1)=lscov(X,y);
Error in Portfolioweights_it_bs (line 13)
abeta = bisquare(X, r(:,t+1),k);
Anyone a clue how to resolve?
Thanks!
This is the code for the bisquare estimator:
function BS = bisquare(X, y, k)
%X is regression matrix
%y are values of dependent variables
N_max = 20;
% maximum number of iterations for biqsquare optimization
[M,N]=size(X);
beta = zeros(N,N_max);
beta(:,1)=lscov(X,y);
e = y-X*beta(:,1);
sigmahat = mad(e)/0.6745;
k=sigmahat*4.685;
The code I use to generate the data (partly) before that is this one:
function Weights = Portfolioweights_it_bs(r, z, gamma, r_f, constr_ON, it_ON)
N_max = 10;
k = 1;
[M,T] = size(r);
x = zeros(M,T-1);
t=T-1;
X = [ones(M,1);z(t,1) ;z(t,1).^2];
abeta = bisquare(X, r(:,t+1),k);
ahat = X*abeta;
bbeta = bisquare(X, r(:,t+1).^2,k);
bhat = X*bbeta;
x(:,t) = r_f/gamma * ahat./bhat;
if it_ON==1
disp('4th order Taylor iteration used')
x_it = zeros(M,N_max);
i=1;
x_it(:,1) = x(:,t);
cbeta = bisquare(X, (x_it(:,i).*r(:,t+1)).^2*r(:,t+1),k);
chat = X*cbeta;
dbeta = bisquare(X, (x_it(:,i).*r(:,t+1)).^3*r(:,t+1),k);
dhat = X*dbeta;
x_it(:,i+1) = x(:,t)- b(hat).^(-1).*(0.5*(-gamma-1)/r_f*chat+1/6*(-gamma-1)/r_f^2*(-gamma-2)*dhat);
while ( max(abs(x_it(:,i+1)-x_it(:,i)))>0.01 && i<N_max)
i=i+1
cbeta = bisquare(X, (x_it(:,i).r(:,t+1)).^2.*r(:,t+1),k);
chat = X*cbeta;
dbeta = bisquare(X, (x_it(:,i).r(:,t+1)).^3.*r(:,t+1),k);
dhat = X*dbeta;
x_it(:,i+1) = x(:,t)- b(hat).^(-1).*(0.5*(-gamma-1)/r_f*chat+1/6*(-gamma-1)/r_f^2*(-gamma-2)*dhat);
end
if i==N_max
disp('Maximum number of iteration steps used')
end
x(:,t)=x_it(:,i+1);
else
disp('2nd order Taylor iteration used')
end
if constr_ON==1
x(:,t)=max(0,min(x(:,t),1));
disp('Constraints on x')
end
j=1;
beta(:,j+1)= inv(X'*spdiags(W_BS(e,k),0,M,M)*X)*X'*spdiags(W_BS(e,k),0,M,M)*y;
while (max(abs(beta(:,j+1)-beta(:,j)))>0.001 && j<N_max)
e = y-X*beta(:,j+1);
sigmahat = mad(e)/0.6745;
k=sigmahat*4.685;
j=j+1;
beta(:,j+1)= inv(X'*spdiags(W_BS(e,k),0,M,M)*X)*X'*spdiags(W_BS(e,k),0,M,M)*y;
end
if j==N_max
disp('Bisquare uses maximal number of iterations')
end
BS = beta(:,j+1);
So I am clearly missing something but can't figure out what...
  1 Comment
the cyclist
the cyclist on 2 Jun 2013
Kevin, I moved your code up from an "answer" into your question where it is better placed.

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Answers (4)

the cyclist
the cyclist on 2 Jun 2013
Edited: the cyclist on 2 Jun 2013
It would be helpful if you showed us some of your actual code. However, it looks like you call the function lscov in line 10 of your function bisquare, and when you do that, the variable X has a different number of rows than your variable y. You might want to take a look at the documentation for lscov:
doc lscov
Added after code was included:
Is it possible for you to edit your code so that it is a completely self-contained example that can be executed and show the error?
Have you tried using debugging mode to breakpoint into the code and look at the sizes of the inputs to lscov?

Kevin van Berkel
Kevin van Berkel on 10 Jun 2013
Hi Cyclist,
Sorry for my late response. I tried numerous ways to resolve it, even with lscov but it still does not work.
I tried using debugging mode and it gave me this result:
X = [ones(M,1); z(t,1); z(t,1).^2]; abeta = bisquare(X, r(:,t+1),k);
it seems my problem is in here. I can't figure out how to match A and B together..

Kevin van Berkel
Kevin van Berkel on 10 Jun 2013
So,
X = [ones(M,1); z(t,1); z(t,1).^2];
abeta = bisquare(X, r(:,t+1),k);
in here the problem must be somewhere, since X does not agree with y(r(:,t+1)

Kevin van Berkel
Kevin van Berkel on 10 Jun 2013
Solved it!

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