Basheer - as F is a 1x3 matrix, the only multiplication with eye(I) that will succeed is when I==1 (since that will be a 1x1 matrix multiplied against the 1x3 matrix F).
What are you attempting to achieve by creating this B? Is it the output of D that you want, and so when you supply a different m, you will get different D matrices?
A = [5 -3];
B = [-3 2 -3];
C = [-3 4];
m = 3;
D = zeros(m+2,size(A,2)+m);
D(1,1:size(A,2)) = A;
D(end,m+1:end) = C;
for k=1:m
D(1+k,k:k+size(B,2)-1)=B;
end
So D becomes
D =
5 -3 0 0 0
-3 2 -3 0 0
0 -3 2 -3 0
0 0 -3 2 -3
0 0 0 -3 4
