Beginner's roblems with arrays

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Morten Jensen
Morten Jensen on 23 Jun 2011
Hi!
I asked a question here a few days ago and was a bit too hasty in accepting the answer since it only solved a part of my problem.
Basically, I need to combine some values from different arrays:
K = 130;
V = [0.9 0 .5];
THETA = [pi/4 0 3*pi/4];
T = [0 33 57];
So that I have a Vnew and THETAnew that are 1xK and whose values change at T(1:end). So far I've managed to do it crudely like this:
timestep= ones(3,K);
timestep(1,:) = 0:K-1;
timestep(2,1:T(1,2) = V(1,1);
timestep(2,T(1,2)+1:T(1,3) = V(1,2);
timestep(2,T(1,3)+1:end = V(1,3);
timestep(3,1:T(1,2) = THETA(1,1);
timestep(3,T(1,2)+1:T(1,3) = V(1,2);
timestep(3,T(1,3)+1:end = THETA(1,3);
It works, however I'd like to make the code more neat and able to to handle any lengths of V, THETA and T (length(V) = length(THETA) = length(T) will always be true). For this, I've tried the following:
timestep = zeros(3,K);
timestep(1,:) = 0:K-1;
for l = 1:size(T,2)
timestep(2,T(1,l)+1:end) = V(l);
timestep(3,T(1,l)+1:end) = THETA(l);
end
But I cannot get this piece of code to work. MATLAB simply returns an error message when I try to run it.
Any help would be very appreciated.

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Answers (2)

Sean de Wolski
Sean de Wolski on 23 Jun 2011
I'm not getting any errors after I add a few parenthesis:
K = 130;
V = [0.9 0 .5];
THETA = [pi/4 0 3*pi/4];
T = [0 33 57];
timestep= ones(3,K);
timestep(1,:) = 0:K-1;
timestep(2,1:T(1,2)) = V(1,1);
timestep(2,T(1,2)+1:T(1,3)) = V(1,2);
timestep(2,T(1,3)+1:end) = V(1,3);
timestep(3,1:T(1,2)) = THETA(1,1);
timestep(3,T(1,2)+1:T(1,3)) = V(1,2);
timestep(3,T(1,3)+1:end) = THETA(1,3);
timestep2 = zeros(3,K);
timestep2(1,:) = 0:K-1;
for l = 1:size(T,2)
timestep2(2,T(1,l)+1:end) = V(l);
timestep2(3,T(1,l)+1:end) = THETA(l);
end
%%Check
isequal(timestep,timestep2)
%ans = 1
  7 Comments
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Morten Jensen
Morten Jensen on 23 Jun 2011
It was my mistake..
It is supposed to be like this:
K = 130;
V = [0.9 0 .5];
THETA = [pi/4 0 3*pi/4];
T = [0 33 57];
timestep= ones(3,K);
timestep(1,:) = 0:K-1;
timestep(2,1:T(1,2)) = V(1,1);
timestep(2,T(1,2)+1:T(1,3)) = V(1,2);
timestep(2,T(1,3)+1:end) = V(1,3);
timestep(3,1:T(1,2)) = THETA(1,1);
timestep(3,T(1,2)+1:T(1,3)) = THETA(1,2);
timestep(3,T(1,3)+1:end) = THETA(1,3);
timestep2 = zeros(3,K);
timestep2(1,:) = 0:K-1;
for l = 1:size(T,2)
timestep2(2,T(1,l)+1:end) = V(l);
timestep2(3,T(1,l)+1:end) = THETA(l);
Matt Fig
Matt Fig on 23 Jun 2011
See my comments below about the inefficient rewriting going on in this solution.

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Matt Fig
Matt Fig on 23 Jun 2011
I cannot see a clear pattern since you are setting
timestep(3,T(1,2)+1:T(1,3)) = V(1,2);
Now if it was THETA(2), that we could work with. Will there always be three rows?
%
%
%
%
EDIT With clarifications in comments...
Here is a way to do it without re-writing parts of the vector over and over. This re-writing could be very inefficient for large arrays. This does assume T(1) is 0.
timestep2 = ones(3,K);
timestep2(1,:) = 0:K-1;
for ii = 1:length(V)-1
timestep2(2,T(ii)+1:T(ii+1)) = V(ii);
timestep2(3,T(ii)+1:T(ii+1)) = THETA(ii);
end
timestep2(2,T(ii+1)+1:K) = V(ii+1);
timestep2(3,T(ii+1)+1:K) = THETA(ii+1);
%
%
%
%
%
EDIT To illustrate the inefficiency discussed above:
K = 130000;
V = rand(1,5000);
THETA = rand(1,5000);
T = [0 sort(round(rand(1,4999)*13000))];
tic
timestep3 = zeros(3,K);
timestep3(1,:) = 0:K-1;
for l = 1:size(T,2)
timestep3(2,T(1,l)+1:end) = V(l);
timestep3(3,T(1,l)+1:end) = THETA(l);
end
toc
tic
timestep2 = ones(3,K);
timestep2(1,:) = 0:K-1;
for ii = 1:length(V)-1
timestep2(2,T(ii)+1:T(ii+1)) = V(ii);
timestep2(3,T(ii)+1:T(ii+1)) = THETA(ii);
end
timestep2(2,T(ii+1)+1:K) = V(ii+1);
timestep2(3,T(ii+1)+1:K) = THETA(ii+1);
toc
isequal(timestep2,timestep3)
%
%
%
I get:
Elapsed time is 4.148093 seconds. % re-writing
Elapsed time is 0.014087 seconds. % not re-writing
  2 Comments
Morten Jensen
Morten Jensen on 23 Jun 2011
Yes, a mistake from my side. and yes, there will always be 3 rows. only length can change.
Matt Fig
Matt Fig on 23 Jun 2011
Ah, I see... Now it makes sense. Please be careful when posting questions in the future. Besides this mistake, you missed a bunch of parenthesis as well...

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