Why I receive an error when my code is in function but not when he's in editor ?

1 view (last 30 days)
Pi_etudiant
Pi_etudiant on 24 Jan 2024
Commented: Walter Roberson on 26 Jan 2024
I want to decrease my size of code, i created different function for this. But I receive a problem in one function.
This is my code and it's works when it's in editor of matlab :
for i = 1:size(Z(j).ContractionsExt_Interp,1)
pat = "visible";
NumContraction(i) = contains(visibilite(i),pat);
if NumContraction(i) == 0
Z(j).ContractionsExt_Interp_Select(i,:) = [];
else
end
end
But if I put him in my function i receive this error message: "Matrix index is out of range for deletion." for the ligne of deletion Z(j).ContractionsExt_Interp_Select(i,:) = [];
I don't understand why and how fix it. Somebody can help ?
  4 Comments
Show 2 older comments
Stephen23
Stephen23 on 24 Jan 2024
Edited: Stephen23 on 24 Jan 2024
Ran in:
"I don't understand why ..."
The problem is very simple: you are trying to access elements of an array that do not exist.
Lets consider this simple example vector with 4 elements:
V = 1:4
V = 1×4
1 2 3 4
Now lets do exactly what a FOR loop would do looking at each element from 1...4:
V(1)
ans = 1
V(2)
ans = 2
Lets randomly remove the 2nd element:
V(2)=[]
V = 1×3
1 3 4
Question: how many elements does the vector have now? While you consider that, lets continue with the FOR loop:
V(3)
ans = 4
V(4)
Index exceeds the number of array elements. Index must not exceed 3.
Does the vector have 4 elements? (hint: no). We get an error when we try to access an element that does not exist.
"... and how fix it."
Loop over the array in reverse.

Sign in to comment.

Sign in to answer this question.

Accepted Answer

Bruno Luong
Bruno Luong on 24 Jan 2024
Edited: Bruno Luong on 24 Jan 2024
Loop in reverse would fix the issue (cross interaction between deletion that makes array strinks and loop index)
for i = size(Z(j).ContractionsExt_Interp,1):-1:1 % change here
pat = "visible";
NumContraction(i) = contains(visibilite(i),pat);
if NumContraction(i) == 0
Z(j).ContractionsExt_Interp_Select(i,:) = [];
else
end
end

More Answers (1)

Bruno Luong
Bruno Luong on 24 Jan 2024
Edited: Bruno Luong on 24 Jan 2024
You could consider to vectorize the test instead of using for loop and the side effect when deleting array element(s). I don't know your data class and organization, but it could go something like this;
NumContraction = contains({ visibility }, pat);
Z(j).ContractionsExt_Interp_Select(NumContraction & NumContraction(:)'==0) = [];

Categories

Find more on Matrix Indexing in Help Center and File Exchange

Tags

Products


Release

R2021b

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!