How to update struct array fields with mutiple values
Afficher commentaires plus anciens
I am trying to update a field value in a struct array. For example if I have 1*10 struct of A with a field in it called B, I want to replace the following loop with another method:
for iLoop=1:10
A(iLoop).B = iLoop;
end
I tried:
[A.B] = deal(1:10);
And also:
A = setfield(A,num2cell(1:10),'B',num2cell(1:10),(1:10));
But none of them worked (the first method assigns the whole (1:10) vector to each 'B' field in the struct array. The second one crashes). Does anyone know how to make it work?
Réponse acceptée
Walter Roberson
le 5 Mar 2012
Modifié(e) : Walter Roberson
le 19 Sep 2019
t = num2cell(1:10);
[A.B] = t{:};
See comments for the case where the struct does not already exist.
6 commentaires
Mohammad Tabesh
le 5 Mar 2012
Bradley Stiritz
le 15 Sep 2018
Thank you Walter, but doesn't your solution force all the field contents to be cell values? This isn't convenient for all contexts.
"doesn't your solution force all the field contents to be cell values?"
No, it doesn't. The LHS has nothing to do with any cell arrays. Both the LHS and RHS use comma-separated lists, which happen to be defined using a non-scalar structure and a non-scalar cell array respectively. No field/element/value of the LHS is "forced" to be a cell array, which you can easily check yourself:
>> V = 1:10;
>> C = num2cell(V);
>> [A.B] = C{:};
>> A(1).B
ans = 1
>> class(A(1).B)
ans = double
Do you see any cell array anywhere in A or its fields? I don't.
You can learn about comma-separated lists here:
Your comment and five-star rating to this FEX submission
is interesting, as it does exactly the same thing as Walter Roberson's answer. Lets try it:
>> [S.B] = disperse(V);
>> S(1).B
ans = 1
>> class(S(1).B)
ans = double
Exactly the same as Walter Roberson's answer above. There is absolutely no difference.
Walter Roberson
le 16 Sep 2018
Note: better is
[A(1:length(t)).B] = t{:};
breathi
le 19 Sep 2019
Walter,
please edit your answer and insert the solution you posted in the comments.
It was driving me nuts to find out, that only an existing struct array can be filled with your current solution, just to find out a few angry debug steps later that you posted a comment and that this solution could just create a new struct array by explicitly using length(t) as the left side input.
Thanks.
Walter Roberson
le 19 Sep 2019
For the case where the struct does not already exist, there is a different method that can be easier:
A = struct('B', t);
where t is the cell array from above. This also permits you to store to multiple fields, and to leave some fields empty, and to put in non-scalar values.
A = struct('B', num2cell(1:10), 'C', [], 'D', num2cell(rand(2,10),1));
Plus de réponses (3)
Andrew Newell
le 5 Mar 2012
What timing! It happens that the File Exchange Pick of the Week is the function disperse. If you download disperse and put it on your path, you can use the following command:
[A.B] = disperse(1:10);
3 commentaires
Mohammad Tabesh
le 5 Mar 2012
Bradley Stiritz
le 15 Sep 2018
Thank you Andrew! disperse() is just what I needed.
This works perfectly, until you have a field in between.
[A.B] = t{:}; %Great!
[A.B(1).C] = t{:}; % doesn't work
Anyone have a suggestion on how to make it work this way?
Mitja M
le 25 Juil 2018
I would highly appreciate the solution to the following problem, which I believe is highly related to the previous, but I somehow don't find the appropriate solution.
I have the following variables:
AA, 1×3 struct array with fields: bb
bb, nx6 double array
cc, nx3 double array
n for all three bb and cc arrays is equal to 100 right now
Now I would like to change the fifth column of all three bb arrays to corresponding column in cc array. It can be correctly done using the following for loop:
for i=1:3
AA(i).bb(:,5)=cc(:,i);
end
Is it possible to achieve this without the for loop.
Thank you
Catégories
En savoir plus sur Cell Arrays dans Centre d'aide et File Exchange
Produits
le 5 Mar 2012
le 19 Sep 2019
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
