How to update struct array fields with mutiple values

116 visualizaciones (últimos 30 días)
Mohammad Tabesh
Mohammad Tabesh el 5 de Mzo. de 2012
Comentada: Walter Roberson el 19 de Sept. de 2019
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?

Iniciar sesión para responder a esta pregunta.

Respuesta aceptada

Walter Roberson
Walter Roberson el 5 de Mzo. de 2012
Editada: Walter Roberson el 19 de Sept. de 2019
t = num2cell(1:10);
[A.B] = t{:};
See comments for the case where the struct does not already exist.
  6 comentarios
Mostrar 4 comentarios más antiguos
breathi
breathi el 19 de Sept. de 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
Walter Roberson el 19 de Sept. de 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));

Iniciar sesión para comentar.

Más respuestas (3)

Andrew Newell
Andrew Newell el 5 de Mzo. de 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 comentarios
Mostrar 1 comentario más antiguo
Bradley Stiritz
Bradley Stiritz el 15 de Sept. de 2018
Thank you Andrew! disperse() is just what I needed.
Stephen23
Stephen23 el 16 de Sept. de 2018
Editada: Stephen23 el 16 de Sept. de 2018
"disperse() is just what I needed."
Actually Walter Roberson's answer does exactly the same thing, without requiring third-party functions.

Iniciar sesión para comentar.

Tom
Tom el 12 de Feb. de 2018
Editada: Tom el 12 de Feb. de 2018
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?
  1 comentario
Mohammad Tabesh
Mohammad Tabesh el 13 de Feb. de 2018
If your question structure is that A has 10 rows, each have a field B which in turn has a field C that you want to update, I suggest creating an intermediate structure array similar to B, assign the values there and then assign that to field B:
D = A.B;
[D.C] = t{:};
[A.B] = deal(D);

Iniciar sesión para comentar.

Mitja M
Mitja M el 25 de Jul. de 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
  1 comentario
Mohammad Tabesh
Mohammad Tabesh el 26 de Jul. de 2018
Hi Mitja, I suggest a similar approach as I suggested to Tom.
BB=cat(3,AA.bb);
BB(:,5,:)=cc;
BBB=num2cell(BB,[1 2]);
[AA.bb]=deal(BBB{:});

Iniciar sesión para comentar.

Categorías

Más información sobre Structures en Help Center y File Exchange.

Etiquetas

Productos

Community Treasure Hunt

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

Start Hunting!

Translated by