is there a way to perform this task w/o using loops?

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Jeffrey
Jeffrey il 29 Nov 2023
Commentato: Jeffrey il 2 Dic 2023
% this script sets up a structure p. In this minimal version, p only contains 1 variable.
% then expands it into a 1x4 structure array q
% and inserts values into one of the variables. (Only the L variable is shown here.)
% and then retrieves the values
% The variable is a row vector and has name given by varName
% The values go into (and are retrieved from) the 2nd element of L because varIndex = 2;
p.varName = 'L';
p.varIndex = 2;
p.L = [3, 4, 5];
nval = 4;
q = repmat(p,1,nval);
vals = [6 7 8 9];
% Insert values
for i=1:nval
q(i).(p.varName)(p.varIndex) = vals(i);
end
Xv = zeros(1,nval);
% Retrieve values
for i=1:nval
Xv(i) = q(i).(q(1).varName)(q(1).varIndex);
end
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Walter Roberson
Walter Roberson il 29 Nov 2023
Xv = arrayfun(@(IDX) q(IDX).(q(1).varName)(q(1).varIndex), 1:nval);
The assignment is more difficult to arrange.

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Walter Roberson
Walter Roberson il 29 Nov 2023
Modificato: Walter Roberson il 29 Nov 2023
The more general vectorized strategy would probably be to set up cell arrays of values, and then use the fact that when you struct() and pass a cell array, then the output is a struct array the size of the cell array.
  1 Commento
Jeffrey
Jeffrey il 2 Dic 2023
Understood. I like this answer the best because it's elegant, but will probably stick with the loop instead of introducing cell arrays into my code, to keep it simple.

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Più risposte (2)

Matt J
Matt J il 29 Nov 2023
Modificato: Matt J il 29 Nov 2023
Ran in:
There are ways to do it without loops, but doing it without loops will be of no benefit to you. It will take more lines of code, consume more memory, and run more slowly.
p.varName = 'L';
p.varIndex = 2;
p.L = [3, 4, 5];
nval = 4;
q = repmat(p,1,nval);
vals = [6 7 8 9];
% Insert values
TMP=vertcat(q.(p.varName));
TMP(:,p.varIndex)=vals;
TMP=arrayfun(@(i)TMP(i,:), 1:nval,'uni',0);
[q.(p.varName)]=deal(TMP{:});
q.L
ans = 1×3
3 6 5
ans = 1×3
3 7 5
ans = 1×3
3 8 5
ans = 1×3
3 9 5
Bruno Luong
Bruno Luong il 29 Nov 2023
Modificato: Bruno Luong il 29 Nov 2023
Ran in:
You might consider store in table instead
NOTE: using table would be more convenient to access data, not necessary faster
p.varName = "L";
p.varIndex = 2;
nval = 4;
q = repmat(p,1,nval);
vals = [6 7 8 9];
% Insert values
for i=1:nval
q(i).(p.varName)(p.varIndex) = vals(i);
end
T = struct2table(q)
T = 4×3 table
varName varIndex L _______ ________ ______ "L" 2 0 6 "L" 2 0 7 "L" 2 0 8 "L" 2 0 9
T.varName(1)
ans = "L"
T.(T.varName(1))
ans = 4×2
0 6 0 7 0 8 0 9
T.(T.varName(1))(:,T.varIndex(1))
ans = 4×1
6 7 8 9

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