Implicit indexing with structures - A question
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It is by NO WAY clear to me why this code makes sense
clear all ;
a.x = 1
b.x = 2
s = [a,b]
ANS = [s(:).x]
and why this one does not
clear all ;
a.p.x = 1
b.p.x = 11
s = [a,b]
ANS = [s(:).p.x]
The question rises from the fact that I have data stored in the second format. I can succesfully access to
s(15).p.x % x is a scalar
s(15).q.x % assuming there is also a q field
But I can't do
s(:).p.x
What is the fastest way of overcoming that?
tnx!
Mike
0 comentarios
Respuestas (2)
John D'Errico
el 22 de Ag. de 2017
Editada: John D'Errico
el 22 de Ag. de 2017
It is not at all clear what does not make sense.
clear all ;
a.x = 1;
b.x = 2;
So, a and b are structs, each with field x.
s = [a,b];
s is a 1x2 struct. Each element of s is a struct.
ANS = [s(:).x]
ANS =
1 2
Extract the field x from each of the elements of s. The result will be a comma separated list. Combine them into one array, using [], thus horzcat.
In the second case, you have done something different.
a.p.x = 1;
b.p.x = 11;
s = [a,b];
ANS = [s(:).p.x]
Expected one output from a curly brace or dot indexing expression, but there were 2 results.
First of all, you put 11 into the second spot. ;-) Ok, that is not significant.
s s = 1×2 struct array with fields: p
So s is now a struct array, with field p.
ANS = [s(:).p]
ANS =
1×2 struct array with fields:
x
So I can extract the p field of those struct elements. Again, it is a comma separated list.
s(:).p
ans =
struct with fields:
x: 1
ans =
struct with fields:
x: 11
You cannot index a comma separated list. Remember that MATLAB works from left to right.
s(:)
ans =
2×1 struct array with fields:
p
s(:) is a struct array. I can extract the p field of that. But since the result is a comma separated list, not another struct, I cannot form s(:).p.x as you wish.
Nor can it be done as:
[s(:).p].x
[s(:).p].x
↑
Error: Unexpected MATLAB operator.
The solution is simple enough. Break it into two consecutive operations.
temp = [s(:).p];
[temp.x]
ans =
1 11
5 comentarios
Jan
el 21 de Jun. de 2019
Editada: Jan
el 21 de Jun. de 2019
@Adam: In your case you distribute the 50 random elements to 50 scalar fields of the struct array. Vijay asked to setting the field Position of all 50 elements of the struct array to the same [1x2] vector. This is a difference.
@Vijay Venkatasubramanian:
[S(1:50).Position] = deal(rand(1,2))
To distribute different values to the fields:
c = num2cell(rand(1, 50));
[s(1:50).Position] = c{:};
Adam
el 21 de Jun. de 2019
I assumed 'a random value to each of them' meant a different one to each, but certainly it is neater to use your 2nd approach, which is the one I couldn't remember, than relying on 3rd party functions :)
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