Rearranging array based on number of steps.

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Santos García Rosado
Santos García Rosado on 1 Jun 2021
Commented: Santos García Rosado on 1 Jun 2021
Hi everybody,
Let's say I have a vector such as:
A = (1:24)
And I'd like to separate this array into a 2x12 matrix where the first row will show the first 3 positions skipping the next three and so on... The second row will do the same thing but starting from the fourth position. This is the expexted output:
Output = [1 2 3 7 8 9 13 14 15 19 20 21; 4 5 6 10 11 12 16 17 18 22 23 24]
I could do this manually, but some times I'd like it to take 2 or 4 steps instead of 3, as it is in the example above.
Any ideas of how to to achieve this?
Thank you in advanced,
Santos

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Accepted Answer

Stephen23
Stephen23 on 1 Jun 2021
Edited: Stephen23 on 1 Jun 2021
Ran in:
https://www.mathworks.com/help/matlab/ref/reshape.html
https://www.mathworks.com/help/matlab/ref/permute.html
A = 1:24;
N = 3; % number of "steps"
R = 2; % number of rows
M = reshape(permute(reshape(A,N,R,[]),[2,1,3]),R,[])
M = 2×12
1 2 3 7 8 9 13 14 15 19 20 21 4 5 6 10 11 12 16 17 18 22 23 24
[1,2,3,7,8,9,13,14,15,19,20,21;4,5,6,10,11,12,16,17,18,22,23,24]
ans = 2×12
1 2 3 7 8 9 13 14 15 19 20 21 4 5 6 10 11 12 16 17 18 22 23 24
  1 Comment
Santos García Rosado
Santos García Rosado on 1 Jun 2021
Thank you Steven! Neve thought of nesting permute with reshape that way. Thanks!

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