Splitting an array in every possible combination

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Selva Kumar on 14 Jul 2022

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Commented: Selva Kumar on 16 Jul 2022

Accepted Answer: Voss

Hello,

I am attempting to split an array in all possible combination. I have illustrated it in the figure given below.

Depending on the number of rows, I wish to split the given array in all possible combinations.

One of the condition is Number of rows <= Number of elements in given array

After toiling for 3 days, I am posting this here.

Kindly guide me on how to accomplish this task.

Thanks for your time and valuable guidance.

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Jonas on 14 Jul 2022

Edited: Jonas on 14 Jul 2022

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maybe it helps you to see how such a matrix is generated. You can run this script multiple times to see different variants

you did still not tell us how many columns are allowed

numElements=randi([2 10]); % number of elements shall be random between 2 and 10
elements=1:numElements; % define elements
numOfRows=randi([2 numElements]); % random number of rows
elInRowNrX=zeros(numOfRows,1); % vector containing the number of elements per row
createdMatrix=[]; 
for rowNr=1:numOfRows
    if rowNr<numOfRows
        elInRowNrX(rowNr)=randi(numElements-sum(elInRowNrX)-(numOfRows-rowNr)); % we cannot enter more values than total number of values minus already given values minus 1 for each remaining row
        createdMatrix(rowNr,1:elInRowNrX(rowNr))=elements(1:elInRowNrX(rowNr));
        elements(1:elInRowNrX(rowNr))=[];
    else
        elInRowNrX(rowNr)=numElements-sum(elInRowNrX); % last row has to contian the remaining number of elements
        createdMatrix(rowNr,1:elInRowNrX(rowNr))=elements;
    end
end
disp(createdMatrix)
     1     0     0     0     0
     2     3     4     5     6
     7     8     9    10     0

Jonas on 14 Jul 2022

Edited: Jonas on 14 Jul 2022

Open in MATLAB Online

@Steven Lord to my understanding we have to fill the rows from the left and put in the elements one by one

your last case depends on a definition of number of columns, which was also not given. but the requested output can be generated by my script

numElements=6; % number of elements shall be random between 2 and 10
elements=1:numElements; % define elements
numOfRows=2; % random number of rows
elInRowNrX=zeros(numOfRows,1); % vector containing the number of elements per row
createdMatrix=[]; 
for rowNr=1:numOfRows
    if rowNr<numOfRows
        elInRowNrX(rowNr)=randi(numElements-sum(elInRowNrX)-(numOfRows-rowNr)); % we cannot enter more values than total number of values minus already given values minus 1 for each remaining row
        createdMatrix(rowNr,1:elInRowNrX(rowNr))=elements(1:elInRowNrX(rowNr));
        elements(1:elInRowNrX(rowNr))=[];
    else
        elInRowNrX(rowNr)=numElements-sum(elInRowNrX); % last row has to contian the remaining number of elements
        createdMatrix(rowNr,1:elInRowNrX(rowNr))=elements;
    end
end
disp(createdMatrix)
     1     2     3
     4     5     6

Jonas on 14 Jul 2022

@Selva Kumar, i know that it gives only one solution, i also wrote that it gives one at a time. but all of the solutions are at least valid. it should just be a help how the problem could finally be solved, that's why the code is a comment and not in the answer section

Jonas on 14 Jul 2022

one 'solution' could be to run the script multiple times and collect unique solutions. but we still do not know restrictions on the number of columns

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Answer 1

Voss on 15 Jul 2022

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https://in.mathworks.com/matlabcentral/answers/1759910-splitting-an-array-in-every-possible-combination#answer_1007795

Edited: Voss on 15 Jul 2022

Open in MATLAB Online

I believe this will do the required "splitting" of the array:

format compact
x = 1:6;
disp(split_x(x,1));
     1     2     3     4     5     6
disp(split_x(x,2));
(:,:,1) =
     1     0     0     0     0
     2     3     4     5     6
(:,:,2) =
     1     2     0     0     0
     3     4     5     6     0
(:,:,3) =
     1     2     3     0     0
     4     5     6     0     0
(:,:,4) =
     1     2     3     4     0
     5     6     0     0     0
(:,:,5) =
     1     2     3     4     5
     6     0     0     0     0
disp(split_x(x,3)); % scroll down to see them all
(:,:,1) =
     1     0     0     0
     2     0     0     0
     3     4     5     6
(:,:,2) =
     1     0     0     0
     2     3     0     0
     4     5     6     0
(:,:,3) =
     1     0     0     0
     2     3     4     0
     5     6     0     0
(:,:,4) =
     1     0     0     0
     2     3     4     5
     6     0     0     0
(:,:,5) =
     1     2     0     0
     3     0     0     0
     4     5     6     0
(:,:,6) =
     1     2     0     0
     3     4     0     0
     5     6     0     0
(:,:,7) =
     1     2     0     0
     3     4     5     0
     6     0     0     0
(:,:,8) =
     1     2     3     0
     4     0     0     0
     5     6     0     0
(:,:,9) =
     1     2     3     0
     4     5     0     0
     6     0     0     0
(:,:,10) =
     1     2     3     4
     5     0     0     0
     6     0     0     0
disp(split_x(x,4)); % scroll down to see them all
(:,:,1) =
     1     0     0
     2     0     0
     3     0     0
     4     5     6
(:,:,2) =
     1     0     0
     2     0     0
     3     4     0
     5     6     0
(:,:,3) =
     1     0     0
     2     0     0
     3     4     5
     6     0     0
(:,:,4) =
     1     0     0
     2     3     0
     4     0     0
     5     6     0
(:,:,5) =
     1     0     0
     2     3     0
     4     5     0
     6     0     0
(:,:,6) =
     1     0     0
     2     3     4
     5     0     0
     6     0     0
(:,:,7) =
     1     2     0
     3     0     0
     4     0     0
     5     6     0
(:,:,8) =
     1     2     0
     3     0     0
     4     5     0
     6     0     0
(:,:,9) =
     1     2     0
     3     4     0
     5     0     0
     6     0     0
(:,:,10) =
     1     2     3
     4     0     0
     5     0     0
     6     0     0
disp(split_x(x,5)); % scroll down to see them all
(:,:,1) =
     1     0
     2     0
     3     0
     4     0
     5     6
(:,:,2) =
     1     0
     2     0
     3     0
     4     5
     6     0
(:,:,3) =
     1     0
     2     0
     3     4
     5     0
     6     0
(:,:,4) =
     1     0
     2     3
     4     0
     5     0
     6     0
(:,:,5) =
     1     2
     3     0
     4     0
     5     0
     6     0
disp(split_x(x,6));
     1
     2
     3
     4
     5
     6
function x_split = split_x(x,n_rows)
N = numel(x);
n_cols = N-n_rows+1;
split_idx = nchoosek(1:N-1,n_rows-1);
n_combos = size(split_idx,1);
split_idx = [zeros(n_combos,1) split_idx N*ones(n_combos,1)];
n_split = diff(split_idx,1,2);
x_split = zeros(n_rows,n_cols,n_combos);
for ii = 1:n_combos
    for jj = 1:n_rows
        x_split(jj,1:n_split(ii,jj),ii) = x(split_idx(ii,jj)+(1:n_split(ii,jj)));
    end
end
end

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Selva Kumar on 16 Jul 2022

This is exactly what I wished for !!!

Thanks a lot Voss ...

Thanks to Jonas, Dyuman Joshi, Steven Lord for your time and effort :)

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Splitting an array in every possible combination

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Splitting an array in every possible combination

12 Comments Show 10 older commentsHide 10 older comments

Accepted Answer

1 Comment Show -1 older commentsHide -1 older comments

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12 Comments
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1 Comment
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