Permutation with repeating elements.

16 Oct. 2022
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Actualizado a las 16 Oct. 2022
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Hello, greetings! I have the following array, A= 1:7. I want to get all the possible permutations of seven elements and I am trying to get my answer like this
ans =
1 2 3 4 5 6 7
1 2 5 3 4 7 6
2 3 4 5 1 7 6...... etc
It should be easy. But in the 'A' matrix, 1 and 2 indicates the simillar thing; 3 and 4 indicates the simillar thing; 5, 6, and 7 indicates the simillar thing. So, in the 'ans' 1 2 3 4 5 6 7 and 2 1 4 3 7 6 5 will be same. I want the code to return the values without repitating it. Is there any way to do this?
note: I want this code to do linear indexing. So, I can't replace A with any other matrix. It has to be 1:7.

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 Respuesta aceptada

Bruno Luong
Bruno Luong el 16 de Oct. de 2022
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Ran in:
Just brute force of filter out what is considered as duplicated
g = [1 1 2 2 3 3 3];
x = 1:7;
p = perms(x);
[~,i] = unique(perms(g),'rows');
p = p(i,:);
p
p = 210×7
2 1 4 3 7 6 5 2 1 4 7 3 6 5 2 1 4 7 6 3 5 2 1 4 7 6 5 3 2 1 7 4 3 6 5 2 1 7 4 6 3 5 2 1 7 4 6 5 3 2 1 7 6 4 3 5 2 1 7 6 4 5 3 2 1 7 6 5 4 3

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Sourov Kumar Mondal
Sourov Kumar Mondal el 16 de Oct. de 2022
Thanks a lot. This works just fine. Appreciate your effort.
Sourov Kumar Mondal
Sourov Kumar Mondal el 16 de Oct. de 2022
Hi, if I want to use only 4 out of this 7 to make my permutations what modifications needed to be done in the code? ( same conditions as before: 1,2 are same; 3,4 are same; 5,6,7 same). The answer will be like this:
1 3 5 7
4 6 7 2 etc....
Bruno Luong
Bruno Luong el 16 de Oct. de 2022
Ran in:
Ran in:
Please don't change your problem (even when you think its minor) in the future, it is count productive and induce waste of time for people who are trying to help you.
g = [1 1 2 2 3 3 3];
x = 1:7;
k = 4;
p = lperms(x,k);
[~,i] = unique(lperms(g,k),'rows');
p = p(i,:);
p
p = 62×4
2 1 4 3 2 1 3 5 2 1 5 3 2 1 6 5 2 4 1 3 2 3 1 5 2 4 3 1 1 4 3 5 2 3 5 1 1 4 5 3
function p = lperms(x, k)
p = nchoosek(x,k);
q = perms(1:k);
n = size(p,1);
[I,J] = ndgrid(1:n,q-1);
p = reshape(p(I + n*J),[],k);
end
Sourov Kumar Mondal
Sourov Kumar Mondal el 16 de Oct. de 2022
Thanks again for the answer!
Bruno Luong
Bruno Luong el 16 de Oct. de 2022
Editada: Bruno Luong el 16 de Oct. de 2022
Simplify lperms
function p = lperms(x, k)
p = nchoosek(x,k);
p = reshape(p(:,perms(1:k)),[],k);
end

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Más respuestas (1)

KSSV
KSSV el 16 de Oct. de 2022
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A = {[1 2], [3 4], [5 6 7]} ;
iwant = perms(A)
iwant = 6×3 cell array
{[5 6 7]} {[ 3 4]} {[ 1 2]} {[5 6 7]} {[ 1 2]} {[ 3 4]} {[ 3 4]} {[5 6 7]} {[ 1 2]} {[ 3 4]} {[ 1 2]} {[5 6 7]} {[ 1 2]} {[5 6 7]} {[ 3 4]} {[ 1 2]} {[ 3 4]} {[5 6 7]}

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Sourov Kumar Mondal
Sourov Kumar Mondal el 16 de Oct. de 2022
Thanks for the answer. But this is keeping 1 and 2; 3 and 4; 5, 6, and 7 together always. The output I am looking for is just like normal permutations of 7 elements. but 1 and 2; 3 and 4; and 5,6 and 7 will behave like simillar elements. The no. of expected permutations would be (7! / (2! * 2! * 3!)). Is there any solution to this? thanks is advanced.
Sourov Kumar Mondal
Sourov Kumar Mondal el 16 de Oct. de 2022
Some expected outputs would be like this
1 3 5 7 6 4 2
1 4 3 5 6 2 7.... etc
But there won't be 2 3 5 7 6 1 because 1 and 2 are simillar

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Preguntada:

Sourov Kumar Mondal
Sourov Kumar Mondal
el 16 de Oct. de 2022

Editada:

Bruno Luong
Bruno Luong
el 16 de Oct. de 2022

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