Randomly splitting of a number in a sum format.

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rohini more
rohini more il 27 Apr 2021
Commentato: rohini more il 27 Apr 2021
Suppose n=5
we can split this number like
5=3+2,4+1..... so on.
But I just want to select a only one sum but randomly and I would like to specify by using varible
like
5=1+3+1
then n_{1}=1, n_{2}=3, n_{3}=1.
How to implement matlab code for any value of n as per above method.
Please help me.
Thanks in advance.
  2 Commenti
John D'Errico
John D'Errico il 27 Apr 2021
Modificato: John D'Errico il 27 Apr 2021
PLEASE STOP ASKING THE SAME QUESTION!
You have asked 6 questions so far on ANSWERS. 5 of them have been essentially duplicates. The rest of them had answers already, but I just closed the latest one, and will now close further duplicate questions by you. You have already gotten multiple answers to your question.
John D'Errico
John D'Errico il 27 Apr 2021
Modificato: John D'Errico il 27 Apr 2021
No. There have been multiple questions about random partitions of a set. Learn how to find the set of all partitions, then choose one randomly. You cannot create variable names on the fly, and to the extent that you can do so, you SHOULD not. Instead, learn to use vectors.

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Bruno Luong
Bruno Luong il 27 Apr 2021
Modificato: Bruno Luong il 27 Apr 2021
Ran in:
n = 10;
for j=1:10
r = n;
i = 1;
clear s
while r > 0
s(i) = ceil(r*rand);
r = r-s(i);
i = i+1;
end
disp(s)
end
4 2 4 8 1 1 7 3 4 2 2 1 1 8 1 1 7 1 1 1 7 1 1 1 10 8 2 1 9
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Bruno Luong
Bruno Luong il 27 Apr 2021
Ops I have a typo in my code, can you try again.
rohini more
rohini more il 27 Apr 2021
Now its working . Thank you very much.

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Bruno Luong
Bruno Luong il 27 Apr 2021
Modificato: Bruno Luong il 27 Apr 2021
Ran in:
This code will generate "uniform" partition distribution, in the sense that all possible partition has equal probability:
n = 10;
% This part is done once if n is fix
L = 1:n;
p = arrayfun(@(k) nchoosek(n-1,n-k), L);
e = [0, cumsum(p)];
e = e/e(end);
% This part must be repeated when an new random partition is requested
[~,k] = histc(rand,e);
h = diff([0 sort(randperm(n-1,n-k)) n]);
H = mat2cell(L, 1, h)
H = 1×2 cell array
{[1 2 3 4 5]} {[6 7 8 9 10]}
  1 Commento
rohini more
rohini more il 27 Apr 2021
Thanks for giving your valuable time for solving my question. It really means a lot.
Thank you very much.

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