How to get all possible arrays by randomizing in each cells with four items (1x6 array)

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San May
San May le 29 Déc 2018
Modifié(e) : Stephen23 le 30 Déc 2018
Hi! I would like to know all possible arrays for 1x6 vector. Each cells may be 0 (or) x (or) y (or) z. Some can be repeated and some may exclude in an array.
Some of the results should be like below:
[x,y,x,0,z]; [x,x,x,x,z]; [y,0,0,0,0,z]; [z,0,y,0,0,x];......
Thank you so much.

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madhan ravi
madhan ravi le 29 Déc 2018
Modifié(e) : madhan ravi le 29 Déc 2018
Use random indexing by using randi if you want the elements to repeat or randperm if you don’t want the elements to be repeated
c=cell(1,4); % preallocate
syms x y z % define x y and z as you wish
a=[0,x,y,z];
for i =1:numel(c)
c{i}=a(randi(numel(a),1,6));
end
celldisp(c)
Note : 1 X 6 array means you want to fill each cell ( totally 4 cells) with 6 elements.
  4 commentaires
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Image Analyst
Image Analyst le 29 Déc 2018
I'm not sure how using randi, or even randperm, will get you all possible 4^6 combinations.
madhan ravi
madhan ravi le 29 Déc 2018
Yes your right , perhaps the OP wanted to just fill the cell arrays with those 4 elements since his quote "Yes Thank you so much... It works well." means he got what he was looking for .

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Plus de réponses (2)

Image Analyst
Image Analyst le 29 Déc 2018
At first I though of using perms() on your list of numbers but since that doesn't allow more output numbers than input numbers (6 output with only 4 input), I thought that a 6-nested for loop would work. This code figures out all possible permutations of the 4 variables taken 6 per draw. You will of course have 4^6 possible unique combinations.
tic
x = 99;
y = 188;
z = 277; % Whatever numbers you want...
listOfNumbers = [0, x, y, z]
c = zeros(4^6, 6); % Preallocate
% Generate all possible combinations.
row = 1;
for k1 = 1 : length(listOfNumbers)
for k2 = 1 : length(listOfNumbers)
for k3 = 1 : length(listOfNumbers)
for k4 = 1 : length(listOfNumbers)
for k5 = 1 : length(listOfNumbers)
for k6 = 1 : length(listOfNumbers)
c(row, :) = [listOfNumbers(k1), ...
listOfNumbers(k2), ...
listOfNumbers(k3), ...
listOfNumbers(k4), ...
listOfNumbers(k5), ...
listOfNumbers(k6)];
row = row + 1;
end
end
end
end
end
end
toc
Time to run is a speedy 0.001 seconds (a millsecond), so don't be afraid of the for loops.
  2 commentaires
San May
San May le 29 Déc 2018
wow incredible! Thank you so much.. It is so fast and got all possible arrays!
madhan ravi
madhan ravi le 29 Déc 2018
Modifié(e) : madhan ravi le 29 Déc 2018
+1 @sir Image Analyst , always precise!

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Stephen23
Stephen23 le 30 Déc 2018
Modifié(e) : Stephen23 le 30 Déc 2018
A simple solution with ndgrid:
>> x = 99;
>> y = 188;
>> z = 277;
>> C = cell(1,6);
>> [C{:}] = ndgrid([0,x,y,z]);
>> C = cellfun(@(a)a(:),C,'uni',0);
>> M = [C{:}]
M =
0 0 0 0 0 0
99 0 0 0 0 0
188 0 0 0 0 0
277 0 0 0 0 0
0 99 0 0 0 0
99 99 0 0 0 0
188 99 0 0 0 0
277 99 0 0 0 0
0 188 0 0 0 0
99 188 0 0 0 0
... lots of lines here
99 99 277 277 277 277
188 99 277 277 277 277
277 99 277 277 277 277
0 188 277 277 277 277
99 188 277 277 277 277
188 188 277 277 277 277
277 188 277 277 277 277
0 277 277 277 277 277
99 277 277 277 277 277
188 277 277 277 277 277
277 277 277 277 277 277
>> size(M)
ans =
4096 6

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