Random but unique values in matrix

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Asad Abbas
Asad Abbas el 29 de Ag. de 2016
Editada: antlhem el 28 de Abr. de 2019
Please help me! I want to generate random but unique row as given in code. I want generate complete 100*13 matrix. When this code run it stuck after around 29th iterations. Please help me and give suggestions. If my question is not understandable please let me know. I will explain more in detail.
j=1;
pop_size=100;
V=13;
while j:pop_size
y=randi([0 1],j,V);
y(:,2)=~y(:,1);
y(:,3)=~y(:,4);
y(:,5)=~y(:,6);
y(:,12)=~y(:,13);
y = unique(y, 'rows');
j=size(y,1)+1;
end
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Steven Lord
Steven Lord el 29 de Ag. de 2016
So generate a random 100-by-8 matrix. Check if all its rows are unique using the unique function with the 'rows' flag. Once you have a suitable matrix, expand it to 12 columns. [Once columns 1, 3, 5, and 12 are fixed they determine columns 2, 4, 6, and 13.]
Stephen23
Stephen23 el 29 de Ag. de 2016
My answer exactly implements the concept that Steve Lord suggests.

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dpb
dpb el 29 de Ag. de 2016
>> z=randi([0 1],100,13); % Generate trial array
>> [u,ia,ib]=unique(z,'rows','stable'); % check for uniqueness between rows
>> length(ia) % dang!, one short...
ans =
99
>> find(ismember(z,z(setdiff([1:100],ia),:),'rows')) % locate which are the offending rows
ans =
34
92
>>
>> [z(34,:);z(92,:)] % indeed, they are identical...
ans =
0 0 1 0 0 1 1 0 1 0 1 0 0
0 0 1 0 0 1 1 0 1 0 1 0 0
>>
OK, NOW you can begin a loop looking to generate a new row that is different than z(34,:) and also not duplicate another already...
  2 comentarios
Thorsten
Thorsten el 29 de Ag. de 2016
Or you generate a trial array with many more rows than actually needed and hope that you'll end up with more than 100 unique rows. See my answer below.
BTW: You forgot the ensure the four constraints
y(:,2)=~y(:,1);
y(:,3)=~y(:,4);
y(:,5)=~y(:,6);
y(:,12)=~y(:,13);
Asad Abbas
Asad Abbas el 29 de Ag. de 2016
Thank you so much Sir, Its working. I am so happy.

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Más respuestas (3)

Stephen23
Stephen23 el 29 de Ag. de 2016
Editada: Stephen23 el 29 de Ag. de 2016
A complete working example:
X = randi([0,1],100,9);
chk = true;
while chk
[~,idx] = unique(X,'rows');
idy = setdiff(1:100,idx);
X(idy,:) = randi([0,1],numel(idy),9);
chk = numel(idy)>0;
end
Y = X(:,[1,1,2,2,3,3,4:end,end]);
idz = [1,3,5,12];
Y(:,idz) = ~Y(:,1+idz);
and tested:
>> size(unique(Y,'rows'))
ans =
100 13
>> Y(:,1:2) % check that two columns are always different
ans =
0 1
1 0
1 0
1 0
0 1
1 0
1 0
1 0
0 1
1 0
1 0
etc
>> Y(:,12:13)
ans =
1 0
1 0
0 1
1 0
1 0
0 1
1 0
1 0
1 0
0 1
0 1
0 1
1 0
0 1
etc
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Stephen23
Stephen23 el 29 de Ag. de 2016
Editada: Stephen23 el 29 de Ag. de 2016
@Asad Abbas: you can also vote for my answer, if it solves your task. That is an easy way for you to say "thank you" to us volunteers.
antlhem
antlhem el 28 de Abr. de 2019
Editada: antlhem el 28 de Abr. de 2019
Hi Stephen Cobeldick, how would you suggest me to use this method in order to create a bigger array (1500x1500). With all the rows unique among each other?

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Ori Golani
Ori Golani el 9 de Oct. de 2018
Hi all, I know that this is an old thread, but I found an efficient non-iterative solution for this.
Complete working example:
I= 2; % maximal integer in the matrix (values will be [0...I-1])
M= 3; % Matrix rows
N= 10; % matrix columns
word_indices= randperm(I^N,M);
matrix_in_char= dec2base(word_indices,I);
random_matrix= reshape(base2dec(matrix_in_char(:),I),M,N);
Tested:
random_matrix =
1 1 1 0 1 1 1 0 1 0
0 0 1 1 0 1 0 0 0 1
0 0 1 0 1 0 1 1 1 0
  2 comentarios
Stephen23
Stephen23 el 9 de Oct. de 2018
+1 neat idea.
antlhem
antlhem el 28 de Abr. de 2019
Editada: antlhem el 28 de Abr. de 2019
Hi Ori Golani, do you know how to create a bigger matrix with this method? I tested with M=N=1500, but is not passing this test. There is an error from MATLAB saying:
Error using randperm
N must be less than 2^53.
Any suggestions, to be able to create bigger random-unique matrix?

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Thorsten
Thorsten el 29 de Ag. de 2016
Editada: Thorsten el 29 de Ag. de 2016
The trick is to get more rows then actually needed, like 2*pop_size. Then you'll get your y almost always in the first trial:
pop_size=100;
V=13;
trials = 1;
while 1
y = randi([0 1], 2*pop_size, V);
y(:,2)= 1- y(:,1);
y(:,3)= 1- y(:,4);
y(:,5)= 1- y(:,6);
y(:,12)= 1- y(:,13);
[yu, xi] = unique(y, 'rows');
if size(yu, 1) >= pop_size
y = y(xi(1:pop_size),:);
break;
else
trials = trials + 1;
end
end
% check
size(unique(y, 'rows'), 1)
  2 comentarios
Asad Abbas
Asad Abbas el 29 de Ag. de 2016
Thank you so much for your response. But when I run this command at the end of your given code y=unique(y,'rows'); It is not giving 100*13 unique rows, It giving 89*13, 92*13 something like this.
Thorsten
Thorsten el 29 de Ag. de 2016
You're right. I corrected the code.

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