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How can i divide a (matrix) into two parts

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maryam
maryam el 23 de Feb. de 2015
Comentada: maryam el 24 de Feb. de 2015
i have a 300*10 matrix. i want to divide it into two parts. the size of desired parts are 240*10 and 60*10 respectively.
A=[]10*300 % is given
B=[]10*240 % i can generate it
C=[]10*60 % i need help in this part, columns of matrix A which are not in matrix B should produce matrix C
would you give me an advice?thank you very much
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maryam
maryam el 23 de Feb. de 2015
Editada: maryam el 24 de Feb. de 2015
this is how i generate B:
idx=randsample(300,240);
idx=idx';
for i=1:240;
B(:,i)=A(:,idx(i));
end
i want rest of matrix A columns produce matrix C
dpb
dpb el 23 de Feb. de 2015
This doesn't do what you say you want...you say you want B and C with 10 columns; you've loaded B as 240x240 as the above is written.
Clarify what you really do mean, precisely.

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Andrei Bobrov
Andrei Bobrov el 23 de Feb. de 2015
Editada: Andrei Bobrov el 24 de Feb. de 2015
idx=randsample(300,240);
or
idx = randperm(300,240);
B = A(idx,:);
C = A(~ismember((1:size(A,1))',idx),:); %
or
C = A(setdiff((1:size(A,1))',idx),:);
or
C = A(setxor(1:size(A,1),idx),:);

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dpb
dpb el 23 de Feb. de 2015
Editada: dpb el 23 de Feb. de 2015
Hard as James says to envision how you could do B and not be able to figure out C but
C=A(241:end,:);
Mayhaps it's end you were struggling with altho the workaround w/o the "syntactic sugar" of the builtin function isn't hard...
C=A(241:size(A,1),:);
or use an intermediary variable.
[nRow,nCol]=size(A);
ADDENDUM
OK, so you want a random permutation of the rows...
...scratch previous, it solves the problem I thought was asked for but the asking is conflicting in dimensions with the proposed example partial solution...
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maryam
maryam el 23 de Feb. de 2015
please notice to my above reply. do you have any suggestion?

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