dividing a column matrix based on the no
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i have a single column matrix A=0 0 0 1 1 1 1 0 0 0 0 2 2 2 2 0 0 0 0 now i have to divide this in to several matrices such whenever 0 changes to 1 or 2 i want a new matrix in this case A1= 1 1 1 1 0 0 0 0; A2=2 2 2 2 0 0 0 0 which are also single column matrices
Accepted Answer
Oleg Komarov
on 16 May 2011
A = [0 0 0 1 1 1 1 0 0 0 0 2 2 2 2 0 0 0 0].';
Split sequence (transforming in string)
out = regexp(sprintf('%d',A) ,'(1+0+|2+0+)','match');
Convert to double and store in cell array
c = cellfun(@(x) x.'-'0',out,'un',0)
c{1} % to retrieve the value
Organize eventually in structure with dynamic fields A001, A002, ..., An
numC = numel(c);
s = cell2struct(c, reshape(sprintf('A%03d', 1:numC),4,[]).',numC);
s.A001 % to retrieve the value
EDITED
With a loop
A = [0 0 0 1 1 1 1 0 0 0 0 2 2 2 2 0 0 0 0].';
c = 0;
s = 0;
% Start condition
if ismembc(A(1,1),1:2)
s = 1;
end
for n = 2:numel(A(:,1))-1
if A(n,1) == 0 && ismembc(A(n+1,1),1:2)
if s
c = c+1;
Out{c} = A(s:n,:);
end
s = n+1;
end
end
% End condition
if s < n
Out{c+1} = A(s:end,:);
end
7 Comments
bilhan
on 16 May 2011
Oleg Komarov
on 16 May 2011
See edit and search the documentation on how to operate with cell arrays or dynamic field indexing in structures
bilhan
on 16 May 2011
Oleg Komarov
on 16 May 2011
You should have stated it in the first request.
bilhan
on 16 May 2011
bilhan
on 16 May 2011
Oleg Komarov
on 16 May 2011
Do you use the same A? If not post the input array/vector.
More Answers (1)
Andrei Bobrov
on 16 May 2011
more variant
A = A(:);
I = cumsum([0;diff(A)]~=0 & (A ~= 0));
out = arrayfun(@(x)A(I==x),1:max(I),'un',0);
same with the loop
A = A(:).';
I = cumsum([0,diff(A)]~=0 & (A ~= 0));
out = cell(1,max(I));
for j = 1:max(I),
out{j} = A(j==I);
end
4 Comments
bilhan
on 16 May 2011
bilhan
on 16 May 2011
Oleg Komarov
on 16 May 2011
I edited my solution to take into account initial conditions (if A doesn't start with a 0) and to split a matrix on the basis of the first array.
bilhan
on 17 May 2011
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