How to select several intervals from a vector?
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I have a vector (Y). I want to select a region from this vector. If this is a single region it is easy
X=Y(i_from:i_to);
What if I have several regions (the number of regions is not fixed)?
So I want to make the vector
[Y(i_from_1:i_to_1) ,Y(i_from_2:i_to_2), ........ ,Y(i_from_n:i_to_n)]
where n is not fixed.
Is there a fast and simple way? i_from and i_to values are in a n*2 matrix.
I can of course do a for cycle, but looking for a simpler method.
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채택된 답변
Kristoffer
2023년 10월 10일
You can make a vector containing the values specified by the intervals in Y using:
cell2mat(arrayfun(@(A,B) A:B, Y(:,1)', Y(:,2)', 'uniform', 0))
댓글 수: 3
Tony
2024년 4월 26일 8:47
Y=1:2:30;
intervals=[1,3;...
11,15];
Y(cell2mat(arrayfun(@(A,B) A:B, intervals(:,1)', intervals(:,2)', 'uniform', 0)))
추가 답변 (1개)
DGM
2021년 11월 26일
편집: DGM
2021년 11월 26일
Idk. Here's three ways. They all use loops. Is there something more elegant? Prrrrobably. Is it faster? Probably depends. I'm sure there's more to be said about the topic. I'll leave that for others.
A = rand(1,1000);
bex = randi([1 1000],50,2);
timeit(@() loopappending(A,bex))
timeit(@() loopindexing(A,bex))
timeit(@() loopcell(A,bex))
% simply append subvectors
function B = loopappending(A,bex)
B = [];
for b = 1:size(bex,1)
B = [B A(bex(b,1):sign(diff(bex(b,:))):bex(b,2))];
end
end
% preallocate and use direct indexing
function B = loopindexing(A,bex)
B = zeros(1,sum(abs(diff(bex,1,2))+1)); % preallocate
endpoints = [0; cumsum(abs(diff(bex,1,2))+1)];
for b = 1:size(bex,1)
B(endpoints(b)+1:endpoints(b+1)) = A(bex(b,1):sign(diff(bex(b,:))):bex(b,2));
end
end
% throw output into cell array and then rearrange
function B = loopcell(A,bex)
B = cell(1,size(bex,1));
for b = 1:size(bex,1)
B{b} = A(bex(b,1):sign(diff(bex(b,:))):bex(b,2));
end
B = horzcat(B{:});
end
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