How to spread elements in a cell based on vector?

2018 8 月 6
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2018 8 月 6 に更新
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Dear all, I have cell b12 with number of elements. R is the first element after the value in vector D1. X is all values after the first element in R, however, X value does not give me the right elements. it only shows the first value after the first value in R? I appreciate if someone help me with this issue.
b12={[3,282,103,271,123,1],[3,282,103,280,260,9],[3,282,55,52,90,12],[3,282,103,280,76,13],[3,282,195,255,23]};%,[3,282,249,143,34],[3,282,103,52,90,41],[3,282,103,280,45],[3,282,103,52],[3,282,195,255,58],[3,282,103,52,63],[3,282,195,73],[3,282,103,280,76],[3,282,249,117,82],[3,282,249,84],[3,282,103,52,90],[3,282,249,143,93],[3,282,108,100],[3,282,103],[3,282,108],[3,282,103,280,110],[3,282,249,117],[3,282,103,271,123],[3,282,103,280,76,125],[3,282,249,143,126],[3,282,108,127],[3,282,128],[3,282,103,52,90,41,134],[3,282,249,143],[3,282,103,280,260,184],[3,282,195],[3,282,103,280,260,197],[3,282,216],[3,282,103,52,217],[3,282,103,280,222],[3,282,103,52,224],[3,282,249,239],[3,282,103,52,90,41,245],[3,282,249],[3,282,103,280,110,254],[3,282,195,255],[3,282,103,280,260],[3,282,103,280,222,262],[3,282,103,271],[3,282,103,280],[3,282],[3,282,103,280,260,296]}
%D1 = many numbers but on here I put only 2 elements.
D1=[282,55];
N = numel(b12);
R = cell(1,N);
X = cell(1,N);
for k = 1:N
idx = ismember(b12{k},D1);
idx = [false,idx(1:end-1)];
if any(idx)
R{k} = b12{k}(find(idx,1,'first'));
end
idx = [false,idx(1:end-1)];
if any(idx)
X{k} = b12{k}(find(idx,1,'first'));
end
end
%Expected results:
R={103,103,55,103,195}
X={271,123,1,280,260,9,52,90,12,280,76,13,195,255,23}

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 採用された回答

the cyclist
the cyclist 2018 年 8 月 6 日

0 投票

For X, I think you want something like
X{k} = b12{k}(find(idx,1,'first')+2:end);
The following code vectorizes the whole thing using the cellfun function.
b12={[3,282,103,271,123,1],[3,282,103,280,260,9],[3,282,55,52,90,12],[3,282,103,280,76,13],[3,282,195,255,23]};
D1 = [282,55];
ND1 = numel(D1);
R = cell(1,ND1);
X = cell(1,ND1);
for nd = 1:ND1
R{nd} = cellfun(@(x)x(find(x==D1(nd),1)+1),b12,'Uniform',false);
X{nd} = cell2mat(cellfun(@(x)x(find(x==D1(nd),1)+2:end),b12,'Uniform',false));
end

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laith Farhan
laith Farhan 2018 年 8 月 6 日
編集済み: laith Farhan 2018 年 8 月 6 日
Dear Cyclist, Thanks for your reply but the code is not work.As I said I have many elements in vector D1. Is there anyway to modify my previous code?
the cyclist
the cyclist 2018 年 8 月 6 日
Sorry, I misunderstood how you defined your index. My suggestion should be
X{k} = b12{k}(find(idx,1,'first'):end)
Your code is just grabbing one value. Mine is getting all the values until the end.
the cyclist
the cyclist 2018 年 8 月 6 日
Also, it was not clear to me whether you wanted each value of R and X in its own element of the cell array, or all combined into one long vector. Your "expected result" shows them as one long vector, but your code has separate cells.
laith Farhan
laith Farhan 2018 年 8 月 6 日
Dear Cyclist,
This code "X{k} = b12{k}(find(idx,1,'first'):end)", totally works. I really appreciate it .
Many thanks

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