How to find first two maximum number in the matrix

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Moe
Moe il 19 Ott 2015
Modificato: Andrei Bobrov il 23 Ott 2015
Hello everyone,
I have the following matrix A (right table):
A = [1248,30,12;1248,20,13;1248,5,14;177,5,12;177,25,13;230,10,14;230,40,15;274,60,12;274,5,14];
I want to find the matrix B (left table) in the way that first, check the column "ID" to find the similar ID, then find the first two max number and finally find the "PE" related to the found first two max number. For example, first it will find that ID = 1248 has three repetitions. Then, from TE, it will find that 30 and 20 are the first two max numbers. And finally, it will find 12 (for max 30) and 13 (for max 20). Can anyone help how to search for that unique id

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Andrei Bobrov
Andrei Bobrov il 23 Ott 2015
Modificato: Andrei Bobrov il 23 Ott 2015
[a,~,c] = unique(A(:,1),'stable');
a0 = sortrows([c,A(:,2:end)],[1,-(2:3)]);
i1 = bsxfun(@plus,find([1;diff(A(:,1))~=0]),0:1)';
out = [a,reshape(permute(reshape(a0(i1,2:end),2,[],2),[1,3,2]),4,[])'];
or
a = unique(A(:,1),'stable');
n = numel(a);
out = zeros(n,5);
for ii = 1:n
l0 = a(ii) == A(:,1);
b = sortrows(A(l0,2:end),-(1:2));
out(ii,:) = [a(ii),reshape(b(1:2,:),1,[])];
end

Più risposte (1)

TastyPastry
TastyPastry il 19 Ott 2015
Assuming there are at least 2 values for TE/PE for each ID:
uniqueVals = unique(A(:,1),'stable');
output = zeros(numel(uniqueVals),5);
for i = 1:numel(uniqueVals)
mask = A(:,1) == uniqueVals(i);
[sorted,ind] = sort(A(mask,2),'descend');
PE = A(mask,3);
newRow = [uniqueVals(i) sorted(1:2) PE(ind)];
output(i,:) = newRow;
end
  2 Commenti
Moe
Moe il 20 Ott 2015
Hi TastyPastry, the code is given the following error:
Error using horzcat
CAT arguments dimensions are
not consistent.
TastyPastry
TastyPastry il 23 Ott 2015
newRow = [uniqueVals(i) sorted(1:2)' PE(ind(1:2))'];
This code still only works if each ID has two values of TE and PE associated with it. It will error on the last line ID = 811 as shown above.

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