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Hello all,
I have 2 arrays
A = [ 0.3 0.6 1 0.6 0.3]
B = [ 3 2 3 6 11 ]
I need to find the position of same elements in B and then the max value of the elements on the corresponding position in A.
In this case the number 3 is repeated in B on positions 1 and 3 so the corresponding values in A are 0.3 and 1 => max( 0.3 , 1 ) = 1
The end resault should be:
A1 = [ 0.6 1 0.6 0.3 ]
B1 = [ 2 3 6 11 ]
Any help is appreciated

3 Kommentare
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andrea
andrea am 25 Apr. 2020
maybe :
pos_in_b = B == 3 ;
max ( A ( pos_in_b) )
dpb
dpb am 25 Apr. 2020
The find part is easy enough, the logic of how to build the A1, B1 vectors from A,B and the lookups escapes me entirely, though...???
Vladimir Kostic
Vladimir Kostic am 25 Apr. 2020
Bearbeitet: Vladimir Kostic am 25 Apr. 2020
dpb
If you look at the elements of A as the numerator and elements of B as the denominator i need to find fractions with the same denominator and use the one with the higher numerator.
In my example i have
0.3 0.6 1 0.6 0.3
3 2 3 6 11
So there are 2 fractions with the denominator of 3 (it isn't predetermined that it is 3 just happened to be this way, it can be any number and I can be more that just 1 number that repeats) and the numerators of those 2 fractions are 0.3 and 1, where the higher number is 1 ( 1>0.3). So i need to erase the fraction with the lower numerator.
0.6 1 0.6 0.3
2 3 6 11
Hope this clears it up

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aleksa markovic
aleksa markovic am 25 Apr. 2020
Bearbeitet: aleksa markovic am 25 Apr. 2020

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You ca try something like this:
Xa = [3 2 3 6 11];
mua = [.3 .6 1 .6 .3];
tmpX = [];
tmpmu = [];
for i = 1:size(Xa,2)
if(sum(tmpX == Xa(i)) > 0)
tmpmu(tmpX == Xa(i)) = max(mua(i),tmpmu(tmpX == Xa(i)));
else
tmpX = [tmpX Xa(i)];
tmpmu = [tmpmu mua(i)];
end
end
Xa = tmpX;
mua = tmpmu;

Weitere Antworten (2)

Rik
Rik am 25 Apr. 2020
Bearbeitet: Rik am 27 Apr. 2020

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You can use the outputs of the unique function to achieve this.
A = [ 0.3 0.6 1 0.6 0.3];
B = [ 3 2 3 6 11];
[B1,~,ind]=unique(B);
A1=accumarray([ones(numel(A),1) ind],A(:),[],@max);
A1
B1

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Vladimir Kostic
Vladimir Kostic am 25 Apr. 2020
Could you explain further into detail, I'm still pretty new at MATLAB
Rik
Rik am 27 Apr. 2020
A bit late, but here you go, no loops required.

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andrea
andrea am 25 Apr. 2020

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maybe i do not understand the problem but anyway
[val, ind] = min ( A ( pos_in_b) )
A(ind) = []

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