How to get max of repeated values?

15 views (last 30 days)
Conner Carriere
Conner Carriere on 24 Oct 2022
Answered: John D'Errico on 24 Oct 2022
I have a matrix
C =
0.5000 0.5000 0.3000 1.0000 0.8000 0.3000 0.7000 0.7000 0.3000
0.4000 0.6000 0.8000 0.6000 0.8000 1.0000 0.8000 1.0000 1.2000
I am looking at the C(2,:) row, everytime there is a repeated instance, I need to take the values from C(1,instance) look at them and max them
The end matrix should look like this
D =
0.5000 1.0000 0.8000 0.7000 0.3000
0.4000 0.6000 0.8000 1.0000 1.2000
Trying to explain better
look at C(2,:)
only 1 value of 0.4, so max of it is 0.5
2 values of 0.6, these are .5 and 1.0, max of these is 1
3 values of 0.8, these are .3 .8 and .7, max of these is .8
so on so forth

Sign in to answer this question.

Accepted Answer

the cyclist
the cyclist on 24 Oct 2022
Edited: the cyclist on 24 Oct 2022
Ran in:
Here is one way;
% Input
C = [0.5000 0.5000 0.3000 1.0000 0.8000 0.3000 0.7000 0.7000 0.3000
0.4000 0.6000 0.8000 0.6000 0.8000 1.0000 0.8000 1.0000 1.2000];
% Identify the unique values of the second row of C, along with the index to where
% each of those values appear
[uniqueC,~,indexFromUniqueCBackToAll] = unique(C(2,:));
% For convenience, define the number of unique values
numberUniqueC = numel(uniqueC);
% Preallocate the matrix where the max values are stored
maxRow1 = zeros(1,numberUniqueC);
% For each unique value, in order, find the max of the corresponding values
% in row 1
for nc = 1:numberUniqueC
indexToThisCValue = (indexFromUniqueCBackToAll==nc);
maxRow1(nc) = max(C(1,indexToThisCValue));
end
% Append the max values to the unique values to create the output
D = [maxRow1; uniqueC]
D = 2×5
0.5000 1.0000 0.8000 0.7000 0.3000 0.4000 0.6000 0.8000 1.0000 1.2000
  1 Comment
Conner Carriere
Conner Carriere on 24 Oct 2022
Wow that works perfect! thanks for your quick input, now I am going to try and understand it.

Sign in to comment.

More Answers (2)

Paul
Paul on 24 Oct 2022
Ran in:
Can use splitapply
C = [0.5000 0.5000 0.3000 1.0000 0.8000 0.3000 0.7000 0.7000 0.3000
0.4000 0.6000 0.8000 0.6000 0.8000 1.0000 0.8000 1.0000 1.2000];
[G,ID] = findgroups(C(2,:));
D = [splitapply(@max,C(1,:),G) ; ID]
D = 2×5
0.5000 1.0000 0.8000 0.7000 0.3000 0.4000 0.6000 0.8000 1.0000 1.2000
John D'Errico
John D'Errico on 24 Oct 2022
Ran in:
Easy enough. Use unique, then it is just a call to accumarray.
C = [0.5000 0.5000 0.3000 1.0000 0.8000 0.3000 0.7000 0.7000 0.3000
0.4000 0.6000 0.8000 0.6000 0.8000 1.0000 0.8000 1.0000 1.2000];
% First, match the second row with a set of indices. unique does this.
[C2unique,~,Uind] = unique(C(2,:));
% next, use accumarray to find the group maxima, for each repeated element,
% as identified by Uind
C1max = accumarray(Uind,C(1,:)',[numel(C2unique),1],@max);
Cfinal = [C1max';C2unique]
Cfinal = 2×5
0.5000 1.0000 0.8000 0.7000 0.3000 0.4000 0.6000 0.8000 1.0000 1.2000

Categories

Find more on Fuzzy Logic Toolbox in Help Center and File Exchange

Tags

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!