How to aggregate rows in a matrix

4 views (last 30 days)
Carsten
Carsten on 2 Dec 2014
Edited: N00TN00t on 19 Jun 2017
If i have a matrix like the following example (or please see attached file)
2008,5,4,9,40,0,0.0,0.0,0.0,15.9
2008,5,4,9,41,0,0.0,0.0,1.0,16.3
2008,8,5,16,20,0,0.0,0.0,1.0,2.9
2008,8,5,16,21,0,0.0,0.0,1.0,2.9
and so on for a full year. The matrix represents year, month, date of month, hour, minute, zone1,zone2,zone3 and zone4 How can i create a program that takes an hour for example and aggregates zone1,zone2zone3 and zone4 for that full choose hour ? I have to end up with two vectors. One with year,month,date of month, hour, minute and one with the aggregated zone1,zone2,zone3,zone4 The original matrix consists of data for a Whole year. I was think of something with Unique but then i am not sure how i can aggregate the data!
I have use for example [day, ~, subs] = unique(m(:, 1:3), 'rows') Then i get all the days. Then i can use sumdayzone1 = accumarray(subs, m(:, 7), [], @sum) but that only gives me the sum of zone1 on the choosen day. How can i do all zone together so i end up with only one vector to the corrensponding day ? I am a total newbie in this so any kind of help would be nice, thanks
  1 Comment
Stephen23
Stephen23 on 2 Dec 2014
I can't find the file... can you attach it again, please?

Sign in to comment.

Sign in to answer this question.

Accepted Answer

Guillaume
Guillaume on 2 Dec 2014
Edited: Guillaume on 4 Dec 2014
accumarray only operates on vectors, so you have no choice but to call it once per column:
[day, ~, subs] = unique(m(:, 1:3), 'rows');
colzones = [7 8 9 10];
sumdayzones = cell2mat(arrayfun(@(col) accumarray(subs, m(:, col), [], @sum), colzones, 'UniformOutput', false));
or with a loop
[day, ~, subs] = unique(m(:, 1:3), 'rows');
colzones = [7 8 9 10];
sumdayzones = zeros(size(day, 1), numel(colzones));
for colidx = 1:numel(colzones)
sumdayzones(:, colidx) = accumarray(subs, m(:, colzones(colidx)), [], @sum);
end
  8 Comments
Show 6 older comments
Carsten
Carsten on 4 Dec 2014
I don't get that with concatenate it with the sums, sorry If i place it in the function the vector get 20 columns and it just looks really strange.
Guillaume
Guillaume on 4 Dec 2014
day returned by:
[day, ~, subs] = unique(m(:, 1:3), 'rows');
is only three columns. sumdayzones is only 4, therefore the concatenation is only 7 columns.

Sign in to comment.

More Answers (2)

Thorsten
Thorsten on 4 Dec 2014
[day, ~, subs] = unique(m(:, 1:3), 'rows');
zones_colind = [7:10];
for i = 1:size(day, 1)
m_day(i,:) = [day(i, :) sum(m(find(subs == i), zones_colind))];
end
  4 Comments
Show 2 older comments
Carsten
Carsten on 4 Dec 2014
It might not make sense but that is what i have to do. Get to vectors one with the aggregated results and one vector with the starting point of the aggregation which is the first six columns
Thorsten
Thorsten on 4 Dec 2014
Like this?
[day, ~, subs] = unique(m(:, 1:3), 'rows');
zones_colind = [7:10];
for i = 1:size(day, 1)
ind = find(subs == i);
m_day(i,:) = [day(i, :) m(ind(1), 4:6) sum(m(ind, zones_colind))];
end

Sign in to comment.

N00TN00t
N00TN00t on 19 Jun 2017
Edited: N00TN00t on 19 Jun 2017
What if we want to aggregate the time vector, not the zones?
So for aggregating for the months, we want a matrix showing columns [1:6] of the original matrix, but each row showing only one month:
2008,1,0,0,0,0
2008,2,0,0,0,0
2008,3,0,0,0,0
2008,4,0,0,0,0
2008,5,0,0,0,0
2008,6,0,0,0,0
2008,7,0,0,0,0
2008,8,0,0,0,0
2008,9,0,0,0,0
2008,10,0,0,0,0
2008,11,0,0,0,0
2008,12,0,0,0,0

Categories

Find more on Logical 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!