Finding the sum of every nth row ( n is not fixed)

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pavlos
pavlos am 16 Aug. 2019
Bearbeitet: dpb am 19 Aug. 2019
Hello,
Consider a nx2 matrix M with
M= [
0 4
1 10
1 11
1 20
2 4
2 9
2 8
2 7
.
23 8
23 6
0 8
0 7
1 2
2 5
.
.
];
The 1st row refers to hours of the day, i.e. 0,1,...,23
The values of hours per sequence varies, for example the 1st sequence (1st day) has
1 "0"
3 "1" etc
while the 2nd sequence (2nd day) has
2 "0"
1 "1"
etc.
I need to find the sum of the 2nd column per hour and per day.
For example, for the 1st day
4 (for "0")
41 (for "1")
etc.
and for the 2nd day
15 (for "0")
2 (for "1")
etc.
Thank you very much
Best,
Pavlos

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dpb
dpb am 16 Aug. 2019
You'll have to introduce a day variable...by locating the positions where the hour returns to 0 if is always a 0-hour reading or when the diff() is <0 if not; then fill between those with either an arbitrary day (but sequential) number or an actual date if have it.
Once that's done,
[g,da,hr]=findgroups(M(:),M(:)); % grouping variable by day, hour
tot=splitapply(@sum,M(:,3),g); % sum by group
res=table(da,hr,tot); % assemble results in table
the above assumes the day number is prepended to M as the first column.
  2 Kommentare
pavlos
pavlos am 17 Aug. 2019
Thank you for your response.
I get the following error
"Index in position 2 exceeds array bounds (must not exceed 2)."
when applying the tot=splitapply(@sum,M(:,3),g);
dpb
dpb am 18 Aug. 2019
Bearbeitet: dpb am 19 Aug. 2019
As noted, I presumed you introduced the new and needed day variable as column one into your array M so it subsequently has three, not two columns.

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