How can one extract this vector from a matrix?

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alpedhuez
alpedhuez on 2 Aug 2020
Edited: alpedhuez on 3 Aug 2020
First, suppose I have a matrix M of 60 rows and 3 columns. Suppose each row is a month like January, February, ... so that every 12 months make a year.
Second, I now want to create a matrix Y of 5 rows and 2 columns where each row represents year and the second column is the yearly average of entries of the second column and the third columns of each year.
How can one write a program?
(Just to make sure, the actual case is not about months and year so it is not that one wants to use retime and other time related function.)
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madhan ravi
madhan ravi on 2 Aug 2020
Edited: madhan ravi on 2 Aug 2020
More clarification needed. Provide a short example of your data. Maybe it’s much easier than it seems?
alpedhuez
alpedhuez on 2 Aug 2020
Edited: alpedhuez on 2 Aug 2020
input matrix M
1 5 3
2 4 4
3 3 7
4 2 3
5 6 2
6 3 1
7 0 9
8 10 8
9 11 5
10 7 2
11 5 1
12 3 0
output desired Y
1 4.33333
(average of above 24 numbers in Column 2 and 3)
program that I have been trying
years=size(M,1)/12;
for y=1:1:years
x=M((years-1)*12+1:years*12,2:3)
mean(sort(x(:)))
end

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Answers (2)

Image Analyst
Image Analyst on 2 Aug 2020
Try splitapply():
% Get sample data:
M = rand(60, 3);
M(:, 1) = repmat([1:12]', 5, 1) % Make months repeating in the first columns.
% Get average of each column grouped by the month number.
Y = splitapply(@mean, M(:, 2:3), M(:, 1))
% That is the average over months but each average is in it's own column so far.
% Now average the two columns together so that's like
% averaging columns 2 and 3 of the original matrix.
Y = mean(Y, 2)
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Image Analyst
Image Analyst on 3 Aug 2020
True. Since he had the month number 1-12 in the first column, and there are supposed to be 60 of them, I assumed there would be 5 years and that the "yearly average" would be like averaging month 1 (January) numbers in rows 1, 13, 25, 27, 39, and 51. In other words, compute the average January values over the 5 years (5 Januaries) in the array. So my code gives 12 averages - one for each month.
Your code averages over all 12 months for each year and so produces 5 averages for the 5 years. Actually looking at his example for only 12 rows where he gives just one average as the output, I think that you might be right.
Waiting for alpedhueze to clarify which way he wants it, and to attach his actual M and desired result.
alpedhuez
alpedhuez on 3 Aug 2020
Edited: alpedhuez on 3 Aug 2020
You are right. The word "yearly average' was confusing. In one interpretation, it is 'an average from January to December ofyear 2019'. In another interpretation, it is 'an average of January over the years.' I meant the first one. But I now realize that the wording allows the second interpretation. Thank you very much.

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Bruno Luong
Bruno Luong on 2 Aug 2020
Avg = mean(reshape(M(:,2:3)',12*2,[]));
[(1:length(Avg)); Avg]'
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Bruno Luong
Bruno Luong on 2 Aug 2020
Because one need to group columns 2&3 of the same year together so the reshape is correctly group them in 24-chunk..
Bruno Luong
Bruno Luong on 3 Aug 2020
I might expand my answer for the need of transpose. MATLAB uses column-major order scheme. If no transpose, in memory the data is stored in this order
12 month year 1 column (2)
12 month year 2 column (2)
...
12 month year 5 column (2)
12 month year 1 column (3)
...
12 month year 5 column (3)
If group the above by chunk of 24 we get
12 month year 1 column (2) + 12 month year 2 column (2)
...
12 month year 5 column (2) + 12 month year 1 column (3)
...
12 month year 4 column (3) + 12 month year 5 column (3)
This is NOT yearly mean of column 2+3 if we take the mean of each chunk.
With the transpose, the data will for be stored
month 1 year 1 column(2)
month 1 year 1 column(3)
month 2 year 1 column(2)
month 2 year 1 column(3)
...
month 12 year 5 column(2)
month 12 year 5 column(3)
This will give the right answer when taking the mean of chunk 24.

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