Summing every nth column

18 visualizzazioni (ultimi 30 giorni)
Adnan Habib
Adnan Habib il 29 Nov 2021
Commentato: Adnan Habib il 29 Nov 2021
Hi,
I have a 1336 by 89700 matrix. I want to sum every 300th colum starting from the first column so that I end up with a 1336 by 300 matrix. So the first colum in the new matrix will be the sum of colum 1, 300, 599....etc. of the previous matrix. And the second column of the new matrix will be the sum of column 2, 301, 600...etc. of the previous matrix. I hope I was able to clearly explain what I want. Any help will be appreciated.

Accedi per rispondere a questa domanda.

Risposta accettata

Image Analyst
Image Analyst il 29 Nov 2021
Modificato: Image Analyst il 29 Nov 2021
Ran in:
Try this and see if it does what you want:
data = rand(1336, 89700); % Create sample data.
sums = zeros(1336, 299); % Preallocate.
for col = 1 : size(data, 2) / 299
% Extract every 300th column, starting with column "col", into a new matrix.
extractedMatrix = data(:, col : 300 : end); % A new matrix 1/300th as wide as the original
% Sum all the values in that matrix, and put that sum into means.
% Get the sums for just this one set of columns.
theseSums = sum(extractedMatrix, 2);
% Store these sums in the column "col" of our master array.
sums(:, col) = theseSums; % Get a single sum from the entire 2-D matrix.
end
whos sums
Name Size Bytes Class Attributes sums 1336x300 3206400 double

Più risposte (2)

Yongjian Feng
Yongjian Feng il 29 Nov 2021
Your logic is not consistent. from 1 to 300, there are 298 rows in between. But from 300 to 600, there are 299 rows in between.
You might want 1, 301, 601, etc?
You can use reshape and sum to do this. Here a simpler example of summing 1, 4th, 7th.
ma = [1 2 3; 4 5 6; 7 8 9; 10 11 12; 13 14 15; 16 17 18;19 20 21; 22 23 24; 25 26 27]
mb = reshape(ma', 9, 3)
mc = sum(mb, 2)
me = reshape(mc, 3, 3)'
ma =
1 2 3
4 5 6
7 8 9
10 11 12
13 14 15
16 17 18
19 20 21
22 23 24
25 26 27
mb =
1 10 19
2 11 20
3 12 21
4 13 22
5 14 23
6 15 24
7 16 25
8 17 26
9 18 27
mc =
30
33
36
39
42
45
48
51
54
me =
30 33 36
39 42 45
48 51 54
  1 Commento
Adnan Habib
Adnan Habib il 29 Nov 2021
Thanks for this. Yes I made a mistake. It should be 1+300+599....i.e. 298 columns in between.

Accedi per commentare.

Image Analyst
Image Analyst il 29 Nov 2021
I think this does what you said, though I'm not sure it's what you want:
data = rand(1336, 89700); % Create sample data.
means = zeros(1, 299); % Preallocate.
for col = 1 : 299
% Extract every 300th column, starting with column "col", into a new matrix.
extractedMatrix = data(:, col : 300 : end); % A new matrix 1/300th as wide as the original
% Sum all the values in that matrix, and put that sum into means.
means(col) = sum(extractedMatrix(:)); % Get a single sum from the entire 2-D matrix.
end
  2 Commenti
Adnan Habib
Adnan Habib il 29 Nov 2021
Hi thanks for your answer. But this is not what I wanted. With this my output matrix is 1 by 299. But I want my output matrix to be 1336 by 300
Image Analyst
Image Analyst il 29 Nov 2021
OK, let's examine this. So your original matrix is 1336 rows tall by 89700 columns wide. So if you take every 299'th column (1, 300, 599, etc.) you get an extracted matrix of 1336 rows tall by 299 columns wide.
So now you say "So the first colum in the new matrix will be the sum of colum 1, 300, 599....etc. of the previous matrix." so we're to sum the extracted matrix row-by-row over all the columns so we'd end up with a new matrix of 1336 by 1 for the sum over the columns. So we'd do sums = sum(extractedMatrix, 2).
See my other answer elsewhere on the page for a full solution.

Accedi per commentare.

Categorie

Scopri di più su Logical in Help Center e File Exchange

Tag

Community Treasure Hunt

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

Start Hunting!

Translated by