How to calculate daily, monthly climatology from time series ?

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I have 10year series data with 1min resolution. I want to calculate daily, monthly climatology.
I mean I want to see each month variations over 10yrs.
Ex: Jan-2001+Jan-2002+.......+Jan-2010/10=result
like I want to do for all months and days

Accepted Answer

Ameer Hamza
Ameer Hamza on 11 Mar 2020
You can convert your data into timetable and transform it to a different scale using retime function
% generating a random table with daily values
times = datetime('2020-01-01'):days(1):datetime('2020-01-30');
Table = timetable(times', rand(length(times), 1), rand(length(times), 1));
Table_weekly = retime(Table, 'weekly', 'mean'); % calculating weekly average
  2 Comments
Jeevan Kumar Bodaballa
Jeevan Kumar Bodaballa on 11 Mar 2020
Thank you for reply but this is not what I am exactly looking.
I want to pick whole January months from whole 10yrs and calculate mean. Like I want to do other months too.
Ameer Hamza
Ameer Hamza on 11 Mar 2020
The same code will work with some modifications
% generating a random table with daily values
times = datetime('2011-01-01'):days(1):datetime('2019-12-30');
Table = timetable(times', rand(length(times), 1), rand(length(times), 1));
Table_monthly = retime(Table, 'monthly', 'mean'); % calculating weekly average
months_order = month(Table_monthly.Time);
all_month_sum = ...
cell2mat(splitapply(@(x) {sum(x, 1)}, Table_monthly.Variables, months_order));
all_month_sum(months_order(1:12), :) = all_month_sum; % bringing January to top
This creates random data for 9 years and then sum the values for all years. Final matrix has the of 12 x n, where n is the number of columns of the initial dataset.

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