How do i insert seconds in a timeseries data when the frequency of the data is inconsistent?

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Shambhavi Adhikari
Shambhavi Adhikari 2021 年 6 月 8 日
回答済み: Star Strider 2021 年 6 月 8 日
I have a timeseries data as:
And i need to insert seconds on this data in way that it depends upon the number of datapoints the minutues has. For example, 9/5/2021 11:30:00 has 5 datapoints so every data will be increased by {60/5= 12 seconds), 11:31:00 has 3 data points so, every data is increased by {60/3=20 seconds).
Input_data=
9/5/2021 11:30:00
9/5/2021 11:30:00
9/5/2021 11:30:00
9/5/2021 11:30:00
9/5/2021 11:30:00
9/5/2021 11:31:00
9/5/2021 11:31:00
9/5/2021 11:31:00
9/5/2021 11:32:00
9/5/2021 11:32:00
9/5/2021 11:32:00
9/5/2021 11:32:00
Final_output=
9/5/2021 11:30:00
9/5/2021 11:30:12
9/5/2021 11:30:24
9/5/2021 11:30:36
9/5/2021 11:30:48
9/5/2021 11:31:00
9/5/2021 11:31:20
9/5/2021 11:31:40
9/5/2021 11:32:00
9/5/2021 11:32:15
9/5/2021 11:32:30
9/5/2021 11:32:45

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採用された回答

Star Strider
Star Strider 2021 年 6 月 8 日
Ran in:
Try this —
Input_data = ['9/5/2021 11:30:00'
'9/5/2021 11:30:00'
'9/5/2021 11:30:00'
'9/5/2021 11:30:00'
'9/5/2021 11:30:00'
'9/5/2021 11:31:00'
'9/5/2021 11:31:00'
'9/5/2021 11:31:00'
'9/5/2021 11:32:00'
'9/5/2021 11:32:00'
'9/5/2021 11:32:00'
'9/5/2021 11:32:00'];
TV = datetime(Input_data, 'InputFormat','MM/dd/yyyy HH:mm:ss'); % Convert To 'datetime' Array
[TVu,~,Idx] = unique(TV,'stable'); % Unique Values In Original Order
Counts = accumarray(Idx,1); % Count Unique Occurrences
for k = 1:numel(Counts)
ss{k,:} = (0:Counts(k)-1).'*60/Counts(k); % Create 'seconds' Column Vector
end
cs = seconds(cell2mat(ss)); % Convert Numeric Values To 'duration' 'seconds'
TV = TV + cs % Add 'seconds' To Original Vector To Produce Desired Result
TV = 12×1 datetime array
05-Sep-2021 11:30:00 05-Sep-2021 11:30:12 05-Sep-2021 11:30:24 05-Sep-2021 11:30:36 05-Sep-2021 11:30:48 05-Sep-2021 11:31:00 05-Sep-2021 11:31:20 05-Sep-2021 11:31:40 05-Sep-2021 11:32:00 05-Sep-2021 11:32:15 05-Sep-2021 11:32:30 05-Sep-2021 11:32:45
I am not certain that this is robust enough to work with any ‘Input_data’ vector, however it works with the example provided.
(To understand how it works, remove the ending semicolons to see the interim results.)
.

その他の回答 (1 件)

dpb
dpb 2021 年 6 月 8 日
indx=[0;find(minutes(diff(TT.Time)));height(TT)]; % find change locations indices
N=diff(indx); % number observations/group
secs=60./N; % number seconds differential in group
dsecs=arrayfun(@(s,n)s*[(0:n-1).'],secs,N,'UniformOutput',false); % compute the vector of addends
dsecs=vertcat(dsecs{:});
TT.Time=TT.Time+dsecs; % fixup the time field
Applied to your sample, this results in--
>> TT =
12×1 timetable
Time x
____________________ ____
05-Sep-2021 11:30:00 0.18
05-Sep-2021 11:30:12 0.34
05-Sep-2021 11:30:24 0.21
05-Sep-2021 11:30:36 0.51
05-Sep-2021 11:30:48 0.91
05-Sep-2021 11:31:00 0.63
05-Sep-2021 11:31:20 0.10
05-Sep-2021 11:31:40 0.39
05-Sep-2021 11:32:00 0.05
05-Sep-2021 11:32:15 0.50
05-Sep-2021 11:32:30 0.43
05-Sep-2021 11:32:45 1.00
>>
where I just created a dummy variable to have a non-empty TT.

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