How to get the index from a datetime array corresponding to a time duration?

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yashvin 2015 年 7 月 2 日

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https://jp.mathworks.com/matlabcentral/answers/226911-how-to-get-the-index-from-a-datetime-array-corresponding-to-a-time-duration

回答済み: Peter Perkins 2016 年 11 月 9 日

Hi I am trying to get the starting and ending index from a datetime array that corresponds to a specific time duration.

Find below my code for a general datetime array

t1 = datetime('23-Feb-2015 09:43:08')
num=2000
t2 = t1 + seconds(1:num)

I am interested in getting the starting and ending index from t2 with a time step durations of 5min.

index1=starting and ending index from t2 which corresponding to first 5 min.
index2=starting and ending index from t2 which corresponding to next 5 min .
.
.
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index= starting and ending index from t2 which corresponds to remaining time.

I tried something using "minutes" but i do not know how to access the starting and ending index from t2. Can you please help?

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K E 2016 年 11 月 8 日

I am also having trouble trying to get the index to datetime objects that are later than a certain time. I wish Matlab would expand its examples on using datetime to include this, and other kinds of 'time math' operations.

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Answer 1

Steven Lord 2016 年 11 月 8 日

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MATLAB Online で開く

start = datetime('now');
vec = start + hours(0:24).'; % datetime + duration = datetime
midnight = dateshift(start, 'end', 'day');
pastMidnight = vec > midnight; % relational operators work
T = table(vec, pastMidnight)

The first element of the pastMidnight variable inside the table T (or the logical vector pastMidnight) that is true should be the first time in the vec variable inside the table T (or the datetime array vec) that is past midnight. I didn't need to display the information as a table, but I feel it formats the data nicely.

Logical indexing also works.

vec(pastMidnight)

If you are storing your data in a timetable, the retime method and indexing using withtol or timerange objects may be of interest or use to you.

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Answer 2

Peter Perkins 2016 年 11 月 9 日

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There are many ways to do this, I bet. Here's one:

>> bin = floor((t2 - t1) ./ minutes(5)) + 1;
>> i2 = [find(diff(bin)>0) length(bin)+1];
>> i1 = [1 i2(1:end-1)+1];
>> [i1; i2]
ans =
           1         300         600         900        1200        1500        1800
         299         599         899        1199        1499        1799        2001

In general, with arbitrary time points or bin size, you'd proably want to substitute discretize for floor(...) to avoid any round-off issues, but with whole seconds and whole minutes there is no issue.