Subscribing into a timetable using only the time values
3 Ansichten (letzte 30 Tage)
Ältere Kommentare anzeigen
Noush
am 2 Dez. 2021
Kommentiert: Star Strider
am 4 Dez. 2021
Hello,
I have created a timetable using the following code:
sz = [120 4]; %Dimensionen of the Table
varTypes = {'string','string' 'string','double'}; %Types of Variables
varNames = {'Radlader','Bagger','Gabelstapler','Lesitung Gesamt'}; %Headings of the table
AL = timetable('Size',sz,'VariableTypes',varTypes,'RowTimes',dt,'VariableNames',varNames); %The table with Aggregatslasten
S = timerange('08:30:00','16:00:00')
AL(S,1:3) = {"Ja"}
I would like the word "Ja" to appear in the first to third column, when the time is between 8:30 and 16:00.
With the code at hand, I get the error message: "A timetable with datetime row times cannot be subscripted using duration values."
How can I solve this?
Note that my timetable is not just for a single day, but a whole week. So I have to keep the dates as well! Specifying the dates does not really work, as the dates are chosen by the user, so they can change, I need a way for the table to only look at the time values.
Thank you for your help!
0 Kommentare
Akzeptierte Antwort
Star Strider
am 2 Dez. 2021
Try this —
sz = [120 4]; %Dimensionen of the Table
varTypes = {'string','string' 'string','double'}; %Types of Variables
varNames = {'Radlader','Bagger','Gabelstapler','Lesitung Gesamt'}; %Headings of the table
dt = datetime('now')+hours(0:sz(1)-1)*4; % Create 'datetime' Array
dt = duration(hour(dt),minute(dt),second(dt));
AL = timetable('Size',sz,'VariableTypes',varTypes,'RowTimes',dt,'VariableNames',varNames); %The table with Aggregatslasten
S = timerange('08:30:00','16:00:00')
AL(S,1:3) = {"Ja"}
Experiment to get different results.
.
5 Kommentare
Star Strider
am 4 Dez. 2021
My pleasure!
Sure!
The datenum function (that has been available for several decades) produces a decimal fraction depicting days to the left of the decimal separator and fractions of days to the right of the decimal separator. Using the rem or mod functions (similar in most respects, although not the same in all) returns the remainder-after-division. So dividing by 1 returns the decimal part (fractions-of-a-day) as the output. (Experiment with that with any decimal fraction to understand how it works.) This makes it easy to compare times-of-day, and using only the day fraction makes the days themselves irrelevant so that it works across all days.
In detail, then:
dtn = rem(datenum(AL.Time),1); % Day Fractions Of All Days In The 'Time' Variable
t1 = rem(datenum('08:30:00', 'HH:mm:ss'),1); % Day Fraction Equivalent For '08:30:00'
t2 = rem(datenum('16:00:00', 'HH:mm:ss'),1); % Day Fraction Equivalent For '16:00:00'
Then the ‘S’ assignment uses these to create a logical vector to produce the desired end result.
.
Weitere Antworten (0)
Siehe auch
Kategorien
Mehr zu Timetables finden Sie in Help Center und File Exchange
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!