How do I change datetime values?

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Marcus Johnson
Marcus Johnson 2023 年 9 月 19 日
コメント済み: Steven Lord 2023 年 9 月 19 日
Hello,
If I have a datetime that is: 1978-12-01 06:00:00
how do I change it to only show: 1978-12 ?
I have tried changing it with the format commando but it still shows 1978-12-01 06:00:00 and not 1978-12 when I use it in a plot.

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William Rose
William Rose 2023 年 9 月 19 日
Ran in:
@Marcus Johnson,
dt1=datetime(1978,12,1)+(0:1/24:23/24); % each hour of the day
dt1.Format="yyyy-MM-dd HH:mm";
disp([dt1(1), dt1(end)])
1978-12-01 00:00 1978-12-01 23:00
dt1.Format="yyy-MM";
disp([dt1(1), dt1(end)])
1978-12 1978-12
OK
  2 件のコメント
William Rose
William Rose 2023 年 9 月 19 日
Ran in:
@Marcus Johnson,
You also asked about plotting.
dt1=datetime(1978,(1:12),1); % each hour of the day
dt1.Format="yyyy-MM";
disp([dt1(1), dt1(2), dt1(end)])
1978-01 1978-02 1978-12
plot(dt1,rand(1,12),'-bx')
datetick('x',"yyyy-mm")
For datetick(), you use "mm" for months and "MM" for minutes, which is the opposite of the formatting convention for datetime(...,'Format',...). Wierd.
Steven Lord
Steven Lord 2023 年 9 月 19 日
For datetick(), you use "mm" for months and "MM" for minutes, which is the opposite of the formatting convention for datetime(...,'Format',...). Wierd.
The identifiers used by the Format property of datetime arrays come from the Unicode® Locale Data Markup Language (LDML) standard for dates and times, as linked in the documentation for the Format property on the datetime reference page. I'm fairly sure datetick, datenum, and the other functions that use the older set of identifiers predate that standard.
Rather than using datetick I'd recommend using the xtickformat function (and similarly ytickformat and/or ztickformat.)

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