I tried using $(date) in my bash shell script, however I want the date in YYYY-MM-DD format. How do I get this?
926
1576
In Bash:
get year-month-day from date
DATE=`date +%Y-%m-%d`
get year-month-day hour:minute:second from date
DATE=`date '+%Y-%m-%d %H:%M:%S'`
Other available date formats can be viewed from the date man pages:
man date
-
4In the first days of the month I get "2012-07-1" which is not what the OP asks for. – DerMike Jul 2 '12 at 9:29
-
6This works for me. Man page suggests that the first of the month is 01, no 1 (Ex. 2012-07-01). – Bob Kuhar Mar 19 '13 at 18:59
-
26
-
5I haven't checked how widely available these shortcuts are, but in some distributions you can use
+%F %Tas a shortcut for+%Y-%m-%d %H:%M:%S. Just note that some filesystems (cough**HFS) will convert the:to a/, giving you a string like2016-09-15 11/05/00which is mighty confusing. – beporter Sep 15 '16 at 16:07 -
20The preferred syntax in any POSIX-compliant shell in this millennium is
date=$(date)instead ofdate=`date`. Also, don't use uppercase for your private variables; uppercase variable names are reserved for the system. – tripleee Sep 26 '16 at 5:53
287
Try: $(date +%F)
-
8The man pages for date reads: %F full date; same as %Y-%m-%d, so this is just a more compact notation for the accepted answer. – Håvard Geithus Nov 16 '15 at 20:42
70
You can do something like this:
$ date +'%Y-%m-%d'
34
You're looking for ISO 8601 standard date format, so if you have GNU date (or any date command more modern than 1988) just do: $(date -I)
-
5I have a recent (>1988) Mac OS X computer, and
date -Ididn't work. Having installed GNU coreutils using brew (which uses the prefix 'g')gdate -Idid work. – Joel Purra Aug 23 '13 at 15:47 -
3Odd. I can't find the
-Ioption documented for GNUdate, although sure enough it does seem to be equivalent todate +%F. – chepner Oct 14 '13 at 21:55 -
2OS X is generally a GPL v3 wasteland, so they might just not have updated date or BASH recently. – Indolering Dec 16 '13 at 20:50
17
date -d '1 hour ago' '+%Y-%m-%d'
The output would be 2015-06-14.
-
Wrong for a couple of reasons, obviously this gives the wrong date between 00:00 and 01:00, and besides you end with a
%. – Gerhard Burger Apr 18 '16 at 15:50 -
10
$(date +%F_%H-%M-%S)
can be used to remove colons (:) in between
output
2018-06-20_09-55-58
6
With recent Bash (version ≥ 4.2), you can use the builtin printf with the format modifier %(strftime_format)T:
$ printf '%(%Y-%m-%d)T\n' -1 # Get YYYY-MM-DD (-1 stands for "current time")
2017-11-10
$ printf '%(%F)T\n' -1 # Synonym of the above
2017-11-10
$ printf -v date '%(%F)T' -1 # Capture as var $date
5
if you want the year in a two number format such as 17 rather than 2017, do the following:
DATE=`date +%d-%m-%y`
4
#!/bin/bash -e
x='2018-01-18 10:00:00'
a=$(date -d "$x")
b=$(date -d "$a 10 min" "+%Y-%m-%d %H:%M:%S")
c=$(date -d "$b 10 min" "+%Y-%m-%d %H:%M:%S")
#date -d "$a 30 min" "+%Y-%m-%d %H:%M:%S"
echo Entered Date is $x
echo Second Date is $b
echo Third Date is $c
Here x is sample date used & then example displays both formatting of data as well as getting dates 10 mins more then current date.
4
Whenever I have a task like this I end up falling back to
$ man strftime
to remind myself of all the possibilities.
1
I use $(date +"%Y-%m-%d") or $(date +"%Y-%m-%d %T") with time and hours.
0
You can set date as environment variable and later u can use it
setenv DATE `date "+%Y-%m-%d"`
echo "----------- ${DATE} -------------"
or
DATE =`date "+%Y-%m-%d"`
echo "----------- ${DATE} -------------"
protected by Antti Haapala Sep 26 '16 at 6:26
Thank you for your interest in this question.
Because it has attracted low-quality or spam answers that had to be removed, posting an answer now requires 10 reputation on this site (the association bonus does not count).
Would you like to answer one of these unanswered questions instead?
