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I need something simple like date, but in seconds since 1970 instead of the current date, hours, minutes, and seconds.

date doesn't seem to offer that option. Is there an easy way?

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Sorry, I must say this.... ''Date doesn't seem to offer that option. Is there an easy way?'' - read the manual again ;-) – TheBonsai Jul 7 '09 at 19:34
Some versions of date have it and some don't. So it's not always present. I ran 'type -a date' and used a different version and that worked. – Scott Rowley May 15 '14 at 19:19
FWIW, Ubuntu only has /bin/date, for which @Steef's answer works – Jonathan Hartley Sep 23 at 5:44

5 Answers 5

up vote 359 down vote accepted

This should work:

date +%s
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Works very well indeed. – Burkhard Jul 7 '09 at 18:03
works like a charm ! thanks – Jonathan Rioux Jul 19 '11 at 17:37
the date manpge should be changed from %s seconds since 1970-01-01 00:00:00 UTC to %s seconds since the epoch, 1970-01-01 00:00:00 UTC because I missed it in there. – devin Nov 18 '11 at 19:17
Doesn't work for me. man date does not show %s. I must have a very old version of bash (3.2.51(1) for Solaris)? – livefree75 Jan 28 '14 at 20:32
@livefree75 date is not built into bash, so your version of bash has nothing to do with which date implementation your system ships with. – Adrian Frühwirth May 20 '14 at 12:37

Just to add. If you want to get the seconds since epoch(Jan 1 1970) for any given date(e.g Oct 21 1973).

date -d "Oct 21 1973" +%s

Convert the number of seconds back to date

date --date @120024000

The command date is pretty versatile. Another cool thing you can do with date(shamelessly copied from date --help). Show the local time for 9AM next Friday on the west coast of the US

date --date='TZ="America/Los_Angeles" 09:00 next Fri'

Better yet, take some time to read the man page

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So far, all the answers use the external program date.

Since Bash 4.2, printf has a new modifier %(dateformat)T that, when used with argument -1 outputs the current date with format given by dateformat, handled by strftime(3) (man 3 strftime for informations about the formats).

So, for a pure Bash solution:

printf '%(%s)T\n' -1

or if you need to store the result in a variable var:

printf -v var '%(%s)T' -1

No external programs and no subshells!

Since Bash 4.3, it's even possible to not specify the -1:

printf -v var '%(%s)T'

(but it might be wiser to always give the argument -1 nonetheless).

If you use -2 as argument instead of -1, Bash will use the time the shell was started instead of the current date (but why would you want this?).

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This is an extension to what @pellucide has done, but for Macs:

To determine the number of seconds since epoch (Jan 1 1970) for any given date (e.g. Oct 21 1973)

$ date -j -f "%b %d %Y %T" "Oct 21 1973 00:00:00" "+%s"

Please note, that for completeness, I have added the time part to the format. The reason being is that date will take whatever date part you gave it and add the current time to the value provided. For example, if you execute the above command at 4:19PM, without the '00:00:00' part, it will add the time automatically. Such that "Oct 21 1973" will be parsed as "Oct 21 1973 16:19:00". That may not be what you want.

To convert your timestamp back to a date:

$ date -j -r 120034800
Sun Oct 21 00:00:00 PDT 1973

Apple's man page for the date implementation:

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use this bash script (my ~/bin/epoch):


# get seconds since epoch
test "x$1" == x && date +%s && exit 0

# or convert epoch seconds to date format (see "man date" for options)
date -d @"$EPOCH" "$@"
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