79

I need to create a cron job that will run on the every last day of the month. I will create it from cpanel.

Any help is appreciated. Thanks

14 Answers 14

151

Possibly the easiest way is to simply do three separate jobs:

55 23 30 4,6,9,11        * myjob.sh
55 23 31 1,3,5,7,8,10,12 * myjob.sh
55 23 28 2               * myjob.sh

That will run on the 28th of February though, even on leap years so, if that's a problem, you'll need to find another way.


However, it's usually both substantially easier and correct to run the job as soon as possible on the first day of each month, with something like:

0 0 1 * * myjob.sh

and modify the script to process the previous month's data.

This removes any hassles you may encounter with figuring out which day is the last of the month, and also ensures that all data for that month is available, assuming you're processing data. Running at five minutes to midnight on the last day of the month may see you missing anything that happens between then and midnight.

This is the usual way to do it anyway, for most end-of-month jobs.


If you still really want to run it on the last day of the month, one option is to simply detect if tomorrow is the first (either as part of your script, or in the crontab itself).

So, something like:

55 23 28-31 * * [[ "$(date --date=tomorrow +\%d)" == "01" ]] && myjob.sh

should be a good start, assuming you have a relatively intelligent date program.

If your date program isn't quite advanced enough to give you relative dates, you can just put together a very simple program to give you tomorrow's day of the month (you don't need the full power of date), such as:

#include <stdio.h>
#include <time.h>

int main (void) {
    // Get today, somewhere around midday (no DST issues).

    time_t noonish = time (0);
    struct tm *localtm = localtime (&noonish);
    localtm->tm_hour = 12;

    // Add one day (86,400 seconds).

    noonish = mktime (localtm) + 86400;
    localtm = localtime (&noonish);

    // Output just day of month.

    printf ("%d\n", localtm->tm_mday);

    return 0;
}

and then use (assuming you've called it tomdom for "tomorrow's day of month"):

55 23 28-31 * * [[ "$(tomdom)" == "1" ]] && myjob.sh

Though you may want to consider adding error checking since both time() and mktime() can return -1 if something goes wrong. The code above, for reasons of simplicity, does not take that into account.

  • 4
    yeah it can be easier to run on every first day instead of the last day :) – Utku Dalmaz May 26 '11 at 13:36
  • 1
    1st day of month indeed. Here's how the code will look like in PHP $date = new DateTime('2013-03-01'); $date->modify('-1 month'); $previousMonth = $date->format('Y-m'); // $previousMonth is now 2013-02. Build query to fetch products for the previous month. – Lamy Jan 19 '13 at 6:41
  • Leap year feb 29 data will be lost, we need to consider that too. Thunder Rabbit answer below consider that but cron run twice in feb of leap year – Hari Swaminathan Feb 27 '14 at 7:30
  • 1
    @Hari, the preferred solution would be to run on the first of the month and collect the previous month's data. Feb 29 would not be missed in that case. – paxdiablo Feb 27 '14 at 7:36
  • 1
    Considering leap years: and if you don't mind it running twice: 55 23 28,29 2 * myjob.sh – radiantRazor Jun 2 '15 at 6:29
46

There's a slightly shorter method that can be used similar to one of the ones above. That is:

[ $(date -d +1day +%d) -eq 1 ] && echo "last day of month"

Also, the crontab entry could be update to only check on the 28th to 31st as it's pointless running it the other days of the month. Which would give you:

0 23 28-31 * * [ $(date -d +1day +%d) -eq 1 ] && myscript.sh
  • I couldn't get this to work as a crontab entry (something needs to be escaped I think). It worked fine in a shell script called from crontab however. FYI, the error I got was /bin/sh: -c: line 1: unexpected EOF while looking for matching ')'. – Mark Rajcok May 2 '14 at 15:56
  • 10
    This works great. In the crontab file the % must be escaped. So [ $(date -d +1day +\%d) -eq 1 ] && run_job – ColinM Sep 2 '14 at 14:27
  • Nice trick indeed! But the question was tagged posix and POSIX date doesn't support "-d +1day" :-\ A more complicated (and ugly) solution would be: [ `date +\%d` -eq `cal | xargs echo | awk '{print $NF}'` ] && myscript.sh – ckujau May 17 '15 at 20:31
18

Set up a cron job to run on the first day of the month. Then change the system's clock to be one day ahead.

  • 7
    which means the system clock will be wrong all the times. Sorry but I think this will cause more issue. -1 then. – Rudy Jun 2 '11 at 11:15
  • 59
    Now i know how Galileo felt. – Tom Anderson Jun 2 '11 at 13:07
  • 4
    @iconoclast: I'd like to think of it as more of a koan than a joke. – Tom Anderson Jan 11 '14 at 13:27
  • 7
    I think this is a really bad AND brilliant idea. Don't do this at home, kids. – pascal betz Feb 8 '17 at 17:22
  • 6
    @pascalbetz Oh, people can do it at home, but they really shouldn't do it at work. – Tom Anderson Feb 20 '17 at 22:33
10

What about this one, after Wikipedia?

55 23 L * * /full/path/to/command
  • Well, what about it? That: "bad day-of-month errors in crontab file, can't install. Do you want to retry the same edit?" – webjunkie Jul 17 '12 at 15:23
  • 9
    Just to be clear, that wikipedia entry also mentions that "L" is non-standard. – sdupton Sep 11 '13 at 21:10
10

Adapting paxdiablo's solution, I run on the 28th and 29th of February. The data from the 29th overwrites the 28th.

# min  hr  date     month          dow
  55   23  31     1,3,5,7,8,10,12   * /path/monthly_copy_data.sh
  55   23  30     4,6,9,11          * /path/monthly_copy_data.sh
  55   23  28,29  2                 * /path/monthly_copy_data.sh
  • 4
    Unless, of course, the job has some destructive aspect such as clearing out all data as it's processed :-) – paxdiablo Feb 9 '18 at 22:32
  • This is actually a painless option (least technical), and you might not care that thrice in 4 years you will get the cronjob too early if you just omit the ,29. – Matt Jul 3 '18 at 12:33
  • @Matt: Umm, don't you mean that it will run one day too early once in four years if your crontab entry says 55   23   28    2? – G-Man Feb 8 at 4:10
6

You could set up a cron job to run on every day of the month, and have it run a shell script like the following. This script works out whether tomorrow's day number is less than today's (i.e. if tomorrow is a new month), and then does whatever you want.

TODAY=`date +%d`
TOMORROW=`date +%d -d "1 day"`

# See if tomorrow's day is less than today's
if [ $TOMORROW -lt $TODAY ]; then
echo "This is the last day of the month"
# Do stuff...
fi
5

Some cron implementations support the "L" flag to represent the last day of the month.

If you're lucky to be using one of those implementations, it's as simple as:

0 55 23 L * ?

That will run at 11:55 pm on the last day of every month.

http://www.quartz-scheduler.org/documentation/quartz-1.x/tutorials/crontrigger

4
00 23 * * * [[ $(date +'%d') -eq $(cal | awk '!/^$/{ print $NF }' | tail -1) ]] && job

Check out a related question on the unix.com forum.

4

For a safer method in a crontab based on @Indie solution (use absolute path to date + $() does not works on all crontab systems):

0 23 28-31 * * [ `/bin/date -d +1day +\%d` -eq 1 ] && myscript.sh
  • 2
    BTW, this solution won't work on systems without GNU date... – zigarn Jun 6 '12 at 9:01
4
#########################################################
# Memory Aid 
# environment    HOME=$HOME SHELL=$SHELL LOGNAME=$LOGNAME PATH=$PATH
#########################################################
#
# string         meaning
# ------         -------
# @reboot        Run once, at startup.
# @yearly        Run once a year, "0 0 1 1 *".
# @annually      (same as @yearly)
# @monthly       Run once a month, "0 0 1 * *".
# @weekly        Run once a week, "0 0 * * 0".
# @daily         Run once a day, "0 0 * * *".
# @midnight      (same as @daily)
# @hourly        Run once an hour, "0 * * * *".
#mm     hh      Mday    Mon     Dow     CMD # minute, hour, month-day month DayofW CMD
#........................................Minute of the hour
#|      .................................Hour in the day (0..23)
#|      |       .........................Day of month, 1..31 (mon,tue,wed)
#|      |       |       .................Month (1.12) Jan, Feb.. Dec
#|      |       |       |        ........day of the week 0-6  7==0
#|      |       |       |        |      |command to be executed
#V      V       V       V        V      V
*       *       28-31   *       *       [ `date -d +'1 day' +\%d` -eq 1 ] && echo "Tomorrow is the first today now is  `date`" >> ~/message
1       0       1       *       *       rm -f ~/message
*       *       28-31   *       *       [ `date -d +'1 day' +\%d` -eq 1 ] && echo "HOME=$HOME LOGNAME=$LOGNAME SHELL = $SHELL PATH=$PATH" 
4

For AWS Cloudwatch cron implementation (Scheduling Lambdas, etc..) this works:

55 23 L * ? *

Running at 11:55pm on the last day of each month.

3

You can just connect all answers in one cron line and use only date command.

Just check the difference between day of the month which is today and will be tomorrow:

0 23 * * * root [ $(expr $(date +\%d -d '1 days') - $(date +\%d)  ) -le 0 ]  && echo true

If these difference is below 0 it means that we change the month and there is last day of the month.

2

What about this?

edit user's .bashprofile adding:

export LAST_DAY_OF_MONTH=$(cal | awk '!/^$/{ print $NF }' | tail -1)

Then add this entry to crontab:

mm hh * * 1-7 [[ $(date +'%d') -eq $LAST_DAY_OF_MONTH ]] && /absolutepath/myscript.sh
2
55 23 28-31 * * echo "[ $(date -d +1day +%d) -eq 1 ] && my.sh" | /bin/bash 
  • 1
    echoing the command and piping it into bash is the best way when working with cron. Since cron is using sh and not bash. Check where your bash is using 'which bash'. On FreeBSD it is /usr/local/bin/bash, on Linux /bin/bash. – Donald Duck Sep 12 '18 at 2:39

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