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I'm trying to create a dynamic task scheduler with cron syntax.

How does cron handle days that overflow the number of days in the month? For example, now it's February with 29 days. How would cron handle the day expressions 31 or */2?

If */2 is expanded to 1,3,5..29,31 I could see that 31 is dropped. But that wouldn't work so well if day is just 31. Any idea?

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2 Answers 2

up vote 0 down vote accepted

I believe cron just ignores it if it doesn't match. The way the man page is written says that it matches if either the day of month match or the day of week matches. Some implementations (cronie for instance) just evaluate */2 in DoM to 1,3,5,7..,31, so it must ignore 31 in February.

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So * * 31 * * would only run on 7 months/year? –  Znarkus Feb 6 '12 at 15:22

It will just ignore it, because it uses just a simple match. You are probably trying to achieve "run this every last day of a month". Something like this should work (found it here):

59 23 * * * [ `date -d tomorrow +%d` -eq '01' ] && <your script>

Or make that cron to run every day, but let it run this .sh script:

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

# If tomorrow date is less than today, we are at the end of the month
if  [  $TOMORROW  -lt  $TODAY  ];  then
  # This is the last day of the month, so you can do your stuff here...run other script...
fi
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So * * 31 * * would only run on 7 months/year? –  Znarkus Feb 6 '12 at 15:21
    
Yes, only on months with 31 days. –  Aleksandar Vučetić Feb 6 '12 at 15:26

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