I have a Perl script which will run in a cron job on linux suse. It will take as input a log file that was generated yesterday. The filename of the log contains the date (i.e. log.20100209)
Can I send yesterday's date with the format in the prompt? Should I create an additional script to get the date and execute? If so, how can I do that?
Thanks
perl myscript.pl -f log.201002开发者_运维技巧09
Edit
Thanks for your help
It worked with:
perl myscript.pl -f log.`date --date='yesterday' '+%Y%m%d'`
GNU date:
date --date='yesterday' '+%Y%m%d'
You can get yesterday's date like this:
perl -we'@a=localtime(time-24*3600);printf "%04d%02d%02d", $a[5]+1900, $a[4]+1, $a[3]'
You can use this when calling your script at the prompt:
perl myscript.pl -f log.`perl -we'@a=localtime(time-24*3600);printf "%04d%02d%02d", $a[5]+1900, $a[4]+1, $a[3]'`
But this is unreadable, and I suggest you write a proper script that calculates yesterday's date, and then calls myscript.pl.
You shouldn't need to send yesterday's date as an additional parameter. You can already get it using two other methods:
- Perl's built-in time(), localtime(), or gmtime() functions will give you the current date and time, and you can work with that to determine yesterday's date.
- It is already included in the name of your log file, so you can parse the file name to get the date into the format you need.
Perl has a lot of modules to work with dates and times, depending exactly what you need to do.
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