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I have a folder /var/backup where a cronjob saves a backup of a database/filesystem. It contains a latest.gz.zip and lots of older dumps which are names timestamp.gz.zip. The folder ist getting bigger and bigger and I would like to create a bash script that does the following:

  • Keep latest.gz.zip
  • Keep the youngest 10 files
  • Delete all other files

Unfortunately, I'm not a good bash scripter so I have no idea where to start. Thanks for your help.

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possible duplicate of deleting old files using crontab –  tripleee Sep 10 '12 at 13:18
    
@tripleee No, deleting files older than a certain time is very different from deleting the N oldest file –  Gilles Sep 10 '12 at 14:36
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2 Answers 2

up vote 1 down vote accepted

You should learn to use the find command, possibly with xargs, that is something similar to

 find /var/backup -type f -name 'foo' -mtime -20 -delete

or if your find doesn't have -delete:

 find /var/backup -type f -name 'foo' -mtime -20 -print0 | xargs -0 rm -f

Of course you'll need to improve a lot, this is just to give ideas.

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Cool thank you for the hint. I figured out that find /var/backup -mtime +3 -delete (files older than 3 days) is a good solution for me. –  Zendler Sep 10 '12 at 13:02
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When going for the xargs version, you should definitely stick to the form find . -print0 | xargs -0 cmd. This ensures proper treatment of filenames containing whitespace. -print0 tells find to emit matches terminated by a NULL character and -0 tells xargs that the NULL character is the delimiter. –  Jan-Philip Gehrcke Sep 10 '12 at 13:58
    
Sticking to this form also minimizes security risks: gnu.org/software/findutils/manual/html_mono/… –  Jan-Philip Gehrcke Sep 10 '12 at 14:05
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In zsh you can do most of it with expansion flags:

files=(*(.Om))
rm $files[1,-9]

Be careful with this command, you can check what matches were made with:

print -rl -- $files[1,-9]
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