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my log directory containing following files

access.log

defaultAuditrecorder20110901.log (this is 31st jun generated log file)

defaultAuditrecorder20110901.log (this is 1 st aug generated log file)

defaultAuditrecorder20110902.log (this is 2 nd aug generated log file)

defaultAuditrecorder.log (this is currentdey running log file)

mng1.log001

mng1.log002

mng1.log003 .............. so on......

my requirement is using shell script i need to only delete defaultauditrecord log files except current and previous day.

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2 Answers 2

Consider using logrotate. It lets you delete (or compress, rotate, etc.) log files, and is quite configurable. It is likely more robust than rolling your own script.

Edit: Here's a tutorial.

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full script please –  peddireddy Aug 3 '11 at 5:01
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peddireddy : It's quite rude of you to demand a "full script" of someone when they give you a superior solution that demands some work from you. The problem of deleting and handling logs is pretty much solved using logrotate and using that will likely prevent a large number of disasters you'll have to otherwise face. –  Noufal Ibrahim Aug 3 '11 at 6:33
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the simplest mechanism is to use the find command.

find /var/log -mtime +2d -a -type f -print

This will find all files that have been modified more than 2 days ago. To chain it into a removal command you would use:

find /var/log -mtime +2d -a -type f -print0 | xargs -0 rm

In this example, I used /var/log, you would substitute the directory that contains the logs. The reason for using the -print0 and the xargs -0, is that if the file contains whitespace it would not get processed by the rm command properly.

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why not just use the -delete flag for find? –  Janus Troelsen Mar 14 '13 at 12:35
    
Except where it's not supported (busybox find). I tend to use logrotate for things like this –  Petesh Mar 14 '13 at 13:33
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