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I have log file in which I'm trying to delete all entries older than a specified date. Though I haven't succeeded with this yet. What I've tested so far is having an input for what the entries must be older than to be deleted and then loop like this:

#!/bin/bash

COUNTER=7
DATE=$(date -d "-${COUNTER} days" +%s)
DATE=$(date -d -@${DATE} "+%Y-%m-%d")

while [ -n "$(grep $DATE test.txt)" ]; do

    sed -i "/$DATE/d" test.txt

    COUNTER=$((${COUNTER}+1))
    DATE=$(date -d "-${COUNTER} days" +%s)
    DATE=$(date -d @${DATE} +"%Y-%m-%d")
done

This kind of works except when a log entry doesn't exist for date. When it doesn't find a match it aborts the loop and the even older entries are kept.

Update

This was how I solved it:

#!/bin/bash

COUNTER=$((7+1))
DATE=$(date -d "-${COUNTER} days" +%s)
DATE=$(date -d -@${DATE} "+%Y-%m-%d")

if [ -z "$(grep $DATE test.txt)" ]; then
   exit 1
fi

sed -i "1,/$DATE/d" test.txt
share|improve this question
    
You should be able to do this using find and -mtime. –  Bruno Dec 6 '11 at 12:00
3  
I think he means each log line in a file has an associated datetime, and that we wants to remove specific lines from the log file. –  Dunes Dec 6 '11 at 12:06
2  
Have you considered using logrotate instead? –  OpenSauce Dec 6 '11 at 12:39
1  
if it's some kind of log file you're deleting entries from, would it be a safe assumption that all entries are appended to the end of the file, and that the timestamp of each new entry is greater than the last one? If so, you could probably just iterate through the file and remove all entries until you find a timestamp that matches (or is greater than) your desired date. –  Frost Dec 6 '11 at 12:46
    
Thanks for the suggestion Martin Frost! I will try that approach! :) –  Niklas Dec 6 '11 at 13:19

3 Answers 3

Depending on your logfile format, assuming that the timestamp is the first column in the file you can do it like this with (g)awk.

awk 'BEGIN { OneWeekEarlier=strftime("%Y-%m-%d",systime()-7*24*60*60) }
     $1 <= OneWeekEarlier { next }
     1' INPTUTLOG > OUTPUTLOG

This computes the date - surprise, surprise - one week earlier, then checks if the first column (white space separated columns by default) is less than or equal, and if true, skips the line, otherwise prints.

The hard part is doing the "in place" editing with awk. But it can be done:

{ rm LOGFILE && awk 'BEGIN { OneWeekEarlier=strftime("%Y-%m-%d",systime()-7*24*60*60) }
     $1 <= OneWeekEarlier { next }
     1' > LOGFILE ; } < LOGFILE

HTH

share|improve this answer
    
Thanks for your reply but I went with Martin Frost's suggestion, it was much easier to do this operation with sed. –  Niklas Dec 6 '11 at 13:42
    
See my comment above regarding your solution! –  Zsolt Botykai Dec 6 '11 at 14:58

I deleted log records in syslog-ng files before 60 days ago with following code.

#!/bin/bash   

LOGFILE=/var/log/syslog    
DATE=`date +"%b %e" --date="-60days"`    
sed -i "/$DATE/d" $LOGFILE
share|improve this answer
up vote 0 down vote accepted

Sorry for answering my own question but I went with Martin Frost's suggestion in the comments. It was much easier than the other suggestions.

This was my implementation:

#!/bin/bash

# requirements for script script

COUNTER=$((7+1))
DATE=$(date -d "-${COUNTER} days" +%s)
DATE=$(date -d -@${DATE} "+%Y-%m-%d")

sed -i "1,/$DATE/d" test.txt

Thanks for all the help!

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