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I have a a couple of Apache log files that have been appended together and I need to sort them by date. They're in the following format:

"www.company.com" 192.168.1.1 [01/Jan/2011:00:04:17 +0000] "GET /foobar/servlet/partner/search/results?catID=1158395&country=10190&id=5848716&order_by=N-T&order_by_dir=-&product=10361996&siteID=1169823&state= HTTP/1.1" 200 10459 0 "-" "Mozilla/5.0 (compatible; bingbot/2.0; +http://www.bing.com/bingbot.htm)"

What's the best way to go about doing this on the Linux command line?

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Maybe move this to ServerFault or unix.stackexchange.com? – ohmantics Apr 15 '11 at 5:57
#!/bin/sh
if [ ! -f $1 ]; then
    echo "Usage: $0 "
    exit
fi
echo "Sorting $1"
sort -t ' ' -k 4.9,4.12n -k 4.5,4.7M -k 4.2,4.3n -k 4.14,4.15n -k 4.17,4.18n -k 4.20,4.21n $1 > $2
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This is a terrific answer! Thank you! – dotancohen Oct 21 '13 at 9:28
    
Interesting. The man page doesn't make it clear that you can use "M" as part of a sort key; thanks for pointing this out! – offby1 Aug 5 '14 at 18:50

This is almost too trivial to point out, but just in case it confuses anyone: grm's answer should technically be using field #3, not 4, to match the questioner's exact log format. That is, it should read:

    sort -t ' ' -k 3.9,3.12n -k 3.5,3.7M ...

His answer is correct in every other respect, and can be used as-is for the common log format.

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perhaps this would have been better as a comment--but it's correct, so have some internet points :) – STW Jul 26 '14 at 2:50

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