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I have this for:

for i in `ls -1 access.log*`; do tail $i |awk {'print $4'} |cut -d: -f 1 |grep - $i > $i.output; done

ls will give access.log, access.log.1, access.log.2 etc.
tail will give me the last line of each file, which looks like: 192.168.1.23 - - [08/Oct/2010:14:05:04 +0300] etc. etc. etc
awk+cut will extract the date (08/Oct/2010 - but different in each access.log), which will allow me to grep for it and redirect the output to a separate file.

But I cannot seem to pass the output of awk+cut to grep.

The reason for all this is that those access logs include lines with more than one date (06/Oct, 07/Oct, 08/Oct) and I just need the lines with the most recent date.

How can I achieve this?

Thank you.

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Can you post some example input and expected output? –  larsmans Oct 26 '10 at 11:29
1  
One problem is that you keep overwriting the same output for each access.log. Note that you can also use multiple files for tail. –  Tomas Oct 26 '10 at 11:31
    
lol.. you're right, don't know how I overlooked this fact. Let me think about it so I can come up with a workaround. –  w00t Oct 26 '10 at 11:35
    
just add a counter which is appended to the log name –  joni Oct 26 '10 at 11:39
    
Ok, updated above. –  w00t Oct 26 '10 at 12:04

5 Answers 5

up vote 1 down vote accepted

As a sidenote, tail displays the last 10 lines.

A possible solution would be to grepthis way:

for i in `ls -lf access.log*`; do grep $(tail $i |awk {'print $4'} |cut -d: -f 1| sed 's/\[/\\[/') $i > $i.output; done
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I don't quite care about this aspect. I could have used tail -n 1. –  w00t Oct 26 '10 at 12:22
    
@mouviciel - I already tried it exactly as you wrote it, but it gives grep: Unmatched [ or [^ –  w00t Oct 26 '10 at 12:44
    
I see, [ has a special meaning for grep. I edit my answer. –  mouviciel Oct 26 '10 at 12:51
    
sed 's#\[##g' - this one works. Nonetheless, I'm still curious about my initial question –  w00t Oct 26 '10 at 13:06
    
It seems that this is the only solution, to write all the other commands inside the one you need. So, in my case, it is: for i in `ls -lf access.log*`; do grep $(tail $i |awk {'print $4'} |cut -d: -f 1| sed 's#[##g') $i > $i.output; done. Thanks for the support. –  w00t Oct 26 '10 at 13:31

why don't you break it up into steps??

for file in *access.log
do
  what=$(tail "$i" |awk {'print $4'} |cut -d: -f 1)
  grep "$what" "$file" >> output
done
share|improve this answer
    
This, too, overwrites output in every iteration. –  larsmans Oct 26 '10 at 11:37
    
I guess I can break it up, but wanted to run it from CLI. Anyhow, It's been more than one time that I needed to use a feature like this, so I'm trying to find the answer for my scenario. –  w00t Oct 26 '10 at 11:55

Umm... Use xargs or backticks.

man xargs

or http://tldp.org/LDP/Bash-Beginners-Guide/html/sect_03_04.html , section 3.4.5. Command substitution

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I don't see how xargs can help me. It would need to know what the output from all the prior commands is and then pass it as a pattern to grep. It would not be command | xargs grep 123 file.txt, but it would be command | xargs grep -pattern-from-command- file.txt –  w00t Oct 26 '10 at 12:40

You shouldn't use ls that way. Also, ls -l gives you information you don't need. The -f option to grep will allow you to pipe the pattern to grep. Always quote variables that contain filenames.

for i in access.log*; do awk 'END {sub(":.*","",$4); print substr($4,2)}' "$i" | grep -f - $i > "$i.output"; done

I also eliminated tail and cut since AWK can do their jobs.

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I see no problem with ls -l, it's how I've got used to use it. I could have used ls -1, but it is so not important. AWK isn't a good candidate for tail and cut's job because AWK reads the whole file to get to the END, and when one has 500+mb of files, it takes too long. Now about the grep -f, that really is helpful. Thanks. –  w00t Nov 2 '10 at 8:19

you can try:

 grep "$(stuff to get piped over to be grep-ed)" file

I haven't tried this, but my answer applied here would look like this:

 grep "$(for i in `ls -1 access.log*`; do tail $i |awk {'print $4'} |cut -d: -f 1 |grep - $i > $i.output; done)" $i
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