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I have got output from several different log files:

logfile3
2010/07/21 15:28:52 INFO xxx
2010/07/21 15:31:25 INFO xxx
2010/07/21 15:31:25 DEBUG xxx

logfile1
2010/07/21 19:28:52 INFO xxx
2010/07/21 19:31:25 INFO xxx
2010/07/21 19:31:25 DEBUG xxx

logfile2
2010/07/21 13:28:52 INFO xxx
2010/07/21 13:31:25 INFO xxx
2010/07/21 13:31:25 DEBUG xxx

I would like to sort this output by date, but keep the name of the logfile above the log lines, so it should look like:

logfile2
2010/07/21 13:28:52 INFO xxx
2010/07/21 13:31:25 INFO xxx
2010/07/21 13:31:25 DEBUG xxx

logfile3
2010/07/21 15:28:52 INFO xxx
2010/07/21 15:31:25 INFO xxx
2010/07/21 15:31:25 DEBUG xxx

logfile1
2010/07/21 19:28:52 INFO xxx
2010/07/21 19:31:25 INFO xxx
2010/07/21 19:31:25 DEBUG xxx

Do you have any idea how to sort output like this with bash commands, sed or awk? Thanks a lot!

UPDATE: This is the source of the output

for i in $( find log/ -iname *debug*.log -size +0 );do
if [ `grep -c 'ERROR' $i` -gt 0 ];then
 echo -e "\n$i"
 grep 'ERROR' --color=auto -A 5 -B 5 $i
fi
done

Martin

share|improve this question
    
"I have got output from several different log files"... in a single file? – leonbloy Jul 21 '10 at 19:18
    
Do the times overlap? If so how do you want the files reported? – deinst Jul 21 '10 at 19:30

If you have you output already in a file (or script output) I'd go Perl:

$/=undef;
$t=<>;
@t=split(/\s*\n*(logfile.*)$/m,$t);
foreach $f (@t) {
    next unless $f;
    if($f =~ /^logfile/) {
      print $f;
    } else {
        print join("\n",sort (split(/\n/,$f))) . "\n\n";
   }
}

Or, a little more clean:

@lines = ();
while($t=<>) {
    if($t!~ /^2\d\d\d/) {
        print sort @lines if(scalar(@lines));
        @lines = ();
        print $t;
    }
    else {
      push @lines,$t;
   }
}
print sort @lines if(scalar(@lines));
share|improve this answer
    
No, it is from several files, I have updated the source script to the question. How can I use this script? Thank you! – Martin Jul 21 '10 at 19:43
    
It is from serveral files but you already have the output consolidated? If so, yes, my script might help. But it would be easier to make the sort inside your script. – leonbloy Jul 21 '10 at 19:52

You may be able to get satisfactory results from this (as long as none of your filenames contain colons):

grep -C 5 --recursive 'ERROR' log/* | sort --field-separator=: --key=2

Each line will be prepended by the filename. Your output will look something like this:

logfile2:2010/07/21 13:28:52 INFO xxx
logfile2:2010/07/21 13:31:25 INFO xxx
logfile2:2010/07/21 13:31:25 DEBUG xxx

logfile3:2010/07/21 15:28:52 INFO xxx
logfile3:2010/07/21 15:31:25 INFO xxx
logfile3:2010/07/21 15:31:25 DEBUG xxx
etc.

You can use AWK to reformat that into the format that you show in your example:

grep -C 5 --recursive 'ERROR' log/* | sort --field-separator=: --key=2 |
    awk '{colon = match($0,":"); file = substr($0,1,colon - 1); 
    if (file != prevfile) {print "\n" file; prevfile = file}; 
    print substr($0,colon+1)}'

Here are several improvements to your script, in case you still use it:

find log/ -iname "*debug*.log" -size +0 | while read -r file
do
    if grep -qsm 1 'ERROR' "$file"
    then
        echo -e "\n$file"
        grep 'ERROR' --color=auto -C 5 "$file"
    fi
done
share|improve this answer
Nicholas-Knights-MacBook-Pro:~/logtest$ ls
logfile1 logfile2 logfile3
Nicholas-Knights-MacBook-Pro:~/logtest$ cat logfile*
2010/07/21 19:28:52 INFO xxx
2010/07/21 19:31:25 INFO xxx
2010/07/21 19:31:25 DEBUG xxx

2010/07/21 13:28:52 INFO xxx
2010/07/21 13:31:25 INFO xxx
2010/07/21 13:31:25 DEBUG xxx

2010/07/21 15:28:52 INFO xxx
2010/07/21 15:31:25 INFO xxx
2010/07/21 15:31:25 DEBUG xxx

Nicholas-Knights-MacBook-Pro:~/logtest$ for i in `ls logfile*` ; do printf "$i"; sort -n $i; printf '\n'; done
logfile1
2010/07/21 19:28:52 INFO xxx
2010/07/21 19:31:25 DEBUG xxx
2010/07/21 19:31:25 INFO xxx

logfile2
2010/07/21 13:28:52 INFO xxx
2010/07/21 13:31:25 DEBUG xxx
2010/07/21 13:31:25 INFO xxx

logfile3
2010/07/21 15:28:52 INFO xxx
2010/07/21 15:31:25 DEBUG xxx
2010/07/21 15:31:25 INFO xxx

Nicholas-Knights-MacBook-Pro:~/logtest$ 
share|improve this answer
    
Thank you, Nicholas, sorry if I was not clear. I want to sort output by date of the log lines, not by the file names - please see my question for the desired output. – Martin Jul 21 '10 at 19:24
$ awk 'FNR==1{$NF=$NF" "FILENAME;}1' logfile*|sort -t" " -k1 -k2|awk 'NF==5{ h=$NF;$NF="";$0=h"\n"$0 }1'
logfile2
2010/07/21 13:28:52 INFO xxx
2010/07/21 13:31:25 DEBUG xxx
2010/07/21 13:31:25 INFO xxx
logfile3
2010/07/21 15:28:52 INFO xxx
2010/07/21 15:31:25 DEBUG xxx
2010/07/21 15:31:25 INFO xxx
logfile1
2010/07/21 19:28:52 INFO xxx
2010/07/21 19:31:25 DEBUG xxx
2010/07/21 19:31:25 INFO xxx
share|improve this answer
up vote 0 down vote accepted

Thank you all.

I improved script from Dennis Williamson to sort errors by date. Each log file with error inside is saved in file named by the timestamp of last error occured. These files are later sorted and put together. There may be cleaner solutions for that than to use of temp files.

find log/ -iname "*debug*.log" -size +0 | while read -r file
do
    if grep -qsm 1 'ERROR' "$file"
    then
        echo -e "$i \t$file"
        errors=$(grep 'ERROR' --color=auto -C 5 "$file")
        #get the timestamp of last error occured
        time=$(echo $errors | head -n 1 | awk '{print $1" "$2}')
        timestamp=$(date -d "$time" +%s)
        #save it to temp file
        echo -e "\n$file\n$errors" > tmp/logs/$timestamp.$i
    fi
    let i++
done

#put files together
rm -f output.txt
for i in `ls tmp/logs/*|sort`;do cat $i >> output.txt ; rm  $i; done

Opinions and suggestions for improvement appreciated!

share|improve this answer

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