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I have a log that looks like this:

2011-12-15 23:37      8920   xxxxxxxxxxxx
2011-12-16 00:06      8979   xxxxxxxxxxxx
2011-12-16 00:40      8757   xxxxxxxxxxxx
2011-12-16 00:43      8795   xxxxxxxxxxxx
2011-12-16 00:43      8795   xxxxxxxxxxxx
2011-12-16 01:17    174050   xxxxxxxxxxxx
2011-12-16 01:19    139883   xxxxxxxxxxxx
2011-12-16 01:34    174129   xxxxxxxxxxxx

I need to parse this log, but the only part I care about is "xxxxxxxxxxxx"; "xxxxxxxxxxxx" can be anything but it always has the same character count.

Currently I'm using this to parse my log:

VAR=`awk NR==$i log.log | cut -c30-45`

But that was assuming that the third column wouldn't change character count, for example "8920", but then as you can see, there were three logs which went past four characters, for example, "174129". Everything but the third column will have the same character count, the fourth column will be different, but the character count won't be.

I need to get what's in the fourth column, so I was thinking maybe I can get the character position in which "xxxxxxxxxxxx" begins then I can just do cut -c$STRING_POS-67. In PHP there is a function called strpos, this function "returns the numeric position of the first occurrence of needle in the haystack string", this exactly what I need, is there something like this that I can use in bash?

@shellter ------------------------- I needed something really quick, so I just did a lot of googleing and found some bits and pieces and just combined them all together.

NUM_LINES=`awk -F, 'END{print NR}' log.log`
while [ $i -le $NUM_LINES ]
do    
    VAR=`awk -v a=$i 'NR==a{print $4}' log.log | cut -c28-58`

    # Do stuff with $VAR

    i=$(( $i + 1 ))

done
share|improve this question
    
are you doing VAR=... inside a while loop that reads the whole logfile that essentially processes the whole file? If so, probably better to figure out how to parse your file completely in 1 awk process. Else ... never mind! ;-) Good luck. –  shellter Dec 16 '11 at 2:59
    
@shellter I have put my while loop in the edit in the original post –  samwell Dec 16 '11 at 8:27

5 Answers 5

up vote 1 down vote accepted

If your "xxxxxxxxxxxx" data does not have spaces in it then the following should should work -

VAR=$(awk -v a=$i 'NR==a{print $NF}' log.log)

OR

VAR=$(awk -v a=$i 'NR==a{print $4}' log.log)

If the "xxxxxxxxxxxx" may have a space then the above won't work.
In that case you can do the following -

VAR=$(awk -v a=$i 'NR==a{$1="";$2="";$3="";print $0}' log.log)
share|improve this answer
    
Wow, thank you so much. "xxxxxxxxxxxx" didn't have any spaces so I took your second suggestion and tried it out. Worked flawlessly, thank you so much. –  samwell Dec 16 '11 at 8:21

You can do it right in awk:

VAR=`awk "NR==$i { print \$NF }" log.log`
share|improve this answer

Replace everything you don't want from the beginning of line with nothing:

  sed -e 's/^[0-9][0-9][0-9][0-9]-[0-9][0-9]-[0-9][0-9] [0-9][0-9]:[0-9][0-9]  *[0-9][0-9]*  *//' log.log
share|improve this answer

This might work for you:

VAR=$(sed 's/.*[0-9]   //' log.log)
share|improve this answer

Use cut -f.

cat log.log | while read line; do
  v=$(echo $line | cut -d' ' -f4)
  # do stuff
done
share|improve this answer

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