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xxxxxxxxmessageyyyyyyymessagexxxxxxxxxx

xxxxxxxxmessagezzzzzzzmessagexxxxxxxxxx

xxxxxxxxmessageaaaaaaamessagexxxxxxxxxx

xxxxxxxxmessageyyyyyyymessagexxxxxxxxxx

The above is my log file I need to extract the phrase which is inside the message tag and I need to save the distinct messages in a file in the above example I need to save zzzzzzz and aaaaaaa to a file.

What are the unix commands I need to use.

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consider awk or perl –  user166390 Jun 18 '10 at 4:57
    
Which program produces such a log file? :-S –  Marcel Korpel Jun 18 '10 at 4:57
    
Your question is pretty unclear. By "the message tag" I suppose you mean 8 x's at the beginning of the line and 10 x's at the end. By "distinct" do you mean that a message should be recorded only once? And are you omitting the yyyyyyy's because they're duplicated, or because they're in the first and last lines? –  Beta Jun 18 '10 at 5:02
    
ommitting ys because they are duplicated –  user351809 Jun 18 '10 at 5:04
    
that is <message>yyyyyyy</message> –  user351809 Jun 18 '10 at 5:06
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2 Answers 2

awk:

BEGIN
{
  s=0
}

s==0 && /yyyyy/
{
  s=1
  next
}

s==1 && /yyyyy/
{
  exit
}

{
  print
}

Run with awk -f script.awk < infile > outfile.

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There are a dozen ways to accomplish this. The one I tested:

(sed 's/xx//g' | sed 's/message//g')<tstlog >processed.log

yielded

yyyyyyy

zzzzzzz

aaaaaaa

yyyyyyy

Also, if you want to omit the blank lines, you could add something like:

(sed 's/xx//g' | sed 's/message//g' | grep -v ^$) < tstlog >processed.log
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