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I have a file containing (one per line). I would like to extract word between quotes starting with the some pattern. (in my case it is C_)

"PATTERNabcde"  sdfds  sdfds
"sdfsdfsdf"   sdfdsf sdfdsf
" PATTERNabc"          dfdsdfd

and I want to extract: PATTERNabcde PATTERNabc

EDIT: I would like to ALSO extract word between quotes that don't start with the $PATTERN

thanks

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1  
What parenthesis? Do you mean quotes? –  jkerian Dec 15 '10 at 2:58
    
quotes.. .sorry –  vehomzzz Dec 15 '10 at 13:42

3 Answers 3

up vote 2 down vote accepted

You can use awk:

awk -F\" '$2~/^[[:space:]]*PATTERN/{print $2}' file

This works if there is only one word enclosed in quotation marks or if the one that may start with pattern is always the first one; otherwise, you'd have to use a for cycle:

awk -F\" '{for (i=2;i<=NF;i+=2) if ($i ~/^[[:space:]]*PATTERN/ ) {print $i;next}}'
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please explain this parrt \" '$2~/^[[:space:]]*PATTERN/.... thanks –  vehomzzz Dec 15 '10 at 13:43
    
-F\" forces awk to use " as the field separator; then for every line, if the second field (the word enclosed in quotations marks) starts with zero or more spaces followed by PATTERN, it simply prints it out. –  marco Dec 15 '10 at 14:27
sed -rn 's/.*?".*?(PATTERN[^"]*)".*/\1/p'
  • -r - extended regex
  • -n - disabled auto-print
  • .*? - zero or more characters, non-greedy
  • ( - open capturing group
  • [^"] - any character but "
  • ) - close capturing group
  • \1 - first matching group
  • p - print

We just replace every line with the first group. If there is a replacement, we print.

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that's great although it fails on "${PATTERN}abc${PATTERN}ghi" it returns $PATTERNghi –  vehomzzz Dec 15 '10 at 2:10
    
@vehom, you didn't say there could be more than one per line. –  Matthew Flaschen Dec 15 '10 at 2:11
    
sorry, I said that it begins with $PATTERN between parentheses, which implied that anything can follow $PATTERN including $PATTERN, as long as the word ends before the closing parenthesis. And match only one word per line. I still upvoted your answer =) –  vehomzzz Dec 15 '10 at 2:18
    
@vehom, there's no parenthesis in your question. –  Matthew Flaschen Dec 15 '10 at 2:19
    
also please explain some parts of your sed, such as ?".? and )".*/\1.. thanks –  vehomzzz Dec 15 '10 at 2:19

You can use grep as:

grep -Po '(?<=")\s*PATTERN[^"]*(?=")' file

See it

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