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I have many text files and need to locate certain words that may exist in the context of the file but need only those that are in quotation marks.

Example: Find in the text below the word "search" only if in quotes (the word "search" may vary).

1.  text text text text text text search text
2.  text "search text text text text" text
3.  text "SEARCH text text text text" text

For this precise example, I would expect only the words of line 2 and 3.

Thanks to anyone who can help me.

  • What language or tool? – squiguy Sep 6 '12 at 20:04
  • Hi squiguy. I thought of using Notepad++ – wrc-cps Sep 6 '12 at 20:07
  • This is harder than you might expect, using regexes alone. Consider this: text "text text" text TARGET text "text text" text "text". You and I can count open/close quotes and see that TARGET isn't quoted. But try explaining that to the regex engine in a generalized way that will work for all possible levels of quoting. – DavidO Sep 6 '12 at 20:18
  • @DavidO - I attempted to address this in my solution, but do tell if you detect a flaw... – Andrew Cheong Sep 6 '12 at 20:20
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If you can guarantee that there'll be only one set of quotes, then

/".*search.*"/i

should do. But if there can be more than one pair of quotes, then you have to ensure that an even number of quotes have been passed, lest you mistake a closing quote for an opening quote:

/^[^"]*("[^"]*"[^"]*)*"[^"]*search[^"]*"/i

Here's a demo. (Note that the demo contains \ns purely for presentation purposes.) If you see two #s in the demo regex, please replace them with parentheses ( )—it is a limitation of the way RegexPal encodes its data in the URL.

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I you want all waords between double quotes, I would simply use grep:

 grep -E -o '".*"' inputfile

I f you want only the first word:

sed  -E 's/.+"([[:alpha:]]+) .*/\1/' inputfile
  • he wants the matching word, but only if it's in quotes. This returns all words within quotes. I would change it to grep -E -o -i '"word.*"' inputfile – Kevin Sep 6 '12 at 20:07

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