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So, I'm looking to extract words (or phrases) within quotation marks (") out of a string.
For example suppose the main string is:
The quick brown fox "jumped over" the "lazy" dog
I'd like to be able to extract out and store in variables the words/phrases in quotes, i.e.
jumped over
lazy
should be stored in variables. The input strings will only double quotes when quoting (no single quotes).
I tried the following (rough) code for this:

Pattern p = Pattern.compile("\\s\"(.*?)\"\\s");
Matcher m = p.matcher(<String>);
Variable.add(m.group(1));

It's throwing an IllegalStateException no matter what I input in. I have a feeling my regex is not working properly. Any help is appreciated.

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2 Answers 2

up vote 4 down vote accepted

Your code lacks some if( m.matches()) or m.find() which do the job...

This code:

String in = "The quick brown fox \"jumped over\" the \"lazy\" dog";
Pattern p = Pattern.compile( "\"([^\"]*)\"" );
Matcher m = p.matcher( in );
while( m.find()) {
   System.err.println( m.group( 1 ));
}

outputs:

jumped over
lazy
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That stops the exception from being thrown. But, the "lazy" part is still not being extracted out. I'm still using the regex "\\s*\"(.*?)\"\\s*". –  krandiash Nov 10 '12 at 9:50
    
It says "No group 2". –  krandiash Nov 10 '12 at 9:52
    
Cheers! Fixed it. I was following BlueBullet's index++ strategy. Whereas the capturing group is always 1, like in your code above. Thanks for the help! –  krandiash Nov 10 '12 at 9:56
String s = "The quick brown fox \"jumped over\" the \"lazy\" dog";
String lastStr = new String();

Pattern pat = Pattern.compile("\".*\"");
Matcher mat = pat.matcher(s);

while (mat.find()) {

 lastStr = mat.group();

}

System.out.println(lastStr.replace("\"", ""));
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