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I have a quick question about Regex in Java (though other languages are probably similar).

What I'm trying to do is to transform a String like this:

 How are you "Doing well" How well 10 "That's great"

//# I want the Regex in Java to match out all of the words, numbers, 
//# and things inside quotation marks. Ideally, I'd get something like this 

How
Are
You
"Doing Well"
How 
Well
10
"That's Great!"

The Regex I'm trying to use is the following:

String RegexPattern =   "[^"+           //  START_OR: start of line OR" 
                        "\\s" +         //  empty space OR
                        "(\\s*?<=\")]" + // ENDOR: preceeded by 0 or more spaces and a quotation mark 
                        "(\\w+)" +      // the actual word or number
                        "[\\s" +        // START_OR: followed by a space OR
                        "(?=\")" +      // followed by a quotation mark OR
                        "$]";           // ENDOF:  end of line

This Won't work for me, though; even for much simpler strings! I've spent a lot of time looking for similar problems on here. If I didn't need the quotations, I could just use a split; eventually, though, this pattern will get much more complicated, so I will need to use the Regex (this is just the first iteration).

I'd appreciate any help; thanks in advance!

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3 Answers 3

up vote 2 down vote accepted

I don't think [ ] means what you think it means. Inside square brackets, ^ is actually a negation operator for the character class. You should practice with smaller regexes before embarking on this task. The pattern you're looking for is more like:

    \s*([^"\s]+|"[^"]*")

You can see this in action here: http://rubular.com/r/enq7eXg9Zm.

If you don't want symbols in words, then it's probably best to use a second regex that removes them, e.g.

    \W
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I'll try to explain the first regex. \s* matches zero or more whitespace characters. ( ... | ... ) is an alternation operator: match one, and if not possible, then match the other. The first half of that alternation, [^"\s]+, matches a string of non-double-quote, non-whitespace characters--in other words, a "normal" word. The second half of that alternation, "[^"]*" (again, only triggering if the first half fails), matches a double-quote, then a string of non-double-quote characters, then another double-quote. –  Andrew Cheong May 31 '12 at 19:11
    
ah, gotcha! you are right, I didn't understand the square brackets. Sorry about That! –  heisenBug May 31 '12 at 19:12
    
Well, I was definitely wrong about the brackets, but I'm not sure ruby's entirely consistent with Java (which is fine though!) Check this link: docs.oracle.com/javase/tutorial/essential/regex/… . The Bracket are used in place of the "|" you use (for OR). Nothing big, just language syntax differences. –  heisenBug May 31 '12 at 19:32
    
I see why you might think [ ... ] is an OR operator, but there is a big difference: it is merely an OR operator for single characters. That is, no matter what you put between [ and ], the expression can only match a single character! This is unlike the alternation operator, |, which is an OR operator for expressions. Another way of saying this is this. It is true that [abcd1234] is equivalent to (a|b|c|d|1|2|3|4). However, you cannot convert (hi|hello|howdy) to an expression in terms of [ ... ]! –  Andrew Cheong May 31 '12 at 19:55

This should work for you. (\"[^\"]+\")|([^\s]+)

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You can do it in multiple steps (code in python but the logic and the pattern should be the same)

1 - Get all the strings within double quotes:

r = re.findall(r'\"([^"]*)\"','How are you "Doing well" How well 10 "That\'s great"')

Result: ['Doing well', "That's great"]

2 - Remove those strings from the text:

r = re.sub(r'\"([^"]*)\"', "", 'How are you "Doing well" How well 10 "That\'s great"')

Result: 'How are you How well 10 '

3 - Now you can do your split plus the ones in double quotes from step 1.

definitively not a good/clean solution but it should work.

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