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I'm trying to find all of the quoted text on a single line.

Example:

"Some Text"
"Some more Text"
"Even more text about \"this text\""

I need to get:

  • "Some Text"
  • "Some more Text"
  • "Even more text about \"this text\""

\"[^\"\r]*\" gives me everything except for the last one, because of the escaped quotes.

I have read about \"[^\"\\]*(?:\\.[^\"\\]*)*\" working, but I get an error at run time:

parsing ""[^"\]*(?:\.[^"\]*)*"" - Unterminated [] set.

How do I fix this?

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11 Answers

up vote 47 down vote accepted

What you've got there is an example of Friedl's "unrolled loop" technique, but you seem to have some confusion about how to express it as a string literal. Here's how it should look to the regex compiler:

"[^"\\]*(?:\\.[^"\\]*)*"

The initial "[^"\\]* matches a quotation mark followed by zero or more of any characters other than quotation marks or backslashes. That part alone, along with the final ", will match a simple quoted string with no embedded escape sequences, like "this" or "".

If it does encounter a backslash, \\. consumes the backslash and whatever follows it, and [^"\\]* (again) consumes everything up to the next backslash or quotation mark. That part gets repeated as many times as necessary until an unescaped quotation mark turns up (or it reaches the end of the string and the match attempt fails).

Note that this will match "foo\"- in \"foo\"-"bar". That may seem to expose a flaw in the regex, but it doesn't; it's the input that's invalid. The goal was to match quoted strings, optionally containing backslash-escaped quotes, embedded in other text--why would there be escaped quotes outside of quoted strings? If you really need to support that, you have a much more complex problem, requiring a very different approach.

As I said, the above is how the regex should look to the regex compiler. But you're writing it in the form of a string literal, and those tend to treat certain characters specially--i.e., backslashes and quotation marks. Fortunately, C#'s verbatim strings save you the hassle of having to double-escape backslashes; you just have to escape each quotation mark with another quotation mark:

Regex r = new Regex(@"""[^""\\]*(?:\\.[^""\\]*)*""");

So the rule is double quotation marks for the C# compiler and double backslashes for the regex compiler--nice and easy. This particular regex may look a little awkward, with the three quotation marks at either end, but consider the alternative:

Regex r = new Regex("\"[^\"\\\\]*(?:\\\\.[^\"\\\\]*)*\"");

In Java, you always have to write them that way. :-( By the way, if you want to make sure there are no line-separator characters in the quoted strings, you can include them in the negated character classes:

Regex r = new Regex(@"""[^""\r\n\\]*(?:\\.[^""\r\n\\]*)*""");

The dot in \\. already excludes line separators, as long as you don't specify the Singleline option.

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I like this explanation best. –  Joshua Lowry Jan 28 '10 at 15:36
    
was good answer –  motevallizadeh Aug 16 '13 at 16:57
    
Cruising through some of the answers that made you famous... Upvoting this one for making such a clear explanation out of the worst backslash soup! :) –  zx81 May 6 at 6:19
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Regex for capturing strings (with \ for character escaping), for the .NET engine:

(?>(?(STR)(?(ESC).(?<-ESC>)|\\(?<ESC>))|(?!))|(?(STR)"(?<-STR>)|"(?<STR>))|(?(STR).|(?!)))+   

Here, a "friendly" version:

(?>                            | especify nonbacktracking
   (?(STR)                     | if (STRING MODE) then
         (?(ESC)               |     if (ESCAPE MODE) then
               .(?<-ESC>)      |          match any char and exits escape mode (pop ESC)
               |               |     else
               \\(?<ESC>)      |          match '\' and enters escape mode (push ESC)
         )                     |     endif
         |                     | else
         (?!)                  |     do nothing (NOP)
   )                           | endif
   |                           | -- OR
   (?(STR)                     | if (STRING MODE) then
         "(?<-STR>)            |     match '"' and exits string mode (pop STR)
         |                     | else
         "(?<STR>)             |     match '"' and enters string mode (push STR)
   )                           | endif
   |                           | -- OR
   (?(STR)                     | if (STRING MODE) then
         .                     |     matches any character
         |                     | else
         (?!)                  |     do nothing (NOP)  
   )                           | endif
)+                             | REPEATS FOR EVERY CHARACTER

Based on http://tomkaminski.com/conditional-constructs-net-regular-expressions examples. It relies in quotes balancing. I use it with great success. Use it with Singleline flag.

To play around with regexes, I recommend Rad Software Regular Expression Designer, which has a nice "Language Elements" tab with quick access to some basic instructions. It's based at .NET's regex engine.

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Interesting breakdown. –  Joshua Lowry Sep 20 '10 at 21:29
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"(\\"|\\\\|[^"\\])*"

should work. Match either an escaped quote, an escaped backslash, or any other character except a quote or backslash character. Repeat.

In C#:

StringCollection resultList = new StringCollection();
Regex regexObj = new Regex(@"""(\\""|\\\\|[^""\\])*""");
Match matchResult = regexObj.Match(subjectString);
while (matchResult.Success) {
    resultList.Add(matchResult.Value);
    matchResult = matchResult.NextMatch();
} 

Edit: Added escaped backslash to the list to correctly handle "This is a test\\".

Explanation:

First match a quote character.

Then the alternatives are evaluated from left to right. The engine first tries to match an escaped quote. If that doesn't match, it tries an escaped backslash. That way, it can distinguish between "Hello \" string continues" and "String ends here \\".

If either don't match, then anything else is allowed except for a quote or backslash character. Then repeat.

Finally, match the closing quote.

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Sorry for editing this post so much. But now I think I've got it elegant enough. And correct, too. I hope. –  Tim Pietzcker Jan 27 '10 at 20:05
    
This regex not work with this text: \"Some Text\" Some Text "Some Text", and "Some more Text" an""d "Even more text about \"this text\"" –  Kamarey Jan 27 '10 at 20:31
    
This is excellent! I think part of the issue was that I was not using the @ which added more complexity with having to slash all over the place. –  Joshua Lowry Jan 27 '10 at 20:38
    
Kamarey is right though, it doesn't work properly in that case.... hmmmm. –  Joshua Lowry Jan 27 '10 at 22:12
1  
Sorry again, but: "(\\"|\\\\|[^"\\])*" does not match: "\n" or "\t". The pattern needed here is: "([^"\\]|\\.)*" which matches correctly (or better yet: "([^"\\]++|\\.)*" if the possessive quantifier is available). But Friedl's unrolled version of this expression is much faster. See Alan's answer. Have you read MRE3 yet? If not, I know you would enjoy it very much (if you are into regex - which I think you are). –  ridgerunner Apr 10 '11 at 15:03
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I recommend getting RegexBuddy. It lets you play around with it until you make sure everything in your test set matches.

As for your problem, I would try four /'s instead of two:

\"[^\"\\\\]*(?:\\.[^\"\\\\]*)*\"
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One of RegexBuddy's selling points is that it can automatically convert the regex to source code in whatever language you specify. In this case, it converts the "raw" regex "[^"\\]*(?:\\.[^"\\]*)*" to @"""[^""\\]*(?:\\.[^""\\]*)*""". –  Alan Moore Jan 28 '10 at 1:43
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The regular expression

(?<!\\)".*?(?<!\\)"

will also handle text that starts with an escaped quote:

\"Some Text\" Some Text "Some Text", and "Some more Text" an""d "Even more text about \"this text\""
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Is there a way this could work for multiple lines quoted strings? –  Joshua Lowry Jan 27 '10 at 22:16
    
This doesn't handle escaped backslashes at the end of strings: "Hello\\". –  Tim Pietzcker Jan 28 '10 at 7:11
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I know this isn't the cleanest method, but with your example I would check the character before the " to see if it's a \. If it is, I would ignore the quote.

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Similar to RegexBuddy posted by @Blankasaurus, RegexMagic helps too.

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A simple answer, without the use of ?, is

"([^\\"]*(\\")*)*\"

or, as a verbatim string

@"^""([^\\""]*(\\"")*(\\[^""])*)*"""

It just means:

  • find the first "
  • find any number of characters that are not \ or "
  • find any number of escaped quotes \"
  • find any number of escaped characters, that are not quotes
  • repeat the last three commands until you find "

I believe it works as good as @Alan Moore's answer, but, for me, is easier to understand. It accepts unmatched ("unbalanced") quotes as well.

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I can see that this answer is a bit buggy, for some reason. Please refer to stackoverflow.com/questions/20196740/… –  Piotr Zierhoffer Nov 25 '13 at 15:27
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Any chance you need to do: \"[^\"\\\\]*(?:\\.[^\"\\\\]*)*\"

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This gives me: "Some Text"; "Some more Text"; "" –  Joshua Lowry Jan 27 '10 at 19:13
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Well, Alan Moore's answer is good, but I would modify it a bit to make it more compact. For the regex compiler:

"([^"\\]*(\\.)*)*"

Compare with Alan Moore's expression:

"[^"\\]*(\\.[^"\\]*)*"

The explanation is very similar to Alan Moore's one:

The first part " matches a quotation mark.

The second part [^"\\]* matches zero or more of any characters other than quotation marks or backslashes.

And the last part (\\.)* matches backslash and whatever single character follows it. Pay attention on the *, saying that this group is optional.

The parts described, along with the final " (i.e. "[^"\\]*(\\.)*"), will match: "Some Text" and "Even more Text\"", but will not match: "Even more text about \"this text\"".

To make it possible, we need the part: [^"\\]*(\\.)* gets repeated as many times as necessary until an unescaped quotation mark turns up (or it reaches the end of the string and the match attempt fails). So I wrapped that part by brackets and added an asterisk. Now it matches: "Some Text", "Even more Text\"", "Even more text about \"this text\"" and "Hello\\".

In C# code it will look like:

var r = new Regex("\"([^\"\\\\]*(\\\\.)*)*\"");

BTW, the order of the two main parts: [^"\\]* and (\\.)* does not matter. You can write:

"([^"\\]*(\\.)*)*"

or

"((\\.)*[^"\\]*)*"

The result will be the same.

Now we need to solve another problem: \"foo\"-"bar". The current expression will match to "foo\"-", but we want to match it to "bar". I don't know

why would there be escaped quotes outside of quoted strings

but we can implement it easily by adding the following part to the beginning:(\G|[^\\]). It says that we want the match start at the point where the previous match ended or after any character except backslash. Why do we need \G? This is for the following case, for example: "a""b".

Note that (\G|[^\\])"([^"\\]*(\\.)*)*" matches -"bar" in \"foo\"-"bar". So, to get only "bar", we need to specify the group and optionally give it a name, for example "MyGroup". Then C# code will look like:

[TestMethod]
public void RegExTest()
{
    //Regex compiler: (?:\G|[^\\])(?<MyGroup>"(?:[^"\\]*(?:\.)*)*")
    string pattern = "(?:\\G|[^\\\\])(?<MyGroup>\"(?:[^\"\\\\]*(?:\\\\.)*)*\")";
    var r = new Regex(pattern, RegexOptions.IgnoreCase);

    //Human readable form:       "Some Text"  and  "Even more Text\""     "Even more text about  \"this text\""      "Hello\\"      \"foo\"  - "bar"  "a"   "b" c "d"
    string inputWithQuotedText = "\"Some Text\" and \"Even more Text\\\"\" \"Even more text about \\\"this text\\\"\" \"Hello\\\\\" \\\"foo\\\"-\"bar\" \"a\"\"b\"c\"d\"";
    var quotedList = new List<string>();
    for (Match m = r.Match(inputWithQuotedText); m.Success; m = m.NextMatch())
        quotedList.Add(m.Groups["MyGroup"].Value);

    Assert.AreEqual(8, quotedList.Count);
    Assert.AreEqual("\"Some Text\"", quotedList[0]);
    Assert.AreEqual("\"Even more Text\\\"\"", quotedList[1]);
    Assert.AreEqual("\"Even more text about \\\"this text\\\"\"", quotedList[2]);
    Assert.AreEqual("\"Hello\\\\\"", quotedList[3]);
    Assert.AreEqual("\"bar\"", quotedList[4]);
    Assert.AreEqual("\"a\"", quotedList[5]);
    Assert.AreEqual("\"b\"", quotedList[6]);
    Assert.AreEqual("\"d\"", quotedList[7]);
}
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I'm new to RegEx (didn't know the syntax 2 days back) - and when I first saw this question, I thought:

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

Which seems to work as tested on http://www.regexpal.com/

Could anyone explain to me why one would use Alan's version instead?:

"[^"\\]*(\\.[^"\\]*)*"

(It seems longer and less obvious to me). Could there be a performance advantage? How does one test performance in RegEx?

Note: I get how the Alan's solution works - but mine seems simpler to me - it's telling the RegEx engine: I'm looking for a sequence of characters that contain either a \" or anything but a quote, and the sequence itself must be contained in quotes.

And of course one can remove back references as necessary (by starting parentheses with ?: ), but my point was just to focus on the regex itself.

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