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Just came across this following regular expression:

Regex.Match(feed.Element("description").Value, @"^.{1,180}\b(?<!\s)").Value

I know it says that starting with anything it should contain minimum 1 and maximum 180 characters \b stands for word boundaries. I didn't understand what is \b doing here. And then (?<!\s). What is that expression doing? ?<! stands for look behind and don't consume string. My guess is that it says look behind and it shouldn't end with space. I am not sure though. Can anybody clear these doubts.

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3 Answers 3

up vote 2 down vote accepted

See your expression here on Regexr, this is a useful tool to test regular expressions.

I reduced the maximum length to 10 for test. So it looks like


(?<!\s) is a negative look behind zero length assertion. That means it checks if the position before (on the left) is not a whitespace.

So, ^.{1,10}\b(?<!\s) will match at the last word boundary in the first 10 characters of the string, but only if the left part or the word boundary is not a whitespace. This will not only match on "left word boundaries" (I think tripleee means the right side of the word), because word boundaries does not necessarily include whitespace.

A word boundary \b will match on the empty string between a word character (defined by the class \w) and a non word character \W.

That means \b(?<!\s) will match for example between "A$", "A ", "(A" or ".A". All of them have a word boundary in between and the left character is not a whitespace.

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In your case (?<!\s) makes sure that trailing whitespaces are not included in the match

It's easy to illustrate the following way. Change 180 to 10 in your example, so you do not need a really long test string:


Now try to match the following string against it (note two spaces between two and three):

one two  three four

Your regular expression match won't include the two whitespaces between two and three. However if you remove the last part of your regular expression like this:


Then the two spaces after two will be included in the match.

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Basically, the "not whitespace" assertion forces the \b to match left word boundaries only. So in other words, if the first 180 characters contain a word start anywhere after the first column, this matches. (The expression requires at least one arbitrary character before the match -- hard to say without context whether this is really correct, and what exactly it is supposed to accomplish.)

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Why does the expression require at least one arbitrary character before the match? (What part of the regex expression mandates it?) –  zespri Aug 17 '11 at 5:49
I don't think that you are correct. What are left word boundaries? I assume you mean the left side of a word. But this expression can match on the left and on the right side of a word, the only constraint is that the left character of the word boundary is not a whitespace. –  stema Aug 17 '11 at 6:06
@zespri: .{1,180} requires one or more characters (up to 180) before the word boundary. –  tripleee Aug 17 '11 at 6:58
@stema: you're right, the "not whitespace" would still allow for e.g. punctuation to the right of the word boundary. Anyway, the precision of expression is less than ideal, and like I wrote, without more context - such as knowledge about the expected input - we are left to guess the author's intentions. –  tripleee Aug 17 '11 at 7:08
We are talking here about (?<!\s) this is a look behind assertion, i.e. it does not allow whitespace on the left. The OP didn't ask if its correct, he wants to know what this expression is doing, that I can tell him. And as long as there is no specification, I don't say its correct or not. –  stema Aug 17 '11 at 7:17

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