Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

From regular-expressions.info:

\b\w+(?<!s)\b. This is definitely not the same as \b\w+[^s]\b. When applied to Jon's, the former will match Jon and the latter Jon' (including the apostrophe). I will leave it up to you to figure out why. (Hint: \b matches between the apostrophe and the s). The latter will also not match single-letter words like "a" or "I".

Can you explain why ?

Also, can you make clear what exacly \b does, and why it matches between the apostrophe and the s ?

share|improve this question

2 Answers 2

up vote 7 down vote accepted

\b is a zero-width assertion that means word boundary. These character positions (taken from that link) are considered word boundaries:

  • Before the first character in the string, if the first character is a word character.
  • After the last character in the string, if the last character is a word character.
  • Between two characters in the string, where one is a word character and the other is not a word character.

Word characters are of course any \w. s is a word character, but ' is not. In the above example, the area between the ' and the s is a word boundary.

The string "Jon's" looks like this if I highlight the anchors and boundaries (the first and last \bs occur in the same positions as ^ and $): ^Jon\b'\bs$

The negative lookbehind assertion (?<!s)\b means it will only match a word boundary if it's not preceded by the letter s (i.e. the last word character is not an s). So it looks for a word boundary under a certain condition.

Therefore the first regex works like this:

  1. \b\w+ matches the first three letters J o n.

  2. There's actually another word boundary between n and ' as shown above, so (?<!s)\b matches this word boundary because it's preceded by an n, not an s.

  3. Since the end of the pattern has been reached, the resultant match is Jon.

The complementary character class [^s]\b means it will match any character that is not the letter s, followed by a word boundary. Unlike the above, this looks for one character followed by a word boundary.

Therefore the second regex works like this:

  1. \b\w+ matches the first three letters J o n.

  2. Since the ' is not the letter s (it fulfills the character class [^s]), and it's followed by a word boundary (between ' and s), it's matched.

  3. Since the end of the pattern has been reached, the resultant match is Jon'. The letter s is not matched because the word boundary before it has already been matched.

share|improve this answer
    
+1, but one quibble: "^ and $ are special kinds of \b" is incorrect. \b just happens to match the same positions the anchors do in this case. If you want to indicate the spots where \b can match, I think this works better: \bJon\b'\bs\b. –  Alan Moore Sep 2 '11 at 11:09
    
@Alan Moore: Oops, fixed :) –  BoltClock Sep 2 '11 at 11:13
    
Oops back: I edited my comment to remove the the anchors entirely (but I don't insist on that one ☺). –  Alan Moore Sep 2 '11 at 11:17
    
@Alan Moore, ^, $ and \b are considered anchors. $ can also match in multiple spots in most strings (before and after a trailing newline), even without /m. Under /m, Both ^ and $ can match in multiple places. I find grouping \b with ^ and $ matches people's mental model and not wholly inaccurate. –  ikegami Sep 2 '11 at 19:59
1  
@ikegami: Strictly speaking, anchor is a synonym for zero-width assertion, but it's commonly used to refer the subset of ZWA's associated with line boundaries (^, $, \A, \Z, \z), and that's how I was using it. I have no objection to calling \b an anchor too, but BC seemed to be implying a relationship that doesn't exist (^ and $ as special-case word boundaries), and I wanted to clear that up. –  Alan Moore Sep 2 '11 at 21:03

The example is trying to demonstrate that lookaheads and lookbehinds can be used to create "and" conditions.


\b\w+(?<!s)\b

could also be written as

\b\w*\w(?<!s)\b

That gives us

\b\w*[^s]\b    vs    \b\w*\w(?<!s)\b

I did that so we can ignore the irrelevant. (The \b are simply distractions in this example.) We have

[^s]    vs    \w(?<!s)

On the left, we can match any character except "s"

On the right, we can match any word character except "s"

By the way,

\w(?<!s)

could also be written

(?!s)\w      # Not followed by "s" and followed by \w
share|improve this answer
    
+1. That whole paragraph in the source article is a muddled mess, far below Jan's usual standard. This point should have been presented in a separate section (along with the discussion of q[^u] vs. q(?!u) from the Character Classes page), where it could be given a more thorough treatment with a better-chosen example. –  Alan Moore Sep 2 '11 at 12:11

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.