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I am trying to understand the lookbehind.
This example I am trying doesn't work as I expected. I wanted to try to form a regex that would match John but not John.
The following:

$ perl -e '  
my $var = "John.";  
if( $var =~ m/J*/) {  
print "Matches!\n";  

matches up to and including . of course. The problem is the following:

$ perl -e '  
my $var = "John.";  
if( $var =~ m/J*(?<![.])/) {  
print "Matches!\n";  

For the latter I expected that the regex would match John. consuming >.< (the period)
Then at the next position it would look behind and realize that it consumed a period (.) and would reject the match.
Is my understanding wrong? What am I messing up here?

Same result also for my $var = "John. ";

Update 2:
My question is not about how to match only John and not John.
But to understand how lookbehind works and if it is not supposed to work in this case why.

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2 Answers 2

up vote 4 down vote accepted

The * is a quantification operator, not a placeholder. So A* means zero or more A characters. Without any further context, this always matches, e.g. "foo" =~ /J*/ is true.

What you intended to write was /J.*/ which does what you've actually described.

Now let's look what happens when we do "John." =~ /(J.*(?<![.]))/:

  • The regex engine sees J, which matches.
  • The next pattern is .*, which matches ohn..
  • Next the assertion (?<![.]) is tested, which fails.
  • The regex engine therefore backtracks.
  • We try .* again, but this time only match ohn.
  • Next the assertion (?<![.]) is tested, which suceeds.

In the above regex, I enclosed the pattern in a capture group, which we can now read out:

$ perl -E'"John." =~ /(J.*(?<![.]))/ and say "<$1>" or say "No match"'

It is often more efficient to use a character class instead of assertions and .* quantifications, so that we can avoid backtracking:


However, this is not strictly equivalent to the above regexes.

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+1.Excellent explanation! Thank you very much – Jim Feb 2 '14 at 10:15
@Jim: By the way, /(J.*(?<![.]))/ matches a string starting with J and not ending with ., while /J[^.]*/ matches a string starting with J and doesn't contain . character. – nhahtdh Feb 2 '14 at 10:36
Also, I wouldn't say that backtracking is avoided, but rather that it's reduced. I would say that backtracking is avoided when using possessive quantifiers and atomic groups. – Jerry Feb 2 '14 at 10:40
@nhahtdh:But will it backtrack to consume John? – Jim Feb 2 '14 at 10:40

This regexp:


will match John but not John. It uses a negative look-ahead assertion (rather than look-behind).

If you want to match full names other than 'John', you'll need to be a bit more specific about what you do and don't want to allow in the match, as putting J* will match zero or more J's.

Edit: Obviously I misread the * per @amon's post. Look-ahead vs. look-behind still applies.

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But my question is about understanding lookbehind. Not solve the problem of not matching John. – Jim Feb 2 '14 at 10:08
edited. I don't think you want look-behind. – David-SkyMesh Feb 2 '14 at 10:09
Look-behind looks BEFORE the current match. Not AFTER it. – David-SkyMesh Feb 2 '14 at 10:10
edited. I misread your J* as J.*. @amon's post is correct. – David-SkyMesh Feb 2 '14 at 10:12

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