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$s = "bla..bla";
$s =~ s/([^%])\./$1/g;

I think it should replace all occurrences of . that is not after % with the character that is before ..

But $s is then: bla.bla, but it should be blabla. Where is the problem? I know I can use quantifiers, but I need do it this way.

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Which output you expect? –  w.k Feb 20 '13 at 17:20
    
i am expecting blabla –  Krab Feb 20 '13 at 17:20
    
Actually, no you don't (need to do it this way). Since a literal dot is not a percent, we all ready know that any stream of dots preceded by a character that is not a percent can we wiped out. If it so happens that we have '%...', then the re engine will gladly preserve the dot following the percent, counting it as a non-percent character preceding a string of dots, and delete the rest. –  Axeman Feb 20 '13 at 21:08

3 Answers 3

up vote 6 down vote accepted

When a global regular expression is searching a string it will not find overlapping matches.

The first match in your string will be a., which is replaced with a. When the regex engine resumes searching it starts at the next . so it sees .bla as the rest of the string, and your regex requires a character to match before the . so it cannot match again.

Instead, use a negative lookbehind to perform the assertion that the previous character is not %:

$s =~ s/(?<!%)\.//g;

Note that if you use a positive lookbehind like (?<=[^%]), you will not replace the . if it is the first character in the string.

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The problem is that even with the /g flag, each substitution starts looking where the previous one left off. You're trying to replace a. with a and then a. with a, but the second replacement doesn't happen because the a has already been "swallowed" by the previous replacement.

One fix is to use a zero-width lookbehind assertion:

$s =~ s/(?<=[^%])\.//g;

which will remove any . that is not the first character in the string, and that is not preceded by %.

But you might actually want this:

$s =~ s/(?<!%)\.//g;

which will remove any . that is not preceded by %, even if it is the first character in the string.

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Much simpler than look-behinds is to use:

$s =~ s/([^%])\.+/$1/g;

This replaces any string of one or more dots after a character other than % by nothing.

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I don't think that regex does what you think it does. May I recommend a backslash before that dot? –  tjd Feb 20 '13 at 17:40
    
@tjd: yup — typo. Thanks. –  Jonathan Leffler Feb 20 '13 at 18:20
    
+1 for removing the overlap problem. Remember, \K and you don't have to "carry the ($)1". s/[^%]\K\.+//g. (Since 5.10!) –  Axeman Feb 20 '13 at 20:57
    
@Axeman: Remember \K? No; I'll have to learn what \K means... It wasn't in Perl 4, was it? :D –  Jonathan Leffler Feb 20 '13 at 21:16

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