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This arose from a discussion on formalizing regular expressions syntax. I've seen this behavior with several regular expression parsers, hence I tagged it language-agnostic.

Take the following expression (adjust it for your favorite language):

replace("input", "(.*)*", "$1")

it will return an empty string. Why?

More curiously even, the expression replace("input", "(.*)*", "A$1B") will return the string ABAB. Why the double empty match?

Disclaimer: I know about backtracking and greedy matches, but the rules laid out by Jeffrey Friedl seem to dictate that .* matches everything and that no further backtracking or matching is done. Then why is $1 empty?

Note: compare with (.+)*, which returns the input string. However, http://regexhero.com shows that there are still two matches, which seems odd for the same reasons as above.

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1  
The answer to this is likely to depend on the regex implementation (eg. to the degree does it stop as soon as there is a valid match). –  Richard Jan 24 '13 at 11:28
    
possible duplicate of Why doesn't the .* consume the entire string in this Perl regex? –  Anirudha Jan 24 '13 at 11:40
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@Some1.Kill.The.DJ: almost the same indeed, but not a duplicate. It is language specific, and the answer does not explain what is explained here. Finally, the answer seems to contain an incorrect claim (that (.*)* will put the whole match in $1, which is precisely what this question shows is not true). –  Abel Jan 24 '13 at 13:20
    
@Abel: In that question, the regex is ((.*)*), so the whole match will be placed in $1. (Of course, the outer parentheses are completely superfluous, but the answer is correct.) –  Tim Pietzcker Jan 24 '13 at 13:40
    
@Tim: you're right, I only focused on this sentence: $1 will contain what is matched by (.*)* / (.+)*, i.e. the whole string and interpreted it incorrectly. –  Abel Jan 24 '13 at 14:21

1 Answer 1

up vote 25 down vote accepted

Let's see what happens:

  1. (.*) matches "input".
  2. "input" is captured into group 1.
  3. The regex engine is now positioned at the end of the string. But since (.*) is repeated, another match attempt is made:
  4. (.*) matches the empty string after "input".
  5. The empty string is captured into group 1, overwriting "input".
  6. $1 now contains the empty string.

A good question from the comments:

Then why does replace("input", "(input)*", "A$1B") return "AinputBAB"?

  1. (input)* matches "input". It is replaced by "AinputB".
  2. (input)* matches the empty string. It is replaced by "AB" ($1 is empty because it didn't participate in the match).
  3. Result: "AinputBAB"
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1  
Actually, .* is matching empty string at the start and end of the string. I tried it with Matcher.find() and print matcher.group(1) and matcher.start(). Strange that it prints the location 0, and 5, with empty string matched. –  Rohit Jain Jan 24 '13 at 11:31
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@samuil: .+ doesn't match the empty string. –  Tim Pietzcker Jan 24 '13 at 11:32
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@RohitJain: I don't use Java, so I can't reproduce this. This sounds very strange, though. I can't imagine how there could be an empty match at the start of the string. .* is greedy, and there is no reason for backtracking... –  Tim Pietzcker Jan 24 '13 at 11:35
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Well, it does stop if you don't force it to go on with the outer * quantifier. –  Tim Pietzcker Jan 24 '13 at 11:41
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hmm... Then why replace("input", "(input)*", "A$1B") returns "AinputBAB"? –  Andriy F. Jan 24 '13 at 11:48

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