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While answering this question C# Regex Replace and * the point was raised as to why the problem exists. When playing I produced the following code:

    string s = Regex.Replace(".A.", "\w*", "B");
    Console.Write(s);

This has the output: B.BB.B

I get that the 0 length string is match before and after the . character, but why is A replaced by 2 Bs.

I could understand B.BBB.B as replacing zero-length strings either side of A or B.B.B But the actual result confuses me - any help appreciated.

Or as AakashM has put it:

Why is Regex.Matches("A", "\w*").Count equal to 2, not 1 or 3 ?

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I slightly prefer this formulation: "Why is Regex.Matches("A", @"\w*").Count equal to 2 rather than 1", which I think is about as simply-posed as this question can be. I really hope we get a good answer from some luminary... –  AakashM Feb 10 '12 at 12:58
    
I think I can understand it equal to 3 as well - but yes that is a nicely succinct way to put it. –  Matt Fellows Feb 10 '12 at 13:00

4 Answers 4

up vote 4 down vote accepted

because \w* is a greedy regex and it tries to find biggest sequence. So it matches "nothing" before dot, then "nothing"A between two dots then "nothing" before second dot and finally "nothing" after the second dot.

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1  
Between the dots it matches A"nothing", when I inspect the MatchCollection. –  Hans Kesting Feb 10 '12 at 13:54
    
In java it matches "nothing"A. I printed start indexes of matching groups and matched strings and the result was 0 1A 2 3 –  shift66 Feb 10 '12 at 13:58
    
... as a note to the op... "\w*?" would make it "lazy none-or-more" (aka "not greedy"). Similarly \w+ is greedy one-or-more and \w+? is lazy one-or-more and so on. What the OP probably wanted was Regex.Replace(".A.", @"\w+?","B"); I hope that is helpful. –  Ben Lesh Feb 10 '12 at 15:14
    
@Ademiban: Your output actually proves that Hans Kesting is correct. –  ruakh Feb 10 '12 at 15:39

Thats the same behaviour than

Regex.Replace("", "\w*", "B") results in B
Regex.Replace("A", "\w*", "B") results in BB

See it here on Regexr

For the string ".A." \w* matches before the first dot the empty string, then on the "A", after the "A" the empty string and after the last dot the empty string.

Explanation

You can think of the pattern eating the characters, \w* has eaten the "A", the next char is a dot, so this match is complete and replaced. But the start position for the pattern to continue matching is still between the A and the dot. The dot can not be matched, so it matches the empty string before the dot, but then this position is done and the next start position is after the dot.

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By default it's greedy match, so it search's maximum of matches. There is why you get that result.

If you do with reluctant way, like this

string s = Regex.Replace(".A.", "\\w*?", "B");

You will get this result, because it finding minimum matches.

B.BAB.B
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That almost makes sense now - why is the A not replaced too? –  Matt Fellows Feb 10 '12 at 13:18
    
Yeah, I just have realized that it is really strange. –  Chuck Norris Feb 10 '12 at 13:23

There is a star after \w

It means "zero or many" so that means:

  • First symbol is a dot, it is NOT \w so there is zero \w here, replace by B
  • Next we have a dot itself, which is not replaceable
  • A gets replaced by B
  • zero \w before the next dot, replace by B
  • dot, not replaceable
  • Line end, zero \w so replace by B again.

Expression \w{0,} will have the same effect.

If you want to avoid it, use 'plus' which means 'at least one': \w+

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This is a conceptual, contrived, hypothetical question, not an actual problem. I think I understand what you are saying though... In my string if I put a | in where there are 0 length matches it would look like: |.A|.| so replacing | with B and the 1 length match of A with B we get B.BB.B... –  Matt Fellows Feb 10 '12 at 13:14
    
But why the match on the zero length \w just after the "real" match on the "A"? Why is that not included? When the string is ".ABC.", then there is a match on "ABC" and on the empty string after it. Why not on "AB"; empty string; "C"? –  Hans Kesting Feb 10 '12 at 13:15
    
This answer isn't saying why is that working in that way. –  Chuck Norris Feb 10 '12 at 13:19
    
@HansKesting It is not included because dot is not \w. So it sees dot, it realizes that it is "zero \w" so it puts B in it. –  Alexey Raga Feb 10 '12 at 13:19
    
@mesiesta What do you mean? I have explained the algorithm. It explains exactly WHY each symbol is on its place. –  Alexey Raga Feb 10 '12 at 13:21

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