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as per MSDN, the "$&" substitution character sequence returns a copy of the whole match. I cannot wrap my head around why in the replaced string with the pattern "(\$*(\d*(\.+\d+)?){1})" with replacement string "**$&" on input string "$1.30" there is a trailing "**". The result string is "**$1.30**"

EDIT: perhaps, coming back to this at a later time would give me the answer (as is the case with most regex problems :P), but I'd like to sleep tonight!

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1 Answer 1

up vote 2 down vote accepted

Consider the code that the MSDN article suggests:

Regex.Replace("$1.30", @"(\$*(\d*(\.+\d+)?){1})", "**$0") // **$1.30**

Now look closely at the pattern. Technically, an empty string matches the pattern, for example:

Regex.Replace("", @"(\$*(\d*(\.+\d+)?){1})", "**$0") // **

As a consequence, the zero-length sub-string that appears after the first match ($1.30) also matches the pattern. So there are two replacements made in the original case, one that results in **$1.30 and one that results in **. This can be confirmed if you try the substitution pattern ($&):

Regex.Replace("$1.30", @"(\$*(\d*(\.+\d+)?){1})", "($&)") // ($1.30)()
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Legend! Totally get it now. Thanks. Now since you've used $0 in your example, I wonder what the difference between $0 and $& is. –  Abhinav Aug 13 '13 at 6:04
    
@Abhinav There's no difference, AFAIK. They just two different ways of referring to the same thing (just like ..* is the same as .+) –  p.s.w.g Aug 13 '13 at 6:10

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