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I am trying to capture a value out of a string. The string's format should be

01+XXXX

and I want to capture XXXX using a regular expression. This is what I came up with -

01+\\s*(?<1>[.0-9]*)

But that won't work. What DOES work is -

01+\\s*(?<1>[+.0-9]*)

The only difference is adding the + into the character class. My main question is - why does the second expression work and the first expression doesn't? In the first one, I look for 01+ and the rest of it should go to [.0-9]. It seems to me that the second one wants to read + twice - is that not what its doing? I am pretty new to regular expressions so I feel like I might be missing something small.

On this site http://www.codeproject.com/Articles/9099/The-30-Minute-Regex-Tutorial it says that + is used for "Repeat one or more times". So is it trying to read 01+ more than once?

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Why the downvote? –  Sterling Jul 18 '12 at 17:47
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My guess would be that the downvoter is perplexed as to why you would learn that + is a special character, but still include it in your expression without escaping it. –  octern Jul 18 '12 at 17:48
    
Yeah I guess. Didn't realize I had to escape it though... –  Sterling Jul 18 '12 at 17:50
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5 Answers

up vote 6 down vote accepted

It's reading the 1 one or more times. That is, the regex 01+ matches 01 or 011 or 0111 etc.

But it doesn't match the +. If you want to match a literal +, write 01\+ or 01[+] for the regex.

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Correct. Escaping the + is enough. –  emaster70 Jul 18 '12 at 17:48
    
Ah, thank you so much! –  Sterling Jul 18 '12 at 17:49
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The + is a special character, meaning "one or more times." In this case, it means 01, 011, 0111, etc. instead of 01+. If you want to use it literally, you need to escape it, like this: \+

Note: It looks like you are using it with strings, so you would need to double-escape: \\+

It works inside a character class ([+]) because character classes take most characters literally, with exceptions including \ and ].

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+1 for actually explaining the problem, solution and character class. –  Bob2Chiv Jul 18 '12 at 17:53
    
Thanks for explaining why I can use it literally in []. –  Sterling Jul 18 '12 at 18:04
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'+' is a special character in regex, it means "1 or more times". So what you have written means:

  • The character '0'
  • The character '1' one or more times
  • Whitespace 0 or more times
  • etc.

If you want to match a literal plus you need to escape it:

01\+\\s*(?<1>[.0-9]*)
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The + is a quantifier, as explained in the tutorial you linked. So, your regex means "match a zero, then one or more ones, then zero or more whitespaces, then ...".

The plus needs to be escaped:

01\\+\\s*(?<1>[.0-9]*)

Your second regex worked, because the + there was part of a character class and does not need to be escaped there.

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01\+(?<cap>[\d.]*)

explain:

01                       '01'

\+                       '+'

[\d.]*                   any character of: digits (0-9), '.' 
                         (0 or more times, matching the most amount possible)
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