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I'm sure this is a simple question for someone at ease with regular expressions:

I need to match everything up until the character #

I don't want the string following the # character, just the stuff before it, and the character itself should not be matched. This is the most important part, and what I'm mainly asking. As a second question, I would also like to know how to match the rest, after the # character. But not in the same expression, because I will need that in another context.

Here's an example string:

topics/install.xml#id_install

I want only topics/install.xml. And for the second question (separate expression) I want id_install

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please add example strings... –  Fredrik Pihl Aug 14 '11 at 21:14
    
Ok, I'll add in in an edit! –  Anders Svensson Aug 14 '11 at 21:15
    
What have you tried so far? –  sln Aug 14 '11 at 23:29

6 Answers 6

up vote 1 down vote accepted

First expression:

^([^#]*)

Second expression:

#(.*)$
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Ok, this worked if I added an asterisk in the first expression, like so: ^([^#]*) –  Anders Svensson Aug 14 '11 at 21:25
    
BTW: What does this sign do, at the beginning: ^ ? Thank you! –  Anders Svensson Aug 14 '11 at 21:26
    
BTW 2: The second did not work, it included the # in the match... –  Anders Svensson Aug 14 '11 at 21:28
    
@Anders: Updated the expressions. The caret ^ matches from the beginning of the string the $ matches from the ending of the string. –  Shef Aug 14 '11 at 21:32
    
Ok, thanks, but the second expression still includes the # character in the match when I try it. Still, the first expression is the only one that I got to work here, so I'll take this as the answer. If you could check why the second includes the # character, I'd appreciate it! –  Anders Svensson Aug 14 '11 at 22:12
[a-zA-Z0-9]*[\#]

If your string contains any other special characters you need to add them into the first square bracket escaped.

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I don't use C#, but i will assume that it uses pcre... if so,

"([^#]*)#.*"

with a call to 'match'. A call to 'search' does not need the trailing ".*"

The parens define the 'keep group'; the [^#] means any character that is not a '#'

You probably tried something like

"(.*)#.*"

and found that it fails when multiple '#' signs are present (keeping the leading '#'s)? That is because ".*" is greedy, and will match as much as it can.

Your matcher should have a method that looks something like 'group(...)'. Most matchers return the entire matched sequence as group(0), the first paren-matched group as group(1), and so forth.

PCRE is so important i strongly encourage you to search for it on google, learn it, and always have it in your programming toolkit.

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Use look ahead and look behind:

  • To get all characters up to, but not including the pound (#): .*?(?=\#)
  • To get all characters following, but not including the pound (#): (?<=\#).*

If you don't mind using groups, you can do it all in one shot:

  • (.*?)\#(.*) Your answers will be in group(1) and group(2). Notice the non-greedy construct, *?, which will attempt to match as little as possible instead of as much as possible.
  • If you want to allow for missing # section, use ([^\#]*)(?:\#(.*))?. It uses a non-collecting group to test the second half, and if it finds it, returns everything after the pound.

Honestly though, for you situation, it is probably easier to use the Split method provided in String.

More on lookahead and lookbehind

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.*(?=#) will match up until the last #, not the first. Also, it might be better to escape the pound sign's as some engines consider it a comment (# ... eol), if the expanded flag is set. –  sln Aug 14 '11 at 23:55
    
You are right. Updated answer to use non-greedy and escaped the # –  Michael Hays Aug 15 '11 at 0:30

first: /[^\#]*(?=\#)/ edit: is faster than /.*?(?=\#)/

second: /(?<=\#).*/

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For something like this in C# I would usually skip the regular expressions stuff altogether and do something like:

string[] split = exampleString.Split('#');
string firstString = split[0];
string secondString = split[1];
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