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i am trying to write a regular expression for matching any words like which come in between "$" for example var myString = " there was a $dog$# and a $rat$ in a town"; i want to match dog and rat i have written the expresion for it

       var reg = /^$(.*)$/gmi 

but that does not because , the "$" being special character of end of line , how can i escape it , can i use "\" ?? can you pelase suggest the correct expression .

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5  
So, what happened when you tried `\`, which is the correct solution? –  Álvaro G. Vicario Nov 22 '12 at 9:33

5 Answers 5

up vote 1 down vote accepted

As you said you should use '\' to escape the special characters. Also '^' is the start of the string you want to match for. You should use the following:

/\$(.*)\$/g
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:s/end/start/ ...? –  Amadan Nov 22 '12 at 9:33
    
@matov , if i use /\$(.*)\$/gmi in the string "there is a '$game$' which talks about the game and a $dog$$" it will return the whole thing from game......dog –  Riddle Nov 22 '12 at 9:36
    
What are m and i for in this case? –  Martin Büttner Nov 22 '12 at 9:44
    
@m.buettner: m makes sense if you have "...$do\ng$..." (which doesn't make too much sense, but I don't know OP's data). i is useless. –  Amadan Nov 22 '12 at 9:46
    
You mean "s" instead of "m" ;). "m" makes ^ and $ match the start and end of lines. –  Martin Büttner Nov 22 '12 at 10:06

There is a problem with greediness, as you mentioned in a few comments. * will consume as much as possible, so if it is used like .* it will also consume further $ if it can find another one later one. There are two possibilities. The quickest and most common one is to simply make that quantifier ungreedy:

/\$(.*?)\$/g

Now it will consume as little as possible. The recommended way however is to make the repetition and the delimiter mutually exclusive and keep the repetition greedy:

/\$([^$]*)\$/g

This is generally more efficient, because no backtracking is needed. (Please don't hold me up on that, in any specific case the backtracking version might still be more efficient, but this is generally recommended practice)

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Yes, escaping is done with \ -s, if you want to catch individual $...$ marked words try this regexp:

/\$([^$]+)\$/gmi // inside character classes ( the []-s) you don't need to escape it, but if you do it does the same thing
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/\$(.*)\$/

You use \ for escaping, as you thought. Also, given your requirements, ^ (start of string) is detrimental.

In case you have multiple appearances of such strings, you have to be careful of greediness (the default), so you either disallow the terminator from the contents:

/\$([^$]*)\$/g

or you make the repetition operator non-greedy:

/\$(.*?)\$/g
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can you look at the comment i made to matov's post –  Riddle Nov 22 '12 at 9:39
    
Yup. Clarified; I didn't notice your modifiers. –  Amadan Nov 22 '12 at 9:43
    
Ah, now you beat me to the correct answer –  Martin Büttner Nov 22 '12 at 9:44
    
@m.buettner: lol, not a competition... (despite the page keeping the score :p ) –  Amadan Nov 22 '12 at 9:45
    
Sure, my comment wasn't meant to be taken too serious ;) –  Martin Büttner Nov 22 '12 at 10:07

can i use "\" ??

Yes.

Why didn't you try that yourself?

var reg = /^\$(.*)\$/gmi

will match:

  • Start of string
  • A $
  • Zero of more characters
  • A $
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