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I am trying to use regular expressions to parse a method in the following format from a text:

mvAddSell[value, type1, reference(Moving, 60)]

so using the regular expressions, I am doing the following

tokensizedStrs = Regex.Split(target, "([A-Za-z ]+[\\[ ][A-Za-z0-9 ]+[ ,][A-Za-z0-9 ]+[ ,][A-Za-z0-9 ]+[\\( ][A-Za-z0-9 ]+[, ].+[\\) ][\\] ])");

It is working, but the problem is that it always gives me an empty array at the beginning if the string started with a method in the given format and the same happens if it comes at the end. Also if two methods appeared in the string, it catches only the first one! why is that ?

I think what is causing the parser not to catch two methods is the existance of ".+" in my patern, what I wanted to do is that I want to tell it that there will be a number of a date in that location, so I tell it that there will be a sequence of any chars, is that wrong ?


it woooorked with ,e =D ... I replaced ".+" by ".+?" which meant as few as possible of any number of chars ;)

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Can you give an example of two methods appeared in the string? –  Lieven Keersmaekers Jun 11 '12 at 7:01
    
I think var tokensizedStrs=Regex.Matches(target,pattern) will work. –  Md Kamruzzaman Pallob Jun 11 '12 at 7:03
    
@Lieven mvAddSell[value, type1, reference(Moving, 60)] + mvAddSell[value, type1, reference(Moving, 60)] –  Emo Jun 11 '12 at 7:06
    
@MD what do you mean ! , I want to split it into an array of strings –  Emo Jun 11 '12 at 7:06
    
Ok fine. My understanding was not good. Howeever you get empty string because the regex find matching from first of input string to last. –  Md Kamruzzaman Pallob Jun 11 '12 at 7:14

1 Answer 1

up vote 1 down vote accepted

Your goal is quite unclear to me. What do you want as result? If you split on that method pattern, you will get the part before your pattern and the part after your pattern in an array, but not the method itself.

Answer to your question

To answer your concrete question: your .+ is greedy, that means it will match anything till the last )] (in the same line, . does not match newline characters by default).
You can change this behaviour by adding a ? after the quantifier to make it lazy, then it matches only till the first )].

tokensizedStrs = Regex.Split(target, "([A-Za-z ]+[\\[ ][A-Za-z0-9 ]+[ ,][A-Za-z0-9 ]+[ ,][A-Za-z0-9 ]+[\\( ][A-Za-z0-9 ]+[, ].+?[\\) ][\\] ])");

Problems in your regex

There are several other problems in your regex.

  1. I think you misunderstood character classes, when you write e.g. [\\[ ]. this construct will match either a [ or a space. If you want to allow optional space after the [ (would be logical to me), do it this way: \\[\\s*

  2. Use a verbatim string (with a leading @) to define your regex to avoid excessive escaping.

    tokensizedStrs = Regex.Split(target, @"([A-Za-z ]+\[\s*[A-Za-z0-9 ]+\s*,\s*[A-Za-z0-9 ]+\s*,\s*[A-Za-z0-9 ]+\(\s*[A-Za-z0-9 ]+\s*,\s*.+?\)s*\]\s*)");
    
  3. You can simplify your regex, by avoiding repeating parts

    tokensizedStrs = Regex.Split(target, @"([A-Za-z ]+\[\s*[A-Za-z0-9 ]+(?:\s*,\s*[A-Za-z0-9 ]+){2}\(\s*[A-Za-z0-9 ]+\s*,\s*.+?\)s*\]\s*)");
    

    This is an non capturing group (?:\s*,\s*[A-Za-z0-9 ]+){2} repeated two times.

share|improve this answer
    
Thanks, you are the one =) –  Emo Jun 11 '12 at 8:07
    
what does non capturing group mean ? –  Emo Jun 11 '12 at 8:12
    
The match of that subpattern is not stored, you can not access that part with a backreference. –  stema Jun 11 '12 at 8:14
    
aha, what about the empty spaces that I get at the end and beginning ? how can I avoid them ? –  Emo Jun 11 '12 at 8:16
    
As I wrote at the start of my answer: it is quite unclear what you want to achieve. If your string only contains such a method and you split on your pattern (Assumption, I don't know your input string!), the pattern you used is not included in the resulting array, but there is an empty string before and after your pattern. –  stema Jun 11 '12 at 8:21

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