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Possible Duplicate:
Split a String based on regex

I've never been a regular expression guru, so I need your help! I have a string like this:

String s = "a [b c] d [e f g]";

I want to split this string using spaces as delimiters -- but I don't want to split on spaces that appear within the [] brackets. So, from the example above, I would like this array:

{"a", "[b c]", "d", "[e f g]"}

Any advice on what regex could be used in conjunction with split in order to achieve this?


Here's another example:

"[a b] c [[d e] f g]"

becomes

{"[a b]", "c", "[[d e] f g]"}
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  • 3
    Lesson: Regular Expressions Oct 14, 2012 at 17:17
  • 1
    @artbristol very good comment.
    – Juvanis
    Oct 14, 2012 at 17:20
  • @artbristol Yes they can, I'd like no splitting to happen within any set of brackets. I edited to include another example.
    – arshajii
    Oct 14, 2012 at 17:20
  • 2
    @A.R.S, then you can't do it with regular expressions. Time to write a parser.
    – Carl Norum
    Oct 14, 2012 at 17:21
  • 2
    this is the third exact duplicate question..this and this
    – Anirudha
    Oct 14, 2012 at 17:32

5 Answers 5

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I think this should work, using negative lookahead - it matches no whitespace that comes before closing bracket without an opening bracket:

"a [b c] d [e f g]".split("\\s+(?![^\\[]*\\])");

For nested brackets you will need to write a parser, regexes can't afford an infinite level and get too complicated for more than one or two levels. My expression for example fails for

"[a b [c d] e] f g"
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  • 2
    It doesn't compile - I get "malformed regular expression" error
    – Nir Alfasi
    Oct 14, 2012 at 17:25
  • Hm, does java need [ to be escaped inside a character class? Thanks for the hint
    – Bergi
    Oct 14, 2012 at 17:28
  • @Jimmy: I just edited in the escaping, before it was "…[^[]…"
    – Bergi
    Oct 14, 2012 at 17:31
  • @Bergi yes- the corrected version works! +1
    – Nir Alfasi
    Oct 14, 2012 at 17:34
  • @Bergi Any way to have this work for both [] and {} brackets (non-nested)? e.g. a b {c d} [e f] would become a, b, {c d}, [e f].
    – arshajii
    Oct 16, 2012 at 20:06
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You can not do that with single regex, simply because it can not match open/close braces and handle nested braces.

Regexes are not turing-complete, so even if it might look as working, there will be the case where it fails to.

So I'd rather suggest to program your own few lines of code which will definitely handle all cases.

You may create very simple grammar for JavaCC or AntLR or use simple stack-based parser.

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  • you can do it in regex..nd it works fine..
    – Anirudha
    Oct 14, 2012 at 18:12
  • [[xx], [y]] z t [z [x] y] go ahead.
    – jdevelop
    Oct 14, 2012 at 18:15
  • did it..2 times here and above..
    – Anirudha
    Oct 14, 2012 at 18:17
  • works in c# but not in java...thxx to java's limited support of lookbehind
    – Anirudha
    Oct 14, 2012 at 18:18
  • Regexes with look-back/look forward and other perl-inspired stuff has nothing to do with regular expressions themselves. This question related to Java, I don't care much what works with C# or Perl.
    – jdevelop
    Oct 14, 2012 at 18:26
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As said in other answers you need a parser for that. Here a string that fail with previous regex solutions.

"[a b] c [a [d e] f g]"

EDIT:

public static List<String> split(String s){
    List<String> l = new LinkedList<String>();
    int depth=0;
    StringBuilder sb = new StringBuilder();
    for(int i=0; i<s.length(); i++){
        char c = s.charAt(i);
        if(c=='['){
            depth++;
        }else if(c==']'){
            depth--;
        }else if(c==' ' && depth==0){
            l.add(sb.toString());
            sb = new StringBuilder();
            continue;
        }
        sb.append(c);
    }
    l.add(sb.toString());

    return l;
}
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  • you can do it in regex..u dont need a parser
    – Anirudha
    Oct 14, 2012 at 18:11
  • 2
    How can you manage multiple nested [] with a regex ? Oct 14, 2012 at 19:13
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If I understood your question correctly then may be the answer is following rule4.

rule1 -> ((a-z).(\w))*.(a-z)

rule2 -> ([).rule1.(])

rule3 -> ([).(rule1.(\w))*.rule2.((\w).rule1)*.(])

rule4 -> rule1 | rule3
-1

FOR NON NESTED

\\s+(?![^\\[]*\\])

FOR NESTED([] inside [])

(?<!\\[[^\\]]*)\\s+(?![^\\[]*\\])
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  • The compiler complains that there is an invalid escape sequence in the second regex.
    – arshajii
    Oct 14, 2012 at 17:48
  • Same thing for the first regex.
    – arshajii
    Oct 14, 2012 at 17:50
  • @A.R.S. try removing the escaped character \
    – Anirudha
    Oct 14, 2012 at 17:51
  • @Anirudha I managed to get the first regex to work, still having trouble with the second one.
    – arshajii
    Oct 14, 2012 at 17:53
  • @Anirudha For the second regex: java.util.regex.PatternSyntaxException: Look-behind group does not have an obvious maximum length near index 11
    – arshajii
    Oct 14, 2012 at 17:55

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