Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I never understood how to make properly regex to divide my Strings. I have this types of Strings example = "on[?a, ?b, ?c]"; Sometimes I have this, Strings example2 = "not clear[?c]";

For the first Example I would like to divide into this:

[on, a, b, c] 

or

String name = "on";
String [] vars = [a,b,c];

And for the second example I would like to divide into this type: [not clear, c] or

String name = "not clear";
String [] vars = [c];

Thanks alot in advance guys ;)

share|improve this question
    
Well I know that I could do this in various steps, first by looking char by char till the [ then I would have the name and on the rest the vars, and then Would the same for the vars, looking char by char.. But I guess that would be very bad performance :s Thanks for your reply by the way ;) –  DarkLink Feb 11 '13 at 16:49

3 Answers 3

up vote 3 down vote accepted

If you know the character set of your identifiers, you can simply do a split on all of the text that isn't in that set. For example, if your identifiers only consist of word characters ([a-zA-Z_0-9]) you can use:

String[] parts = "on[?a, ?b, ?c]".split("[\\W]+");
String name = parts[0];
String[] vars = Arrays.copyOfRange(parts, 1, parts.length);

If your identifiers only have A-Z (upper and lower) you could replace \\W above with ^A-Za-z.

I feel that this is more elegant than using a complex regular expression.

Edit: I realize that this will have issues with your second example "not clear". If you have no option of using something like an underscore instead of a space there, you could do one split on [? (or substring) to get the "name", and another split on the remainder, like so:

String s = "not clear[?a, ?b, ?c]";
String[] parts = s.split("\\[\\?"); //need the '?' so we don't get an extra empty array element in the next split
String name = parts[0];
String[] vars = parts[1].split("[\\W]+");
share|improve this answer
    
The second option worked very well, with all the cases! Thanks alot! I hope that one day I will understand the regex thing :P Thanks again ;) –  DarkLink Feb 11 '13 at 17:40

This comes close, but the problem is the third remembered group is actually repeated so it only captures the last match.

(.*?)\[(?:\s*(?:\?(.*?)(?:\s*,\s*\?(.*?))*)\s*)?]

For example, the first one you list on[?a, ?b, ?c] would give group 1 as on, 2 as a 3 as c. If you are using perl, you could the g flag to apply a regex to a line multiple times and use this:

my @tokens;
while ( my $line =~ /\s*(.*?)\s*[[,\]]/g ) {
    push( @tokens, $1 );
}

Note, i did not actually test the perl code, just off the top of my head. It should give you the idea though

share|improve this answer
    
Thanks for your effort, but got my question already answered :) –  DarkLink Feb 11 '13 at 17:42
    String[] parts = example.split("[^\\w ]");
    List<String> x = new ArrayList<String>();
    for (int i = 0; i < parts.length; i++) {
        if (!"".equals(parts[i]) && !" ".equals(parts[i])) {
            x.add(parts[i]);
        }   
    }

This will work as long as you don't have more than one space separating your non-space characters. There's probably a cleverer way of filtering out the null and " " strings.

share|improve this answer
1  
Thanks for your effort, but got my question already answered :) –  DarkLink Feb 11 '13 at 17:41
1  
I think my answer is more general. Oh, well... ;) –  mohit6up Feb 11 '13 at 17:45

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.