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I'm trying to pull out all strings which have an even number of B's and an odd number of C's. I have the regexes to match odd A's and even B's but I cannot get the two to work together. The strings are delimited by whitespace (tabs, newlines, spaces).

e.g.

XABBAC     ABCDEBCC ABSDERERES ABBAAJSER     HGABAA

I have for odd A's

\b[^A]*A([^A]*A[^A]*A)*[^A]*\b

And for even B's

\b[^B]*(B[^B]*B[^B]*)*[^B]*\b

I know I need to use +ve lookahead and have tried:

\b(?=[^A]*A([^A]*A[^A]*A)*[^A]*\b)[^B]*(B[^B]*B[^B]*)*[^B]*\b

but it doesn't work - does anybody know why?

share|improve this question
    
Seems to work in ruby. Can you give an example where it's not working for you, and also give your Java code? –  marcog Jan 20 '11 at 22:27
    
@marcog LOL. In ruby this would be a simple one-liner. data.split.select{|x| x.count("B").even? && x.count("C").odd?} The result: ["XABBAC", "ABCDEBCC"] –  Mark Thomas Jan 20 '11 at 22:56
    
"problem"? Seriously? That's what you tag this? As opposed to all the other questions that don't involve some kind of problem?... retagging ... –  Joachim Sauer Jan 21 '11 at 10:57

4 Answers 4

up vote 1 down vote accepted

The problem is that your regexes (regexen?) can match zero characters - \b\b will match on a single word boundary, and so will \b{someregexthatcanmatchzerocharacters}\b.

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I'm not sure I follow....I thought \b detected word boundaries? –  dr85 Jan 20 '11 at 22:45
    
@dr85: Yes, it does. But, it doesn't consume any characters - \b\b will match a single word boundary; the first \b matches a boundary, then the engine tries to match the second \b, and it's still at the word boundary, so it matches. –  Anon. Jan 20 '11 at 22:51

As Anon already mentioned: your pattern matches empty strings, causing m.find() to never advance in the target string. So, you need to let your even B's actually match Strings containing 2, 4, 6, ... number of B's. If you want, you can alternate between an even number of B's and this: [^B\\s]+ (which matches Strings containing 0 B's). As long as you actually match one or more character with it, then you should be okay.

Also, you don't want to look ahead and let the negated classes match spaces: that way you get too much matches.

Try something like this:

String text = "XABBAC     ABCDEBCC ABSDERERES ABBAAJSER     HGABAA";

String oddAs = "\\b[^A\\s]*A([^A\\s]*A[^A\\s]*A)*[^A\\s]*\\b";
String evenBs = "\\b([^B\\s]*(B[^B\\s]*B[^B\\s]*)+|[^B\\s]+)\\b";

Pattern p = Pattern.compile(String.format("(?=%s)(?=%s)\\S+", oddAs, evenBs));
Matcher m = p.matcher(text);

while (m.find()) {
    System.out.println(m.group());
}

which produces:

ABCDEBCC
ABBAAJSER
share|improve this answer
    
hi could you explain to me what you are passing in the patter.compile? thanks for the replies. Particularly what is %s? –  dr85 Jan 20 '11 at 23:19
    
@dr85, String.format returns a String (the 2 %s get replaced by oddAs and evenBs). It is the same as doing: "(?=" + oddAs + ")(?=" + evenBs + ")\\S+" and feeding that to the static Pattern.compile(...) method. –  Bart Kiers Jan 20 '11 at 23:22
    
@dr85, instead of wondering what the code snippet I posted does and doesn't do, why not try it? It does not match ABABABABBA (I just tested). –  Bart Kiers Jan 20 '11 at 23:46
    
Can I just ask why you use two lookaheads? –  dr85 Jan 21 '11 at 0:14
    
Is it not possible with just one? –  dr85 Jan 21 '11 at 0:37

With commons.lang.StringUtils it's even more concise:

String data = "XABBAC     ABCDEBCC ABSDERERES ABBAAJSER    HGABAA";
String[] items = data.split("\\s+");

for(String item: items ) {
    if (countMatches(item, "B") % 2 == 0
     && countMatches(item, "C") % 2 != 0) {
        System.out.println( item );
    }
}
share|improve this answer

regex is overrated

    String str = "XABBAC     ABCDEBCC ABSDERERES ABBAAJSER     HGABAA";
    String[] s = str.split("\\s+");
    for (int j=0 ;j< s.length;j++) {
        int countC=0  ;
        int countB=0;
        for(int i=0;i<s[j].length();i++){
            char c = s[j].charAt(i) ;
            if (c == 'C') countC++;
            if (c == 'B') countB++;
        }
        if ( (countC % 2) != 0 )
            System.out.println( s[j] + " has odd C");
        if ( (countB % 2) == 0 )
            System.out.println( s[j] + " has even B");
    }
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