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'm trying to write an XQuery function to tokenize a string on a delimiter whilst ignoring delimiters inside nested bracketed expressions e.g.

tokenizeOutsideBrackets("1,(2,3)" , ",")         => ( "1" , "(2,3)" ) 
tokenizeOutsideBrackets("1,(2,(3,4))" , ",")     => ( "1" , "(2,(3,4))" )
tokenizeOutsideBrackets("1,(2,(3,(4,5)))" , ",") => ( "1" , "(2,(3,(4,5)))" )
tokenizeOutsideBrackets("1,(2,(3,4),5),6" , ",") => ( "1" , "(2,(3,4),5)" , "6" )

If I had recursive regexes or an imperative language this would be fairly trivial but I'm struggling to find a simple, easy way to do this in XQuery.

Thanks!

share|improve this question
    
"recursive regexes" sound like an oxymoron... It doesn't matter whether the language follows imperative or declarative paradigm, by the way. –  user357812 Apr 5 '11 at 16:26
    
@Alejandro: yes, I'm aware it's kind of an oxymoron... :) PCRE is what I'm usually used to and that supports recursive patterns (whether technically regular or not) –  jong Apr 5 '11 at 16:33

3 Answers 3

up vote 0 down vote accepted

One way to do this is to split first, then join tokens with unbalanced parentheses to their right hand side neighbors.

The code below will get you the desired results. It uses fn:tokenize to split, then (tail-) recursively processes the result tokens, concatenating when the preceding token has non-matching counts of "(" and ")". There are some deficiencies of this approach, namely failure to match left and right brackets properly, and treating $delimiter both as a pattern and as a literal. More coding is necessary to properly handle, however you might get the idea.

declare function local:tokenizeOutsideBrackets($string, $delimiter)
{
  local:joinBrackets(tokenize($string, $delimiter), $delimiter, ())
};

declare function local:joinBrackets($tokens, $delimiter, $result)
{
  if (empty($tokens)) then
    $result
  else 
    let $last := $result[last()]
    let $new-result :=
      if (string-length(translate($last, "(", "")) 
        = string-length(translate($last, ")", ""))) then
       ($result, $tokens[1])
      else
       ($result[position() < last()], concat($last, $delimiter, $tokens[1]))
    return local:joinBrackets($tokens[position() > 1], $delimiter, $new-result)
};
share|improve this answer
    
Similar to my approach but much simpler and nicer. –  jong Apr 6 '11 at 8:40
    
+1 Good answer: tokenize concatenating "unbalanced" items. –  user357812 Apr 6 '11 at 17:03

This XQuery expression:

tokenize(replace('1,(2,(3,4),5),6','([0123456789]+|\(.*\))(,)?','$1;'),';')

Output:

1 (2,(3,4),5) 6

Update: If there is going to be strings like '1,(2,3),(4,5),6', then you will need a parser for this grammar:

exp ::= term ( ',' term ) *

term ::= num | '(' exp ')'

num ::= ( '0' | '1' | '2' | '3' | '4' | '5' | '6' | '7' | '8' | '9' ) +
share|improve this answer
    
Nifty trick, but this fails on '1,(2,3),(4,5),6' which gives 1 (2,3),(4,5) 6 and not the expected 1 (2,3) (4,5) 6 –  jong Apr 5 '11 at 16:18
    
@jong: If you are going to have differents string than those provided then you will need a parser. –  user357812 Apr 5 '11 at 16:24
    
@Alejandro: Thanks for your help trying. Was hoping I didn't have to go down the parser route but think my other solution does the job, will do some more testing. –  jong Apr 5 '11 at 16:34
    
@jong: There is no other way for this kind of grammar. By the way, functional parsers are the most easy to write following the parser combinators patterns: you just need to translate the grammar. Sadly, for Higher Order Functions in XQuery you have to wait until XQuery 3.0 Working Draft become a Recommandation. –  user357812 Apr 5 '11 at 16:55
1  
@jong, @Alejandro, @Pavel-Minaev: You could do this in XSLT 2.0 + FXSL 7 years ago. See my generalized LR1 parser implemented completely in XSLT 2.0 :) –  Dimitre Novatchev Apr 6 '11 at 3:02

Been playing about and the function below seems to work, although I can't help thinking there's an easier way.

This code uses the functx:index-of-string function to find the indexes of all the delimiters. It then tries each to find the first delimiter where everything to the left has an equal number of opening and closing brackets. After this is found, this is repeated with everything to the right of this delimiter.

declare function local:tokenizeOutsideBrackets(
  $arg as xs:string?,
  $delimiter as xs:string) as xs:string*
{
  if (contains($arg, $delimiter))
  then
    (:find positions of all the delimiters:)
    let $delimiterPositions := (
      functx:index-of-string($arg,$delimiter),
      string-length($arg)+1 (:Add in end of string too:)
    )

    (:strip out all the fragments that have matching
      brackets to the left of each delimiter:)
    let $fragments :=
      for $endPos in $delimiterPositions
      let $candidateString := substring($arg,1,$endPos - 1)
      return
        if (local:hasMatchedBrackets($candidateString))
        then $candidateString
        else ()
    let $firstFragment := $fragments[1]
    let $endPos := string-length($firstFragment)

    (:recursively return the first matching fragment,
      plus the fragments in the remaining string:)
    return
    (
      $firstFragment,
      local:tokenizeOutsideBrackets(
        substring(
          $arg,
          $endPos+string-length($delimiter)+1,
          string-length($arg) - $endPos -(string-length($delimiter))
        ),
        $delimiter
      )
    )
  else if ($arg='') then () else ($arg)
};

declare function local:hasMatchedBrackets($arg as xs:string) as xs:boolean 
{
  count(tokenize($arg,'\(')) = count(tokenize($arg,'\)'))
};
share|improve this answer

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.