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String to parse (without spaces):

 "instrumentalist  (  bass  (upright  , fretless , 5-string ) ,  guitar  ( electric , acoustic ) ,  trumpet  ),  teacher  ,  songwriter,    producer"

I need to get this structure in Ruby

["instrumentalist",[["bass",["upright","fretless","5-string"]],["guitar",["electric","acoustic"]],["trumpet"]],["teacher"],["songwriter"],["producer"]]

Because of nested (,) and , String#partition couldn't help me. I don't really know is there a fancy RegEx that could extract such type of strings. Or do I have to go with a lexer?

Edit: Sorry gyus, actually I failed this question - sleepless night. Next time I will be careful and more specific. But beside the critics I got a couple of ideas, thanks.

When I compared both strings face to face I found that I simply should store my string in database (that's all about) in native Ruby format and then simply get it in var with eval.

share|improve this question
    
Your question is very vague. You need to be a lot more specific about what you're trying to accomplish. What do you mean by "extract" and "such type of strings"? Are you trying to do a replacement? If so, what do you want to replace with what? Are you trying to match particular parts of the string? If so, what are you trying to match. Be as clear as possible about what the criteria are and what you want to accomplish. –  Adi Inbar Jul 27 '13 at 5:02
1  
Where did "5-string" come from? Also, this seems like you need an actual parser. –  squiguy Jul 27 '13 at 5:18
    
Looks like you could do this with string scanner –  Frederick Cheung Jul 27 '13 at 5:21
    
With or without a lexer, it is impossible. You cannot get the strings "5-string" or "stud" from nowhere. –  sawa Jul 27 '13 at 5:35

1 Answer 1

up vote 2 down vote accepted

A regex on its own isn't the right sort of thing for this type of problem, even though the basic process is simple: walk through your string looking for commas or brackets. When you find a comma add the previous read characters to the current nesting. When you find an open bracket then your nesting level goes up by 1, when you find a close bracket decrease it.

StringScanner is designed for this sort of stuff as it allows us to walk through the string while maintaining, some state, in this case a stack that mirrors your opening and closing brackets. Something like this does the job for me

require 'strscan'

def parse input
  scanner = StringScanner.new input
  stack = [[]]
  while string = scanner.scan(/[^(),]+/)
    case scanner.scan /[(),]+/
    when '('
      new_nesting = [string, []]
      stack.last << new_nesting
      stack << new_nesting[1]
    when ')'
      scanner.scan(/,/)
      stack.last << string
      stack.pop
    else
      stack.last << string
    end
  end
  stack.last
end
share|improve this answer
    
This is not an answer the question: [Do] I have to go with [a] lexer? –  sawa Jul 27 '13 at 8:46
    
Gives the answer : ["upright", "fretless"] for string bass(upright,fretless) –  bsd Jul 27 '13 at 10:47
    
Ah yes, not handling that case properly. –  Frederick Cheung Jul 27 '13 at 10:57

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