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Here’s a javascript requirement that I’m dealing with:
given such a string:

“  [   condition12  (BRAND) IN 'Beats by Dr. Dre & D\’Silva of type Band’   of type  'IDENTIFIER_STRING’ ]   ”

I want to tokenize and extract:

- condition12
- BRAND
- IN
- Beats by Dr. Dre & D\’Silva of type Band
- IDENTIFIER_STRING

Here’s an algorithm I was considering to perform:

  • remove the first & last square braces: .trim().slice(1, -1)
  • delete the last occurrence of ‘of type’
  • split the string using space (ignoring multiple occurrences): .split(/\s+/g))
  • removed the first & last single quote from the last array element (that’ll contain ‘IDENTIFIER_STRING’ or similar)
  • from the main string, create substring between firstIndexOf(“’”) and lastIndexOf(‘of type’) & trim it to get ’Beats by Dr. Dre & D\’Silva of type Band’

Now the question to all you experts, is there a cleaner way to approach this :)?

Thanks in advance!

~VS

0

You can get all you want with one regex:

str = "  [   condition12  (BRAND) IN 'Beats by Dr. Dre & D\'Silva of type Band'   of type  'IDENTIFIER_STRING' ]   ";
matches = str.match(/^\s*\[\s*(.*?)\s+\((.*?)\)\s+(.*?)\s+'(.*?)'\s+.*?'(.*?)'\s*\]\s*$/);

Result:

matches[1]: "condition12"
matches[2]: "BRAND"
matches[3]: "IN"
matches[4]: "Beats by Dr. Dre & D'Silva of type Band"
matches[5]: "IDENTIFIER_STRING"
  • Awesome, works like a charm! Great work! – user2793354 Nov 10 '17 at 23:26
0

Use one regex! The values you are interested in will be in matches[1] through matches[5].

You might need to tweak this regex depending on which characters are present in the various tokens. (eg, it assumes there is some whitespace then the condition then more whitespace, it will break if there is whitespace IN the condition). You can work out the regex here

var str = "[   condition12  (BRAND) IN 'Beats by Dr. Dre & D\'Silva of type Band'   of type  'IDENTIFIER_STRING' ]";
var re = /\[\s+(\S+)\s+\((.*)\)\s+(\S+)\s+'(.*)'\s+of type\s+'(.*)'\s+\]/;

var matches = re.exec(str);

console.log(matches);

  • Thanks so much! For some reason when I execute this, it does not print "IN". – user2793354 Nov 10 '17 at 23:25
  • Oh I missed that one. Try now. – James Nov 10 '17 at 23:33
  • That worked, thanks again! – user2793354 Nov 10 '17 at 23:42

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