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've spent a few hours on this and I can't seem to figure this one out.

In the code below, I'm trying to understand exactly what and how the regular expressions in the url.match are working.

As the code is below, it doesn't work. However if I remove (?:&toggle=|&ie=utf-8|&FORM=|&aq=|&x=|&gwp) it seems to give me the output that I want.

However, I don't want to remove this without understanding what it is doing.

I found a pretty useful resource, but after a few hours I still can't precisely determine what these expressions are doing:

https://developer.mozilla.org/en-US/docs/JavaScript/Guide/Regular_Expressions#Using_Parenthesized_Substring_Matches

Could someone break this down for me and explain how exactly it is parsing the strings. The expressions themselves and the placement of the parentheses is not really clear to me and frankly very confusing.

Any help is appreciated.

(function($) {    

  $(document).ready(function() {         

      function parse_keywords(url){
          var matches = url.match(/.*(?:\?p=|\?q=|&q=|\?s=)([a-zA-Z0-9 +]*)(?:&toggle=|&ie=utf-8|&FORM=|&aq=|&x=|&gwp)/);
          return matches ? matches[1].split('+') : [];

      }
      myRefUrl = "http://www.google.com/url?sa=f&rct=j&url=https://www.mydomain.com/&q=my+keyword+from+google&ei=fUpnUaage8niAKeiICgCA&usg=AFQjCNFAlKg_w5pZzrhwopwgD12c_8z_23Q";

      myk1 = (parse_keywords(myRefUrl));

      kw="";

      for (i=0;i<myk1.length;i++) {
          if (i == (myk1.length - 1)) {
          kw = kw + myk1[i];
          }
          else {
          kw = kw + myk1[i] + '%20';
          }
      }

      console.log (kw);

      if (kw != null && kw != "" && kw != " " && kw != "%20") {

      orighref = $('a#applynlink').attr('href');
      $('a#applynlink').attr('href', orighref + '&scbi=' + kw);
      }                     

  });  

})(jQuery);
share|improve this question
    
Please format your code and remove unneeded blank lines. –  Lee Taylor Apr 12 '13 at 0:55
    
@LeeTaylor On it. –  Russell Apr 12 '13 at 0:56

2 Answers 2

up vote 5 down vote accepted

Let's break this regex down.

/

Begin regex.

.*

Match zero or more anything - basically, we're willing to match this regex at any point into the string.

(?:\?p=
|\?q=
|&q=
|\?s=)

In this, the ?: means 'do not capture anything inside of this group'. See http://www.regular-expressions.info/refadv.html

The \? means take ? literally, which is normally a character meaning 'match 0 or 1 copies of the previous token' but we want to match an actual ?.

Other than that, it's just looking for a multitude of different options to select (| means 'the regex is valid if I match either what's before me or after me.)

([a-zA-Z0-9 +]*)

Now we match zero or more of any of the following characters in any arrangement: a-ZA-Z0-9 + And since it is inside a () with no ?: we DO capture it.

(?:&toggle=
|&ie=utf-8
|&FORM=
|&aq=
|&x=
|&gwp)

We see another ?: so this is another non-capturing group. Other than that, it is just full of literal characters separated by |s, so it is not doing any fancy logic.

/

End regex.

In summary, this regex looks through the string for any instance of the first non capturing group, captures everything inside of it, then looks for any instance of the second non capturing group to 'cap' it off and returns everything that was between those two non capturing groups. (Think of it as a 'sandwich', we look for the header and footer and capture everything in between that we're interested in)

After the regex runs, we do this:

return matches ? matches[1].split('+') : [];

Which grabs the captured group and splits it on + into an array of strings.

share|improve this answer
1  
Very nice description. –  jahroy Apr 12 '13 at 1:14
    
Wow, this was exactly what I was looking for. Thank you so much for taking the time to break that down for me. Now I'll just have to figure out why the last set of rules is breaking the code. –  Russell Apr 12 '13 at 16:21

For situations like this, it's really helpful to visualize it with www.debuggex.com (which I built). It immediately shows you the structure of your regex and allows you to walk through step-by-step.

In this case, the reason it works when you remove the last part of your regex is because none of the strings &toggle=, &ie=utf-8, etc are in your sample url. To see this, drag the grey slider above the test string on debuggex and you'll see that it never makes it past the & in that last group.

share|improve this answer
1  
Thanks, I was looking for something like this –  Patashu Apr 12 '13 at 1:25
    
Very nice! Thank you for sharing. –  Russell Apr 12 '13 at 16:21

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.