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I'm trying to use regExp to read URL parameters. I need to perform a Match on the following string :

SomeMoreText&action='{%22JsonParameter%22:[%221234%22]}'&SomeMoreText

The end result should be

                         '{%22JsonParameter%22:[%221234%22]}'

I'm gessing I need an expression to find everything between &action= and the following &. I tried different expressions with no success and, to be honest, I'm having a lot of difficulty understanding regular expression syntax. The problem here is the colon, quotes (%22) and brackets I think. If it was only text, I believe something like this would work :

/action=([\w\-]+)/

Can anyone help?

Thanks

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I'm no Regex Pro myself (hence why I'm leaving this as a comment) but could you not keep it simple and do .+=('.+').+ ?. EG: rubular.com/r/CIeIuizhMn –  Jack Franklin Dec 10 '12 at 14:59

5 Answers 5

up vote 3 down vote accepted

How 'bout

var m = /action=([^&]+)/.exec(str);
if (m) {
    // The content is in m[1]
}

Live Example | Source

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2  
This answer and the following one, By Bruno, are my favorite solutions. I wish I could mark them both as correct. However, this one answers the the question by strictly using regexp so I'll mark it as the correct answer. –  Ggilmann Dec 10 '12 at 15:36
1  
Just upvote them both, but it's understood how you have to select one of them;-) –  PearsonArtPhoto Dec 10 '12 at 15:44

Don't use a regex, just try this:

var n=str.split("&"); 
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Yep, that's my fallback solution. However, I'm using Dojo (which I'll add as a tag) and it's kind of complicated to implement in the dojoconfig file. –  Ggilmann Dec 10 '12 at 15:09
    
This does not actually output the end result specified in the question. –  Bruno Dec 10 '12 at 15:10
1  
like this, split has to be faster than regExp, but need to check. how about bit perfomance spl = str.split('&')[1].split('=')[1]; –  dmi3y Dec 10 '12 at 15:11
    
I know it doesn'T produce then final result but you just have to keep using string operations to find the value... pretty straightforward after the ampersand split –  Ggilmann Dec 10 '12 at 15:17
1  
@Ggilmann yea regex is winner, good boy, my new favorite) jsperf.com/split-vs-regexpr-who-is-faster –  dmi3y Dec 10 '12 at 15:21

You can also use

result = str.split("action=")[1];
result = result.substring( 0, result.indexOf("&") );

Demo here

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You can use positive and negative look-ahead. They are (?<= expression ) and (?= expression ) respectfully.

The following will do non-greedy look for any character, .*?, that is preceded by 'action=', (?<=action=), and is followed by '&', (?=&).

The full regex is: (?<=action=).*?(?=&)

You can test this here.

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As @PearsonArtPhoto previously said you can simply use split :

var results=str.split("&"); 

And then iterate though results array like below:

for(i=0; i< results.length ; i++){
  if( results[i].split('=')[0] == 'action'){  // this condition to test that the key is 'action'
  return results[i].split('=')[1];
  }
}

I hope this helps.

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