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I have a url string from which I want to capture all the words between the / delimiter:

So given this url:

"/way/items/add_items/sell_items":

I want to capture:

way
items
sell_items
add_items

If I do it like this:

'/way/items/sell_items/add_items'.match(/(\w+)/g)
=> [ 'way', 'items', 'sell_items', 'add_items' ]

It will give me an array back but with no capturing groups, why I do this instead:

new RegExp(/(\w+)/g).exec("/way/items/sell_items/add_items")
=> [ 'way', 'way', index: 1, input: '/way/items/sell_items/add_items' ]

But this only captures way .. I want it to capture all four words.

How do I do that?

Thanks

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1  
/.../ is already a RegExp object. You don't need to call the constructor. –  SLaks Mar 31 '11 at 3:41
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2 Answers

up vote 9 down vote accepted

You should write

var parts = url.split("/");

The global flag is used to the replace method.
Also, it makes the exec method start from the last result (using the RegExp's lastIndex property)

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1  
Yes, but be aware that the / at the start of the URL results in one empty array element. –  ridgerunner Mar 31 '11 at 6:46
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If you need by some reasons an exactly Regex, so use this, else use split() function.

Code:

var re = new RegExp(/\w+?(?=\/|$)/gi);  // added |$
alert(re);
var text = '/way/items/add_items/sell_items';
var aRes = text.match(re);

Result: [way, items, add_items, sell_items];

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This is PHP, while the question is concerned with JavaScript. –  jensgram Mar 31 '11 at 10:14
    
@jensgram: Thank you!. I changed my post. Javascript supports lookahead operations, but does not support lookbehind. –  Dmitrij Golubev Mar 31 '11 at 10:47
    
What about sell_items? –  jensgram Mar 31 '11 at 10:54
    
@jensgram: Fixed. –  Dmitrij Golubev Mar 31 '11 at 11:06
    
But match() doesn't give me captured groups ... just an array with the matches. –  ajsie Apr 1 '11 at 10:27
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