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If there is one thing I just cant get my head around, it's regex.

So after a lot of searching I finally found this one that suits my needs:

function get_domain_name()
    { 
    aaaa="http://www.somesite.se/blah/sdgsdgsdgs";
    //aaaa="http://somesite.se/blah/sese";
        domain_name_parts = aaaa.match(/:\/\/(.[^/]+)/)[1].split('.');
        if(domain_name_parts.length >= 3){
            domain_name_parts[0] = '';
        }
        var domain = domain_name_parts.join('.');
        if(domain.indexOf('.') == 0)
            alert("1"+ domain.substr(1));
        else
            alert("2"+ domain);
    }

It basically gives me back the domain name, is there anyway I can also get all the stuff after the domain name? in this case it would be /blah/sdgsdgsdgs from the aaaa variable.

share|improve this question
    
A good resource to learn regex: regular-expressions.info –  Felix Kling May 29 '11 at 14:23
    
So you want the path, not the domain? –  Jesse Kochis May 29 '11 at 14:29

4 Answers 4

up vote 3 down vote accepted

Please note that this solution is not the best. I made this just to match the requirements of the OP. I personally would suggest looking into the other answers.

THe following regexp will give you back the domain and the rest. :\/\/(.[^\/]+)(.*):

  1. www.google.com
  2. /goosomething

I suggest you studying the RegExp documentation here: http://www.regular-expressions.info/reference.html

Using your function:

function get_domain_name()
    { 
    aaaa="http://www.somesite.se/blah/sdgsdgsdgs";
    //aaaa="http://somesite.se/blah/sese";
        var matches = aaaa.match(/:\/\/(?:www\.)?(.[^/]+)(.*)/);
        alert(matches[1]);
        alert(matches[2]);
    }
share|improve this answer
    
can alert(matches[1]); return it without the "www."? alert(matches[2]); is perfect! And thanks for the link. –  Ryan May 29 '11 at 14:45
    
Updated to fit your needs. –  MarioRicalde May 29 '11 at 14:53
    
Just what I asked for, special thank you! (Thank you everyone else who replied as well!) –  Ryan May 29 '11 at 15:06
    
@kuroir can't you re-set the "accepted" solution to the one with most votes? I'm pretty sure you can do that... –  Robin Winslow Oct 25 '12 at 14:41

Instead of relying on a potentially unreliable* regex, you should instead use the built-in URL parser that the JavaScript DOM API provides:

var url = document.createElement('a');
url.href = "http://www.example.com/some/path?name=value#anchor";

That's all you need to do to parse the URL. Everything else is just accessing the parsed values:

url.protocol; //(http:)
url.hostname ; //(www.example.com)
url.pathname ; //(/some/path)
url.search ; // (?name=value)
url.hash; //(#anchor)

In this case, if you're looking for /blah/sdgsdgsdgs, you'd access it with url.pathname

Basically, you're just creating a link (technically, anchor element) in JavaScript, and then you can make calls to the parsed pieces directly. (Since you're not adding it to the DOM, it doesn't add any invisible links anywhere.) It's accessed in the same way that values on the location object are.

(Inspired by this wonderful answer.)

EDIT: An important note: it appears that Internet Explorer has a bug where it omits the leading slash on the pathname attribute on objects like this. You could normalize it by doing something like:

 url.pathname = url.pathname.replace(/(^\/?)/,"/");

Note: *: I say "potentially unreliable", since it can be tempting to try to build or find an all-encompassing URL parser, but there are many, many conditions, edge cases and forgiving parsing techniques that might not be considered or properly supported; browsers are probably best at implementing (since parsing URLs is critical to their proper operation) this logic, so we should keep it simple and leave it to them.

share|improve this answer
5  
+1 for not using regex and mentioning the inspiration source. –  Jürgen Thelen May 29 '11 at 14:54
3  
Wishing I could up-vote more than once. :-) –  Denis May 29 '11 at 15:03
    
One worthwhile footnote: The only time I've found this to not be a good method is if you're parsing a large number of links; DOM element creation is more expensive than just regex. At a small number, the difference is indistinguishable. At 100+, it can have noticeable effects. –  Yahel Feb 23 '12 at 13:13
    
Good call on normalizing the pathname! Are you sure there's no side effects from re-assigning the normalized pathname? Also, might I recommend removing the () from the regex? –  Scott Rippey Sep 24 '12 at 17:33
1  
giving this job to the browser is like: I hope the browser does it correctly... such as you mentioned, the IE bug might be an issue –  動靜能量 Jul 2 '13 at 22:38

The RFC (see appendix B) provides a regular expression to parse the URI parts:

^(([^:/?#]+):)?(//([^/?#]*))?([^?#]*)(\?([^#]*))?(#(.*))?
 12            3  4          5       6  7        8 9

where

scheme    = $2
authority = $4
path      = $5
query     = $7
fragment  = $9

Example:

function parse_url(url) {
    var pattern = RegExp("^(([^:/?#]+):)?(//([^/?#]*))?([^?#]*)(\\?([^#]*))?(#(.*))?");
    var matches =  url.match(pattern);
    return {
        scheme: matches[2],
        authority: matches[4],
        path: matches[5],
        query: matches[7],
        fragment: matches[9]
    };
}
console.log(parse_url("http://www.somesite.se/blah/sdgsdgsdgs"));

gives

Object
    authority: "www.somesite.se"
    fragment: undefined
    path: "/blah/sdgsdgsdgs"
    query: undefined
    scheme: "http"

DEMO

share|improve this answer
4  
You can enhance the regular expression by using noncapturing groups. –  Gumbo May 29 '11 at 14:40
    
I think I have to learn regex properly before I can understand your post mate, although I am sure it is extremely helpful. –  Ryan May 29 '11 at 14:47
    
With non-capturing groups: "^(?:([^:/?#]+):)?(?://([^/?#]*))?([^?#]*)(\\?(?:[^#]*))?(#(?:.*))?". Returns only scheme, host, path, query and fragment. Note: :// is not part of the scheme because the scheme can actually be omitted. –  mark Feb 22 '13 at 17:53

You just need to modify your regex a bit. For example:

var aaaa="http://www.somesite.se/blah/sdgsdgsdgs";
var m = aaaa.match(/^[^:]*:\/\/([^\/]+)(\/.*)$/);

m will then contain the following parts:

["http://www.somesite.se/blah/sdgsdgsdgs", "www.somesite.se", "/blah/sdgsdgsdgs"]

Here is the same example, but modified so that it will split out the "www." part. I think the regular expression should be written so that the match will work whether or not you you have the "www." part. So check this out:

var aaaa="http://www.somesite.se/blah/sdgsdgsdgs";
var m = aaaa.match(/^[^:]*:\/\/(www\.)?([^\/]+)(\/.*)$/);

m will then contain the following parts:

["http://www.somesite.se/blah/sdgsdgsdgs", "www.", "somesite.se", "/blah/sdgsdgsdgs"]

Now check out the same regular expression but with a url that does not start with "www.":

var bbbb="http://somesite.se/blah/sdgsdgsdgs";
var m = .match(/^[^:]*:\/\/(www\.)?([^\/]+)(\/.*)$/);

Now your match looks like this:

["http://somesite.se/blah/sdgsdgsdgs", undefined, "somesite.se", "/blah/sdgsdgsdgs"]

So as you can see it will do the right thing in both cases.

share|improve this answer
    
Hey! Thanks for replying! No, I need the second part to be without the "www." exactly like in the original. And the second part like you wrote above. Thanks! –  Ryan May 29 '11 at 14:42
    
EDIT; I meant: No, I need the second part to be without the "www." exactly like in the original. And the third part like you wrote above is perfect. Thanks! –  Ryan May 29 '11 at 14:49

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