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Given the URL (single line):

How can I extract the following parts using regular expressions:

  1. The Subdomain (test)
  2. The Domain (
  3. The path without the file (/dir/subdir/)
  4. The file (file.html)
  5. The path with the file (/dir/subdir/file.html)
  6. The URL without the path (
  7. (add any other that you think would be useful)

The regex should work correctly even if I enter the following URL:

Thank you.

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Please explain to us why this needs to be done with a regex. If it's homework, then say that because that's your constraint. Otherwise, there are better language-specific solutions than using a regex. – Andy Lester Sep 16 '10 at 22:12
The links to the first and last samples are broken. – the Tin Man Jan 17 '11 at 20:47
Here you can find how to extract scheme, domain, TLD, port and query path:… – Paolo Rovelli Aug 11 at 21:45

22 Answers 22

up vote 84 down vote accepted

A single regex to parse and breakup a full URL including query parameters and anchors e.g.


RexEx positions:

url: RegExp['$&'],







you could then further parse the host ('.' delimited) quite easily.

What I would do is use something like this:

proto $1
host $2
port $3
the-rest $4

the further parse 'the rest' to be as specific as possible. Doing it in one regex is, well, a bit crazy.

share|improve this answer
The link does not work as of Oct 20 '10 – W3Max Oct 20 '10 at 14:26
The problem is this part: (.*)? Since the Kleene star already accepts 0 or more, the ? part (0 or 1) is confusing it. I fixed it by changing (.*)? to (.+)?. You could also just remove the ? – rossipedia Oct 25 '10 at 22:23
Good catch Bryan. I'm not going to edit the response, since I quoted it from the (now gone) link, but upvoted your comment so that the clarification is more visible. – hometoast Oct 28 '10 at 11:49
Hi Dve, I've improved it a little more to extract from urls like Here goes: ^((http[s]?|ftp):\/\/)?\/?([^\/\.]+\.)*?([^\/\.]+\.[^:\/\s\.]{2,3}(\.[^:\/\s\.]‌​{2,3})?(:\d+)?)($|\/)([^#?\s]+)?(.*?)?(#[\w\-]+)?$ – mnacos Feb 28 '12 at 14:29
and proof that no regexp is perfect, here's one immediate correction: ^((http[s]?|ftp):\/\/)?\/?([^\/\.]+\.)*?([^\/\.]+\.[^:\/\s\.]{2,3}(\.[^:\/\s\.]‌​{2,3})?)(:\d+)?($|\/)([^#?\s]+)?(.*?)?(#[\w\-]+)?$ – mnacos Feb 28 '12 at 14:41

I realize I'm late to the party, but there is a simple way to let the browser parse a url for you without a regex:

var a = document.createElement('a');
a.href = '';

['href','protocol','host','hostname','port','pathname','search','hash'].forEach(function(k) {
    console.log(k+':', a[k]);

protocol: http:
port: 123
pathname: /foo/bar.html
search: ?fox=trot
hash: #foo
share|improve this answer
+1 Brilliant sollution – Danilo Valente Jul 2 '13 at 19:15
+1 superb trick! – Kushagra Gour Aug 11 '13 at 10:30
Given that the original question was tagged "language-agnostic", what language is this? – MarkHu Feb 28 '14 at 22:34
note that this solution requires an existence of protocol prefix, for example http://, for correct displaying of protocol, host and hostname properties. Otherwise the the beginning of url until first slash goes to protocol property. – Oleksii Aza Jun 10 '14 at 15:23
I believe this, though simple, but much slower than RegEx parsing. – demisx Feb 10 at 3:38

I found the highest voted answer (hometoast's answer) doesn't work perfectly for me. Two problems:

  1. it can't handle port number
  2. The hash part is broken

The following is a modified version:


Position of parts are as follows:

int SCHEMA = 2, DOMAIN = 3, PORT = 5, PATH = 6, FILE = 8, QUERYSTRING = 9, HASH = 12

Edit posted by anon user:

function getFileName(path) {
    return path.match(/^((http[s]?|ftp):\/)?\/?([^:\/\s]+)(:([^\/]*))?((\/[\w/-]+)*\/)([\w\-\.]+[^#?\s]+)(\?([^#]*))?(#(.*))?$/i)[8];
share|improve this answer
this doesnt work for me. I hate regex ... – CyberJunkie Jun 7 '11 at 3:48

I'm a few years late to the party, but I'm surprised no one has mentioned the Uniform Resource Identifier specification has a section on parsing URIs with a regular expression. The regular expression, written by Berners-Lee, et al., is:


The numbers in the second line above are only to assist readability; they indicate the reference points for each subexpression (i.e., each paired parenthesis). We refer to the value matched for subexpression as $. For example, matching the above expression to

results in the following subexpression matches:

$1 = http:
$2 = http
$3 = //
$4 =
$5 = /pub/ietf/uri/
$6 = <undefined>
$7 = <undefined>
$8 = #Related
$9 = Related

For what it's worth, I found that I had to escape the forward slashes in JavaScript:


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I needed a regular Expression to match all urls and made this one:


It matches all urls, any protocol, even urls like

The result (in JavaScript) looks like this:

["ftp", "user", "pass", "www.cs", "server", "com", "8080", "/dir1/dir2/", "file.php", "param1=value1", "hashtag"]

An url like


looks like this:

["mailto", "admin", undefined, "www.cs", "server", "com", undefined, undefined, undefined, undefined, undefined] 
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This is not a direct answer but most web libraries have a function that accomplishes this task. The function is often called something similar to CrackUrl. If such a function exists, use it, it is almost guaranteed to be more reliable and more efficient than any hand-crafted code.

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subdomain and domain are difficult because the subdomain can have several parts, as can the top level domain,

 the path without the file : http://[^/]+/((?:[^/]+/)*(?:[^/]+$)?)  
 the file : http://[^/]+/(?:[^/]+/)*((?:[^/.]+\.)+[^/.]+)$  
 the path with the file : http://[^/]+/(.*)  
 the URL without the path : (http://[^/]+/)

(Markdown isn't very friendly to regexes)

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Very useful - I added an additional (http(s?)://[^/]+/) to also grab https – Mojowen Aug 8 '13 at 0:31

This improved version should work as reliably as a parser.

   // Applies to URI, not just URL or URN:
   // (?:([^:/?#]+):)?(?://([^/?#]*))?([^?#]*)(?:\?([^#]*))?(?:#(.*))?
   // $@ matches the entire uri
   // $1 matches scheme (ftp, http, mailto, mshelp, ymsgr, etc)
   // $2 matches authority (host, user:pwd@host, etc)
   // $3 matches path
   // $4 matches query (http GET REST api, etc)
   // $5 matches fragment (html anchor, etc)
   // Match specific schemes, non-optional authority, disallow white-space so can delimit in text, and allow 'www.' w/o scheme
   // Note the schemes must match ^[^\s|:/?#]+(?:\|[^\s|:/?#]+)*$
   // (?:()(www\.[^\s/?#]+\.[^\s/?#]+)|(schemes)://([^\s/?#]*))([^\s?#]*)(?:\?([^\s#]*))?(#(\S*))?
   // Validate the authority with an orthogonal RegExp, so the RegExp above won’t fail to match any valid urls.
   function uriRegExp( flags, schemes/* = null*/, noSubMatches/* = false*/ )
      if( !schemes )
         schemes = '[^\\s:\/?#]+'
      else if( !RegExp( /^[^\s|:\/?#]+(?:\|[^\s|:\/?#]+)*$/ ).test( schemes ) )
         throw TypeError( 'expected URI schemes' )
      return noSubMatches ? new RegExp( '(?:www\\.[^\\s/?#]+\\.[^\\s/?#]+|' + schemes + '://[^\\s/?#]*)[^\\s?#]*(?:\\?[^\\s#]*)?(?:#\\S*)?', flags ) :
         new RegExp( '(?:()(www\\.[^\\s/?#]+\\.[^\\s/?#]+)|(' + schemes + ')://([^\\s/?#]*))([^\\s?#]*)(?:\\?([^\\s#]*))?(?:#(\\S*))?', flags )

   function uriSchemesRegExp()
      return 'about|callto|ftp|gtalk|http|https|irc|ircs|javascript|mailto|mshelp|sftp|ssh|steam|tel|view-source|ymsgr'
share|improve this answer
The regexp here is super solid! – Christiaan Westerbeek Oct 8 '14 at 11:01

Try the following:


It supports HTTP / FTP, subdomains, folders, files etc.

I found it from a quick google search:

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Propose a much more readable solution (in Python, but applies to any regex):

def url_path_to_dict(path):
    pattern = (r'^'
    regex = re.compile(pattern)
    m = regex.match(path)
    d = m.groupdict() if m is not None else None

    return d

def main():
    print url_path_to_dict('')


'host': '', 
'user': None, 
'path': '/example/example/example.html', 
'query': None, 
'password': None, 
'port': None, 
'schema': 'http'
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From my answer on a similar question. Works better than some of the others mentioned because they had some bugs (such as not supporting username/password, not supporting single-character filenames, fragment identifiers being broken).

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You can get all the http/https, host, port, path as well as query by using Uri object in .NET. just the difficult task is to break the host into sub domain, domain name and TLD.

There is no standard to do so and can't be simply use string parsing or RegEx to produce the correct result. At first, I am using RegEx function but not all URL can be parse the subdomain correctly. The practice way is to use a list of TLDs. After a TLD for a URL is defined the left part is domain and the remaining is sub domain.

However the list need to maintain it since new TLDs is possible. The current moment I know is maintain the latest list and you can use domainname-parser tools from google code to parse the public suffix list and get the sub domain, domain and TLD easily by using DomainName object: domainName.SubDomain, domainName.Domain and domainName.TLD.

This answers also helpfull:


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I would recommend not using regex. An API call like WinHttpCrackUrl() is less error prone.

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And also very platform specific. – Andir Jul 12 '10 at 21:02
I think the point was to use a library, rather than reinvent the wheel. Ruby, Python, Perl have tools to tear apart URLs so grab those instead of implementing a bad pattern. – the Tin Man Jan 17 '11 at 20:50

Sadly, this doesn't work with some URLs. Take, for example, this one:

Neither does &value=329

Or even with no parameters at all (a simple URL)!

I understand that the regex is expecting some seriously complex/long URL, but it should be able to work on simple ones as well, am I right?

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None of the above worked for me. Here's what I ended up using:

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I was trying to solve this in javascript, which should be handled by:

var url = new URL('');

since (in Chrome, at least) it parses to:

  "hash": "#foobar/bing/bo@ng?bang",
  "search": "?foo=bar&bingobang=&",
  "pathname": "/path/wah@t/foo.js",
  "port": "890",
  "hostname": "",
  "host": "",
  "password": "b",
  "username": "a",
  "protocol": "http:",
  "origin": "",
  "href": ""

However, this isn't cross browser (, so I cobbled this together to pull the same parts out as above:


Credit for this regex goes to who posted this jsperf (originally found here: who came up with the regex this was originally based on.

The parts are in this order:

var keys = [
    "href",                    //
    "origin",                  //
    "protocol",                // http:
    "username",                // user
    "password",                // pass
    "host",                    //
    "hostname",                //
    "port",                    // 81
    "pathname",                // /directory/file.ext
    "search",                  // ?query=1
    "hash"                     // #anchor

There is also a small library which wraps it and provides query params: (also available on bower)

If you have an improvement, please create a pull request with more tests and I will accept and merge with thanks.

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This is great but could really do with a version like this that pulls out subdomains instead of the duplicated host, hostname. So if I had for example it would pull out – Lankymart Sep 1 '14 at 14:55

I like the regex that was published in "Javascript: The Good Parts". Its not too short and not too complex. This page on github also has the JavaScript code that uses it. But it an be adapted for any language.

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Java offers a URL class that will do this. Query URL Objects.

On a side note, PHP offers parse_url().

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It looks like this doesn't parse out the subdomain though? – Chris Dutrow Mar 5 '10 at 4:11
Asker asked for regex. URL class will open a connection when you create it. – MikeNereson Nov 24 '11 at 4:59
"URL class will open a connection when you create it" - that's incorrect, only when you call methods like connect(). But it's true that is somewhat heavy. For this use case, is better. – Jona Christopher Sahnwaldt May 11 '12 at 21:28

Using hometoast's regex works great.

But here is the deal, I want to use different regex patterns in different situations in my program.

For example, I have this URL, and I have an enumeration that lists all supported URLs in my program. Each object in the enumeration has a method getRegexPattern that returns the regex pattern which will then be used to compare with a URL. If the particular regex pattern returns true, then I know that this URL is supported by my program. So, each enumeration has it's own regex depending on where it should look inside the URL.

Hometoast's suggestion is great, but in my case, I think it wouldn't help (unless I copy paste the same regex in all enumerations).

That is why I wanted the answer to give the regex for each situation separately. Although +1 for hometoast. ;)

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I know you're claiming language-agnostic on this, but can you tell us what you're using just so we know what regex capabilities you have?

If you have the capabilities for non-capturing matches, you can modify hometoast's expression so that subexpressions that you aren't interested in capturing are set up like this:


You'd still have to copy and paste (and slightly modify) the Regex into multiple places, but this makes sense--you're not just checking to see if the subexpression exists, but rather if it exists as part of a URL. Using the non-capturing modifier for subexpressions can give you what you need and nothing more, which, if I'm reading you correctly, is what you want.

Just as a small, small note, hometoast's expression doesn't need to put brackets around the 's' for 'https', since he only has one character in there. Quantifiers quantify the one character (or character class or subexpression) directly preceding them. So:


would match 'http' or 'https' just fine.

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regexp to get the URL path without the file.

url = 'http://domain/dir1/dir2/somefile' url.scan(/^(http:\/\/[^\/]+)((?:\/[^\/]+)+(?=\/))?\/?(?:[^\/]+)?$/i).to_s

It can be useful for adding a relative path to this url.

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Here is one that is complete, and doesnt rely on any protocol.

function getServerURL(url) {
        var m = url.match("(^(?:(?:.*?)?//)?[^/?#;]*)");
        console.log(m[1]) // Remove this
        return m[1];







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