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I need to write some javascript to strip the hostname:port part from a url, meaning I want to extract the path part only.

i.e. I want to write a function getPath(url) such that getPath("http://host:8081/path/to/something") returns "/path/to/something"

Can this be done using regular expressions?

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This doesn't require regular expressions at all - see my answer :) –  James Jan 14 '09 at 9:04
    
It's not that it doesn't require regular expressions. This shouldn't be done using regular expressions. –  Matthew Brubaker Jan 14 '09 at 19:23
    
But it's still useful to know. –  Arx Poetica Feb 25 '11 at 15:48

5 Answers 5

up vote 11 down vote accepted

Quick 'n' dirty:

^[^#]*?://.*?(/.*)$

Everything after the hostname and port (including the initial /) is captured in the first group.

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Or in regular expression literal form ("/" needs to be escaped): /^.*?:\/\/.*?(\/.*)$/.exec("example.com/folder/file.ext")[1] gives "/folder/file.ext" –  Ates Goral Jan 14 '09 at 3:03
1  
This regex is wrong. It captures the path, query and fragment in group 1. –  Mike Samuel Jan 14 '09 at 5:20
    
Regex isn't necessary at all! Nice though! –  James Jan 14 '09 at 9:13
    
@mikesamuel, The question asked to remove the hostname and port. I'll correct my answer to have a suitable explanation, though. –  strager Jan 14 '09 at 19:09
    
@strager, Doesn't this still convert some URLs that have no scheme or authority portions into ones that do. For example #foo://bar//example.com/ has no scheme or authority but your regex will change it into a protocol relative URL that has an authority //example.com/. –  Mike Samuel Nov 20 '11 at 17:51

RFC 3986 ( http://www.ietf.org/rfc/rfc3986.txt ) says in Appendix B

The following line is the regular expression for breaking-down a well-formed URI reference into its components.

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

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

  http://www.ics.uci.edu/pub/ietf/uri/#Related

results in the following subexpression matches:

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

where <undefined> indicates that the component is not present, as is the case for the query component in the above example. Therefore, we can determine the value of the five components as

  scheme    = $2
  authority = $4
  path      = $5
  query     = $7
  fragment  = $9
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2  
The regex is mistakenly surrounded with ** and **. –  Rene Saarsoo Jan 14 '09 at 7:25
    
A thorough reply and one I found useful—though not as direct as the accepted answer. Thanks. –  lucasrizoli Jul 8 '11 at 21:24
    
@Rene, fixed. Thanks for pointing that out. –  Mike Samuel Jul 8 '11 at 21:39

I know regular expressions are useful but they're not necessary in this situation. The Location object is inherent of all links within the DOM and has a pathname property.

So, to access that property of some random URL you could need to create a new DOM element and then return its pathname.

An example, which will ALWAYS work perfectly:

function getPath(url) {
    var a = document.createElement('a');
    a.href = url;
    return a.pathname.substr(0,1) === '/' ? a.pathname : '/' + a.pathname;
}

jQuery version: (uses regex to add leading slash if needed)

function getPath(url) {
    return $('<a/>').attr('href',url)[0].pathname.replace(/^[^\/]/,'/');
}
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I know it's an old post, but I really like your method J-P :) –  Ben Feb 12 '10 at 4:59
    
yeah, i like this post too ! –  Wildling Feb 15 '12 at 11:46
    
Doesn't work if url contains params. –  lulalala Jan 28 '13 at 9:49

The window.location object has pathname, search and hash properties which contain what you require.

for this page

location.pathname = '/questions/441755/regular-expression-to-remove-hostname-and-port-from-url'  
location.search = '' //because there is no query string
location.hash = ''

so you could use

var fullpath = location.pathname+location.search+location.hash
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This regular expression seems to work: (http://[^/])(/.)

As a test I ran this search and replace in a text editor:

 Search: (http://[^/]*)(/.*)
Replace: Part #1: \1\nPart #2: \2

It converted this this text:

http://host:8081/path/to/something

into this:

Part #1: http://host:8081
Part #2: /path/to/something

and converted this:

http://stackoverflow.com/questions/441755/regular-expression-to-remove-hostname-and-port-from-url

into this:

Part #1: http://stackoverflow.com
Part #2: /questions/441755/regular-expression-to-remove-hostname-and-port-from-url
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1  
You might want to use https?:// so that https:// URLs work as well. –  Graeme Perrow Jan 14 '09 at 3:19

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