71

I have a url like http://www.example.com/blah/th.html

I need a javascript function to give me the 'th' value from that.

All my urls have the same format (2 letter filenames, with .html extension).

I want it to be a safe function, so if someone passes in an empty url it doesn't break.

I know how to check for length, but I should be checking for null to right?

1

22 Answers 22

194
var filename = url.split('/').pop()
10
  • 12
    By far the simplest and best answer. May 1, 2015 at 15:16
  • 14
    what if there are query parameters behind? Jan 8, 2016 at 7:33
  • 3
    This also doesn't handle URL fragment IDs (i.e. # IDs)
    – Benjineer
    Apr 3, 2016 at 3:02
  • 19
    How about this: url.split('#').shift().split('?').shift().split('/').pop() May 3, 2016 at 19:07
  • 5
    How about this? new URL(url).pathname.split('/').pop(); Dec 30, 2019 at 7:59
93

Why so difficult?

var filename = url.split('/').pop().split('#')[0].split('?')[0];

9
  • 1
    Nicely done. Handles presence or absence of # and/or ?.
    – Benjineer
    May 22, 2016 at 8:54
  • 2
    This should be the top answer. Mar 1, 2017 at 13:22
  • 12
    @hayatbiralem gave a better answer on another comment : url.split('#').shift().split('?').shift().split('/').pop() You have to start by splitting on # and ? and afterwards split on / or you will catch the / parts of the anchor and querystring instead of the one from your path (which will typically lead to errors on amazon s3 protected urls )
    – systho
    Jan 30, 2018 at 9:22
  • 3
    What if URL doesn't actually has a filename in it? e.g: http://www.example.com this function will return "www.example.com" which is incorrect. It should be either empty string or null. Jan 11, 2019 at 12:10
  • 2
    Won't work for "http://www.example.com/filenam.zip?passkey=1/2"
    – tsh
    Nov 8, 2019 at 7:33
31

Use the match function.

function GetFilename(url)
{
   if (url)
   {
      var m = url.toString().match(/.*\/(.+?)\./);
      if (m && m.length > 1)
      {
         return m[1];
      }
   }
   return "";
}
3
  • 15
    This doesn't work if you have multiple multiple '.'s in the filename
    – James
    Jan 6, 2013 at 12:59
  • Does not remove query string
    – user985399
    Jun 16, 2019 at 20:31
  • 2
    This will return the name of the file without it's extension. Dec 17, 2019 at 14:43
14

Similar to the others, but...I've used Tom's simple script - a single line,
then you can use the filename var anywhere:
http://www.tomhoppe.com/index.php/2008/02/grab-filename-from-window-location/

var filename = location.pathname.substr(location.pathname.lastIndexOf("/")+1);
1
  • Length is optional I believe: location.pathname.substr(location.pathname.lastIndexOf("/")+1) Mar 6, 2012 at 3:27
8

A regex solution which accounts for URL query and hash identifier:

function fileNameFromUrl(url) {
   var matches = url.match(/\/([^\/?#]+)[^\/]*$/);
   if (matches.length > 1) {
     return matches[1];
   }
   return null;
}

JSFiddle here.

2
  • This is the best answer when using regex.
    – meYnot
    Apr 7, 2016 at 10:44
  • What if URL doesn't actually has a filename in it? e.g: http://www.example.com this function will return "www.example.com" which is incorrect. It should be either empty string or null. Jan 11, 2019 at 12:12
8

This should work for all cases

function getFilenameFromUrl(url) {
  const pathname = new URL(url).pathname;
  const index = pathname.lastIndexOf('/');
  return (-1 !== index) ? pathname.substring(index + 1) : pathname;
}
5
  • 1
    Actually, this is the only solution working for all the edge cases I'm aware of. At least in the supported browsers (>89%). Jan 11, 2019 at 12:24
  • Not in my browser! SyntaxError: Unexpected token ':'
    – user985399
    Jun 10, 2019 at 2:20
  • 1
    Any solution with URL doesn't work for relative URLs Jul 18, 2020 at 17:15
  • @DenisG.Labrecque you are right this solution doesn't works with "relative URL's" e.g.: questions/511761/js-function-to-get-filename-from-url/53560218?noredirect=1#comment111357776_53560218 as using that string the URL object won't be constructed because of an invalid URL as argument. This solution will work with a fully qualified URL or "absolute", i mean, the url must begin with a protocol. In that case you may add an "http://" or ("whatever://") prefix to the relative URL (thus it becomes absolute) and this code will work as a charm.
    – Victor
    Aug 17, 2020 at 13:15
  • Code golf fun: f=u=>(p=>(i=>-1!==i?p.substring(i+1):p)(p.lastIndexOf('/')))(new URL(u).pathname); Sep 30, 2020 at 12:40
6

Because cases tend to fail with custom code, I looked up to the JavaScript URL class. Alas, it chokes on relative URLs! Also, it doesn't have a property to get the file name. Not epic.

There has to be a good library out there which solves this common problem. Behold URI.js. All you need is a simple statement like the following:

let file = new URI(url).filename()

Then we can create a simple function that does null checks and removes the file extension:

function fileName(url) {
   if (url === null || typeof url === 'undefined')
      return ''
   let file = new URI(url).filename() // File name with file extension
   return file.substring(0, file.lastIndexOf('.')) // Remove the extension
}

Here's a snippet with test cases to play around with. All cases pass except drive paths.

test('Dots in file name without URL', 'dotted.file.name.png', 'dotted.file.name')
test('Dots in file name with URL', 'http://example.com/file.name.txt', 'file.name')
test('Lengthy URL with parameters', '/my/folder/filename.html#dssddsdsd?toto=33&dududu=podpodpo', 'filename')
test('URL with hash', '/my/folder/filename.html#dssddsdsd', 'filename')
test('URL with query strings', '/my/folder/filename.html?toto=33&dududu=podpodp', 'filename')
test('Hash after query string', 'http://www.myblog.com/filename.php?year=2019#06', 'filename')
 test('Query parameter with file path character', 'http://www.example.com/filename.zip?passkey=1/2', 'filename')
test('Query parameter with file path character and hash', 'http://www.example.com/filename.html?lang=en&user=Aan9u/o8ai#top', 'filename')
test('Asian characters', 'http://example.com/文件名.html', '文件名')
test('URL without file name', 'http://www.example.com', '')
test('Null', null, '')
test('Undefined', undefined, '')
test('Empty string', '', '')
test('Drive path name', 'C:/fakepath/filename.csv', 'filename')

function fileName(url) {
   if (url === null || typeof url === 'undefined')
      return ''
   let file = new URI(url).filename() // File name with file extension
   return file.substring(0, file.lastIndexOf('.')) // Remove the extension
}

function test(description, input, expected) {
   let result = fileName(input)
   let pass = 'FAIL'
   if (result === expected)
      pass = 'PASS'
   console.log(pass + ': ' + description + ': ' + input)
   console.log('  =>  "' + fileName(input) + '"')
}
<script src="https://cdn.jsdelivr.net/gh/medialize/URI.js@master/src/URI.js"></script>

Results

PASS: Dots in file name without URL: dotted.file.name.png
  =>  "dotted.file.name"
PASS: Dots in file name with URL: http://example.com/file.name.txt
  =>  "file.name"
PASS: Lengthy URL with parameters: /my/folder/filename.html#dssddsdsd?toto=33&dududu=podpodpo
  =>  "filename"
PASS: URL with hash: /my/folder/filename.html#dssddsdsd
  =>  "filename"
PASS: URL with query strings: /my/folder/filename.html?toto=33&dududu=podpodp
  =>  "filename"
PASS: Hash after query string: http://www.myblog.com/filename.php?year=2019#06
  =>  "filename"
PASS: Query parameter with file path character: http://www.example.com/filename.zip?passkey=1/2
  =>  "filename"
PASS: Query parameter with file path character and hash: http://www.example.com/filename.html?lang=en&user=Aan9u/o8ai#top
  =>  "filename"
PASS: Asian characters: http://example.com/文件名.html
  =>  "文件名"
PASS: URL without file name: http://www.example.com
  =>  ""
PASS: Null: null
  =>  ""
PASS: Undefined: undefined
  =>  ""
PASS: Empty string: 
  =>  ""
FAIL: Drive path name: C:/fakepath/filename.csv
  =>  ""

This solution is for you if you're too lazy to write custom code and don't mind using a library to do work for you. It isn't for you if you want to code golf the solution.

6

In addition to the existing answers, I would recommend using URL() constructor (works both in browsers and Node.js) because you can be sure your URL is valid:

const url = 'https://test.com/path/photo123.png?param1=1&param2=2#hash';

let filename = '';
try {
  filename = new URL(url).pathname.split('/').pop();
} catch (e) {
  console.error(e);
}
console.log(`filename: ${filename}`);

5

those will not work for lenghty url like
"/my/folder/questions.html#dssddsdsd?toto=33&dududu=podpodpo"

here I expect to get "questions.html". So a possible (slow) solution is as below

fname=function(url) 
{ return url?url.split('/').pop().split('#').shift().split('?').shift():null }

then you can test that in any case you get only the filename.

fname("/my/folder/questions.html#dssddsdsd?toto=33&dududu=podpodpo")
-->"questions.html"
fname("/my/folder/questions.html#dssddsdsd")
-->"questions.html"
fname("/my/folder/questions.html?toto=33&dududu=podpodpo")
"-->questions.html"

(and it works for null)

(I would love to see a faster or smarter solution)

4
  • Why do you expect to get "questions.html" when it is asked for get the name "questions" only?
    – user985399
    Jun 10, 2019 at 1:57
  • Wrong. file extension is part of the name right? and it is asked filename right?
    – Nadir
    Jun 13, 2019 at 11:36
  • 2
    See the second line in question: I need a javascript function to give me the 'th' value from that.
    – user985399
    Jun 14, 2019 at 13:54
  • Ok, I missed it ;-) Then it is a onliner ie .split('.').pop()
    – Nadir
    Jun 15, 2019 at 14:37
4

This answer only works in browser environment. Not suitable for node.

function getFilename(url) {
  const filename = decodeURIComponent(new URL(url).pathname.split('/').pop());
  if (!filename) return 'index.html'; // some default filename
  return filename;
}

function filenameWithoutExtension(filename) {
  return filename.replace(/^(.+?)(?:\.[^.]*)?$/, '$1');
}

Here are two functions:

  • first one get filename from url
  • second one get filename without extension from a full filename

For parsing URL, new an URL object should be the best choice. Also notice that URL do not always contain a filename.

Notice: This function try to resolve filename from an URL. But it do NOT guarantee that the filename is valid and suitable for use:

  • Some OS disallow certain character in filename (e.g. : in windows, \0 in most OS, ...);
  • Some filename may reserved by OS (e.g. CON in windows);
  • Some filename may make user unhappy to handle it (e.g. a file named "--help" in Linux)

Test it out:

function getFilename(url) {
  const filename = decodeURIComponent(new URL(url).pathname.split('/').pop());
  if (!filename) return 'index.html'; // some default filename
  return filename;
}

function test(url) {
  console.log('Filename: %o\nUrl: %o', getFilename(url), url);
}

test('http://www.example.com');
test('http://www.example.com/');
test('http://www.example.com/name.txt');
test('http://www.example.com/path/name.txt');
test('http://www.example.com/path/name.txt/realname.txt');
test('http://www.example.com/page.html#!/home');
test('http://www.example.com/page.html?lang=en&user=Aan9u/o8ai#top');
test('http://www.example.com/%E6%96%87%E4%BB%B6%E5%90%8D.txt')

9
  • Why make it so complicated? It gets unsafe.
    – user985399
    Jun 16, 2019 at 21:41
  • @PauliSudarshanTerho What do you mean by unsafe? Anything here is unsafe?
    – tsh
    Jun 17, 2019 at 1:44
  • Simplicity = Safe. See my solution. Complexity = Unsafe.
    – user985399
    Jun 17, 2019 at 2:27
  • 2
    @PauliSudarshanTerho But an answer should first be correct, then simple. And I can't see how simple = safe holds.
    – tsh
    Jun 17, 2019 at 2:29
  • As you note some OS may have issues URL() and some browsers do not support it? Where is filenameWithoutExtension() used?
    – user985399
    Jun 17, 2019 at 3:04
3

I'd use the substring function combined with lastIndexOf. This will allow for filenames with periods in them e.g. given http://example.com/file.name.txt this gives file.name unlike the accepted answer that would give file.

function GetFilename(url)
{
    if (url)
    {
        return url.substring(url.lastIndexOf("/") + 1, url.lastIndexOf("."));
    }
    return "";
}
0
1

Using jQuery with the URL plugin:

var file = jQuery.url.attr("file");
var fileNoExt = file.replace(/\.(html|htm)$/, "");
// file == "th.html", fileNoExt = "th"
1

For node and browsers, based on @pauls answer but solving issues with hash and more defensive:

export function getFileNameFromUrl(url) {
  const hashIndex = url.indexOf('#')
  url = hashIndex !== -1 ? url.substring(0, hashIndex) : url
  return (url.split('/').pop() || '').replace(/[\?].*$/g, '')
} 

Few cases:

describe('getFileNameFromUrl', () => {

  it('absolute, hash and no extension', () => {
    expect(getFileNameFromUrl(
      'https://foo.bar/qs/bar/js-function-to-get-filename-from-url#comment95124061_53560218'))
    .toBe('js-function-to-get-filename-from-url')
  })

  it('relative, extension and parameters', () => {
    expect(getFileNameFromUrl('../foo.png?ar=8')).toBe('foo.png')
  })

  it('file name with multiple dots, hash with slash', () => {
    expect(getFileNameFromUrl('questions/511761/js-function.min.js?bar=9.9&y=1#/src/jjj?=9.9')).toBe('js-function.min.js')
  })
})
2
  • It is not Javascript
    – user985399
    Jun 16, 2019 at 21:37
  • http://www.example.com/page.html?lang=en&user=Aan9u/o8ai#top
    – tsh
    Nov 8, 2019 at 7:30
1

This should handle anything you throw at it (absolute URLs, relative URLs, complex AWS URLs, etc). It includes an optional default or uses a psuedorandom string if neither a filename nor a default were present.

function parseUrlFilename(url, defaultFilename = null) {
    let filename = new URL(url, "https://example.com").href.split("#").shift().split("?").shift().split("/").pop(); //No need to change "https://example.com"; it's only present to allow for processing relative URLs.
    if(!filename) {
        if(defaultFilename) {
            filename = defaultFilename;
        //No default filename provided; use a pseudorandom string.
        } else {
            filename = Math.random().toString(36).substr(2, 10);
        }
    }
    
    return filename;
}

Props to @hayatbiralem for nailing the order of the split()s.

0

Similarly to what @user2492653 suggested, if all you want is the name of the file like Firefox gives you, then you the split() method, which breaks the string into an array of components, then all you need to do it grab the last index.

var temp = url.split("//");
if(temp.length > 1)
 return temp[temp.length-1] //length-1 since array indexes start at 0

This would basically break C:/fakepath/test.csv into {"C:", "fakepath", "test.csv"}

0

my 2 cents

the LastIndexOf("/") method in itself falls down if the querystrings contain "/"

We all know they "should" be encoded as %2F but it would only take one un-escaped value to cause problems.

This version correctly handles /'s in the querystrings and has no reliance on .'s in the url

function getPageName() {
    //#### Grab the url
    var FullUrl = window.location.href;

    //#### Remove QueryStrings
    var UrlSegments = FullUrl.split("?")
    FullUrl = UrlSegments[0];

    //#### Extract the filename
    return FullUrl.substr(FullUrl.lastIndexOf("/") + 1);
}
1
  • True, but the importance of query solutions is questionable because it is not mentioned in the question. It is a choise between using '/' in query if any query at all or having shorter code.
    – user985399
    Jun 16, 2019 at 21:30
0

Try this

url.substring(url.lastIndexOf('/')+1, url.length)
1
  • Works if you change url.length. See my answer.
    – user985399
    Jun 16, 2019 at 21:44
0
url? url.substring(url.lastIndexOf('/')+1, url.lastIndexOf('.')):''
  • Safety is as asked for. when url is null or undefined the result is ''.
  • Removes all of the path with ':', dots and any symbol including the last '/'.
  • This gives the true answer 'th' as asked and not 'th.index'. That is very important of course to have it work at all.
  • It allows filename to have several periods!

  • Not asked, but you can also have a query string without '/' and '.'

It is a corrected answer from Abhishek Sharma so I gave him an upvote. So genious and minimal one-liner - I saw it there :)

4
  • See my last point: Not asked, but you can also have a query string without '/' and '.' so that url has '/' in the query.
    – user985399
    Jun 17, 2019 at 2:36
  • Between last '/' and last '.' is an empty name and I checked that gave it correctly ignoring the .vimrc extension.
    – user985399
    Jun 17, 2019 at 2:44
  • It gives %E6%96%87%E4%BB%B6%E5%90%8D, shouldn't it?
    – user985399
    Jun 17, 2019 at 3:37
  • I pasted the symbols into http://example.com/文件名.html and the alert() say 文件名
    – user985399
    Jun 17, 2019 at 3:50
0
function getFileNameWithoutExtension(url) {
  if (typeof url !== 'string') throw new Error('url must be a string');
  // Remove the QueryString
  return url.replace(/\?.*$/, '')
  // Extract the filename
  .split('/').pop()
  // Remove the extension
  .replace(/\.[^.]+$/, '');
}

This will return news from this URL http://www.myblog.com/news.php?year=2019#06.

3
  • 1
    Doesn't split on '.' to remove the extension as asked for
    – user985399
    Jun 16, 2019 at 21:32
  • @PauliSudarshanTerho you are right, it seems I did not read the question well, I corrected my answer. My code is less performant than the accepted answer, however it works with filenames like "news.inc.php" and it is easier to read.
    – Karl.S
    Jun 17, 2019 at 18:22
  • 1
    The accepted answer is not correct at all: Miss a lot of points.. does not check if url is undefined ... does not split on '.' ... does not remove eventual query string .... It is my comment there
    – user985399
    Jun 17, 2019 at 19:37
0

ES6 syntax based on TypeScript

Actually, the marked answer is true but if the second if doesn't satisfy the function returns undefined, I prefer to write it like below:

const getFileNameFromUrl = (url: string): string => {
  if (url) {
    const tmp = url.split('/');
    const tmpLength = tmp.length;

    return tmpLength ? tmp[tmpLength - 1] : '';
  }

  return '';
};

For my problem, I need to have the file extension.

2
  • 1
    If someone doesn't need the file extension then can use split('.') on returned string and join all elements without last entry of array. Sep 18, 2020 at 5:59
  • 1
    @ArkadiuszWieczorek, Exactly you right, thanks for your hint. 🌹
    – AmerllicA
    Sep 18, 2020 at 7:10
0

Simple Function (Using RegEx Pattern)

function pathInfo(s) {
    s=s.match(/(.*?\/)?(([^/]*?)(\.[^/.]+?)?)(?:[?#].*)?$/);
    return {path:s[1],file:s[2],name:s[3],ext:s[4]};
}

var sample='/folder/another/file.min.js?query=1';
var result=pathInfo(sample);
console.log(result);
/*
{
  "path": "/folder/another/",
  "file": "file.min.js",
  "name": "file.min",
  "ext": ".js"
}
*/
console.log(result.name);

-1

from How to get the file name from a full path using JavaScript?

var filename = fullPath.replace(/^.*[\\\/]/, '')

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