439

For example, assuming that x = filename.jpg, I want to get filename, where filename could be any file name (Let's assume the file name only contains [a-zA-Z0-9-_] to simplify.).

I saw x.substring(0, x.indexOf('.jpg')) on DZone Snippets, but wouldn't x.substring(0, x.length-4) perform better? Because, length is a property and doesn't do character checking whereas indexOf() is a function and does character checking.

3

25 Answers 25

578

Not sure what would perform faster but this would be more reliable when it comes to extension like .jpeg or .html

x.replace(/\.[^/.]+$/, "")
10
  • 17
    You probably want to also disallow / as a path separator, so the regexp is /\.[^/.]+$/
    – gsnedders
    Nov 22, 2010 at 21:35
  • 1
    This works for any length of file extension (.txt or .html or .htaccess) and also allows for the file name to contain additional period (.) characters. It wouldn't handle eg .tar.gz due to the extension itself containing a period. It's more common for a file name to contain additional periods than a file extension. Thanks! Jan 28, 2016 at 20:56
  • 6
    @Vik There's a difference between the 'right answer' and the accepted answer. An accepted answer is just the answer that was helpful for the one who asked the question.
    – Steven
    Nov 13, 2017 at 14:37
  • 5
    I suppose that there may be issues with the Windows platform because there can be back slashes. So the regexp should be /\.[^/\\.]+$/.
    – Alex Chuev
    Dec 18, 2017 at 13:32
  • 2
    @ElgsQianChen here is a great tool for you to help answer your question regexr.com Jan 15, 2019 at 20:40
520

In node.js, the name of the file without the extension can be obtained as follows.

const path = require('path');
const filename = 'hello.html';
    
path.parse(filename).name;     //=> "hello"
path.parse(filename).ext;      //=> ".html"
path.parse(filename).base; //=> "hello.html"

Further explanation at Node.js documentation page.

3
  • 2
    This answer is pretty restricted to server-side node. If you try to use this in react code, it doesn't seem to import.
    – Charlie
    Feb 7, 2019 at 19:35
  • 3
    if you want to remove an extension from a path including the directories, you can do var parsed = path.parse(filename) followed by path.join(parsed.dir, parsed.name). Nov 22, 2019 at 8:41
  • 2
    Another possibility is let base = path.basename( file_path, path.extname( file_path ) ).
    – bicarlsen
    Mar 12, 2020 at 19:03
275

If you know the length of the extension, you can use x.slice(0, -4) (where 4 is the three characters of the extension and the dot).

If you don't know the length @John Hartsock regex would be the right approach.

If you'd rather not use regular expressions, you can try this (less performant):

filename.split('.').slice(0, -1).join('.')

Note that it will fail on files without extension.

8
  • I like this solution the best. It's clean, and I can use it cause I know the file extension is always .jpg. I was looking for something like Ruby's x[0..-5], and x.slice(0, -4) looks great! Thanks! And thank you to everyone else for all the other robust alternatives provided!
    – ma11hew28
    Nov 23, 2010 at 6:12
  • 34
    this is not the optimal solution, please check other solutions below.
    – bunjeeb
    Apr 6, 2015 at 23:02
  • 9
    And if you're not 100% sure about the length of the extension, then don't this: "picture.jpeg".slice(0, -4) -> "picture."
    – basic6
    Apr 7, 2015 at 9:37
  • 17
    This is dangerous solution, cause you don't really know the length of the format.
    – Coder
    Mar 13, 2017 at 18:47
  • "If you know the length of the extension" It's been decades since this was an acceptable assumption to make. Don't use this anymore.
    – Alexander
    Mar 26, 2020 at 15:42
133

x.length-4 only accounts for extensions of 3 characters. What if you have filename.jpegor filename.pl?

EDIT:

To answer... sure, if you always have an extension of .jpg, x.length-4 would work just fine.

However, if you don't know the length of your extension, any of a number of solutions are better/more robust.

x = x.replace(/\..+$/, '');

OR

x = x.substring(0, x.lastIndexOf('.'));

OR

x = x.replace(/(.*)\.(.*?)$/, "$1");

OR (with the assumption filename only has one dot)

parts = x.match(/[^\.]+/);
x = parts[0];

OR (also with only one dot)

parts = x.split(".");
x = parts[0];
9
  • 12
    ?? You can have a filename ex: "summer.family.jpg" in that case split('.')[0] will return only a partial file name. I would remove that one from the answer, or clearly state underneath the issue for that example. @basarat ... Oct 2, 2013 at 22:19
  • Something I do frequently regarding part splits: var parts = full_file.split("."); var ext = parts[parts.length-1]; var file = parts.splice(0,parts.length-1).join(".");
    – radicand
    Oct 3, 2013 at 20:41
  • x.split(".") should not even be considered an answer. I know I use a '.' in almost all of my file naming conventions, i.e. 'survey.controller.js', or 'my.family.jpg'. Feb 17, 2016 at 16:52
  • @Lee2808: Hence the warning of only one dot. This is simply meant to show that there are a number of approaches, depending on the application. I would certainly use one of the other methods in almost all cases.
    – Jeff B
    Feb 17, 2016 at 17:57
  • x = x.substr(0, x.lastIndexOf('.')); - you probably meant x = x.substring(0, x.lastIndexOf('.'));? Apr 21, 2017 at 15:07
51

You can perhaps use the assumption that the last dot will be the extension delimiter.

var x = 'filename.jpg';
var f = x.substr(0, x.lastIndexOf('.'));

If file has no extension, it will return empty string. To fix that use this function

function removeExtension(filename){
    var lastDotPosition = filename.lastIndexOf(".");
    if (lastDotPosition === -1) return filename;
    else return filename.substr(0, lastDotPosition);
}
2
  • Warning, this fails if there happens to be no filename extension. You're left with an empty string.
    – Brad
    Dec 1, 2013 at 4:33
  • 28
    Shorter version that accounts for no dots. var f = x.substr(0, x.lastIndexOf('.')) || x; This works because an empty string is falsy, therefore it returns x. May 6, 2015 at 4:38
48

I like this one because it is a one liner which isn't too hard to read:

filename.substring(0, filename.lastIndexOf('.')) || filename
1
  • 1
    I think this one is the best because it's really easy to understand
    – Angel
    Jun 28 at 10:08
22

In Node.js versions prior to 0.12.x:

path.basename(filename, path.extname(filename))

Of course this also works in 0.12.x and later.

1
15

I don't know if it's a valid option but I use this:

name = filename.split(".");
// trimming with pop()
name.pop();
// getting the name with join()
name.join('.'); // we split by '.' and we join by '.' to restore other eventual points.

It's not just one operation I know, but at least it should always work!

UPDATE: If you want a oneliner, here you are:

(name.split('.').slice(0, -1)).join('.')

2
  • 1
    It should not be name.join('') but name.join('.'). You split by dot but join by comma, so hello.name.txt returns hello, name
    – Evil
    Nov 1, 2017 at 9:20
  • filename.split(".").shift();
    – gsaandy
    Sep 30, 2020 at 14:32
12

This works, even when the delimiter is not present in the string.

String.prototype.beforeLastIndex = function (delimiter) {
    return this.split(delimiter).slice(0,-1).join(delimiter) || this + ""
}

"image".beforeLastIndex(".") // "image"
"image.jpeg".beforeLastIndex(".") // "image"
"image.second.jpeg".beforeLastIndex(".") // "image.second"
"image.second.third.jpeg".beforeLastIndex(".") // "image.second.third"

Can also be used as a one-liner like this:

var filename = "this.is.a.filename.txt";
console.log(filename.split(".").slice(0,-1).join(".") || filename + "");

EDIT: This is a more efficient solution:

String.prototype.beforeLastIndex = function (delimiter) {
    return this.substr(0,this.lastIndexOf(delimiter)) || this + ""
}
0
9

Another one-liner:

x.split(".").slice(0, -1).join(".")
0
7

Here's another regex-based solution:

filename.replace(/\.[^.$]+$/, '');

This should only chop off the last segment.

7

Simple one:

var n = str.lastIndexOf(".");
return n > -1 ? str.substr(0, n) : str;
6

The accepted answer strips the last extension part only (.jpeg), which might be a good choice in most cases.

I once had to strip all extensions (.tar.gz) and the file names were restricted to not contain dots (so 2015-01-01.backup.tar would not be a problem):

var name = "2015-01-01_backup.tar.gz";
name.replace(/(\.[^/.]+)+$/, "");
6
var fileName = "something.extension";
fileName.slice(0, -path.extname(fileName).length) // === "something"
2
  • This is the only method so far that works for full paths: path/name.ext -> paht/name instead of just returning name, but I would rather do with with fs.parse although it is a bit more verbose: stackoverflow.com/a/59576950/895245 Jan 3, 2020 at 10:34
  • I like this answer... to add to it: If you know the extension beforehand (or if the extension is a variable, then I find it more readable to say: filename.slice(0, -'.zip'.length) or filename.slice(0, -extension.length). Jun 15, 2021 at 14:51
5

If you have to process a variable that contains the complete path (ex.: thePath = "http://stackoverflow.com/directory/subdirectory/filename.jpg") and you want to return just "filename" you can use:

theName = thePath.split("/").slice(-1).join().split(".").shift();

the result will be theName == "filename";

To try it write the following command into the console window of your chrome debugger: window.location.pathname.split("/").slice(-1).join().split(".").shift()

If you have to process just the file name and its extension (ex.: theNameWithExt = "filename.jpg"):

theName = theNameWithExt.split(".").shift();

the result will be theName == "filename", the same as above;

Notes:

  1. The first one is a little bit slower cause performes more operations; but works in both cases, in other words it can extract the file name without extension from a given string that contains a path or a file name with ex. While the second works only if the given variable contains a filename with ext like filename.ext but is a little bit quicker.
  2. Both solutions work for both local and server files;

But I can't say nothing about neither performances comparison with other answers nor for browser or OS compatibility.

working snippet 1: the complete path

var thePath = "http://stackoverflow.com/directory/subdirectory/filename.jpg";
theName = thePath.split("/").slice(-1).join().split(".").shift();
alert(theName);
  

working snippet 2: the file name with extension

var theNameWithExt = "filename.jpg";
theName = theNameWithExt.split("/").slice(-1).join().split(".").shift();
alert(theName);
  

working snippet 2: the file name with double extension

var theNameWithExt = "filename.tar.gz";
theName = theNameWithExt.split("/").slice(-1).join().split(".").shift();
alert(theName);
  

5

Node.js remove extension from full path keeping directory

https://stackoverflow.com/a/31615711/895245 for example did path/hello.html -> hello, but if you want path/hello.html -> path/hello, you can use this:

#!/usr/bin/env node
const path = require('path');
const filename = 'path/hello.html';
const filename_parsed = path.parse(filename);
console.log(path.join(filename_parsed.dir, filename_parsed.name));

outputs directory as well:

path/hello

https://stackoverflow.com/a/36099196/895245 also achieves this, but I find this approach a bit more semantically pleasing.

Tested in Node.js v10.15.2.

4

Though it's pretty late, I will add another approach to get the filename without extension using plain old JS-

path.replace(path.substr(path.lastIndexOf('.')), '')

2
  • or path.split('.').pop() for one part file extensions
    – mixdev
    Sep 5, 2019 at 17:40
  • He was actually trying to get the file name, not the extension!
    – Munim
    Sep 12, 2019 at 12:29
0

This is where regular expressions come in handy! Javascript's .replace() method will take a regular expression, and you can utilize that to accomplish what you want:

// assuming var x = filename.jpg or some extension
x = x.replace(/(.*)\.[^.]+$/, "$1");
0
0

You can use path to maneuver.

var MYPATH = '/User/HELLO/WORLD/FILENAME.js';
var MYEXT = '.js';
var fileName = path.basename(MYPATH, MYEXT);
var filePath = path.dirname(MYPATH) + '/' + fileName;

Output

> filePath
'/User/HELLO/WORLD/FILENAME'
> fileName
'FILENAME'
> MYPATH
'/User/HELLO/WORLD/FILENAME.js'
0

This is the code I use to remove the extension from a filename, without using either regex or indexOf (indexOf is not supported in IE8). It assumes that the extension is any text after the last '.' character.

It works for:

  • files without an extension: "myletter"
  • files with '.' in the name: "my.letter.txt"
  • unknown length of file extension: "my.letter.html"

Here's the code:

var filename = "my.letter.txt" // some filename

var substrings = filename.split('.'); // split the string at '.'
if (substrings.length == 1)
{
  return filename; // there was no file extension, file was something like 'myfile'
}
else
{
  var ext = substrings.pop(); // remove the last element
  var name = substrings.join(""); // rejoin the remaining elements without separator
  name = ([name, ext]).join("."); // readd the extension
  return name;
}
2
  • fails with hello.tar.gz, output is hellotar.
    – Asif Ali
    Nov 27, 2017 at 6:51
  • #AsifAli thanks you are right, I forgot to readd the file extension. I've updated the answer, I hope it works now. Nov 27, 2017 at 13:15
0

I like to use the regex to do that. It's short and easy to understand.

for (const regexPattern of [
  /\..+$/,  // Find the first dot and all the content after it.
  /\.[^/.]+$/ // Get the last dot and all the content after it.
  ]) {
  console.log("myFont.ttf".replace(regexPattern, ""))
  console.log("myFont.ttf.log".replace(regexPattern, ""))
}

/* output
myFont
myFont
myFont
myFont.ttf
*/

The above explanation may not be very rigorous. If you want to get a more accurate explanation can go to regex101 to check

-1

Another one liner - we presume our file is a jpg picture >> ex: var yourStr = 'test.jpg';

    yourStr = yourStr.slice(0, -4); // 'test'
-1
x.slice(0, -(x.split('.').pop().length + 1));
1
  • While this code may answer the question, providing additional context regarding why and/or how this code answers the question improves its long-term value. Dec 23, 2020 at 10:38
-1
name.split('.').slice(0, -1).join('.')

that's all enjoy your coding...

1
-3

I would use something like x.substring(0, x.lastIndexOf('.')). If you're going for performance, don't go for javascript at all :-p No, one more statement really doesn't matter for 99.99999% of all purposes.

4
  • 2
    "If you're going for performance, don't go for javascript at all" - What else are you suggesting to use in web applications..?
    – T J
    Feb 11, 2016 at 16:15
  • He doesn't mention web applications. Mar 22, 2017 at 22:01
  • 1
    This question was asked and answer was posted in 2010, 7 years ago, and JavaScript was pretty much used only in web applications. (Node was just born, it didn't even had a guide or NPM at that time)
    – T J
    Mar 23, 2017 at 9:16
  • ;-) Still, if performance matters on tasks like this, you might consider doing this on the backend and process the results on the frontend. Mar 23, 2017 at 10:23

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