260

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.

23 Answers 23

140

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.

  • 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 '10 at 6:12
  • 15
    this is not the optimal solution, please check other solutions below. – bunjeeb Apr 6 '15 at 23:02
  • 8
    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 '15 at 9:37
  • 13
    This is dangerous solution, cause you don't really know the length of the format. – Coder Mar 13 '17 at 18:47
  • ma11hew28, but what if it's .jpeg instead of .jpg? – tomJO May 10 '18 at 8:55
417

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

x.replace(/\.[^/.]+$/, "")
  • 15
    You probably want to also disallow / as a path separator, so the regexp is /\.[^/.]+$/ – gsnedders Nov 22 '10 at 21:35
  • 8
    This should be the right answer – Vik Apr 23 '15 at 1:31
  • 1
    @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 '17 at 14:37
  • 2
    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 '17 at 13:32
  • 1
    @ElgsQianChen here is a great tool for you to help answer your question regexr.com – John Hartsock Jan 15 at 20:40
193

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

const path = require('path');
var filename = 'hello.html';

path.parse(filename).name; // hello
path.parse(filename).ext;  // .html

Further explanation at Node.js documentation page.

  • 2
    What you are talking about @kaasdude.... this method effectively removes the extension on node., not sure what you wanted to express, but this method works pearls. – Erick Sep 23 '18 at 22:00
  • 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 at 19:35
113

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];
  • 10
    ?? 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 ... – Roko C. Buljan Oct 2 '13 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 '13 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'. – Lee Brindley Feb 17 '16 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 '16 at 17:57
  • x = x.substr(0, x.lastIndexOf('.')); - you probably meant x = x.substring(0, x.lastIndexOf('.'));? – tborychowski Apr 21 '17 at 15:07
37

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);
}
  • Warning, this fails if there happens to be no filename extension. You're left with an empty string. – Brad Dec 1 '13 at 4:33
  • 15
    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. – Jonathan Rowny May 6 '15 at 4:38
14

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.

11

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 + ""
}
10

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

filename.substring(0, filename.lastIndexOf('.')) || filename
8

This can also be done easily with path using the basename and extname methods.

const path = require('path')

path.basename('test.txt', path.extname('test.txt'))
8

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('.')

  • 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 '17 at 9:20
7

Another one-liner:

x.split(".").slice(0, -1).join(".")
6

Here's another regex-based solution:

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

This should only chop off the last segment.

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(/(\.[^/.]+)+$/, "");
5

Simple one:

var n = str.lastIndexOf(".");
return n > -1 ? str.substr(0, n) : str;
3

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);
  

2
var fileName = "something.extension";
fileName.slice(0, -path.extname(fileName).length) // === "something"
2

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('.')), '')

  • or path.split('.').pop() for one part file extensions – mixdev Sep 5 at 17:40
  • He was actually trying to get the file name, not the extension! – Munim Dibosh Sep 12 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");
  • 2
    Regex is too heavy and unreadable for such simple task – Tomas Jun 4 '14 at 11:13
0

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

    yourStr = yourStr.slice(0, -4); // 'test'
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
x.slice(0, -(x.split('.').pop().length + 1));
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;
}
  • fails with hello.tar.gz, output is hellotar. – Asif Ali Nov 27 '17 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. – Little Brain Nov 27 '17 at 13:15
-2

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.

  • 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 '16 at 16:15
  • He doesn't mention web applications. – Lucas Moeskops Mar 22 '17 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 '17 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. – Lucas Moeskops Mar 23 '17 at 10:23

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