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See code:

var file1 ="50.xsl";
var file2 =30.doc";"
getFileExtension(file1); //returs xsl
getFileExtension(file2); //returs doc

function getFileExtension(filename) {
/*TODO*/
}
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21 Answers 21

up vote 144 down vote accepted

Edit: Just because this is the accepted answer; wallacer's answer is indeed much better:

return filename.split('.').pop();

My old answer:

return /[^.]+$/.exec(filename);

Should do it.

Edit: In response to PhiLho's comment, use something like:

return (/[.]/.exec(filename)) ? /[^.]+$/.exec(filename) : undefined;
share|improve this answer
2  
Returns the filename if it has no extension... –  PhiLho Oct 10 '08 at 11:34
1  
Isn't it expensive to exec the regex twice? –  Andrew Hedges Oct 11 '08 at 7:39
3  
The highly-rated answer below is much better. –  fletom Feb 13 '12 at 17:08
1  
Unfortunately both solutions fail for names like file and .htaccess. –  VisioN Oct 15 '12 at 17:19
1  
+1 for mentioning the better answer :) –  denoir Jul 7 '13 at 9:59
return filename.split('.').pop();

Keep it simple :)

Edit:

A safer implementation if you're going to run into files with no extension, or hidden files with no extension (see VisioN's comment to Tom's answer above) would be something along these lines

var a = filename.split(".");
if( a.length === 1 || ( a[0] === "" && a.length === 2 ) ) {
    return "";
}
return a.pop();    // feel free to tack .toLowerCase() here if you want

If a.length is one, it's a visible file with no extension ie. file

If a[0] === "" and a.length === 2 it's a hidden file with no extension ie. .htaccess

Hope this helps to clear up issues with the slightly more complex cases. In terms of performance, I believe this solution is a little slower than regex in most browsers. However, for most common purposes this code should be perfectly usable.

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3  
I can't comment on the performance, but this one certainly looks clean! I'm using it. +1 –  pc1oad1etter Jun 29 '10 at 4:17
3  
but in this case the file name looks like filname.tes.test.jpg. Kindly consider the output. I hope it will be false. –  Fero Jul 2 '10 at 9:56
12  
in that case the output is "jpg" –  wallacer Sep 28 '10 at 21:53
1  
Brilliant! Thanks very much. It's nice to see a solution not using regex; I have done this with PHP and it only uses a couple of functions. +1 –  Bojangles Dec 1 '10 at 20:01
1  
@wallacer: What happens if filename actually doesn't have an extension? Wouldn't this simply return the base filename, which would be kinda bad? –  Nicol Bolas Oct 26 '11 at 20:33

Here is my one-line non-regexp universal solution:

 return fname.substr((Math.max(0, fname.lastIndexOf(".")) || Infinity) + 1);

Or even a bit shorter (yet fastest solution!):

 return fname.substr((~-fname.lastIndexOf(".") >>> 0) + 2);

Both work correctly with names having no extension (e.g. myfile) or starting with . dot (e.g. .htaccess):

 ""                            -->   ""
 "name"                        -->   ""
 "name.txt"                    -->   "txt"
 ".htpasswd"                   -->   ""
 "name.with.many.dots.myext"   -->   "myext"

If you care about the speed you may run the benchmark and check that the provided solutions are the fastest, while the short one is tremendously fast:

Speed comparison

How the short one works:

  1. String.lastIndexOf method returns the position of the substring (i.e. ".") in the given string (i.e. fname). If the substring is not found method returns -1.
  2. Bitwise NOT operator (~) is functionally the same as -(x + 1), so following the given formula you get ~(-(-1)) === -2, ~(-(10)) === 9, and ~(-(0)) === -1. It was used here just in order to save space, otherwise fname.lastIndexOf(".") - 1 >>> 0 may be applied.
  3. The "unacceptable" positions of dot in the filename are -1 and 0, which respectively refer to names with no extension (e.g. "name") and to names that start with dot (e.g. ".htaccess").
  4. Zero-fill right shift operator (>>>) if used with zero affects negative numbers transforming -1 to 4294967295 and -2 to 4294967294, which is useful for remaining the filename unchanged in the edge cases (sort of a trick here).
  5. String.prototype.substr extracts the part of the filename from the position that was calculated as described. If the position number is more than the length of the string method returns "".
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2  
I wonder why people have not upvoted this solution, works perfectly. –  Ajit Mar 17 '13 at 23:50
1  
@BennyNeugebauer However if you need to exclude this rule just use fname.substr((fname.lastIndexOf(".") >>> 0) + 1) instead :) –  VisioN Oct 9 '13 at 11:15
1  
Does not work. "/home/user/.app/config" returns "app/config", which is totally wrong. –  mrbrdo Oct 13 '13 at 15:45
2  
@mrbrdo This method is not supposed to work with full path only with filenames, as requested by the question. Read question carefully before downvoting. –  VisioN Oct 13 '13 at 15:55
1  
he never explicitly said that, and obivously it makes it more useful if it works on paths –  mrbrdo Oct 18 '13 at 15:29
function getExt(filename)
{
    var ext = filename.split('.').pop();
    if(ext == filename) return "";
    return ext;
}
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function getFileExtension(filename)
{
  var ext = /^.+\.([^.]+)$/.exec(filename);
  return ext == null ? "" : ext[1];
}

Tested with "a.b" (=> "b"), "a" (=> ""), ".hidden" (=> ""), "" (=> ""), null (=> "")
Also "a.b.c.d" (=> "d"), ".a.b" (=> "b"), "a..b" (=> "b").

share|improve this answer
    
Not the simplest, but the correct answer. –  Tamás Pap Oct 5 '12 at 6:30
var parts = filename.split('.');
return parts[parts.length-1];
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var extension = fileName.substring(fileName.lastIndexOf('.')+1);
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function file_get_ext(filename)
    {
    return typeof filename != "undefined" ? filename.substring(filename.lastIndexOf(".")+1, filename.length).toLowerCase() : false;
    }
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this code works well –  Fero Jul 2 '10 at 9:54

Try this:

function getFileExtension(filename) {
  var fileinput = document.getElementById(filename);
  if (!fileinput)
    return "";
  var filename = fileinput.value;
  if (filename.length == 0)
    return "";
  var dot = filename.lastIndexOf(".");
  if (dot == -1)
    return "";
  var extension = filename.substr(dot, filename.length);
  return extension;
}
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return filename.replace(/\.([a-zA-Z0-9]+)$/, "$1");

edit: Strangely (or maybe it's not) the $1 in the second argument of the replace method doesn't seem to work... Sorry.

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It works perfect, but you missed out that you'll have to remove all the other content of the string: return filename.replace(/^.*?\.([a-zA-Z0-9]+)$/, "$1"); –  roenving Oct 10 '08 at 14:03

I just realized that it's not enough to put a comment on p4bl0's answer, though Tom's answer clearly solves the problem:

return filename.replace(/^.*?\.([a-zA-Z0-9]+)$/, "$1");
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For most applications, a simple script such as

return /[^.]+$/.exec(filename);

would work just fine (as provided by Tom). However this is not fool proof. It does not work if the following file name is provided:

image.jpg?foo=bar

It may be a bit overkill but I would suggest using a url parser such as this one to avoid failure due to unpredictable filenames.

Using that particular function, you could get the file name like this:

var trueFileName = parse_url('image.jpg?foo=bar').file;

This will output "image.jpg" without the url vars. Then you are free to grab the file extension.

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function func() {
  var val = document.frm.filename.value;
  var arr = val.split(".");
  alert(arr[arr.length - 1]);
  var arr1 = val.split("\\");
  alert(arr1[arr1.length - 2]);
  if (arr[1] == "gif" || arr[1] == "bmp" || arr[1] == "jpeg") {
    alert("this is an image file ");
  } else {
    alert("this is not an image file");
  }
}
share|improve this answer
    
.png isn't an image? –  Leonard Pauli Jun 16 '13 at 14:44
function extension(fname) {
  var pos = fname.lastIndexOf(".");
  var strlen = fname.length;
  if (pos != -1 && strlen != pos + 1) {
    var ext = fname.split(".");
    var len = ext.length;
    var extension = ext[len - 1].toLowerCase();
  } else {
    extension = "No extension found";
  }
  return extension;
}

//usage

extension('file.jpeg')

always returns the extension lower cas so you can check it on field change works for:

file.JpEg

file (no extension)

file. (noextension)

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i just wanted to share this.

fileName.slice(fileName.lastIndexOf('.'))

although this has a downfall that files with no extension will return last string. but if you do so this will fix every thing :

   function getExtention(fileName){
     var i = fileName.lastIndexOf('.');
     if(i === -1 ) return false;
     return fileName.slice(i)
   }
share|improve this answer
    
As far as I remember slice method refers to arrays rather than to strings. For strings substr or substring will work. –  VisioN Oct 6 '13 at 8:20
    
@VisioN but i guess you should know that there is String.prototype.slice and also a Array.prototype.slice so it kinda both work ways kinda of method –  Hussein Nazzal Oct 6 '13 at 12:35
1  
Ah, yes. You are right. Completely forgot about this method. My bad. –  VisioN Oct 6 '13 at 13:26

Fast and works correctly with paths

(filename.match(/[^\\\/]\.([^.\\\/]+)$/) || [null]).pop()

Some edge cases

/path/.htaccess => null
/dir.with.dot/file => null

Solutions using split are slow and solutions with lastIndexOf don't handle edge cases.

share|improve this answer
    
What edge cases do you mean? Please refer to my solution here: stackoverflow.com/a/12900504/1249581. It works fine in all cases and much faster than any regex one. –  VisioN Oct 6 '13 at 8:17
    
I've already listed the edge cases. And your solution does NOT handle them properly. Like I've already written, try "/dir.with.dot/file". Your code returns "dot/file" which is ridiculously wrong. –  mrbrdo Oct 13 '13 at 15:41
    
No one requested to parse the path. The question was about extracting extensions from filenames. –  VisioN Oct 13 '13 at 15:59
    
Like I already told you, that was never explicitly said, and a solution which handles paths is obviously much more useful. The answer to a question on SO is supposed to be useful to other people besides the person who asked the question. I really don't think a solution that handles a superset of inputs should be downvoted. –  mrbrdo Oct 18 '13 at 15:32
2  
The downvote was for using global variable with .exec(). Your code will be better as (filename.match(/[^\\/]\.([^\\/.]+)$/) || [null]).pop(). –  VisioN Oct 18 '13 at 16:15
var filetypeArray = (file.type).split("/");
var filetype = filetypeArray[1];

This is a better approach imo.

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If you are looking for a specific extension and know its length, you can use substr:

var file1 = "50.xsl";

if (file1.substr(-4) == '.xsl') {
  // do something
}

JavaScript reference: https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/String/substr

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Beauty comes with simplicity. This is the smartest, more elegant and more efficient answer of all. I always used String.substr(-3) or String.substr(-4) to grab extensions on Windows based systems. Why would someone want to use regular expressions and crazy loops for that. –  asiby Sep 14 at 0:07

Wallacer's answer is nice, but one more checking is needed.

If file has no extension, it will use filename as extension which is not good.

Try this one:

return ( filename.indexOf('.') > 0 ) ? filename.split('.').pop().toLowerCase() : 'undefined';
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Don't forget that some files can have no extension, so:

var parts = filename.split('.');
return (parts.length > 1) ? parts.pop() : '';
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var arr=file1.split(".") return arr[1]

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Not good if the filename is "file.name.ext" (a perfectly valid filename) –  Oli Oct 10 '08 at 11:20
    
Why do you split on comma? –  PhiLho Oct 10 '08 at 11:32
    
Another good point =) –  Oli Oct 10 '08 at 11:40

protected by VisioN Mar 6 '13 at 7:43

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