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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.

Thanks!

Matt

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Pretty much the same as stackoverflow.com/questions/1991608/…. And unless you do one heck of a lot of these, worrying about efficiency is Premature Optimisation. –  Paul Nov 22 '10 at 21:28

7 Answers 7

up vote 11 down vote accepted

You can even use x.slice(0, -4). If you know how long file extension is, there is no need for index. If yo don't know the length @John Hartsock regex would be the right approach.

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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! –  MattDiPasquale Nov 23 '10 at 6:12

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

x.replace(/\.[^/.]+$/, "")
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4  
You probably want to also disallow / as a path separator, so the regexp is /\.[^/.]+$/ –  gsnedders Nov 22 '10 at 21:35

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.substr(0, x.lastIndexOf('.'));

OR

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

OR with the assumption filename only has one dot:

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

OR

parts = x.split(".");
x = parts[0];
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That's not really an answer is it? –  Josef Pfleger Nov 22 '10 at 21:30
    
That better? :) –  Jeff B Nov 22 '10 at 21:37
    
+1 for the split idea –  basarat May 10 '13 at 1:47
1  
?? 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

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);
}
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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

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.

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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");
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Regex is too heavy and unreadable for such simple task –  Tomas Jun 4 at 11:13

Another one-liner:

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