433

See code:

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

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

33 Answers 33

0

In node.js, this can be achieved by the following code:

var file1 ="50.xsl";
var path = require('path');
console.log(path.parse(file1).name);
0

I prefer to use lodash for most things so here's a solution:

function getExtensionFromFilename(filename) {
    let extension = '';
    if (filename > '') {
        let parts = _.split(filename, '.');
        if (parts.length >= 2) {
        extension = _.last(parts);
    }
    return extension;
}
0

"one-liner" to get filename and extension using reduce and array destructuring :

var str = "filename.with_dot.png";
var [filename, extension] = str.split('.').reduce((acc, val, i, arr) => (i == arr.length - 1) ? [acc[0].substring(1), val] : [[acc[0], val].join('.')], [])

console.log({filename, extension});

with better indentation :

var str = "filename.with_dot.png";
var [filename, extension] = str.split('.')
   .reduce((acc, val, i, arr) => (i == arr.length - 1) 
       ? [acc[0].substring(1), val] 
       : [[acc[0], val].join('.')], [])


// {
//   "filename": "filename.with_dot",
//   "extension": "png"
// }

protected by VisioN Mar 6 '13 at 7:43

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