514

I can't seem to get any search results that explain how to do this.

All I want to do is be able to know if a given path is a file or a directory (folder).

1
  • Note that there are also symlinks, which can link to files, link to directories, or be broken. There are also other kinds of paths besides files, directories, and symlinks. So you have to be careful not to just check for "directory" and assume everything else is "file", etc. And you have to think about whether you want symlinks to be followed transparently. One gotcha is that a Dirent returned by scandir() and a Stat returned by stat() both have isFile() and isDirectory() methods but the former don't follow symlinks and the latter do. Jul 17 at 5:52

8 Answers 8

814

The following should tell you. From the docs:

fs.lstatSync(path_string).isDirectory() 

Objects returned from fs.stat() and fs.lstat() are of this type.

stats.isFile()
stats.isDirectory()
stats.isBlockDevice()
stats.isCharacterDevice()
stats.isSymbolicLink() // (only valid with fs.lstat())
stats.isFIFO()
stats.isSocket()

NOTE:

The above solution will throw an Error if; for ex, the file or directory doesn't exist.

If you want a true or false approach, try fs.existsSync(dirPath) && fs.lstatSync(dirPath).isDirectory(); as mentioned by Joseph in the comments below.

9
  • 20
    Note that the asynchronous version is usually preferable if you care about general app performance.
    – AlexMA
    Mar 14, 2014 at 20:10
  • 49
    Keep in mind that if the directory or file does not exist, then you will get an error back.
    – Ethan Mick
    Dec 27, 2014 at 20:12
  • 20
    let isDirExists = fs.existsSync(dirPath) && fs.lstatSync(dirPath).isDirectory(); Jul 29, 2018 at 9:15
  • 1
    I find it odd that when they first made lstat they didnt just include an exists() function in there? I guess this is why node_modules is deeper than a black hole.
    – Johncl
    Feb 17, 2021 at 7:50
  • 1
    Why is everyone using fs.lstat()? The docs say it will always be false: "If the <fs.Stats> object was obtained from fs.lstat(), this method [<fs.Stats>.isDirectory()] will always return false. This is because fs.lstat() returns information about a symbolic link itself and not the path it resolves to."
    – snickle
    Feb 3 at 21:33
88

Update: Node.Js >= 10

We can use the new fs.promises API

const fs = require('fs').promises;

(async() => {
    const stat = await fs.lstat('test.txt');
    console.log(stat.isFile());
})().catch(console.error)

Any Node.Js version

Here's how you would detect if a path is a file or a directory asynchronously, which is the recommended approach in node. using fs.lstat

const fs = require("fs");

let path = "/path/to/something";

fs.lstat(path, (err, stats) => {

    if(err)
        return console.log(err); //Handle error

    console.log(`Is file: ${stats.isFile()}`);
    console.log(`Is directory: ${stats.isDirectory()}`);
    console.log(`Is symbolic link: ${stats.isSymbolicLink()}`);
    console.log(`Is FIFO: ${stats.isFIFO()}`);
    console.log(`Is socket: ${stats.isSocket()}`);
    console.log(`Is character device: ${stats.isCharacterDevice()}`);
    console.log(`Is block device: ${stats.isBlockDevice()}`);
});

Note when using the synchronous API:

When using the synchronous form any exceptions are immediately thrown. You can use try/catch to handle exceptions or allow them to bubble up.

try{
     fs.lstatSync("/some/path").isDirectory()
}catch(e){
   // Handle error
   if(e.code == 'ENOENT'){
     //no such file or directory
     //do something
   }else {
     //do something else
   }
}
1
  • Is this still considered experimental as of Mar. 2020? Where can we look to see? -- Oops I see when I click the link above that it's now stable (which implies no longer experimental).
    – alfreema
    Mar 9, 2020 at 18:54
31

Seriously, question exists five years and no nice facade?

function isDir(path) {
    try {
        var stat = fs.lstatSync(path);
        return stat.isDirectory();
    } catch (e) {
        // lstatSync throws an error if path doesn't exist
        return false;
    }
}
2
  • [Error: EACCES: permission denied, scandir '/tmp/snap.skype'] when I provide /tmp/ which is a dir and accessible.
    – Marinos An
    Jun 22, 2021 at 18:02
  • @MarinosAn I would assume you don't have read permission for that file, so it fails.
    – Clonkex
    Mar 7 at 2:28
14

Depending on your needs, you can probably rely on node's path module.

You may not be able to hit the filesystem (e.g. the file hasn't been created yet) and tbh you probably want to avoid hitting the filesystem unless you really need the extra validation. If you can make the assumption that what you are checking for follows .<extname> format, just look at the name.

Obviously if you are looking for a file without an extname you will need to hit the filesystem to be sure. But keep it simple until you need more complicated.

const path = require('path');

function isFile(pathItem) {
  return !!path.extname(pathItem);
}
2
  • 3
    Obviously this won't work in all situations but it's much quicker and easier than the other answers if you can make the needed assumptions.
    – electrovir
    Apr 9, 2019 at 2:47
  • 4
    the directory could be named folder.txt and this would say its a file, or the file could be LICENSE with no extensin
    – wow ow
    Jun 23, 2020 at 11:43
6

If you need this when iterating over a directory1

Since Node 10.10+, fs.readdir has withFileTypes option which makes it return directory entry fs.Dirent instead of just filename. Directory entry contains its name and useful methods such as isDirectory or isFile, so you don't need to call fs.lstat explicitly!

You can use it like this then:

import { promises as fs } from 'fs';

// ./my-dir has two subdirectories: dir-a, and dir-b
const dirEntries = await fs.readdir('./my-dir', { withFileTypes: true });

// let's filter all directories in ./my-dir
const onlyDirs = dirEntries.filter(de => de.isDirectory()).map(de => de.name);
// onlyDirs is now [ 'dir-a', 'dir-b' ]

1) Because that's how I've found this question.

3

Here's a function that I use. Nobody is making use of promisify and await/async feature in this post so I thought I would share.

const promisify = require('util').promisify;
const lstat = promisify(require('fs').lstat);

async function isDirectory (path) {
  try {
    return (await lstat(path)).isDirectory();
  }
  catch (e) {
    return false;
  }
}

Note : I don't use require('fs').promises; because it has been experimental for one year now, better not rely on it.

1

The answers above check if a filesystem contains a path that is a file or directory. But it doesn't identify if a given path alone is a file or directory.

The answer is to identify directory-based paths using "/." like --> "/c/dos/run/." <-- trailing period.

Like a path of a directory or file that has not been written yet. Or a path from a different computer. Or a path where both a file and directory of the same name exists.

// /tmp/
// |- dozen.path
// |- dozen.path/.
//    |- eggs.txt
//
// "/tmp/dozen.path" !== "/tmp/dozen.path/"
//
// Very few fs allow this. But still. Don't trust the filesystem alone!

// Converts the non-standard "path-ends-in-slash" to the standard "path-is-identified-by current "." or previous ".." directory symbol.
function tryGetPath(pathItem) {
    const isPosix = pathItem.includes("/");
    if ((isPosix && pathItem.endsWith("/")) ||
        (!isPosix && pathItem.endsWith("\\"))) {
        pathItem = pathItem + ".";
    }
    return pathItem;
}
// If a path ends with a current directory identifier, it is a path! /c/dos/run/. and c:\dos\run\.
function isDirectory(pathItem) {
    const isPosix = pathItem.includes("/");
    if (pathItem === "." || pathItem ==- "..") {
        pathItem = (isPosix ? "./" : ".\\") + pathItem;
    }
    return (isPosix ? pathItem.endsWith("/.") || pathItem.endsWith("/..") : pathItem.endsWith("\\.") || pathItem.endsWith("\\.."));
} 
// If a path is not a directory, and it isn't empty, it must be a file
function isFile(pathItem) {
    if (pathItem === "") {
        return false;
    }
    return !isDirectory(pathItem);
}

Node version: v11.10.0 - Feb 2019

Last thought: Why even hit the filesystem?

4
  • what if the folder name has a dot at the end of it, like .git or even myFolder.txt?
    – wow ow
    Jun 23, 2020 at 11:44
  • You have to understand posix filepath conventions (which windows, in part, adheres to since Windows is posix complient in the kernel level). Please read stackoverflow.com/questions/980255/… and en.wikipedia.org/wiki/… Jun 23, 2020 at 16:06
  • Didn't really answer this did I? .git and myFolder.txt can be either a folder or a file. You don't know until you check. Since folders are also considered file, you cannot have a folder and a file named the same. .git/. and myFolder.txt/. are both folders. .git/ and myFolder.txt/ are all the files within that folder. man readline documents this (obscurely). The lone . is special. files/folders containing . are not. Apr 16, 2021 at 16:08
  • . and .. are both special Apr 16, 2021 at 16:14
0

I could check if a directory or file exists using this:

// This returns if the file is not a directory.
if(fs.lstatSync(dir).isDirectory() == false) return;

// This returns if the folder is not a file.
if(fs.lstatSync(dir).isFile() == false) return;

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