453

Is there a different way, other than process.cwd(), to get the pathname of the current project's root-directory. Does Node implement something like ruby's property, Rails.root,. I'm looking for something that is constant, and reliable.

3
  • 1
    Any chance you could un-accept the accepted, wrong, answer? Jul 23, 2014 at 18:28
  • 18
    try process.env.PWD... see my answer below. May 26, 2015 at 18:18
  • try path.dirname(require.main.filename) Nov 4, 2021 at 7:00

35 Answers 35

812

There are many ways to approach this, each with their own pros and cons:

require.main.filename

From http://nodejs.org/api/modules.html:

When a file is run directly from Node, require.main is set to its module. That means that you can determine whether a file has been run directly by testing require.main === module

Because module provides a filename property (normally equivalent to __filename), the entry point of the current application can be obtained by checking require.main.filename.

So if you want the base directory for your app, you can do:

const { dirname } = require('path');
const appDir = dirname(require.main.filename);

Pros & Cons

This will work great most of the time, but if you're running your app with a launcher like pm2 or running mocha tests, this method will fail. This also won't work when using Node.js ES modules, where require.main is not available.

module.paths

Node publishes all the module search paths to module.paths. We can traverse these and pick the first one that resolves.

async function getAppPath() {
  const { dirname } = require('path');
  const { constants, promises: { access } } = require('fs');
  
  for (let path of module.paths) {
    try {
      await access(path, constants.F_OK);
      return dirname(path);
    } catch (e) {
      // Just move on to next path
    }
  }
}

Pros & Cons

This will sometimes work, but is not reliable when used in a package because it may return the directory that the package is installed in rather than the directory that the application is installed in.

Using a global variable

Node has a global namespace object called global — anything that you attach to this object will be available everywhere in your app. So, in your index.js (or app.js or whatever your main app file is named), you can just define a global variable:

// index.js
var path = require('path');
global.appRoot = path.resolve(__dirname);

// lib/moduleA/component1.js
require(appRoot + '/lib/moduleB/component2.js');

Pros & Cons

Works consistently, but you have to rely on a global variable, which means that you can't easily reuse components/etc.

process.cwd()

This returns the current working directory. Not reliable at all, as it's entirely dependent on what directory the process was launched from:

$ cd /home/demo/
$ mkdir subdir
$ echo "console.log(process.cwd());" > subdir/demo.js
$ node subdir/demo.js
/home/demo
$ cd subdir
$ node demo.js
/home/demo/subdir

app-root-path

To address this issue, I've created a node module called app-root-path. Usage is simple:

const appRoot = require('app-root-path');
const myModule = require(`${ appRoot }/lib/my-module.js`);

The app-root-path module uses several techniques to determine the root path of the app, taking into account globally installed modules (for example, if your app is running in /var/www/ but the module is installed in ~/.nvm/v0.x.x/lib/node/). It won't work 100% of the time, but it's going to work in most common scenarios.

Pros & Cons

Works without configuration in most circumstances. Also provides some nice additional convenience methods (see project page). The biggest con is that it won't work if:

  • You're using a launcher, like pm2
  • AND, the module isn't installed inside your app's node_modules directory (for example, if you installed it globally)

You can get around this by either setting a APP_ROOT_PATH environmental variable, or by calling .setPath() on the module, but in that case, you're probably better off using the global method.

NODE_PATH environmental variable

If you're looking for a way to determine the root path of the current app, one of the above solutions is likely to work best for you. If, on the other hand, you're trying to solve the problem of loading app modules reliably, I highly recommend looking into the NODE_PATH environmental variable.

Node's Modules system looks for modules in a variety of locations. One of these locations is wherever process.env.NODE_PATH points. If you set this environmental variable, then you can require modules with the standard module loader without any other changes.

For example, if you set NODE_PATH to /var/www/lib, the the following would work just fine:

require('module2/component.js');
// ^ looks for /var/www/lib/module2/component.js

A great way to do this is using npm:

{
  "scripts": {
    "start": "NODE_PATH=. node app.js"
  }
}

Now you can start your app with npm start and you're golden. I combine this with my enforce-node-path module, which prevents accidentally loading the app without NODE_PATH set. For even more control over enforcing environmental variables, see checkenv.

One gotcha: NODE_PATH must be set outside of the node app. You cannot do something like process.env.NODE_PATH = path.resolve(__dirname) because the module loader caches the list of directories it will search before your app runs.

[added 4/6/16] Another really promising module that attempts to solve this problem is wavy.

26
  • 1
    @Kevin in this case, mocha is the entry point of your application. This is just an example of why finding the "project root" is so difficult--it depends so much on the situation and what you mean by "project root."
    – inxilpro
    Apr 28, 2014 at 19:37
  • 1
    @Kevin I completely understand. My point is just that the concept of "project root" is much easier for a human to understand than a computer. If you want a fool-proof method, you need to configure it. Using require.main.filename will work most of the time, but not all of the time.
    – inxilpro
    Apr 29, 2014 at 18:08
  • 3
    Tangentially related: this is an incredibly clever way to organize your Node project so that you don't have to worry about this problem so much: allanhortle.com/2015/02/04/…
    – inxilpro
    Feb 5, 2015 at 2:11
  • 1
    I don't know if there was a change in pm2 or a change with Node.js but require.main.filename appears to work with pm2. Don't know about mocha. May 6, 2016 at 14:01
  • 9
    path.parse(process.mainModule.filename).dir Sep 14, 2016 at 18:41
80

__dirname isn't a global; it's local to the current module so each file has its own local, different value.

If you want the root directory of the running process, you probably do want to use process.cwd().

If you want predictability and reliability, then you probably need to make it a requirement of your application that a certain environment variable is set. Your app looks for MY_APP_HOME (Or whatever) and if it's there, and the application exists in that directory then all is well. If it is undefined or the directory doesn't contain your application then it should exit with an error prompting the user to create the variable. It could be set as a part of an install process.

You can read environment variables in node with something like process.env.MY_ENV_VARIABLE.

2
  • 4
    If used with caution, this could work pretty well. But it would give different results when doing bin/server.js vs cd bin && server.js. (assuming these js files are marked being executable)
    – Myrne Stol
    Jun 7, 2013 at 16:21
  • 2
    Using process.cwd() has worked like a charm for me, even when running mocha tests. Thank you! Mar 23, 2018 at 14:00
57

1- create a file in the project root call it settings.js

2- inside this file add this code

module.exports = {
    POST_MAX_SIZE : 40 , //MB
    UPLOAD_MAX_FILE_SIZE: 40, //MB
    PROJECT_DIR : __dirname
};

3- inside node_modules create a new module name it "settings" and inside the module index.js write this code:

module.exports = require("../../settings");

4- and any time you want your project directory just use

var settings = require("settings");
settings.PROJECT_DIR; 

in this way you will have all project directories relative to this file ;)

9
  • 45
    -1: To load the settings file you need a path, to then get reference path to that file? Not solving anything...
    – goliatone
    Aug 27, 2013 at 18:33
  • 2
    Upvoted for taking the time to review and edit. It still feels brittle, but that might just be because there is not a better way to achieve this
    – goliatone
    Nov 23, 2013 at 4:48
  • 12
    Something users will want to keep in mind with this approach is that node_modules is often excluded from version control. So if you work with a team or ever need to clone your repository, you'll have to come up with another solution to keep that settings file in sync.
    – Travesty3
    Jul 7, 2016 at 15:05
  • 1
    @goliatone With his solution you can get the file from anywhere without knowing its path, all you have to know is "settings". Without it, you would have to explicitly know how many folders to back out of until you reach the project directory. This works because node automatically searches node_modules and always knows where that is.
    – user7917402
    May 26, 2017 at 1:43
  • 1
    @fareednamrouti If you happen to move the settings.js file from the app root directory to another location, say, <app_root_path>/settings/settings.py then your code breaks. A step better would be to actually "hardcode" (which itself is bad but still better than what youve done) the actual path say: PROJECT_DIR: "." This could be changed later if someone chooses to move the file. Jan 30, 2018 at 14:23
43

the easiest way to get the global root (assuming you use NPM to run your node.js app 'npm start', etc)

var appRoot = process.env.PWD;

If you want to cross-verify the above

Say you want to cross-check process.env.PWD with the settings of you node.js application. if you want some runtime tests to check the validity of process.env.PWD, you can cross-check it with this code (that I wrote which seems to work well). You can cross-check the name of the last folder in appRoot with the npm_package_name in your package.json file, for example:

    var path = require('path');

    var globalRoot = __dirname; //(you may have to do some substring processing if the first script you run is not in the project root, since __dirname refers to the directory that the file is in for which __dirname is called in.)

    //compare the last directory in the globalRoot path to the name of the project in your package.json file
    var folders = globalRoot.split(path.sep);
    var packageName = folders[folders.length-1];
    var pwd = process.env.PWD;
    var npmPackageName = process.env.npm_package_name;
    if(packageName !== npmPackageName){
        throw new Error('Failed check for runtime string equality between globalRoot-bottommost directory and npm_package_name.');
    }
    if(globalRoot !== pwd){
        throw new Error('Failed check for runtime string equality between globalRoot and process.env.PWD.');
    }

you can also use this NPM module: require('app-root-path') which works very well for this purpose

4
  • 7
    This works great on (most) unix systems. As soon as you want your npm module/app to work on Windows, PWD is undefined and this fails. Mar 2, 2017 at 16:10
  • 3
    process.cwd() Oct 5, 2018 at 19:51
  • 1
    @MuhammadUmer why would process.cwd() always be the same as project root? Oct 5, 2018 at 19:54
  • if you call it in root file then it'd be Oct 5, 2018 at 20:30
43

Simple:

require('path').resolve('./')
2
23

As simple as adding this line to your module in the root, usually it is app.js or app.ts.

global.__basedir = __dirname;

Then _basedir will be accessible to all your modules.

Note: For typescript implementation, follow the above step and then you will be able to use the root directory path using global.__basedir

2
  • 1
    simple, easy and effective
    – Zorox
    Dec 24, 2021 at 0:14
  • is there any way to typescript type this? otherwise i need to put ts-ignore everywhere __basedir is referenced. a bit like adding extra fields to the window scope...
    – dcsan
    Feb 9 at 4:54
18

I've found this works consistently for me, even when the application is invoked from a sub-folder, as it can be with some test frameworks, like Mocha:

process.mainModule.paths[0].split('node_modules')[0].slice(0, -1);

Why it works:

At runtime node creates a registry of the full paths of all loaded files. The modules are loaded first, and thus at the top of this registry. By selecting the first element of the registry and returning the path before the 'node_modules' directory we are able to determine the root of the application.

It's just one line of code, but for simplicity's sake (my sake), I black boxed it into an NPM module:

https://www.npmjs.com/package/node-root.pddivine

Enjoy!

EDIT:

process.mainModule is deprecated as of v14.0.0

Use require.main instead:

require.main.paths[0].split('node_modules')[0].slice(0, -1);

4
  • 2
    process.mainModule deprectaed since: v14.0.0 - use require.main.paths[0].split('node_modules')[0].slice(0, -1); instead.
    – RobC
    May 6, 2020 at 11:12
  • 1
    What happens if you have more than one node_modules folder, as is the case with Electron apps Dec 15, 2021 at 14:45
  • The node_modules/ directory is always located on the root directory of the project. That's the reason this works Aug 22 at 20:49
  • shows deprecated
    – NiRUS
    Sep 14 at 12:04
14

All these "root dirs" mostly need to resolve some virtual path to a real pile path, so may be you should look at path.resolve?

var path= require('path');
var filePath = path.resolve('our/virtual/path.ext');
13

Try traversing upwards from __dirname until you find a package.json, and decide that's the app main root directory your current file belongs to.

According to Node docs

The package.json file is normally located at the root directory of a Node.js project.

const fs = require('fs')
const path = require('path')

function getAppRootDir () {
  let currentDir = __dirname
  while(!fs.existsSync(path.join(currentDir, 'package.json'))) {
    currentDir = path.join(currentDir, '..')
  }
  return currentDir
}
1
  • That's the best solution, indeed! Every NPM project by default has only a single unique package.json always located on the project root directory. Aug 22 at 20:51
11

Preamble

This is a very old question, but it seems to hit the nerve in 2020 as much as back in 2012. I've checked all the other answers and could not find the following technique mentioned (it has its own limitations, but the others are not applicable to every situation either):

Git + child process

If you are using Git as your version control system, the problem of determining the project root can be reduced to (which I would consider the proper root of the project - after all, you would want your VCS to have the fullest visibility scope possible):

retrieve repository root path

Since you have to run a CLI command to do that, we need to spawn a child process. Additionally, as project root is highly unlikely to change mid-runtime, we can use the synchronous version of the child_process module at startup.

I found spawnSync() to be the most suitable for the job. As for the actual command to run, git worktree (with a --porcelain option for ease of parsing) is all that is needed to retrieve the absolute path of the root.

In the sample at the end of the answer, I opted to return an array of paths because there might be multiple worktrees (although they are likely to have common paths) just to be sure. Note that as we utilize a CLI command, shell option should be set to true (security shouldn't be an issue as there is no untrusted input).

Approach comparison and fallbacks

Understanding that a situation where VCS can be inaccessible is possible, I've included a couple of fallbacks after analyzing docs and other answers. The proposed solutions boil down to (excluding third-party modules & packages):

Solution Advantage Main Problem
__filename points to module file relative to module
__dirname points to module dir same as __filename
node_modules tree walk nearly guaranteed root complex tree walking if nested
path.resolve(".") root if CWD is root same as process.cwd()
process.argv\[1\] same as __filename same as __filename
process.env.INIT_CWD points to npm run dir requires npm && CLI launch
process.env.PWD points to current dir relative to (is the) launch dir
process.cwd() same as env.PWD process.chdir(path) at runtime
require.main.filename root if === module fails on required modules

From the comparison table above, the following approaches are the most universal:

  • require.main.filename as an easy way to get the root if require.main === module is met
  • node_modules tree walk proposed recently uses another assumption:

if the directory of the module has node_modules dir inside, it is likely to be the root

For the main app, it will get the app root and for a module — its project root.

Fallback 1. Tree walk

My implementation uses a more lax approach by stopping once a target directory is found as for a given module its root is the project root. One can chain the calls or extend it to make the search depth configurable:

/**
 * @summary gets root by walking up node_modules
 * @param {import("fs")} fs
 * @param {import("path")} pt
 */
const getRootFromNodeModules = (fs, pt) =>

    /**
     * @param {string} [startPath]
     * @returns {string[]}
     */
    (startPath = __dirname) => {

        //avoid loop if reached root path
        if (startPath === pt.parse(startPath).root) {
            return [startPath];
        }

        const isRoot = fs.existsSync(pt.join(startPath, "node_modules"));

        if (isRoot) {
            return [startPath];
        }

        return getRootFromNodeModules(fs, pt)(pt.dirname(startPath));
    };

Fallback 2. Main module

The second implementation is trivial:

/**
 * @summary gets app entry point if run directly
 * @param {import("path")} pt
 */
const getAppEntryPoint = (pt) =>

    /**
     * @returns {string[]}
     */
    () => {

        const { main } = require;

        const { filename } = main;

        return main === module ?
            [pt.parse(filename).dir] :
            [];
    };

Implementation

I would suggest using the tree walker as the preferred fallback because it is more versatile:

const { spawnSync } = require("child_process");
const pt = require('path');
const fs = require("fs");

/**
 * @summary returns worktree root path(s)
 * @param {function : string[] } [fallback]
 * @returns {string[]}
 */
const getProjectRoot = (fallback) => {

    const { error, stdout } = spawnSync(
        `git worktree list --porcelain`,
        {
            encoding: "utf8",
            shell: true
        }
    );

    if (!stdout) {
        console.warn(`Could not use GIT to find root:\n\n${error}`);
        return fallback ? fallback() : [];
    }

    return stdout
        .split("\n")
        .map(line => {
            const [key, value] = line.split(/\s+/) || [];
            return key === "worktree" ? value : "";
        })
        .filter(Boolean);
};

Disadvantages

The most obvious one is having Git installed and initialized which might be undesirable/implausible (side note: having Git installed on production servers is not uncommon, nor is it unsafe). Can be mediated by fallbacks as described above.

8

There is an INIT_CWD property on process.env. This is what I'm currently working with in my project.

const {INIT_CWD} = process.env; // process.env.INIT_CWD 
const paths = require(`${INIT_CWD}/config/paths`);

Good Luck...

3
  • 2
    Worked like a charm for a package that manipulate the project it is being called from as a postinstall step. I have however not yet tested it in another layer of dependency, where a project uses a dependency that uses my package. Nov 7, 2019 at 7:12
  • 2
    @JamesDev, INIT_CWD resolves to the directory from which the npm-script was exectued.
    – Aakash
    Nov 8, 2019 at 3:30
  • 1
    @Aakash, require doesn't work with ESM, but I succeeded to get a root just with process.env.INIT_CWD.
    – Mike
    Aug 15 at 13:11
7

Actually, i find the perhaps trivial solution also to most robust: you simply place the following file at the root directory of your project: root-path.js which has the following code:

import * as path from 'path'
const projectRootPath = path.resolve(__dirname)
export const rootPath = projectRootPath
5

A technique that I've found useful when using express is to add the following to app.js before any of your other routes are set

// set rootPath
app.use(function(req, res, next) {
  req.rootPath = __dirname;
  next();
});

app.use('/myroute', myRoute);

No need to use globals and you have the path of the root directory as a property of the request object.

This works if your app.js is in the root of your project which, by default, it is.

4

Add this somewhere towards the start of your main app file (e.g. app.js):

global.__basedir = __dirname;

This sets a global variable that will always be equivalent to your app's base dir. Use it just like any other variable:

const yourModule = require(__basedir + '/path/to/module.js');

Simple...

4

I know this one is already too late. But we can fetch root URL by two methods

1st method

var path = require('path');
path.dirname(require.main.filename);

2nd method

var path = require('path');
path.dirname(process.mainModule.filename);

Reference Link:- https://gist.github.com/geekiam/e2e3e0325abd9023d3a3

2

if you want to determine project root from a running node.js application you can simply just too.

process.mainModule.path
1
  • [tsserver 6385] 'mainModule' is deprecated
    – jpoppe
    Dec 25, 2020 at 9:08
2

It work for me

process.env.PWD
2

process.mainModule is deprecated since v 14.0.0. When referring to the answer, please use require.main, the rest still holds.

process.mainModule.paths
  .filter(p => !p.includes('node_modules'))
  .shift()

Get all paths in main modules and filter out those with "node_modules", then get the first of remaining path list. Unexpected behavior will not throw error, just an undefined.

Works well for me, even when calling ie $ mocha.

1

At top of main file add:

mainDir = __dirname;

Then use it in any file you need:

console.log('mainDir ' + mainDir);
  • mainDir is defined globally, if you need it only in current file - use __dirname instead.
  • main file is usually in root folder of the project and is named like main.js, index.js, gulpfile.js.
1

This will step down the directory tree until it contains a node_modules directory, which usually indicates your project root:

const fs = require('fs')
const path = require('path')

function getProjectRoot(currentDir = __dirname.split(path.sep)) {
  if (!currentDir.length) {
    throw Error('Could not find project root.')
  }
  const nodeModulesPath = currentDir.concat(['node_modules']).join(path.sep)
  if (fs.existsSync(nodeModulesPath) && !currentDir.includes('node_modules')) {
    return currentDir.join(path.sep)
  }
  return this.getProjectRoot(currentDir.slice(0, -1))
}

It also makes sure that there is no node_modules in the returned path, as that means that it is contained in a nested package install.

0

Create a function in app.js

/*Function to get the app root folder*/

var appRootFolder = function(dir,level){
    var arr = dir.split('\\');
    arr.splice(arr.length - level,level);
    var rootFolder = arr.join('\\');
    return rootFolder;
}

// view engine setup
app.set('views', path.join(appRootFolder(__dirname,1),'views'));
0

I use this.

For my module named mymodule

var BASE_DIR = __dirname.replace(/^(.*\/mymodule)(.*)$/, '$1')

0

Make it sexy 💃🏻.

const users = require('../../../database/users'); // 👎 what you have
// OR
const users = require('$db/users'); // 👍 no matter how deep you are
const products = require('/database/products'); // 👍 alias or pathing from root directory


Three simple steps to solve the issue of ugly path.

  1. Install the package: npm install sexy-require --save
  2. Include require('sexy-require') once on the top of your main application file.

    require('sexy-require');
    const routers = require('/routers');
    const api = require('$api');
    ...
    
  3. Optional step. Path configuration can be defined in .paths file on root directory of your project.

    $db = /server/database
    $api-v1 = /server/api/legacy
    $api-v2 = /server/api/v2
    
2
  • Seems decent, too bad it had such a ridiculous name.
    – JHH
    Oct 10, 2019 at 12:41
  • @JHH well... I had to find a better name
    – sultan
    Nov 14, 2019 at 10:06
0

You can simply add the root directory path in the express app variable and get this path from the app. For this add app.set('rootDirectory', __dirname); in your index.js or app.js file. And use req.app.get('rootDirectory') for getting the root directory path in your code.

0

Old question, I know, however no question mention to use progress.argv. The argv array includes a full pathname and filename (with or without .js extension) that was used as parameter to be executed by node. Because this also can contain flags, you must filter this.

This is not an example you can directly use (because of using my own framework) but I think it gives you some idea how to do it. I also use a cache method to avoid that calling this function stress the system too much, especially when no extension is specified (and a file exist check is required), for example:

node myfile

or

node myfile.js

That's the reason I cache it, see also code below.


function getRootFilePath()
{
        if( !isDefined( oData.SU_ROOT_FILE_PATH ) )
        {
            var sExt = false;

            each( process.argv, function( i, v )
            {
                 // Skip invalid and provided command line options
                if( !!v && isValidString( v ) && v[0] !== '-' )
                {
                    sExt = getFileExt( v );

                    if( ( sExt === 'js' ) || ( sExt === '' && fileExists( v+'.js' )) )
                    {

                        var a = uniformPath( v ).split("/"); 

                         // Chop off last string, filename
                        a[a.length-1]='';

                         // Cache it so we don't have to do it again.
                        oData.SU_ROOT_FILE_PATH=a.join("/"); 

                         // Found, skip loop
                        return true;
                    }
                }
            }, true ); // <-- true is: each in reverse order
        }

        return oData.SU_ROOT_FILE_PATH || '';
    }
}; 
0

Finding the root path of an electron app could get tricky. Because the root path is different for the main process and renderer under different conditions such as production, development and packaged conditions.

I have written a npm package electron-root-path to capture the root path of an electron app.

$ npm install electron-root-path

or 

$ yarn add electron-root-path


// Import ES6 way
import { rootPath } from 'electron-root-path';

// Import ES2015 way
const rootPath = require('electron-root-path').rootPath;

// e.g:
// read a file in the root
const location = path.join(rootPath, 'package.json');
const pkgInfo = fs.readFileSync(location, { encoding: 'utf8' });
0

This will do:

path.join(...process.argv[1].split(/\/|\\/).slice(0, -1))
0
path.dirname(process.mainModule.filename);
1
  • process.mainModule was deprecated in favor of require.main. (and if you're using ES6 modules, neither of these will work...) May 23 at 16:24
0

In modern versions of npm, you can add an entry to exports, to use as a shorthand. Note that if you want to be able to reference both the root itself and files within that root, you'll need both ./ and ./* respectively:

package.json:

{
  "imports": {
    "#root": "./",
    "#root/*": "./*",
    ...
  },
  ...
}

./index.js:

import {namedExport} from '#root/file.js'

./file.js:

export const namedExport = {
  hi: "world",
};

Then:

$ node --experimental-specifier-resolution=node index.js

You could extend this further with a constants.js file, where you may use one of the methods in the above answers, or input an absolute path, should you require the path itself

0

You can also use git rev-parse --show-toplevel Assuming you are working on a git repository

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.