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I would like to require my files always by the root of my project and not relative to the current module.

For example if you look at https://github.com/visionmedia/express/blob/2820f2227de0229c5d7f28009aa432f9f3a7b5f9/examples/downloads/app.js line 6 you will see

express = require('../../')

That's really bad IMO. Imagine I would like to put all my examples closer to the root only by one level. That would be impossible, because I would have to update more than 30 examples and many times within each example. To this:

express = require('../')

My solution would be to have a special case for root based: if a string starts with an $ then it's relative to the root folder of the project.

Any help is appreciated, thanks

Update 2

Now I'm using require.js which allows you to write in one way and works both on client and on server. Require.js also allows you to create custom paths.-«

Update 3

Now I moved to webpack + gulp and I use enhanced-require to handle modules on the server side. See here the rationale: http://hackhat.com/p/110/module-loader-webpack-vs-requirejs-vs-browserify/

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If you ever decide to use an explicit root path constant/variable, this answer works for that. The solution uses a tiny github module to determine the root path. –  steampowered Jun 11 at 18:33

19 Answers 19

The big picture

It seems "really bad" but give it time. It is, in fact, really good. The explicit require()s give a total transparency and ease of understanding that is like a breath of fresh air during a project life cycle.

Think of it this way: You are reading an example, dipping your toes into Node.js and you've decided it is "really bad IMO." You are second-guessing leaders of the Node.js community, people who have logged more hours writing and maintaining Node.js applications than anyone. What is the chance the author made such a rookie mistake? (And I agree, from my Ruby and Python background, it seems at first like a disaster.)

There is a lot of hype and counter-hype surrounding Node.js. But when the dust settles, we will acknowledge that explicit modules and "local first" packages were a major driver of adoption.

The common case

Of course, node_modules from the current directory, then the parent, then grandparent, great-grandparent, etc. is searched. So packages you have installed already work this way. Usually you can require("express") from anywhere in your project and it works fine.

If you find yourself loading common files from the root of your project (perhaps because they are common utility functions), then that is a big clue that it's time to make a package. Packages are very simple: move your files into node_modules/ and put a package.json there. Voila! Everything in that namespace is accessible from your entire project. Packages are the correct way to get your code into a global namespace.

Other workarounds

I personally don't use these techniques, but they do answer your question, and of course you know your own situation better than I.

You can set $NODE_PATH to your project root. That directory will be searched when you require().

Next, you could compromise and require a common, local file from all your examples. That common file simply re-exports the true file in the grandparent directory.

examples/downloads/app.js (and many others like it)

var express = require('./express')

examples/downloads/express.js

module.exports = require('../../')

Now when you relocate those files, the worst-case is fixing the one shim module.

share|improve this answer
    
So early in the Node.js life cycle, it is too soon to call anything "bad." If it works for you, if it helps you ship your product, then it is good. So your examples are good! (To me, the only thing to avoid is $NODE_PATH since it works outside the app, before the app runs.) The Python community has built its values of "being pythonic" and "there's one obvious way to do it"; and the Node.js community is coalescing on the value of "ship it now, worry about maintenance later." –  JasonSmith Jun 3 '12 at 0:27
3  
I agree that the Node.js guys must have chosen relative require for a reason. I just can't see its advantages, neither from your answer. It still feels "bad" to me ;) –  Adam Schmideg Jul 26 '13 at 9:04
4  
“You are second-guessing leaders of the Node.js community” - Same leaders decided to use callbacks instead of futures/promises. Majority of my nodejs consulting involves cursing said "leaders", and convincing people to move to JVM. Which is much easier after few months of using nodejs :) –  David Sergey Oct 17 '13 at 15:03
    
@nirth, move to JVM? For God's sake, why? –  Ivancho Feb 27 '14 at 13:21
2  
@Ivancho Scala and Clojure :) Though for current project we've decided to go with Python. –  David Sergey Feb 28 '14 at 8:52

There's a really interesting section in the Browserify Handbook:

avoiding ../../../../../../..

Not everything in an application properly belongs on the public npm and the overhead of setting up a private npm or git repo is still rather large in many cases. Here are some approaches for avoiding the ../../../../../../../ relative paths problem.

node_modules

People sometimes object to putting application-specific modules into node_modules because it is not obvious how to check in your internal modules without also checking in third-party modules from npm.

The answer is quite simple! If you have a .gitignore file that ignores node_modules:

node_modules

You can just add an exception with ! for each of your internal application modules:

node_modules/*
!node_modules/foo
!node_modules/bar

Please note that you can't unignore a subdirectory, if the parent is already ignored. So instead of ignoring node_modules, you have to ignore every directory inside node_modules with the node_modules/* trick, and then you can add your exceptions.

Now anywhere in your application you will be able to require('foo') or require('bar') without having a very large and fragile relative path.

If you have a lot of modules and want to keep them more separate from the third-party modules installed by npm, you can just put them all under a directory in node_modules such as node_modules/app:

node_modules/app/foo
node_modules/app/bar

Now you will be able to require('app/foo') or require('app/bar') from anywhere in your application.

In your .gitignore, just add an exception for node_modules/app:

node_modules/*
!node_modules/app

If your application had transforms configured in package.json, you'll need to create a separate package.json with its own transform field in your node_modules/foo or node_modules/app/foo component directory because transforms don't apply across module boundaries. This will make your modules more robust against configuration changes in your application and it will be easier to independently reuse the packages outside of your application.

symlink

Another handy trick if you are working on an application where you can make symlinks and don't need to support windows is to symlink a lib/ or app/ folder into node_modules. From the project root, do:

ln -s ../lib node_modules/app

and now from anywhere in your project you'll be able to require files in lib/ by doing require('app/foo.js') to get lib/foo.js.

custom paths

You might see some places talk about using the $NODE_PATH environment variable or opts.paths to add directories for node and browserify to look in to find modules.

Unlike most other platforms, using a shell-style array of path directories with $NODE_PATH is not as favorable in node compared to making effective use of the node_modules directory.

This is because your application is more tightly coupled to a runtime environment configuration so there are more moving parts and your application will only work when your environment is setup correctly.

node and browserify both support but discourage the use of $NODE_PATH.

share|improve this answer
    
Thanks (: that is amazing. Fortunately I don't need it anymore. As I'm sharing code between client and server all my app use require.js which enables you to create paths a lot more easily and doesn't have the node_modules hardcoded variable which was a pain. I don't even like the name, it should be at least nodeModules. Anyway thanks for the amazing answer (: –  Totty.js Jul 8 '14 at 22:25
    
These are some really good tips –  Michael Dec 21 '14 at 14:09
3  
The only down side of putting it in the node_modules folder is that it makes it harder to nuke (rm -rf node_modules) folder –  Michael Dec 21 '14 at 14:15
3  
@Michael Not that much harder: git clean -dx node_modules –  Peter Wilkinson Jul 1 at 23:50

And what about:

var myModule = require.main.require( './path/to/module' ) ;

It requires the file as if it were required from the main js file, so it works pretty well as long as your main js file is at the root of your project... and that's something I appreciate.

share|improve this answer
    
Not a bad idea (: You can then define some other methods to somehow remap the app in your require.main module. I think you could then do require.main.req('client/someMod'). Nice idea, but this would be more verbose than my current requirejs. Also I don't think is worth because I also dislike browserify because changes are not instant and misses changes (because my code should run both in browser and node.js). –  Totty.js Oct 3 '14 at 14:41
    
If you find it too verbose, just use .bind(): var rootReq = require.bind( require.main ) ; rootReq( './path/to/module' ) ; –  cronvel Oct 6 '14 at 12:00
    
yes, this can be useful for someone that still wants to use browserify for client side. For me there is no need anymore, but thanks anyway for your answer (: –  Totty.js Oct 7 '14 at 10:35
    
I believe this is the most elegant answer. –  jedd.ahyoung Jul 4 at 17:18

IMHO, the easiest way is to define your own function as part of GLOBAL object. Create projRequire.js in the root of you project with the following contents:

var projectDir = __dirname;

module.exports = GLOBAL.projRequire = function(module) {
  return require(projectDir + module);
}

In your main file before requireing any of project-specific modules:

// init projRequire
require('./projRequire');

After that following works for me:

// main file
projRequire('/lib/lol');

// index.js at projectDir/lib/lol/index.js
console.log('Ok');


@Totty, I've comed up with another solution, which could work for case you described in comments. Description gonna be tl;dr, so I better show a picture with structure of my test project.

share|improve this answer
    
well, until now this seems the best way to do it. I do: GLOBAL.requires = require('r').r; in my index.js file. But I have a problem in my vows tests, they don't run index.js so my tests fails because requireS it's undefined. Anyway for now I can add GLOBAL.requires = require('r').r; at the top of every test. any better idea? github.com/totty90/production01_server/commit/… –  Totty.js Jun 2 '12 at 20:26
    
    
@Totty, check out this. –  elmigranto Jun 2 '12 at 21:06
    
the problem happens when I'm in the "pathes-test/node_modules/other.js" and I require the "pathes-test/node_modules/some.js". I should require('./some') instead of require("prj/some"). And in this way all my app would be in the node_modules dir? –  Totty.js Jun 2 '12 at 21:14
    
@Totty, no problem requiring prj/some from prj/other (just tested require('prj/some'). All you app's common modules can go there (e.g. database layer). Will make no difference where your, let's say, lib is. Try and see if it's suits. –  elmigranto Jun 2 '12 at 21:20

I like to make a new node_modules folder for shared code, then let node and require do what it does best.

for example:

- node_modules // => these are loaded from your package.json
- app
  - node_modules // => add node-style modules
    - helper.js
  - models
    - user
    - car
- package.json
- .gitignore

For example, if you're in car/index.js you can require('helper') and node will find it!

How node_modules Work

node has a clever algorithm for resolving modules that is unique among rival platforms.

If you require('./foo.js') from /beep/boop/bar.js, node will look for ./foo.js in /beep/boop/foo.js. Paths that start with a ./ or ../ are always local to the file that calls require().

If however you require a non-relative name such as require('xyz') from /beep/boop/foo.js, node searches these paths in order, stopping at the first match and raising an error if nothing is found:

/beep/boop/node_modules/xyz
/beep/node_modules/xyz
/node_modules/xyz

For each xyz directory that exists, node will first look for a xyz/package.json to see if a "main" field exists. The "main" field defines which file should take charge if you require() the directory path.

For example, if /beep/node_modules/xyz is the first match and /beep/node_modules/xyz/package.json has:

{
  "name": "xyz",
  "version": "1.2.3",
  "main": "lib/abc.js"
}

then the exports from /beep/node_modules/xyz/lib/abc.js will be returned by require('xyz').

If there is no package.json or no "main" field, index.js is assumed:

/beep/node_modules/xyz/index.js
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up vote 6 down vote accepted

Here is the actual way I'm doing for more than 6 months. I use a folder named node_modules as my root folder in the project, in this way it will always look for that folder from everywhere I call an absolute require:

  • node_modules
    • myProject
      • index.js I can require("myProject/someFolder/hey.js") instead of require("./someFolder/hey.js")
      • someFolder which contains hey.js

This is more useful when you are nested into folders and it's a lot less work to change a file location if is set in absolute way. I only use 2 the relative require in my whole app.

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4  
I use similar approach, except that I add local (project's) node_modules in /src, and leave /node_modules for vendors to keep things separate. So I have /src/node_modules for local code and /node_modules for vendors. –  barius May 8 '13 at 13:23
9  
IMHO the node_modules folder is just for node_modules. It is not a good practice to put your whole project inside that folder. –  McSas Nov 5 '13 at 18:56
2  
@McSas what would you suggest as an alternative to get the same effect as above? –  cspiegl Jan 17 '14 at 12:23
    
@cspiegl You can use the NODE_PATH environment variable –  Chris T Jun 16 '14 at 19:27

You could define something like this in your app.js:

requireFromRoot = (function(root) {
    return function(resource) {
        return require(root+"/"+resource);
    }
})(__dirname);

and then anytime you want to require something from the root, no matter where you are, you just use requireFromRoot instead of the vanilla require. Works pretty well for me so far.

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Thanks! I think this is pretty smart and straightforward. –  Ryan Jul 22 '13 at 7:25
    
Forgive me father, for I have sinned. I ported this to ES6 and got the following: requireFromRoot = ((root) => (resource) => require(`${root}/${resource}`))(__dirname);. Love the solution, but do you really have to bind __dirname like that? –  Nuck Sep 16 '14 at 23:39
1  
My memory is a bit hazy on this, but I believe __dirname changes value depending on which file it's used within. Now it may be that since the function is defined in a single place but used in multiple places, the value would remain constant even without this binding, but I just did that to ensure that this is in fact the case. –  user1417684 Sep 17 '14 at 15:39

Have a look at node-rfr.

It's as simple as this:

var rfr = require('rfr');
var myModule = rfr('projectSubDir/myModule');
share|improve this answer
    
This does exactly what the TS wants. Good module! –  Lilleman Oct 14 '14 at 12:41
    
i think the second line should be var myModule = rfr('/projectSubDir/myModule'); –  Sikorski Oct 23 '14 at 13:32
    
Oh, yes. Thank you @Sikorski –  warmsea Oct 24 '14 at 12:49
    
From the docs : var module2 = rfr('lib/module2'); // Leading slash can be omitted. –  igelineau Mar 19 at 2:34

Assuming your project root is the current working directory, this should work:

// require built-in path module
path = require('path');

// require file relative to current working directory
config = require( path.resolve('.','config.js') );
share|improve this answer
    
config = require('./config.js'); is valid too. –  cespon May 17 at 20:29
    
@cespon no that's just relative to the file requiring. –  protometa Jul 21 at 19:17

There's a good discussion of this issue here.

I ran into the same architectural problem: wanting a way of giving my application more organization and internal namespaces, without:

  • mixing application modules with external dependencies or bothering with private npm repos for application-specific code
  • using relative requires, which make refactoring and comprehension harder
  • using symlinks or changing the node path, which can obscure source locations and don't play nicely with source control

In the end, I decided to organize my code using file naming conventions rather than directories. A structure would look something like:

  • npm-shrinkwrap.json
  • package.json
  • node_modules
    • ...
  • src
    • app.js
    • app.config.js
    • app.models.bar.js
    • app.models.foo.js
    • app.web.js
    • app.web.routes.js
    • ...

Then in code:

var app_config = require('./app.config');
var app_models_foo = require('./app.models.foo');

or just

var config = require('./app.config');
var foo = require('./app.models.foo');

and external dependencies are available from node_modules as usual:

var express = require('express');

In this way, all application code is hierarchically organized into modules and available to all other code relative to the application root.

The main disadvantage is of course that in a file browser, you can't expand/collapse the tree as though it was actually organized into directories. But I like that it's very explicit about where all code is coming from, and it doesn't use any 'magic'.

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From the gist you linked, solution #7, "The Wrapper", is quite simple and convenient. –  Pier-Luc Gendreau Jul 17 '14 at 2:58

Imho the easiest way to achieve this is by creating a symbolic link on app startup at node_modules/app (or whatever you call it) which points to ../app. Then you can just call require("app/my/module"). Symbolic links are available on all major platforms.

However, you should still split your stuff in smaller, maintainable modules which are installed via npm. You can also install your private modules via git-url, so there is no reason to have one, monolithic app-directory.

share|improve this answer
    
Support on Windows requires more in-depth knowledge of Node and the OS. It can limit the widespread use of an open source project. –  Steven Vachon Apr 24 '14 at 4:38
    
Generally I wouldn't use this pattern for a library (which most open source projects are). However, it is possible to create these symlinks in the npm build hook so there is no in-depth knowledge required by the user. –  jhnns Apr 25 '14 at 12:30
    
Sure, but Node.js on Windows does not support symlinks by default. –  Steven Vachon May 7 '14 at 20:01

i created a node module called "rekiure"

it allows you to require without the use of relative paths

https://npmjs.org/package/rekuire

it is super easy to use

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Couldn't the examples directory contain a node_modules with a symbolic link to the root of the project project -> ../../ thus allowing the examples to use require('project'), although this doesn't remove the mapping, it does allow the source to use require('project') rather than require('../../').

I have tested this, and it does work with v0.6.18.

Listing of project directory:

$ ls -lR project
project:
drwxr-xr-x 3 user user 4096 2012-06-02 03:51 examples
-rw-r--r-- 1 user user   49 2012-06-02 03:51 index.js

project/examples:
drwxr-xr-x 2 user user 4096 2012-06-02 03:50 node_modules
-rw-r--r-- 1 user user   20 2012-06-02 03:51 test.js

project/examples/node_modules:
lrwxrwxrwx 1 user user 6 2012-06-02 03:50 project -> ../../

The contents of index.js assigns a value to a property of the exports object and invokes console.log with a message that states it was required. The contents of test.js is require('project').

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can you show the sourcecode of your test please? well, and It would work if I would have to require('project.a') this way? –  Totty.js Jun 2 '12 at 8:01
    
What do you mean by require('project.a')? I think that might mean require('project/a'), although require('project').a is also possible? –  Dan D. Jun 2 '12 at 8:15
    
yes, sorry for my mistake. require('project/a') –  Totty.js Jun 2 '12 at 8:17
    
but with your example I would need to create those folders in each folder where there is a module that needs the require method. Anyway you would need to take care about the times of "../" depending of the folder. –  Totty.js Jun 2 '12 at 8:21
    
Actually the link would only need to be in a node_modules directory in the closest parent of both of the file and the link would then be the same for both. See nodejs.org/api/… –  Dan D. Jun 2 '12 at 9:00

I was having trouble with this same issue, so I wrote a package called include.

Include handles figuring out your project's root folder by way of locating your package.json file, then passes the path argument you give it to the native require() without all of the relative path mess. I imagine this not as a replacement for require(), but a tool for requiring handling non-packaged / non-third-party files or libraries. Something like

var async = require('async'),
    foo   = include('lib/path/to/foo')

I hope this can be useful.

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In your own project you could modify any .js file that is used in the root directory and add its path to a property of the process.env variable. For example:

// in index.js
process.env.root = __dirname;

Afterwards you can access the property everywhere:

// in app.js
express = require(process.env.root);
share|improve this answer

I use process.cwd() in my projects. For example:

var Foo = require(process.cwd() + '/common/foo.js');

It might be worth noting that this will result in requireing an absolute path, though I have yet to run into issues with this.

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I don't think you need to solve this in the manner you described. Just sed if you want to change the same string in a large amount of files. In your example,

find . -name "*.js" -exec sed -i 's/\.\.\/\.\.\//\.\.\//g' {} +

would have ../../ changed to ../

Alternatively, you can require a configuration file that stores a variable containing the path to the library. If you store the following as config.js in the example directory

var config = {};
config.path = '../../';

and in your example file

myConfiguration = require('./config');
express = require(config.path);

You'll be able to control the configuration for every example from one file.

It's really just personal preference.

share|improve this answer
    
well but if in one example it uses ../../ to another module in the same example and not to the root then it breaks all the code. Yes you could do the path variable but that's not a clean way to do IMO. If you move files from here to there this is not that clean. And just take a look at "../../" how descriptive that is compared to 'express'. or '../../../my/config' compared to '/my/config', there is no comparation.. –  Totty.js Jun 2 '12 at 7:30
    
By the way you would have to require config in each folder you use and the same problem would happen. If you change a folder you will have to change require('./config') to require('../../config'), same problem again.. lol –  Totty.js Jun 2 '12 at 7:38
    
Change the expression if you don't want it to match every occurrence of "../../". Here's one that will only match that line you provided: "s/express = require('\.\.\/\.\.\/')/express = require('\.\.\/')/" –  Ditmar Wendt Jun 2 '12 at 7:54
    
this is just one module in the parent folder, but in a real world project you can't just do like that. There would be plenty of different parent folder and modules and this relative pathing it's making me crazy. In my way you could easily replace the full path to the new one across the whole project. –  Totty.js Jun 2 '12 at 8:09
1  
well I just made a npm module that do the trick (search.npmjs.org/#/r) I put "var r = require('r').r" at the begining of each module and then all the requires will be r(...). if the first character it's ">" ex. r('>/my/sub/folder/') then it's relative to the root folder of my project. This is the best thing I could come with for now –  Totty.js Jun 2 '12 at 9:02

We are about to try a new way to tackle this problem.

Taking examples from other known projects like spring and guice, we will define a "context" object which will contain all the "require" statement.

This object will then be passed to all other modules for use.

For example

var context = {}

context.module1 = require("./module1")( { "context" : context } )
context.module2 = require("./module2")( { "context" : context } )

This requires us to write each module as a function that receives opts, which looks to us as a best practice anyway..

module.exports = function(context){ ... }

and then you will refer to the context instead of requiring stuff.

var module1Ref = context.moduel1;

If you want to, you can easily write a loop to do the require statements

var context = {};
var beans = {"module1" : "./module1","module2" : "./module2" }; 
for ( var i in beans ){
    if ( beans.hasOwnProperty(i)){
         context[i] = require(beans[i])(context);
    }
};

This should make life easier when you want to mock (tests) and also solves your problem along the way while making your code reusable as a package.

You can also reuse the context initialization code by separating the beans declaration from it. for example, your main.js file could look like so

var beans = { ... }; // like before
var context = require("context")(beans); // this example assumes context is a node_module since it is reused.. 

This method also applies to external libraries, no need to hard code their names every time we require them - however it will require a special treatment as their exports are not functions that expect context..

Later on we can also define beans as functions - which will allow us to require different modules according to the environment - but that it out of this thread's scope.

share|improve this answer

Some time ago I created module for loading modules relative to pre-defined paths.

https://github.com/raaymax/irequire

You can use it instead of require.

irequire.prefix('controllers',join.path(__dirname,'app/master'));
var adminUsersCtrl = irequire("controllers:admin/users");
var net = irequire('net');

Maybe it will be usefull for someone..

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