Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How do I require all files in a folder in node.js?

need something like:

files.forEach(function (v,k){
  // require routes
  require('./routes/'+v);
}};
share|improve this question
add comment

6 Answers

up vote 114 down vote accepted

It would probably make most sense (if you have control over the folder) to create an index.js file and then assign all the "modules" and then simply require that.

yourfile.js

var routes = require("./routes");

index.js

exports.something = require("./routes/something.js");
exports.others = require("./routes/others.js");

If you don't know the filenames you should write some kind of loader.

Working example of a loader:

require("fs").readdirSync("./routes").forEach(function(file) {
  require("./routes/" + file);
});

// Continue application logic here
share|improve this answer
60  
To add some clarification: When require is given the path of a folder, it'll look for an index.js in that folder; if there is one, it uses that, and if there isn't, it fails. See github.com/christkv/node-mongodb-native for a real-world example of this: There's an index.js in the root directory that requires ./lib/mongodb, a directory; ./lib/mongodb/index.js' makes everything else in that directory available. –  Trevor Burnham Apr 26 '11 at 5:18
8  
require is a synchronous function so there is no benefits from callback. I would use fs.readdirSync instead. –  Rafał Sobota Jan 10 '12 at 22:35
    
Fair enough, yeah. –  tbranyen Jan 11 '12 at 0:43
2  
Thanks, ran into this same problem today and thought "why isn't there a require('./routes/*')?". –  Richard Clayton Feb 11 '12 at 14:09
1  
@RobertMartin it's useful when you don't need a handle to anything exported; for instance, if I just wanted to pass an Express app instance to a set of files that would bind routes. –  Richard Clayton Sep 2 '12 at 12:08
show 8 more comments

Base on @tbranyen's solution, I create an index.js file that load arbitrary javascripts under current folder as part of the exports.

// Load `*.js` under current directory as properties
//  i.e., `User.js` will become `exports['User']` or `exports.User`
require('fs').readdirSync(__dirname + '/').forEach(function(file) {
  if (file.match(/.+\.js/g) !== null && file !== 'index.js') {
    var name = file.replace('.js', '');
    exports[name] = require('./' + file);
  }
});

Then you can require this directory from any where else.

share|improve this answer
add comment

I have a folder /fields full of files with a single class each, ex:

fields/Text.js -> Test class
fields/Checkbox.js -> Checkbox class

Drop this in fields/index.js to export each class:

var collectExports, fs, path,
  __hasProp = {}.hasOwnProperty;

fs = require('fs');    
path = require('path');

collectExports = function(file) {
  var func, include, _results;

  if (path.extname(file) === '.js' && file !== 'index.js') {
    include = require('./' + file);
    _results = [];
    for (func in include) {
      if (!__hasProp.call(include, func)) continue;
      _results.push(exports[func] = include[func]);
    }
    return _results;
  }
};

fs.readdirSync('./fields/').forEach(collectExports);

This makes the modules act more like they would in Python:

var text = new Fields.Text()
var checkbox = new Fields.Checkbox()
share|improve this answer
add comment

Another option is to use the package require-dir which let's you do the following. It supports recursion as well.
var requireDir = require('require-dir');
var dir = requireDir('./path/to/dir');

share|improve this answer
add comment

One module that I have been using for this exact use case is require-all.

It recursively requires all files in a given directory and its sub directories as long they don't match the excludeDirs property.

It also allows specifying a file filter and how to derive the keys of the returned hash from the filenames.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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