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I have a file fetching some other files:

start.js

require("./users");

but the users.js file is not in the current folder but in model/.

I want to be able to run:

node start.js model

and it would assume that ./ is the same as model/ in start.js.

How do I do that?

share|improve this question
up vote 2 down vote accepted

All you need to do is to make Node.js recognize the folder model as a module.

In order to do that, you need to place a file called index.js inside the model folder.

//  model/index.js
exports.users = require('./users'); //  model/users.js
exports.posts = require('./posts'); //  model/posts.js
// etc.

Now you can import the model module and access it's exports:

var models = require('./model');
models.users.create(); // some function exported in model/users.js
models.posts.list(); // this was exported in model/posts.js
share|improve this answer

You can add ./model dir to require.paths array:

require.paths.unshift("./model");
var
  users = require("users"), // It works!
  posts = require("posts");

But I want to ask you: why do you need this instead of using

var
  users = require("./model/users"), // It works!
  posts = require("./model/posts");

?

share|improve this answer
    
That's stupid, adding stuff to paths is not encouraged in any way, and he did not want to use the model prefix. Using the index.js approach is the normal way of doing this, NPM wraps all the installed modules this way. – Ivo Wetzel Dec 2 '10 at 15:47
    
I concur that adding the the paths is bad practice. But personally I would use ./model/users for readability – Raynos Dec 2 '10 at 16:03
    
Well if he would want to distribute a whole lib with several sub modules, then the index.js approach is still the best, gives a better black box view too. – Ivo Wetzel Dec 2 '10 at 17:09

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