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Start with your module, utils.coffee:

exports.foo = ->
exports.bar = ->

Then your main file:

utils = require './utils'
utils.foo()

foo() and bar() are functions you'll be calling frequently, so you:

foo = require('./utils').foo
bar = require('./utils').bar
foo()

This approach works when only a few functions are defined in the module, but becomes messy as the number of functions increases. Is there a way to add all of a module's functions to your app's namespace?

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up vote 3 down vote accepted

Is there a way to add all of a module's functions to your app's namespace?

No. This is, to my knowledge, the best you can do (using CS' destructuring assignment):

{foo, bar, baz} = require('./utils')
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Use extend (with underscore or any other library that provides it. Write it yourself if necessary):

_(global).extend(require('./utils'))
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If you don't want to use underscore, you could simply do:

var utils = require('./utils')
for (var key in utils)
  global[key] = utils[key]
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Not bad! I wish Coffeescript had an equivalent to the Python one-liner "import * from bar". – knite May 2 '12 at 1:28
2  
@knife it's one line, though not a one liner: global[k] = v for k,v of require './utils' – Alex Feinman Sep 7 '13 at 21:45

Another way to exports all modules function to global scope like so: Application Module:

(()->
    Application = @Application = () ->
        if @ instenceof Application
            console.log "CONSTRUCTOR INIT"
    Application::test = () ->
        "TEST"

    Version = @Version = '0.0.0.1'
)()

Main App:

require  './Application'

App = new Appication()
console.log App.test()
console.log Version
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Interesting idea! I'm going to try this for a bit before marking the answer as correct. – knite Feb 14 '12 at 16:51

something like that is a good approach to my opinion:

utils.coffee

module.exports = 
    foo: ->
        "foo"
    bar: ->
        "bar"

main.coffee

util = require "./util"
console.log util.foo()
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I think the OP asked for a way to import all functions from a module, not how to export all functions in a module. The advice is useful, though. – tokland Feb 14 '12 at 9:01
    
Yes, I think you're right. I've added another Answer below :) – Alon Valadji Feb 14 '12 at 12:04

How's this:

global[k] = v for k,v of require './utils'
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