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I don't understand why only object are nice exported. Look that:

first file

var a = exports.a = {};
var b = exports.b = 0;

exports.xxxxx = function(){

    a.hello = 'help';
    b = 104;

};

second file

var a = require('firstfile').a;
var b = require('firstfile').b;

module.exports = function(){

    console.log(a); // {hello:'help'}
    console.log(b); // 0

};

Why ?

and the solution for exports b is do like that:

first file:

...
a.hello = 'help';
exports.b = 104; // (add exports)
...

second file:

...
var b = require('firstfile');
...
console.log(b.b); // 104

Why?

EDIT

I think I understood.

The variable a take just a reference! I will explain to someone who does not understand:

  • when the first file is read, a = {}, b = 0
  • when we change b, b as been changed, but NOT the module (the exports) !!
  • this is normal that with exports.b = 104 // we change the value of the module! who is required.

Now, why object are different ?

  • because when the file 2 is executed. (executed once), the value of a = {}.
  • but it displays {xxx:xxx}
  • this is because the value of a when the file is executed is not {}, but a reference of this object.
  • So, when we need to take this object, we search all reference.

it is important to remember two things:

  • modules required out of a function are read once! Need to require in the function for see changes.
  • objects stock reference.

Bye! Hope this help!

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1 Answer 1

up vote 1 down vote accepted

When you assign 0 to exports.b, it is essentially assigned as a constant value. You can update the value pointed to by the b variable, but it won't be re-exported.

For instance, I've modified what you posted slightly by adding a getB function:

var a = exports.a = {};
var b = exports.b = 0;

exports.xxxxx = function(){

    a.hello = 'help';
    b = 104;

};

exports.getB = function() { return b; };

Then, you can see what I mean by playing around with this file in REPL:

> var example = require('./example.js');
undefined
> example
{ a: {},
  b: 0,
  xxxxx: [Function],
  getB: [Function] }
> example.xxxxx()
undefined
> example.getB()
104
> example.b
0
>

edit: your comment about references is somewhat correct. When you initially say

var b = exports.b = 0;

You are saying two variables point to the same value. This is different than two variables pointing to the same reference (an object, as you've done with a). When you modify one value, the other value is not modified. In other words, when you change the value of 0 to 1, you don't want every instance of 0 in your code to then also be 1. That wouldn't be good.

If you want b to be a value and to get updated every time you modify that value, you should reassign exports.b. This is part of why you'll see most code as one object being exported... then, your export is treated like a reference and all your b's are updated as expected.

share|improve this answer
    
yes, that's what i understand was succeful. But your function getB is very good! it avoids to re-exports eatch time. Thank you! i did not know –  user1255808 May 17 '12 at 20:00
    
So do you think that stock require module (e.g "fs") out of the function is better for the performance ? I heard that module are catched, so don't need to stock in a variable and cluttering the memory? look this: stackoverflow.com/questions/10636599/… –  user1255808 May 17 '12 at 20:07
1  
Those modules are cached by NodeJS. You most likely won't see a difference in performance because the initialization is done once. The question is whether you want to require those modules on every function call if you do it in a function. I wouldn't. Your entire file will already be wrapped in a function. –  Jim Schubert May 17 '12 at 23:13
    
humm i understand but not the end: "Your entire file will already be wrapped in a function" (i'm french). (i edited my post: stackoverflow.com/questions/10636599/…) thanks! (i know that we can say that this is the tiny optimization, but i'd rather go with a good foundation. Thank you. –  user1255808 May 18 '12 at 11:10

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