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I have the follow NODE.JS code:

var a = [1,2,3,4,5,6]

function test(){

  var v = a.pop()
  if (!v) return

  function uno(){    
    due(v, function(){
      console.log(v)      
    }) 
    console.log("Start:",v)              
    return test()
  }

  function due(v, cb){      
    setTimeout(function(){ 
      console.log(v);
      cb(); 
    }, 5000);    
  }   
  uno();
}  
test()

This is the output:

Start: 6
Start: 5
Start: 4
Start: 3
Start: 2
Start: 1
6
6
5
5
4
4
3
3
2
2
1
1

as you can see inside uno() function i call due() function with a timeout.

I have two: console.log(v) (inside uno() and due())

could somone explain me WHY when i call the callback (cb()) the v value is the same?

doing:

due(v, function(){
  console.log(v)      
}) 

the console.log will keep the v value i passed in the due() call? Why it does not get the "global" v value on the test() function?

share|improve this question

1 Answer 1

up vote 1 down vote accepted

The callback cb() is the following function: function(){ console.log(v) } and the v is taken from the local environment that is in effect when you define the function, because it is not a parameter to the callback function (upvalue). That means, the first time you call test(), it has the value 6, the second time the value 5 etc.

You should give the parameters different name than the global variables, for example:

  function due(param_v, cb){      
    setTimeout(function(){ 
      console.log(param_v);
      cb(); 
    }, 500);    
  }   

Then you might spot the difference.

Edit: this is not related to node at all, more to JavaScript (and many programming languages behave exactly the same). You should play around with it and put the callbacks etc. aside for a while.

var a

function print_a () {
  // this function sees the variable named a in the "upper" scope, because
  // none is defined here. 
  console.log(a) 
}

function print_b () {
  // there is no variable named "b" in the upper scope and none defined here,
  // so this gives an error
  console.log(b)
}

a = 1

print_a() // prints 1
// print_b() // error - b is not defined

var c = 1

function dummy () {
  var c = 99
  function print_c () {
    // the definition of c where c is 99 hides the def where c is 1
    console.log(c)
  }
  print_c()
}


dummy() // prints 99
share|improve this answer
    
thank you for the answer, but I don't understand if it READs the global scope (Test() function) OR If i pass it as paramenter due(v, function(){ .. } i can use it without refering to the global? because the loop ends soon (6 - 5 - 4 - 3 - 2 - 1) but when I print the v value it has the previous value (when I called the due() function) So if i use a variable as parameter the value of that variable remains the same (as a different scope) ? thank you! –  Dail Jan 19 '12 at 12:32

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