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I would love some explanation of this (taken from javascriptkit.com):

function buildList(list) {
  var result = [];
  for (var i = 0; i < list.length; i++) {
    var item = 'item' + list[i];
    result.push( function() {alert(item + ' ' + list[i])} );
  }
  return result;
}

function testList() {
  var fnlist = buildList([1,2,3]);
  // using j only to help prevent confusion - could use i
  for (var j = 0; j < fnlist.length; j++) {
    fnlist[j]();
  }
}

So testList() is pretty straightforward. I tried following the first function step by step and this is what I figured it would return:

item 1 1
item 2 2
item 3 3

What I don't get is how result is returned as item 3 undefined 3 times - why undefined, and why only item 3?

-As I'm trying to learn, I'm not looking to get this to work, but rather understand what part I'm missing and why it doesn't come out as I would expect it to.

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2 Answers 2

up vote 4 down vote accepted

What's the problem?

The function in the for loop has a reference to i but i is changing in each iteration, so when you call the function declared in the loop it will use i with it's last value(3).

A simple closure will save the index value untouched:

for (var i = 0; i < list.length; i++) {
    (function(index){
        var item = 'item' + list[index];  // why ?
        result.push( function() {alert(item + ' ' + list[index])} );    
    })(i);    
}

Note:

Why do you need var item = 'item' + list[index]; if you re-lookup the value in the list?

Update based on question changed,

Because i has the final value- 3 which makes your code in the final iteration:

// i equals to 2 here
var item = 'item' + list[i]; // gives item3
result.push( function() {alert(item + ' ' + list[i])} );
// now `i` is changed to three so we don't enter the loop.

Values:

  • item == "item3"
  • i == 3
  • list[i] == list[3] == undefined.
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I think I saw this answered yesterday. Was it you? (+1) –  ahren Mar 21 '13 at 12:25
    
@ahren, nope, not me. –  gdoron Mar 21 '13 at 12:27
    
Can you explain why the closure is needed? –  Jeff Shaver Mar 21 '13 at 12:30
    
@JeffShaver, Added to the answer. –  gdoron Mar 21 '13 at 12:33
    
I've updated the question, I might have no made it clear enough at first. –  frrlod Mar 21 '13 at 12:41
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It is important to understand that array returned by buildList contains 3 functions that share the same closure. Each time local variable of that closure is changed - it affects all functions that share it. In other words, i, item and list variables of all functions in result are the same. After loop has iterated through list, the value of i remains equal to 3 and it is true for all functions in result because they share reference to that variable. So, the answers to you questions will be like that:

why undefined?

Because list[3] === undefined

why item 3?

Because last time item variable was modified is when i was 2 and for executed its body (list[2] === 3 therefore item === 'item 3')

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