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<script type="text/javascript">   
function buildList(list) {
  var result = [];
  for (var i = 0; i < list.length; i++) {
    var item = 'item' + list[i];
    result.push( function() {console.log(item + ' ' + list[i])} );
  }
  return result;
}

function testList() {
  var fnlist = buildList([1,2,3]);
  fnlist[0]();
}
testList(); 
</script>

Question:

IN firefox->console, it shows item3 undefined, why?

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marked as duplicate by goat, icktoofay, djf, Royston Pinto, gzaxx Jul 3 '13 at 6:55

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    

2 Answers 2

you can change

result.push( function() {console.log(item + ' ' + list[i])} );

to

result.push( function() {console.log(item + ' ' + list[i] + ' ' + i)} );

then you find that i is 3, you should use clousre to avoid this problem.

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well, you are right, but I have set condition(i < list.length) for loop,:for (var i = 0; i < list.length; i++),if i=3 which is = list.length, should not execute this line: result.push( function() {console.log(item + ' ' + list[i])} ); so why? –  user2507818 Jul 3 '13 at 4:19

It is because the evaluation of closure reference happens at the execution time of the statement (item + ' ' + list[i] + ' ' + i, by that time value of i becomes 4, this list[4] returns undefined.

The execution sequence will be, you are creating a closure variable i in the loop, so all the function references pushed to result references the same instance of i, any modification done to the variable will be reflected in each of the added function irrespective of when it was added.

The solution in such a case is to create a private closure inside the loop statement using a iife

Demo: Fiddle

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there is a solution is that : var tempI = i; result.push( function() {console.log(item + ' ' + list[tempI])} ); –  hungdoan Jul 3 '13 at 4:16
    
@hungdoan, it still will not work as expected because javascript does not have block level scope jsfiddle.net/arunpjohny/8mTCn/3 –  Arun P Johny Jul 3 '13 at 4:19
    
well, but the end, i=3 not 4, but how come when i=3, can still execute this line: result.push( function() {console.log(item + ' ' + list[i])} );? I have set the condition i < list.length, list.length=3 –  user2507818 Jul 3 '13 at 4:31
    
@user2507818 sorry, i thought you were passing 4 elements, then also the logic holds because list[3] is undefined –  Arun P Johny Jul 3 '13 at 4:44

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