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I was going to write this to be long and complicated, but i figured to go to the straight forward approach.

I have a loop that creates an array of elements where the variable Url. The array looks like this:

 x = [url,function(){...},function(){...}];

and then into an arrayList:

 arrayList = [x1,x2,x3,x4,x5];

I figure that makes sense so far. It stores in the arrayList object, 1 var and 2 functions.

Here is the kicker.

When i iterate through arrayList, url is all the same, the last reference to url in the forloop that created the arraylist.

My attempt to solve this was, doing a .toString() on the variable to store the contents of it in the array, instead of the variable name itself. that didnt work :(

What would i do to resolve this? im stumped :-(

Edit: I want to show what the loop looks like because 1 of the answers was about the array inaccurately referencing it

Edit2: The url which is causing issues, is the inner url, in displayFile below. It seems those are all pointing to the same reference, which is a nono. How would i go about changing those? Would i have to pass it in as a parameter???

var newArray = new Array();
for(var i=0;i<fileUrls.length;++i) {
   var url = fileUrls[i];
   var x = [];//new Array();
   x = [url,
    function(){
       displayFile(url, 'image', null, ft_id, null, null, null, null, !MA.isiOS());
    }, 
    function(e){
    if(DEBUG) console.log('Error creating gallery thumbnail');
    alert('There was a problem creating a thumbnail');
    MA.hideMessage();
    }
];
newArray.push(x);
}
share|improve this question
    
If you're constructing those functions in the loop, and the functions internally refer to "url", they're all referring to the same variable. Constructing a function with a reference to an "outer" variable does not "freeze" the value of the variable. It remains a "live" reference to the variable in the outer scope. –  Pointy Sep 27 '12 at 20:12

1 Answer 1

up vote 2 down vote accepted

What I think that you have is rather:

arrayList = [x,x,x,x,x];

I.e. an array that contains a number of references to the same object. If that is the case, then when you look at the url property in the different items, you are looking at the same property all the time, because it's the same item over and over.

That would be the result of reusing the array to populate the arrayList array, for example:

var x = [];
var arrayList = [];
for (int i = 0; i < 5; i++) {
  x[0] = 'url ' + i;
  x[1] = function(){};
  x[2] = function(){};
  arrayList.push(x);
}

The solution would be to create a new array in each iteration:

var arrayList = [];
for (int i = 0; i < 5; i++) {
  var x = [];
  x[0] = 'url ' + i;
  x[1] = function(){};
  x[2] = function(){};
  arrayList.push(x);
}

Edit:

To get the url variable used in the displayFile call to be specific for each iteration, you need a closure to capture the value:

var newArray = new Array();
for(var i=0;i<fileUrls.length;++i) {
  var url = fileUrls[i];
  var x = [];//new Array();

  var f;
  (function(url){
    f = function(){
      displayFile(url, 'image', null, ft_id, null, null, null, null, !MA.isiOS());
    };
  })(url);

  x = [url, f , 
    function(e){
      if(DEBUG) console.log('Error creating gallery thumbnail');
      alert('There was a problem creating a thumbnail');
      MA.hideMessage();
    }
  ];
  newArray.push(x);
}
share|improve this answer
    
Let me add an edit so you see more of what i did.... as i believe i did DO the solution you were asking of, and this is still an issue. I will post the loop i have –  Fallenreaper Sep 27 '12 at 20:35
    
Thanks. I think i got it working now. :) All to you Guffa –  Fallenreaper Sep 27 '12 at 20:46
    
The URL is the correct URL for the variable, in my top example. The issue is the URL in first function of the array. Inside, it, it takes URL, which is all the same. function(){displayFile(url, 'image'...);} as the same url, but the outter ones are different. –  Fallenreaper Sep 27 '12 at 20:53
    
Is it really the url value in the array that is the same in all items? The url value used in the displayFile call will be the local variable caught in the close for the funtion, so that will be the same for all items. [And you answered that while I was typing.] To get the specific value from each iteration you would need another closure to capture the value of the variable instead of the variable itself. See edit above. –  Guffa Sep 27 '12 at 20:56

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