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I have 6 list items

$('.favorite-tag-group li').each(function(){
  console.log("hi"); 
});

This code however is displaying "hi" 24 times in console.

The only thing I can think of that might be causing it to bug out is because my list items arent all in the same list.

For example, .favorite-tag-group is a div that always contains a ul. In some cases, that ul will only have 1 li. Sometimes it may have 2.

Here's a sample of what that might look like

div.favorite-tag-group
  ul
    li
    li
    li 
div.favorite-tag-group
  ul
    li
div.favorite-tag-group
  ul
    li
div.favorite-tag-group
  ul
    li
    li

All I'm trying to do is run through .each() li so that I can remove duplicates ;/

Some real html:

<div class="favorite-tag-group">
  <h4>gobty</h4>

  <ul class="resources led-view">
    <li class="clearfix r-tutorial" data-id="22">

    </li>
  </ul>
</div>
<div class="favorite-tag-group">
  <h4>javascript</h4>

  <ul class="resources led-view">
    <li class="clearfix r-tutorial" data-id="24">

    </li>
  </ul>
</div>
<div class="favorite-tag-group">
  <h4>macvim</h4>

  <ul class="resources led-view">
    <li class="clearfix r-tool" data-id="21">

    </li>
  </ul>
</div>  

here is the real function. When i paste the .each() directly into console it works, but inside this function it doesnt work:

 // collapse tags functionality
    $('.collapse-tags').click(function(e){
        e.preventDefault();
        $('.favorites-helpers, .favorite-tag-group h4').slideUp(200, function(){
            var seen = {};
            $('.favorite-tag-group li').each(function(){
                //console.log("hi");
                var currentId = $(this).data('id');
                if (seen[currentId]) {
                    $(this).slideUp(200);
                } else {
                    seen[currentId] = true;
                }
            });
        });
    });
share|improve this question
    
How many times do you expect hi to appear given the example in your question? –  SiGanteng Aug 8 '12 at 2:48
    
in the example above, 6 times. –  Tallboy Aug 8 '12 at 2:49
    
hm 6? I see 7 li's tho :o –  SiGanteng Aug 8 '12 at 2:51
2  
Works fine for me: jsfiddle.net/ECS2K Chrome/Win7 –  ahren Aug 8 '12 at 2:56
2  
@Tallboy, It's because $('.favorites-helpers, .favorite-tag-group h4') will be causing multiple elements to slideUp(), and therefore the callback gets executed multiple times. Moving var seen = {} to inside the callback resets the variable as an empty object in each callback. You'll still iterate over your list items more than once (as seen by multiple console.log()s), but you'll slide the same duplicate li's up each time this way. Hope you were able to learn something! –  ahren Aug 8 '12 at 3:18
show 9 more comments

2 Answers

up vote 4 down vote accepted

As in my comment above... With a bit of further explanation.

It's because $('.favorites-helpers, .favorite-tag-group h4') will be causing multiple elements to slideUp(), and therefore the callback gets executed multiple times. Moving var seen = {} to inside the callback resets the variable as an empty object in each callback. You'll still iterate over your list items more than once (as seen by multiple console.log()s), but you'll slide the same duplicate li's up each time this way.

You asked: "The one thing im still confused about is, why would it not be able to see the scope of seen if it were outside the callback? wouldnt variable scope say that it could see it because its outside the function?"

Yes, you are right - the callback could see seen, but seen was never emptied/reset, and therefore after the second iteration of your callback, all of your li's would have had .slideUp() called on them.

Consider this: because it either slides the duplicate up, or adds the id to seen, on the second callback, .each() runs again, but it's already full of all of your list items ids.

Hope this is clear enough, if not just comment below and I'll try and come up with some examples.

share|improve this answer
    
oh RIGHT! Yesssss breathes in all the power of understanding YESSSSS –  Tallboy Aug 8 '12 at 4:27
1  
@Tallboy - this also may help you: stackoverflow.com/questions/2432267/… Here they talk about checking to see whether any of the elements are animated (using .is(':animated')), and then executing any further code within a conditional statement. Or this one: stackoverflow.com/questions/8793246/… where they use .promise().done() –  ahren Aug 8 '12 at 5:47
add comment

Here you are, sir...

$(document).ready(function(){
    $("div.favorite-tag-group>ul").children("li").each(function(index,element){
         //code here
        //refer to element as $(element)
         //to get the id of the element use: $(element).attr("id");
      });
});​

Demo: http://jsfiddle.net/9uz8k/11/

Link:

http://api.jquery.com/each

share|improve this answer
    
Why is that the case please? –  Fresheyeball Aug 8 '12 at 2:59
    
function(element,index){? or function(index, element){? jsfiddle.net/9uz8k/9 –  undefined Aug 8 '12 at 3:01
2  
Yes, api.jquery.com/each go and see the parameters. .each( function(index, Element) ) –  undefined Aug 8 '12 at 3:05
2  
@Dom do you actually read the very docs you pasted? –  SiGanteng Aug 8 '12 at 3:07
1  
This answer still doesn't address the question at hand. Although the title is a little misleading, it's actually the callback BEFORE .each() which is being triggered multiple times. Your answer doesn't help in this case... -1. –  ahren Aug 8 '12 at 4:08
show 1 more comment

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