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I'm creating a jquery animation and weirdly, when I append a new paragraph, it appends it twice, the problem only happens when 2 previous paragraphs are appended, probably that's a jQuery bug.. otherwise, I hope someone can help me.

HTML:

<body>
    <div id="element">
     </div>
</body>​ 

JavaScript:

$(function() {
    animation();
});

function animation()
{
   $('<p id="p1">paragraph 1</p>').appendTo('#element');
   $('<p id="p2">paragraph 2</p>').appendTo('#element');
   $('#p1, #p2').fadeOut(600, function(){
       $('#p1, #p2').remove();
       var $p3 = $('<p>paragraph 3 </p>').appendTo('#element');
   });
}​

The problem is with "paragraph 3" that is appended twice! You can run the code here: http://jsfiddle.net/jonah13/QLM2s/

Thanks, Younes

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2  
Thanks for the jsFiddle in the Q - makes our lives easier! –  Rob Cooper May 7 '12 at 7:34
1  
@RobCooper : You're welcome, thanks for helping! –  jonah13 May 7 '12 at 7:36
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4 Answers 4

up vote 4 down vote accepted

I don't know why other answers that identified the problem were down-voted, since they identified the problem.

Here is the code to fix it. Note from the jQuery docs, that as of jQuery 1.6 (which I assume you're using since the jsFiddle was using 1.7.2) you can use .promise():

As of jQuery 1.6, the .promise() method can be used in conjunction with the deferred.done() method to execute a single callback for the animation as a whole when all matching elements have completed their animations.

I've updated your fiddle:

$(function() {
   animation();
});

function animation()
{
   $('<p id="p1">paragraph 1</p>').appendTo('#element');
   $('<p id="p2">paragraph 2</p>').appendTo('#element');
   $('#p1, #p2')
     .fadeOut(600)
     .promise().done(function() {
       $('#p1, #p2').remove();
       var $p3 = $('<p>paragraph 3 </p>').appendTo('#element');
   });         
}​
share|improve this answer
1  
Interesting. I've never seen promise() before. –  BenjaminRH May 7 '12 at 7:35
1  
Thank you, that solved the problem and I learned a couple new things –  jonah13 May 7 '12 at 7:39
    
You're very welcome @jonah13 and glad to hear it! :) –  Rob Cooper May 7 '12 at 7:40
    
@jonah13: If this solved your problem, you might want to un-accept the answer I gave and mark this one... –  BenjaminRH May 7 '12 at 7:43
1  
Once I figured out what the problem is, there were dozens of ways to solve the problem, but yes, this answer is the best if you don't want to change any behavior in the script! –  jonah13 May 7 '12 at 7:48
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The function provided to fadeOut() is fired once per element which matches the selector. Since the selector returns two elements it is fired twice, thus appending two paragraphs.

Modified example here: http://jsfiddle.net/QLM2s/1/

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2  
No idea why this was down-voted - this is indeed the problem. –  Rob Cooper May 7 '12 at 7:24
    
YES, That totally makes sense, I fixed the problem! Thank you!! –  jonah13 May 7 '12 at 7:24
    
@jonah13: Please remember to mark it as accepted if it answers your question. –  BenjaminRH May 7 '12 at 7:25
    
Added an answer that uses promise() (jQuery 1.6+ - assumed OK since jsFiddle was using 1.7.2) - I personally think this is a cleaner and more maintainable solution. –  Rob Cooper May 7 '12 at 7:33
2  
@RobCooper - I like your answer; I haven't used promise() before but it looks like the elegant way to handle this scenario. –  Tim Medora May 7 '12 at 7:35
show 1 more comment

The problem is where fade out paragraphs 1 and 2: jQuery is executing the code inside the fade-out function for every selector you give it (in this case, two paragraphs so two appends).

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2  
No idea why this was down-voted - this is indeed the problem. –  Rob Cooper May 7 '12 at 7:24
    
@Rob Cooper: Agreed. Down votes really should come with an explanation. –  Tuan May 7 '12 at 7:27
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This seems to work fine

$(function() {
   animation();
});

function animation()
{
   $('<p id="p1">paragraph 1</p>').appendTo('#element');
   $('<p id="p2">paragraph 2</p>').appendTo('#element');
   $('#p1').fadeOut(600, function(){
       $('#p1').fadeOut();
      $('#p1, #p2').remove();
      var $p3 = $('<p>paragraph 3 </p>').appendTo('#element');
   }

); }​

share|improve this answer
    
Assume fading out p1 again was a typo. But this would not fade them out at the same time. –  Rob Cooper May 7 '12 at 8:10
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