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I have an $image that I .fadeIn and .fadeOut, and then .remove after .fadeOut completes. This is my code:

$image
   .fadeIn()
   .fadeOut(function() {
      $(this).remove();
   });

I want to add a .delay after .fadeOut, and .remove the $image only once .delay has completed. I have tried:

$image
   .fadeIn()
   .fadeOut()
   .delay(1000, function() {
      $(this).remove();
   });

The problem is that .delay doest not accept a callback function. How can I .remove the picture as a callback to .delay?

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3 Answers 3

up vote 28 down vote accepted

You can use the queue() method to schedule your own function to run after delay() completes:

$image.fadeIn()
      .fadeOut()
      .delay(1000)
      .queue(function(next) {
          $(this).remove();
          next();
      });
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Works fine... Great –  muhammed basil Oct 22 '12 at 16:00
    
Thanks Frédéric .. Works .. –  Tony Jose Oct 22 '12 at 16:02

You can always do it as:

$image
    .fadeIn()
    .fadeOut(function() {
        var self = this; // Not sure if setTimeout
                         // saves the pointer to this
        setTimeout(function() {
            $(self).remove();
        }, 1000)
    });
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To my knowledge, you can just strap the calls on after the delay call, like this:

$image
   .fadeIn()
   .fadeOut()
   .delay(1000)
   .remove()
});

Such as in the following example from the documentation:

$('#foo').slideUp(300).delay(800).fadeIn(400);

The temperament of queued items execution spelled out there also:

...the .delay() method allows us to delay the execution of functions that follow it in the queue. It can be used with the standard effects queue or with a custom queue. Only subsequent events in a queue are delayed; for example this will not delay the no-arguments forms of .show() or .hide() which do not use the effects queue.

Read the documentation for further information regarding which queue you're delaying, if you have troubles with the default fx queue you might need to specify one.

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1  
I was sure .delay worked only with animation stuff. I mean, wouldn't it remove the $image instantly? –  Lapple Oct 27 '11 at 11:26
    
The example only works because fadeIn() queues an animation to be run after the delay. remove() does not queue anything (it executes synchronously), so the element will be removed from the DOM immediately, without waiting for the animation queue to complete. –  Frédéric Hamidi Oct 27 '11 at 11:26
    
@Honneykeepa You can specify the queue on which the delays occur - it defaults to fx. –  Grant Thomas Oct 27 '11 at 11:27
    
@Mr.Disappointment: I don't think this works. The image gets removed immediately. See jsfiddle.net/ntzs4 –  Randomblue Oct 27 '11 at 11:33
    
@Randomblue That's because queue is queuing the fx calls, you'll need to specify your queue. –  Grant Thomas Oct 27 '11 at 11:42

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