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I am re-arranging some html and changing some css values in my $(document).ready in JQuery. Unfortunately, if the user's computer is not super fast, the user sees the original layout and then sees things being moved around on the screen until the $(document).ready completes. I can hide the main div and show it at the end of $(document).ready but as it happens, depending on the page, I have more than one javascript page loaded for each html page and each of these javascript pages has a $(document).ready function. So guaranteeing which one executes last is also another hurdle.

To add more complexity, I am getting from the server an html fragment of 100 spans each containing an image. I will only display the first n elements of this html fragment and remove the rest from the dom. n is calculated on the client in javascript. I want to do this before the images are actually pulled from the server so I pull only the images that are displayed.

How do I write my code so:

  1. Only the images that will actually be displayed are pulled from the server. and
  2. The user does not see the page elements rearranging in front of them.

Many thanks!

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2 Answers

1) use display:none on your contents as an inline style, and show them after your script is complete

2) Leave the SRC blank, and put it into data_src, then copy the values to SRC when you're ready to display

<img src="" data_src="/images/image1.jpg" />
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Thanks! 1. with multiple $(document).ready functions executing in an order that is not set in stone, how would I know when the script is completed? 2. In this way if the user has javascript disabled, they get no images. –  user277498 Dec 16 '11 at 21:18
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I have more than one javascript pages loaded for the page and each of these has a $(document).ready function. So guaranteeing which one executes last is also another hurdle.

You can have just one

$("document").ready({
 //functions here
});

and have all the functions defined inside this.

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