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I have a page on which I'm using jQuery UI Tabs, what I'm doing is loading the content of each tabs via Ajax, but the problem I'm having is that, in the content of my tabs, the buttons (I'm using jQuery ui button) lose all their jquery ui classes, meaning:

When the page loads for the first time, my buttons look like this:

<button class="my_button ui-button ui-widget ui-state-default ui-corner-all ui-button-icon-only">
<span class="ui-button-icon-primary ui-icon ui-icon-plusthick"></span>
</button>

As you can see, my buttons have all the jquery-ui classes ui-button, ui-widget, etc.... Also, my buttons have a span which displays a plus(+) sign as a label for my buttons. Therefore, my buttons display correctly.

But when I load the same content (which contains the same buttons) via Ajax, my buttons become like this:

<button class="my_button"></button>

As you can see, I lose all the jQuery ui classes of my button. Therefore, the button is not styled

How can I fix this?

NOTE : Please note that I did not manually add those jquery-ui classes to my buttons in my HTML. When you initialize the buttons using $(".my_button").button(); in jQuery, jQuery automatically applies all the necessary jquery-ui classes to my button appropriately. So please don't tell me it's because I didn't not assign the jquery-ui classes to my buttons upfront (I should not have to). Also, I tried .live(), .delegate(), none of those work.

Please help me with this anyone

Thank you

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I'm not sure but once I've faced this problem and solved it using the way I answered it. –  The Alpha Feb 25 '12 at 15:48

1 Answer 1

up vote 4 down vote accepted

I've faced this problem once and solved this problem using the document.ready call like

function myreadyFunc(){
    $(".my_button").button();
    // Other codes
}

I had my document.ready like following

$(document).ready(function(){
    myreadyFunc();
});

After each ajax (success) call I used to call

myreadyFunc();

Hope this will help you too. I used this approach to execute document.ready's code that was not possible by calling document.ready after each ajax call.

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Do you put the myreadyFunc() outside of the $(document).ready()? Cause I just tried this and it doesn't work –  user765368 Feb 25 '12 at 15:53
    
Yes you should put myreadyFunc() outside the $(document).ready() –  The Alpha Feb 25 '12 at 15:54
    
So, in other words, you put all the code contained in your $(document).ready() inside myreadyFunc()? and call myreadyFunc() inside the $(document).ready() AND after each Ajax calls? –  user765368 Feb 25 '12 at 15:57
    
Yes, that's it. –  The Alpha Feb 25 '12 at 15:59
    
Ok, but for me the Ajax calls are in my $(document).ready(), so I'm assuming they will now be inside myreadyFunc(). So I will have calls to myreadyFunc() INSIDE of myreadyFunc() after each Ajax calls? Or do you perfom your Ajax inside the $(document).ready()? –  user765368 Feb 25 '12 at 16:03

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