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let's say that I using this code and I want to change it after an ajax call (change fx for example).

$(document).ready(function() {

    $('.slideshow').cycle({
      fx: 'fade' ,
      timeout: 1500
    });

}}

is it possible ?

thanks

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3  
When posting questions specific to a plug-in (cycle isn't core jQuery), it's best to link to the site for the plug-in. In this case, you'll want to look at the plug-in's documentation to see if there's a way to change the options it's using while it's running (or a way to stop it, then start again). –  T.J. Crowder Oct 17 '12 at 12:15
    
See plugin documentation. –  Dev Oct 17 '12 at 12:16
    
What happens if you just try to call the code again with a different fx? I would have thought that would just override the previous cycle. That's just a general assumption though, I have no idea about this specific code. –  Chris Oct 17 '12 at 12:17
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1 Answer 1

If the .cycle() method allows you to call it again with new parameters, you could use something like:

$.ajax(
  ...
  // do your ajax stuff here
  ...
).done(function() {
    $('.slideshow').cycle({ fx: 'newfx', timeout: 500} );
});

This will then be executed after the AJAX call, independent of the outcome. If you only want it to execute after a successful AJAX call, use

$.ajax(
  ...
  // do your ajax stuff here
  ...
  .success (function() {
    // do other stuff here, if necessary
    $('.slideshow').cycle({ fx: 'newfx', timeout: 500} );
 });
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