Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I know there are loads of questions on replacewith but none seem to have answers that apply to my situation.

html: <div id="foo"></div>

I want #foo to be faded out, then I want to replace the whole thing (not just the contents) with essentially the same thing <div id="foo"></div> which is faded in.

Thanks

share|improve this question

6 Answers 6

up vote 32 down vote accepted
$('#foo').fadeOut("slow", function(){
    var div = $("<div id='foo'>test2</div>").hide();
    $(this).replaceWith(div);
    $('#foo').fadeIn("slow");
});

jsfiddle - http://jsfiddle.net/9Dubr/1/

Updated to fade in correctly

share|improve this answer
    
Great works a treat, thanks! –  user623520 Mar 9 '11 at 16:43
1  
In case someone runs into the same issue: Note that replaceWith() removes the content before inserting the new content. For an unnoticable short period of time the free space is filled by other elements in the flow. If one of those elements actually triggers the fade on mouseenter, that element is moved away from the cursor and then back "under" it causing the event to trigger periodically. To fix this, wrap the faded element in a div with a fixed height (at least while fading). This actually took me a couple of hours to figure out. –  Andre Nov 15 '12 at 13:51
$('#foo').fadeOut("slow", function(){
  $('#foo').html(data);
  $('#foo').fadeIn("slow");
}
share|improve this answer
    
Sorry I should have been more explicit, the new <div id="foo"></div> is actually different - it's loaded with ajax so what I really want is $('#foo').replaceWith(data.foo) - but with fades. –  user623520 Mar 9 '11 at 16:28
    
You can simply replace the html within the div with html() before fading in. I've revised my answer above. –  Jason MacLean Mar 9 '11 at 16:31

This version will 'live' on ;)

jsfiddle effort

share|improve this answer

I successfully use this pattern to GET+fadeOut+fadeIn (with jQuery 1.11.0):

$.get(url).done(function(data) {
    $target.fadeOut(function() {
        $target.replaceWith(function() {
            return $(data).hide().fadeIn();
        });
    });
});

where $target is the element to replace.

share|improve this answer

You can also use shuffle function written by James Padolsey with a little modification:

(function($){
    $.fn.shuffle = function() {
        var allElems = this.get(),
            getRandom = function(max) {
                return Math.floor(Math.random() * max);
            },
            shuffled = $.map(allElems, function(){
                var random = getRandom(allElems.length),
                    randEl = $(allElems[random]).clone(true)[0];
                allElems.splice(random, 1);
                return randEl;
            });

        this.each(function(i){

            $(this).fadeOut(700, function(){
                $(this).replaceWith($(shuffled[i]));
                $(shuffled[i]).fadeIn(700);
            });

        });
        return $(shuffled);
    };
})(jQuery);

And then in your handler use $('.albums .album').shuffle(); to shaffle your elements with fade.

share|improve this answer

I've written a jQuery plugin to handle this.

It allows for a callback function which can be passed the replacement element.

$('#old').replaceWithFade(replacementElementSelectorHtmlEtc,function(replacement){
   replacement.animate({ "left": "+=50px" }, "slow" );
});

The plugin

(function($){
   $.fn.replaceWithFade = function(el, callback){
        numArgs = arguments.length;
        this.each(function(){
            var replacement = $(el).hide();
            $(this).fadeOut(function(){
                $(this).replaceWith(replacement);
                replacement.fadeIn(function(){
                    if(numArgs == 2){
                        callback.call(this, replacement);
                    }
                });
            });
        });
    }
}(jQuery));
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.