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I'm using Mika Tuupola's Lazy Load plugin http://www.appelsiini.net/projects/lazyload to delay loading images as you scroll down a long image gallery. The problem is after 10 images, I use infinite scrolling so I fetch the next 10 images, and append them via ajax. Lazy Loading no longer works on this next batch of appended images.

It's a pretty javascript-heavy image gallery, so for everything else (such as tooltips, modal overlays, etc) I've been using jQuery's delegate() to bind to ajax-inserted elements. The problem with the Lazy Load plugin is that I'm not sure what event to bind to.

So say I want to lazy load images with a class of "lazy". I would write this:

$("img.lazy").lazyload({ 
    effect: "fadeIn" 
});

and it works for the first 10 images, but stops working after inserting more via ajax. The only thing I can think of is to use delegate on a load event, like so:

$(document).delegate("img.lazy", "load", function(event) {  
    $(this).lazyload({ 
         effect: "fadeIn" 
    });     
});

but that breaks everything. Thanks!

EDIT: The jQuery I use to load more records (this is a Rails app):

$(window).scroll(function() {
    var url;
    url = $(".pagination .next_page").attr("href");
    if (url && $(window).scrollTop() > $(document).height() - $(window).height() - 50) {
    $(".pagination").html("<p>loading more images...</p>");
    return $.getScript(url);
    }
});

$(window).scroll();
share|improve this question
    
have you tried .on? –  Fresheyeball Apr 5 '12 at 21:09
    
@Fresheyeball .on with what event? That's what he's asking. –  Kevin B Apr 5 '12 at 21:15
    
why not try using .on on lazyload? wouldn't that work? –  rgin Apr 5 '12 at 21:21
2  
@rgin Again, with what event? lazyload isn't an event, and .on requires an event to bind to. –  Kevin B Apr 5 '12 at 21:23

1 Answer 1

up vote 13 down vote accepted

I would use the ajaxStop method.

$("img.lazy").lazyload({ 
    effect: "fadeIn" 
}).removeClass("lazy");
$(document).ajaxStop(function(){
    $("img.lazy").lazyload({ 
        effect: "fadeIn" 
    }).removeClass("lazy");
});

removeClass prevents double initialization.

share|improve this answer
    
Wow, thank you that worked like a charm. Now I just need to understand how exactly ajaxStop() solved the problem (I read this api.jquery.com/ajaxStop but still a bit confused). Is it performance-friendly? –  DelPiero Apr 5 '12 at 23:20
3  
It is performance friendly, however it would be even better if you instead placed it in the callback of the specific ajax request that is updating the page. –  Kevin B Apr 6 '12 at 0:25
1  
@DelPiero - extending Kevin B's comment. The deferreds object is your friend in this scenario. See: api.jquery.com/category/deferred-object –  trickyzter Apr 6 '12 at 14:06

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