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'm messing around with jQuery's load and fadein and fadeout animations but i can't get a handle on how to work them together.

i have a function that replaces whats in my #ajaxdiv with a calendar every time i click the next month. It doesn't have any animation but it works great.

function ajaxCalendar(X,Y,Z){
var changemonthlink = "http://localhost:8888/myproject/calendar/view/" + X + "/" + Y + "/" + Z + "/1";
$("#ajaxdiv").load(changemonthlink);
return false;       
};

Now what i'd like to do (if it's fairly easy to achieve) is to fade/slide the content of the div left or right and then slide/load the new content left or right. Any help would be amazing.

I've done this but it doesn't work. The browser navigates to the link...

function ajaxCalendar(X,Y,Z){
            $('#ajaxdiv').hide('slow',loadContent());  
            return false;       
};

function loadContent() {  
    var changemonthlink = "http://localhost:8888/myproject/calendar/view/" + X + "/" + Y + "/" + Z + "/1";
    $('#ajaxdiv').load(changemonthlink,'',showNewContent());
};


function showNewContent() {  
       $('#ajaxdiv').show('normal'); 
};

i've rearranged it into this. and the initial hide animation is working but thats it. The div doesn't ever show back up.

function ajaxCalendar(X,Y,Z){
            $('#ajaxdiv').hide('slow',loadContent());  

            function loadContent() {  
                var changemonthlink = "http://localhost:8888/myproject/calendar/view/" + X + "/" + Y + "/" + Z + "/1";
                $('#ajaxdiv').load(changemonthlink,'',showNewContent());
            }

            function showNewContent() {  
                   $('#ajaxdiv').show('normal'); 
            }

            return false;   

};

latest function works, but the timing is off. The the loading of the calendar is happening before the fadeOut() is complete. i tried putting a delay(300) right before the load() function but that just delayed the initial fadeout.

function ajaxCalendar(X,Y,Z){
            $('#ajaxdiv').fadeOut('300',loadContent());  

            function loadContent() {  
                var changemonthlink = "http://localhost:8888/myproject/calendar/view/" + X + "/" + Y + "/" + Z + "/1";
                $('#ajaxdiv').load(changemonthlink,'',function(){
                   $('#ajaxdiv').fadeIn('300'); 
                });
            }

            return false;   

};
share|improve this question

2 Answers 2

up vote 1 down vote accepted

Try switching to fadeIn() and fadeOut() instead of show() and hide()

AND make sure you are parsing your function parameters.

AND use $.get instead of .load... see my following code

function ajaxCalendar(X, Y, Z) {
    var changemonthlink = "/css/normalize.css"; //test url only {css file on same domain}

    $.get(changemonthlink, function(data) {
        $('#ajaxdiv').fadeOut('normal',function(){$('#ajaxdiv').html(data);});
        $('#ajaxdiv').fadeIn('normal');
    }).error(function(a, b, c) {
        alert(b + ' : ' + c);
    });
}

See my example : http://jsfiddle.net/8E7vk/2/

share|improve this answer
    
the problem is my function breaks when i reference loadContent() in my initial function. if i remove that part. It works like it should...just fades the contents out. –  David Jul 4 '11 at 14:56
    
interesting....i changed the hide() to fadeOut() and i see that the other calendar is being loaded but it is being faded away. The fadeOut() is happening before/durring the load(). –  David Jul 4 '11 at 15:03
    
Check my updated answer. Changed your code a bit. –  Marc Uberstein Jul 4 '11 at 15:09
    
i just posted my latest function in my original post but it still doesn't work like how i want it to. –  David Jul 4 '11 at 15:33
    
I have updated my answer again, using $.get. Please let me know if this fixes your problem –  Marc Uberstein Jul 5 '11 at 6:00

Try http://api.jquery.com/jQuery.ajax/ BUT, set the parameter async to false.

share|improve this answer

Your Answer

 
discard

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

Not the answer you're looking for? Browse other questions tagged or ask your own question.