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so I have this site: http://webzilla-il.com/contactus.php , now i know it's not in english but the text isn't important what's important is the jquery, try click on each image on the purple area, as you can see a div slide's down with some texts, now try clicking fast on the images one after another, the divs are showing before the sliding up has finished and making it look bad...

My code so far is:

//Contact us
$(document).ready(function(){
    $(".box").click(function(){
        var name = $(this).attr("name");
        $(".sform").slideUp().promise().done(function() {                   
            switch(name){
                case "skype":
                    $('.sform[name="'+name+'"]').next().promise().done(function() {$(this).css("margin-left","4px")});
                    $('.sform[name="'+name+'"]').slideDown();
                    break;
                case "form":
                    $('.sform[name="skype"]').next().promise().done(function() {$(this).css("margin-left","60px")});
                    $('.sform[name="'+name+'"]').slideDown();
                    break;
                case "email":
                    $('.sform[name="skype"]').next().promise().done(function() {$(this).css("margin-left","60px")});
                    $('.sform[name="'+name+'"]').slideDown();
                    break;
            }
        });             
    });
});

My html:

    <div id="contact_forms">
        <div class="cform sform" style="margin-left: 60px; display: none;" name="skype"> <!--Skype-->
            <div class="skypes">
            <h5><a class="cf" href="skype:londneramit">londneramit</a></h5>
                עמית לונדנר
            </div>
            <br />
            <div class="skypes" name="skype">
                <h5><a class="cf" href="skype:dan_barzilay">dan_barzilay</a></h5>
                דן ברזילי   
            </div>
        </div>
        <div class="cform" style="margin-left: 60px; visibility: hidden;"></div> 

        <div class="cform sform" name="form"> <!--Form-->
            <div id="webzilla_contact_us" style="border: none;">
                <form method="POST" onsubmit="return contactUs(this)">
                    <input type="text" name="name" />
                    <input type="email" name="email" />
                    <input type="text" name="title" />
                    <br style="clear: both;" />
                    <textarea name="content"></textarea>
                    <input type="submit" name="contactsub" value="שלח!"/>
                </form>
            </div>
        </div>
        <div class="cform" style="visibility: hidden;"></div> 

        <div class="cform sform" style="display: none;" name="email"> <!--Email-->
            <h6><a class="cf" href="mailto:webzilla-il@gmail.com">webzilla-il@gmail.com</a></h6>
            <div id="breaker"><img src="img/Contact/shadow_breaker.png" alt="breaker" /></div>
            <div class="emails">
                <h5><a class="cf" href="mailto:londner.amit@gmail.com">londner.amit@gmail.com</a></h5>
                עמית לונדנר
            </div>
            <br />
            <div class="emails">
                <h5><a class="cf" href="mailto:barzilaydn@gmail.com">barzilaydn@gmail.com</a></h5>
                דן ברזילי                   
            </div>
        </div>
    </div>

As you can see i have tryed promise().done()...

Thanks for your help.

share|improve this question
    
you need something like clear the animation queue and finish all current animation then execute the click event –  Huangism May 8 '12 at 19:07

5 Answers 5

up vote 0 down vote accepted

something more simple,

is this what u are trying to reach?

Demo

share|improve this answer

Edit:

 $('.sform').not(":visible").slideUp(function() {
            // will be called when the element finishes fading out
            // if selector matches multiple elements it will be called once for each
            switch(name){
                    case "skype":
                        $('.sform[name="'+name+'"]').next().promise().done(function() {$(this).css("margin-left","4px")});
                        $('.sform[name="'+name+'"]').slideDown();
                        break;
                    case "form":
                        $('.sform[name="skype"]').next().promise().done(function() {$(this).css("margin-left","60px")});
                        $('.sform[name="'+name+'"]').slideDown();
                        break;
                    case "email":
                        $('.sform[name="skype"]').next().promise().done(function() {$(this).css("margin-left","60px")});
                        $('.sform[name="'+name+'"]').slideDown();
                        break;
                }

        });

Documentation

share|improve this answer
    
wouldn't this cause the thing to slide up and down for as many times a you clicked? even though it would queue them but they will all display wouldn't they? –  Huangism May 8 '12 at 19:08
    
I tryed that but it didnt worked :/ –  Dan Barzilay May 8 '12 at 19:12

My work firewall isn't letting me see your website for some reason, but looking at your code, you might be able to try using the callback of instead:

$(".sform").slideUp(function() {                   
    switch(name){
        case "skype":
            $('.sform[name="'+name+'"]').next().promise().done(function() {$(this).css("margin-left","4px")});
            $('.sform[name="'+name+'"]').slideDown();
            break;
        case "form":
            $('.sform[name="skype"]').next().promise().done(function() {$(this).css("margin-left","60px")});
            $('.sform[name="'+name+'"]').slideDown();
            break;
        case "email":
            $('.sform[name="skype"]').next().promise().done(function() {$(this).css("margin-left","60px")});
            $('.sform[name="'+name+'"]').slideDown();
            break;
    }
});    
share|improve this answer
    
Tryed it didnt work... :/ –  Dan Barzilay May 8 '12 at 19:12
    
Did it have the same behaviour or something different? –  Brian May 8 '12 at 19:15
    
Iv'e now uploaded your code so you can see for yourself –  Dan Barzilay May 8 '12 at 19:21

It is because you are calling SlideUp to ALL of the boxes every time you click on any of them.

$(".sform").not(":visible").slideUp().promise().done(function() {      

...      
share|improve this answer
    
Sry :/ not working... –  Dan Barzilay May 8 '12 at 19:16

try this

$(".sform").stop(true, true).slideUp().promise().done(..)

This may give some luck:

$(".sform:animated").slideUp(100).promise().done(..)  

oR

$(".sform:animated").slideUp(100, function() {
  switch(name) {...}
})

You may check with out duration

share|improve this answer
    
You may want to use .stop(true, true) so it will return to the original position. –  Brian May 8 '12 at 19:12
    
Just uploaded it with your code so you can see for yourself –  Dan Barzilay May 8 '12 at 19:15
    
play around with the stop(), it should work, try setting the true to false and have different combos. Don't expect everyone to spoon feed you –  Huangism May 8 '12 at 19:19
    
Sry, i tryed all combanations, didn't worked... –  Dan Barzilay May 8 '12 at 19:25
    
@DanBarzilay can you try with my update code? –  thecodeparadox May 8 '12 at 19:36

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