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 want to:

1.) clicking on the "NEW" button adds new DIV into "CONTAINER" - this works fine

2.) clicking on the "MOVE" button - take $array - then move container to good position - then for .each item in $array apped new 'DIV' in "CONTAINER" - then animate "CONTAINER to "left: 0" - this doesn't work

3.) clicking on the "REMOVE" button - animate "CONTAINER" out of screen, and remove all DIVs from "CONTAINER"

4.) JsFiddle Example

5.) Why it does not work on web?

HTML

<div class="panel">
    <button class='new'> + </button>
    <button class='move'> &gt; </button>
    <button class='remove'> &lt; </button>
</div>
<div class="container">
</div>

CSS

.block {
   margin       : 0px;
   width        : 200px;
   display      : inline-block;
   border-right : thin dashed #aaa;
   opacity      : 0;
}
.head {
   margin : 0px;
   padding: 5px;
   height : 30px;
   background-color: red;
   color  : white;
}
.body {
   margin : 0px;
   padding: 5px;
   height : 190px;
   background-color: #ddd;
   color  : black;
}
.panel {
   position  : absolute;
   top       : 50px;
   padding   : 5px;
   color     : #FFF;
   font-size : 15px;
   background: #d30;
   height    : 25px;
   -webkit-border-radius: 4px;
   -moz-border-radius: 4px;
   border-radius: 4px;
   cursor    : pointer;
}
.container {
   position: absolute;
   top  : 90px;
   left : 0px;
}
button{
   width   : 25px;
   background  : none;
   cursor      : pointer;
   font-family : 'voltaeftu-regular',Times New Roman;
   font-size   : 18px;
   color   : #fff;
   border  : none;
   margin  : 0px;
   padding : 0px;
}

jQeury

$(".remove").click(function(){
    var x_width = $('.container').find('.block').width();
    var x_all = $('.container').find('.block').size();
    var all_width = -10 - ( x_width * x_all ) ;
    $(".container").animate({
        left: all_width
    }, 500 );
 });

$(".new").click(function()  {
       $('.container').append( $('<div class="block" id="new"><div class="head">HEADER</div><div class="body">text text text</div></div>', {
           css: {
               display: 'inline-block',
               opacity: 0
           }
       }).animate({ opacity: 1  }) );
});

// array
var $array = [ '001', '002', '003', '004', '005' ];

$(".move").click(function(){
   var array_length = $array.length;
   var array_width = 0 - array_length * 200;
   $('.container').css ({ left: array_width});
   $.each( $array , function(item, value){
               $('.container').apped('<div class="block" id="'+value+'"><div  class="head">HEADER '+value+'</div><div class="body">text text  text</div></div>', {
                       css: {
                           display: 'inline-block',
                           opacity: 0
                           }
                   }).animate({ opacity: 1  });
           });
    $('.container').animate({ left: 0});
});
share|improve this question
    
Syntax error $('.container').apped('. apped?? –  elclanrs Apr 18 '12 at 6:05
    
Yes, thank you... New Example >>> jsfiddle.net/ynternet/vykV9/2 –  Patrik Apr 18 '12 at 9:36

3 Answers 3

up vote 1 down vote accepted

One issue you are having is that you are not counting the width of the original block when moving it to left:0, here is a fix:

var block_width = $(".block").width();
var array_width = (array_length * block_width) - block_width;
$('.container').css ({ left: array_width});

Before, you were moving it over the width of itself * the length of the array, which means it got pushed off the screen since it's already existing width wasn't figured in.

But after I fix that, the divs just kind of stack up. I assume you want them to line up horizontal?

share|improve this answer
    
I need to count the width and line of the container, couse I don't know the width of the visitors screeen... so I do not know how much line "container" has... :] –  Patrik Apr 18 '12 at 6:56
    
Right, but if you count the block's width, it will always go off screen by that much. You need to subtract it's width so it has that space carved out for itself. –  Anthony Apr 18 '12 at 6:58

Whenever I have done javascript, the order in which you declare the DOM object and event handler matter. In your web example(on number 5) your jquery event handling (click, etc) is set before those DOM objects are even created with HTML. Try moving your js script to the bottom of the page right before the end body tag.

share|improve this answer
    
thx, 5. is working fine... :] –  Patrik Apr 18 '12 at 6:57

You should have all those javascripts inside the $(document).ready() function:

$(document).ready(function() {
   // put all your jQuery goodness in here.
 });
share|improve this answer
    
thx, 5. is working fine... :] –  Patrik Apr 18 '12 at 6:57

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.