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How to hide li , and remove it's space. The following code is to transfer between images,but when hiding the previous li it's empty space appears .

<script type="text/javascript">
    $(document).ready(function () {
        var selectedIndex = 1;
        $("#slide" + selectedIndex + " img").fadeIn(500);
        $("ul.captios li").click(function () {
            var id = $(this).attr("id").split("_")[1];
            $("#slide" + selectedIndex + " img").fadeOut(500, function () {
                $("#slide" + id + " img").fadeIn(500);
                $("#slide" + selectedIndex).css("display:none;");
                selectedIndex = id;
            });

        });
    });
</script>

a html

 <div id="gal-container">
        <div id="slides-wrapper">
            <ul class="slides">
                <li id="slide1"><img  class="hide" src="imgs/img1.jpg" /></li>
                <li id="slide2"><img  class="hide" src="imgs/img2.jpg" /></li>
            </ul>
        </div>

        <div id="caption-wrapper">
           <ul class="captios">
                <li id="caption_1"><a href="#">img1</a></li>
                <li id="caption_2"><a href="#">img2</a></li>
            </ul>
        </div>
    </div>
share|improve this question
    
where is slide id present on your code? –  Kunal Vashist Feb 28 '12 at 9:08

5 Answers 5

up vote 4 down vote accepted

Why don't you use:

        $("#slide" + selectedIndex).hide();

??

Or even better might be:

 $("#slide" + selectedIndex).fadeOut(500, function () {
      $("#slide" + id).fadeIn(500);
      selectedIndex = id;
 });
share|improve this answer

You wrote the css part wrong:

$("#slide" + selectedIndex).css("display:none;"); // It will return the css 
                                                  //definition for display:none

Use this instead:

$("#slide" + selectedIndex).css('display', 'none')

or the hide function which does exactly the same thing out of the box:

$("#slide" + selectedIndex).hide();
share|improve this answer

You're calling .css() incorrectly. You can pass it a single string, which is the name of a CSS property, and it will act as a 'getter', returning the value for that property.

Or you can pass it two strings, the name of a CSS property and a value, which will act as a 'setter', setting that property to have that value.

So, rather than $("#slide" + selectedIndex).css("display:none;"); you want $("#slide" + selectedIndex).css("display", "none");.

share|improve this answer

Don't know if this is your problem, but...this line is not correct:

$("#slide" + selectedIndex).css("display:none;");

It should be:

$("#slide" + selectedIndex).css('display', 'none');
// OR
$("#slide" + selectedIndex).hide();
share|improve this answer

You have an error in your code. Change

$("#slide" + selectedIndex).css("display:none;");

to

$("#slide" + selectedIndex).css({display: 'none'}); or $("#slide" + selectedIndex).css('display', 'none');

http://api.jquery.com/css/

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