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my fiddle

        $szPostContent = $post->post_content;
        $szSearchPattern = '#(<img.*?>)#';
        $a='';
        $aPics='';
        preg_match_all( $szSearchPattern, $szPostContent, $aPics );
        $iNumberOfPics = count($aPics);
        echo "<br />Number of pics on each post...............".$iNumberOfPics;
        array_push($postimg, $iNumberOfPics);

$iNumberofPics shows image from single post... look at the demo ..u will find that on mouseover of arrow imgthe slider dissapears.while i want to show that main div continously until the users remains there on that page..

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jsfiddle.net/AjAw9/5 – Spokey May 27 '13 at 10:09
    
@Spokey -- Thanks for reply but i wanted to show that imageslider div and also two arrow classes and on mouseout of imageslider div i want to hide that imageslider div – Vaibs_Cool May 27 '13 at 10:17
up vote 1 down vote accepted
<div class='container' style='height:150px; width:225px;'>
    <div class="imageslider" id="imageslider" style="border: 1px solid #000000; height:150px; width:225px;display:none">
        <img class="arrow left" style="border: 1px solid #000000; height:25px; width:25px; float:left; margin-top:50px;" />
        <div class="images"></div>
        <img class="arrow right" style="border: 1px solid #000000; height:25px; width:25px; float:right; margin-top:50px;" />
    </div>

And Script

$(".container").hover(function () {
    $(this).find('.imageslider').show();
}, function () {
    $(this).find('.imageslider').hide();
});

FIDDLE

.container is there as a placeholder in order for you to be able to mouse it over and out

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I am not sure if I got your question right, so I hope one of these approaches help you: In your code you use onmouseout, not onmouseover. You can:

  • Use $(...).show() and $(...).hide() on mouseover and mouseout.
  • Take a look at $(...).toggle() that will take away some work.
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