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i have some problems with a bit of javascript. i want to display a div when hovering an image:

        <div class="slideshow">
            <img src="img/picture1.jpg" id="picture1" />
            <img src="img/picture2.jpg" id="picture2" />
        </div>

        <div class="pic1desc">
                <h3>Headline</h3><br />
                Text
        </div>

        <div class="pic2desc">
                <h3>Headline</h3><br />
                Text
        </div>

Here is my javascript-snippet:

$(document).ready(function() {
$('.pic1desc').hide();
$('.pic2desc').hide();

//When the Image is hovered upon, show the hidden div using Mouseover
$('#picture1').mouseover(function() {
$('.pic1desc').show();
});

//When the Image is hovered away from, hide the div using Mouseout
$('#picture1').mouseout(function() {
$('.pic1desc').hide();
});


});

This isn't working at all. Anybody got an idea for that? Thanks in advance!

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Included jQuery? –  MrCode Jul 3 '13 at 9:59
    
that is working fine see for console errors, if this is not working , there might be other errors –  Raghurocks Jul 3 '13 at 10:00
    
may be you forgot to include the jquery script ? –  Ashrith Sheshan Jul 3 '13 at 10:01
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3 Answers 3

up vote 1 down vote accepted

this is working check this out..

fiddle

however you can reduce your code to

$(document).ready(function() {
 $('.pic1desc','.pic2desc').hide();


//When the Image is hovered upon, show the hidden div using Mouseover
 $('#picture1').hover(function() {
   $('.pic1desc').show();
},function() {
  $('.pic1desc').hide();
});

//same for `#picture2`

OR

name your div class, as image class

<div class="picture1">
            <h3>Headline</h3><br />
            Text
    </div>

    <div class="picture2">
            <h3>Headline</h3><br />
            Text
    </div>

    $(document).ready(function() {
     $('.picture1','.picture2').hide();


//When the Image is hovered upon, show the hidden div using Mouseover
 $('img[id^="picture"]').hover(function() {
   $('.'+ $(this).prop('class')).show();
},function() {
  $('.'+ $(this).prop('class')).hide();
});

this is dynamic and works for any number of elements...

and yes make sure you are loading(including) jquery.js..that might be the problem..

share|improve this answer
    
Thanks - i've loaded a depricated jquery version :/ I think I need more coffee! –  Dublay Jul 3 '13 at 10:19
    
welcome.. glad it helped.. –  bipen Jul 3 '13 at 10:23
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How about something like thise:

$(document).on('mouseover mouseout', '#picture1', function(){
    // By giving this function two triggers, the same action is performed for each trigger
    $('.pic1desc').toggle();
});

Or:

$(document).on('mouseenter mouseleave', '#picture1', function(){
    // By giving this function two triggers, the same action is performed for each trigger
    $('.pic1desc').toggle();
});

another solution might be this (if you want advanced actions to happen):

$('#picture1').on('mouseover', function(){
    // something on mouseover
    // this way you get more space for larger/more special actions
)}.bind('mouseout',  function(){
    // something on mouseout
    // Same space for mouseout
});
share|improve this answer
1  
live() is depricated in since 1.8 in jQuery –  Dhaval Marthak Jul 3 '13 at 10:05
1  
Thanks, fixed it :) Still getting used to on(), been using live() for a while –  Martijn Jul 3 '13 at 10:07
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Do like this: use mouseenter() it's having a callback method eg. mouseleave()

$('#picture1').mouseenter(function() {
  $('.pic1desc').show();
}).mouseleave(function(){
    $('.pic1desc').hide();    
});


$('#picture2').mouseenter(function() {
  $('.pic2desc').show();
}).mouseleave(function(){
    $('.pic2desc').hide();    
});

Fiddle

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