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I want to create a menu in my web page, where each list item is represented by image. When mouse point at some of these images, this image should fade out and be replaced by another image (I think fadeIn() would be useful).

HTML code:

<ul id="buttons">`    
    <li><a href="#" onmouseover="change(1)" onmouseout="ret(1)">  
        <img src="button01.png" id="button01_1" />
        <img src="button01_hover.png" id="button01_2"/>  
    </a></li>
    <li><a href="#" onmouseover="change(2)" onmouseout="ret(2)">  
        <img src="button02.png" id="button02_1" />
        <img src="button02_hover.png" id="button02_2"/>  
     </a></li>
</ul>

jQuery - I´m new in using jQuery, I tried this, but there are many mistakes. Pictures are not changing properly - "fadeIn" picture changes position (every list item is absolutely positioned), and first image is disapperaing and appearing constantly. Here´s the code:

function change(i)
{
    switch(i)
    {
        case 1:
            $("#button01_1").fadeOut(500); 
            $("#button01_2").fadeIn(500); 
            break;
        case 2:
            $("#button02_1").fadeOut(500);
            $("#button02_2").fadeIn(500);
    }
}

(ret(i) is similar..)

Thanks for help..

share|improve this question
1  
For future reference, just type all your code as is, then select all of it and click that button that looks like this: {} –  Asad Nov 24 '12 at 21:19
1  
(And, if you have a moment, take a look at the Mark-down help page for further reference/guidance.) –  David Thomas Nov 24 '12 at 21:20
    
Thanks, I´ll definitely read it –  Tom11 Nov 24 '12 at 21:28
    
Depending on what browsers you support, you might want to use CSS instead: jsfiddle.net/yKQQB. –  pimvdb Nov 24 '12 at 21:30

3 Answers 3

up vote 1 down vote accepted

You're nearly there but i can simplify:

<ul id="buttons">
    <li>
        <a href="#" id="link1">
            <img src="button01.png" id="button01_1" />
        </a>
    </li>
    <li>
        <a href="#" id="link2">
            <img src="button02.png" id="button02_1" />
        </a>
    </li>
</ul>

jQuery code:

$('#link1').hover(function(){
    $('#button01_1').fadeOut(500).attr('src','button01_hover.png').fadeIn(500);
},function(){
    $('#button01_1').fadeOut(500).attr('src','button01.png').fadeIn(500);
});

With the selectors you could remove the id button01_1 and replace the jQuery selector to $('img','#link') to accommodate. sorry if I've used too much of the jQuery library than javascript.

Function explained:

$('#link1').hover(function(){ --initial function on hover-- },function(){ --coming out of the hover-- });

EDIT :

jQuery library : <script src="https://ajax.googleapis.com/ajax/libs/jquery/1.7.1/jquery.min.js"></script>

Add the library to your html page

share|improve this answer
    
This is complete .js file? It´s not working.. List item are not reacting to mouse hover –  Tom11 Nov 24 '12 at 21:44
    
Have you changed the html? I removed the second <img> and added the attribute 'id="link1"' to the anchor. Plus I removed the other javascript related attributes. –  Beneto Nov 24 '12 at 21:53
    
If I updated that jsfiddle, would you be able to see the changes that I make? –  Beneto Nov 24 '12 at 21:54
    
Yes, I changed that.. they are still not responding –  Tom11 Nov 24 '12 at 21:55
    
Of course I would... –  Tom11 Nov 24 '12 at 21:56

I think the problem is the fact that fading out an image also triggers a mouseout, (since it has display:none once the fade out completes), which in turn triggers a fade in, and so on. Consider rethinking your logic.

share|improve this answer
1  
-1 there is no click request in the question –  sbaaaang Nov 24 '12 at 21:24
    
@Ispuk You're right, I meant for that to be mouseover, but I realised that isn't the problem anyway. –  Asad Nov 24 '12 at 21:26
    
+1 you opened good topic about ;) and sorry for my english –  sbaaaang Nov 24 '12 at 21:27

Updated:
use like this :

<ul id="buttons">    
    <li><a href="#" onmouseover="change($(this),1)" onmouseout="ret($(this),1)">  
        <img src="button01.png"/> 
    </a></li>
    <li><a href="#" onmouseover="change($(this),2)" onmouseout="ret($(this),2)">  
        <img src="button02.png"/> 
     </a></li>
</ul>  

jquery :

function change(elem ,i){
   $(elem).find('img').fadeOut('500',function(){
      $(this).attr('src','button0'+i+'_hover.png').fadeIn('2000');
   });
}
function ret(elem ,i){
   $(elem).find('img').fadeOut('500',function(){
       $(this).attr('src','button0'+i+'.png').fadeIn('2000');
   });
}

I hope that work ...

share|improve this answer
    
Something like this I wanted to create. But problem is, that hide() function causes first image disappear immediately, so in one moment there will be a gap (no image).. I need the fluent fade. I tried to use in your code fadeOut(500) instead of hide(), but it causes chaos in images´ behaviour. –  Tom11 Nov 24 '12 at 21:53
    
ok i update the answer... –  Mb Rostami Nov 25 '12 at 11:39

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