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folks,

I have on my pages (http://playdota.thilisar.cz) a JavaScript file(code below), that has to have an effect of modyfying the edge of the icons(for real, it has to load new picture) and loading the information(only plain text so far) into a div with ID "info" on mouseover event;on mouseout event it has to load the original picture to same position. But it only writes informations and replaces icons with "[object Object]" text.

I hope, you understand this, because my english isn't very good.

Thanks for your answers.

function showInfo(id){                     //Using jQuery 1.7.2
  document.getElementById('ses').innerHTML=$(function(){
    $.ajax({
        url: "sentinel_str/"+id+"-info.html"
    }).done(function(data){
        $("#info").html(data)
    })
    $("#ses").find("li").mouseover(function(){
        $id=$(this).find("img").attr("id")
        $(self.document[$id].src='look/icons/'+$id+'_hover.jpg')
    })
    $("#ses").find("li").mouseout(function(){
        $id=$(this).find("img").attr("id")
        $(self.document[$id].src='look/icons/'+$id+'.jpg')
    })
})};

CLOSED THANKS TO CHEESEWARLOCK'S ANSWER

Thanks all, who tried to help me.


share|improve this question
1  
Well, if you're using jQuery why not take full advantage of it? –  elclanrs Jul 5 '12 at 13:16
    
So you want to show the id information on MouseOver and load the image back on miouse out right? –  Shiv Kumar Ganesh Jul 5 '12 at 13:19
    
Is needed to full advantage jQuery? –  lukIX_CZ Jul 5 '12 at 13:20
    
Yes, it is what I want :) –  lukIX_CZ Jul 5 '12 at 13:21
    
Do you have any background working with code like this, or did you just find some code somewhere and glue it together? Really the code doesn't make any sense as it stands. –  Pointy Jul 5 '12 at 13:22

4 Answers 4

up vote 0 down vote accepted

You're getting [object Object] because you're setting the contents of an HTML element to a jQuery object. If you want to call a piece of jQuery code, you don't need to wrap it in $(). You can just call the code directly. So get rid of this line:

document.getElementById('ses').innerHTML=$(function(){

and this line:

}) 

and the rest of your code will be executed when you call showInfo(id).

share|improve this answer

You are setting the innerHTML of the element to the value of the return of the jquery object. In effect you're saying put the 'toString' value of this function as the content of the HTML.

Do you mean to have? Unless I'm reading it wrong. document.getElementById('ses').innerHTML=$(function(){

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The "mouseover" and "mouseout" handlers look pretty confused to me. There's no need to call getElementById() at all; you're using jQuery, and you can find the <img> tags with it. Once you've found them, you've found them; no need to find them again.

$("#ses").find("li").mouseover(function(){
    $(this).find('img').prop('src', function() {
      return 'look/icons/' + this.id + '_hover.jpg';
    });
})
$("#ses").find("li").mouseout(function(){
    $(this).find('img').prop('src', function() {
      return 'look/icons/' + this.id + '.jpg';
    });
})

Passing a function as the second argument of .prop lets you compute the value of the property using the DOM element state directly.

Also you might want to use "mouseenter" and "mouseleave", which are sanitized by jQuery and are a little more reliable than "mouseover" and "mouseout".

edit — wow I just "zoomed out" and noticed that all this code is being set up as an innerHTML value, which makes no sense. Looks like a case of rampant copy/paste or something.

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The code written below would solve your problem and is even short. Check it out once.

var id;
$('#ses').find('li').each(function(){
   $(this).mouseover(function(){
    var image=$(this).find('img');
      id=$(this).find('img').attr('id');
     $('#id').hide();
$(this).append('<div>'+id+'</div>');
});
$(this).mouseout(function(){
$(this).html('');
$('#id').show();
});

});
share|improve this answer
    
Maybe it works, I must only edit some thing because it's doing nothing –  lukIX_CZ Jul 5 '12 at 13:32
    
I guess if the above is not working then I must have had a typo but this is actually a solution within one function itself. –  Shiv Kumar Ganesh Jul 5 '12 at 13:39

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