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Im attempting to create a mouseover event for pictures on a page to load a summary of that picture into a div container called "contentarea". I'm new into coding, so please forgive my inaptitude. The code is below, but im not sure its going to work. Basically, I have 5 pictures of dogs on a webpage, and I want the mouseover event over a picture of the dog to load information from a seperate page called "content.html." The content that is loaded should load from a that has the same ID as the ID of the picture that is cursor is currently hovering over. The content will then load into a div that is below all the pictures called "contentarea." All pictures belong to the class dog. I had tried to adapt someone else's code, but to no effect.

   <script>
   function(){
    $(.dog).mouseover(function(e) {
        var dogId = $(this).data('id');
        $("contentarea").load("content.html
         # " + dogId + " ");

    }); 
   </script>
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you need to add quotes to your selector so change $(.dog) to $('.dog') –  Darwayne Dec 10 '12 at 1:54
    
Are you using a server-side language, such as PHP? You won't be able to load content dynamically using just HTML. –  zongweil Dec 10 '12 at 1:54
    
'a div container called "contentarea"' what do you mean by 'called'? ID? Class? And just wonder how are you going to get different content by loading the same html file? I doubt hash will do the trick. –  Yury Tarabanko Dec 10 '12 at 2:01
    
I'm just incorporating jquery, so I guess no server-side language. –  user1437779 Dec 10 '12 at 2:03
    
div content with the ID content area –  user1437779 Dec 10 '12 at 2:04

1 Answer 1

You can actually load another html file using ajax, that is not a problem like zongweil said on his comment, because the content you are loading is not dynamic.

You need to add to specify that .dog is a string by using '. Additionally, please explain what you are trying to achieve using the # dogId. Are there anchors on the html file that you are loading? I don't think you will achieve the expected effect by adding the anchor to the loaded html. If you want to load the info of just one dog, then create several content.html file each with the proper id like content1.html, content2.html, etc and use this:

<script>
    $('.dog').mouseover(function(e) {
        var dogId = $(this).data('id');
        $("#contentarea").load("content" + dogId + ".html");
    }); 
   </script>

or instead use a single HTML file with the proper ids:

<div id="dogcontent1">
TEXT TEXT TEXT
</div>
<div id="dogcontent2">
TEXT TEXT TEXT
</div>

and then on the script use this:

<script>
    $('.dog').mouseover(function(e) {
        var dogId = $(this).data('id');
        $("#contentarea").load("content.html #dogcontent"+ dogId );
    }); 
   </script>
share|improve this answer
    
I was hoping that the dogid would be a variable is determined by whichever picture the mouse is on, thereby loading a DIV with the same name from the content.html file. I was hoping to avoid creating multiple content files, and just having one large content file with seperate div containers, and this script would load the seperate div contianers based on the mouse over. –  user1437779 Dec 10 '12 at 2:12
    
@Mickle Forentic: function is never called. Wrap it with another $(...) :). And check contentarea selector, you forgot '#'. –  Yury Tarabanko Dec 10 '12 at 2:14
    
kind of like how this script works [link]stackoverflow.com/questions/4882227/… . But instead of loading into a floating div, I have one div. –  user1437779 Dec 10 '12 at 2:15
    
@YuryTarabanko you are right on both things. Removed the function() and added the selector to contentarea. –  Mickle Foretic Dec 10 '12 at 2:28
    
@user1437779 that is no problem, if you name the <img src="..." id="5"> you will call content5.html. Now if you MUST use a single html file, I would make each dog content in the content.html file enclosed by a non-displaying div like this: <div id="dogcontent1" style="display:none"> and then add an extra line to the function after the load with $("#dogcontent"+dogId).show(). I think that solves your problem –  Mickle Foretic Dec 10 '12 at 2:31

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