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Currently my code looks like this:

<div id="content">
<div id="1">
<img src="" alt="" onmouseover="document.getElementById('1').style.visibility = 'visible'; document.getElementById('2').style.visibility = 'hidden'; document.getElementById('3').style.visibility = 'hidden'; document.getElementById('4').style.visibility = 'hidden';" />
<div id="1_content>content</div>
</div>

<div id="2">
<img src="" alt="" onmouseover="document.getElementById('2').style.visibility = 'visible'; document.getElementById('1').style.visibility = 'hidden'; document.getElementById('3').style.visibility = 'hidden'; document.getElementById('4').style.visibility = 'hidden';" />
<div id="2_content">content</p>
</div>

<div id="3">
<img src="" alt="" onmouseover="document.getElementById('3').style.visibility = 'visible'; document.getElementById('1').style.visibility = 'hidden'; document.getElementById('3').style.visibility = 'hidden'; document.getElementById('4').style.visibility = 'hidden';" />
<div id="3_content">content</div>
</div>

<div id="4">
<img src="" alt="" onmouseover="document.getElementById('4').style.visibility = 'visible'; document.getElementById('1').style.visibility = 'hidden'; document.getElementById('2').style.visibility = 'hidden'; document.getElementById('3').style.visibility = 'hidden';" />
<div id="4_content>content</div>
</div>

</div><!-- content -->

Each div is positioned in the same place. How would I create a function to perform this? I only ask because the code doesn't validate with the DTD I'm using so I"d like to fix that. Also, because the divs are on top of each other, when I make one visible, I can't highlight text in the visible div because its z-index remains the same and so the content is locked behind an invisible div. How would I fix this? Finally, would I simply call the function in the html with onmouseover="return functionName()"? Will that validate in XHTML1.0 Strict?

share|improve this question
    
What are you actually trying to achieve ? your code as it is now is totally flawed ! –  ManseUK May 15 '12 at 10:59
    
Well, I have 4 images on the left and 4 divs in the same position on the right. When I mouseover the image on the left I want it to display the corresponding div with content related to that image. When I mouseover different image I want it to make the previous div hidden, make the new relevant div visible, and bring it to the top of the z-index. The current code works, for some reason, in Safari. –  user1395909 May 15 '12 at 11:05
    
But your image is within your div - so they will be hidden as soon as you mouseover the first DIV ... –  ManseUK May 15 '12 at 11:06
    
Oh whoops, I'll edit that. The content divs and the images are within the same div. –  user1395909 May 15 '12 at 11:08

1 Answer 1

up vote 1 down vote accepted

I am guessing that you need something like this:

<html><head>
<script>
function makeVisible(pName) 
{
  var item = document.getElementById(pName);
  var contentPanel = document.getElementById("content");
  var contents = contentPanel.getElementsByTagName("p");

  for (var i = 0; i < contents.length; i++) {
    if (contents[i] != item) {
      contents[i].style.display = "none"
    }
  }
  item.style.display = "";
}
</script>
</head>
<body>
<div id="content">
<div><img src="" alt="" onmouseover="makeVisible('p1')" /></div>
<div><img src="" alt="" onmouseover="makeVisible('p2')" /></div>
<div><img src="" alt="" onmouseover="makeVisible('p3')" /></div>
<div><img src="" alt="" onmouseover="makeVisible('p4')" /></div>

<p id="p1">content 1</p>
<p id="p2">content 2</p>
<p id="p3">content 3</p>
<p id="p4">content 4</p>

</div><!-- content -->
</body></html>
share|improve this answer
    
+1 exactly what i was about to post (well almost the same) –  ManseUK May 15 '12 at 11:09
    
Thanks very much! Very helpful! –  user1395909 May 15 '12 at 11:24

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