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I'm attempting to insert a drop down menu on my site, which uses PHP (to determine what city name to display at the top) and JS for the script.

Unfortunately the menu does not drop down upon mouse-over.

Is anyone able to tell me what may be the error?

Thanks for your help.

Javascript:

<script>
function toggleMenuOn() {
document.getElementById("locationa").style.display="table-row-group";
}

function toggleMenuOff(){
document.getElementById("locationa").style.display="none";
} 
</script>

PHP:

<?php 

include 'getcity.php';

$cities=array("Melbourne","Sydney","Adelaide","Canberra","Brisbane","Perth","Hobart","Darwin");

$cityURL=array("/Melbourne","/Sydney","/Adelaide","/Canberra","/Brisbane","/Perth","/Hobart","/Darwin");

$htmlCode="<table onmouseover='toggleMenuOn()' onmouseout='toggleMenuOff()'><thead>    <tr>";

for($x=0;$x<count($cityURL);$x++){
    if($cities[$x]==$city){
        $htmlCode .= "<td><a class='locationa' href=".$cityURL[$x].">".$city."    </a></td><td><img src='../img/arrow-down.png' height='15px'/></td>
</tr></thead>";}
}

$htmlCode.="<tbody id='locationa'  class='locationa'>";

for($x=0;$x<count($cityURL);$x++){
    if(!$cities[$x]==$city){
        $htmlCode.="<tr class='locationa'>
  <td><a class='locationa' href=".$cityURL[$x].">".$cities[$x]."</a></td><td><img   src='../img/arrow-right.png' height='15px'/></td></tr>";
}}

$htmlCode.="</tbody></table>";

echo($htmlCode);
?>
share|improve this question
    
Can we see the HTML that's generated? –  Little Big Bot Dec 13 '12 at 4:18
    
<td align= "right" colspan="7" rowspan="2"> <table onmouseover='toggleMenuOn()' onmouseout='toggleMenuOff()'><thead><tr><td><a class='locationa' href=/Melbourne>Melbourne</a></td><td><img src='../img/arrow-down.png' height='15px'/></td> </tr></thead><tbody id='locationa' class='locationa'></tbody></table></td> –  chris222 Dec 13 '12 at 4:25
    
Your code doesn't generate any content inside tbody –  Sree Dec 13 '12 at 4:35

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