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I am trying to create a dynamic drop down list using PHP and mysql database. I have written the following code and its giving me the output, but the problem is that its showing different drop-down menu for each item, I want all items in a single drop down list. Kindly check it and guide me.

        $select_query=          "Select name from category";
        $select_query_run =     mysql_query($select_query);
        while   ($select_query_array=   mysql_fetch_array($select_query_run) )
        {
            foreach ($select_query_array as $select_query_display)
            {
                echo "  
                    <select>
                        <option value='' >$select_query_display</option>                        
                    </select>
                ";


                }

            }

Thanks

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3 Answers 3

up vote 1 down vote accepted

Get rid of the inner foreach loop... it is doing nothing for you and move the start and end select tags outside of the while loop.

$select_query=          "Select name from category";
$select_query_run =     mysql_query($select_query);
echo "<select name='category'>";
while ($select_query_array=   mysql_fetch_array($select_query_run) )
{
   echo "<option value='' >".htmlspecialchars($select_query_array["name"])."</option>";
}
echo "</select>";
share|improve this answer
    
Thank you so much for the prompt response! It is working !! :) –  Taha Kirmani Jul 17 '13 at 5:57

take look at this code.

$select_query=          "Select name from category";
$select_query_run =     mysql_query($select_query);

echo "<select>";
while   ($select_query_array=   mysql_fetch_array($select_query_run) )
{
        echo "<option value='' >".$select_query_array['name']."</option>";                        
}
echo "</select>";
share|improve this answer
    
Thank you so much ! :) –  Taha Kirmani Jul 17 '13 at 6:10
$select_query= "Select name from category";
$select_query_run =     mysql_query($select_query);
$selectTag = "<select>";
while   ($select_query_array=   mysql_fetch_array($select_query_run) ){
    foreach ($select_query_array as $select_query_display){
        $selectTag .="<option value='' >$select_query_display</option>";
    }
}
$selectTag .= "</select>";

   echo $selectTag;
share|improve this answer
    
Is this not working? –  Yogesh Jul 17 '13 at 5:56
    
It is working, but its showing duplicate records. I didn't give it negative points. Thanks :) –  Taha Kirmani Jul 17 '13 at 5:58

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