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I have a dropdown box which is populated through MySQL:

echo "<form>";<br>
echo "Please Select Your Event<br />";
echo "<select>";
$results = mysql_query($query)
    or die(mysql_error());
    while ($row = mysql_fetch_array($results)) {
    echo "<option>";
    echo $row['eventname'];
    echo "</option>";
    }   
echo "</select>";
echo "<input type='submit' value='Go'>";
echo "</form>";

How do i make it that if one clicks submit it will display a value from a MySQL db

Thanks for the help

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Do you want it to display the value on the page that submitted was clicked on, or on the page that the submit button leads to? –  Mike Lentini Sep 26 '11 at 12:20
    
on the same page would be better. Basically the value for the dropdown is $row['eventname']; When selected or submited it displays the value $row['result']; Those two values are already connected using a SQL query. –  SebastianOpperman Sep 26 '11 at 12:26
    
Just an FYI, it may be easier to just add the loop between the <select>..</select> tags in regular HTML, rather than echoing each tag -- unless that was just for posting on here. Also, may want to check out jQuery's Ajax capabilities - www.jquery.com –  NightMICU Sep 26 '11 at 13:16
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2 Answers 2

up vote 0 down vote accepted

1) Give a name to your <select>, i.e. <select name='event'>.

2) Redirect your form to the display page (and set method POST): <form method='POST' action='display.php'>

3) just display the selected value: <?php echo $_POST['event']; ?>


If you want to use the same page, give a name to your submit button and then do this:

<?php
   if (isset($_POST['submit']))
      echo $_POST['event'];
?>

Hope it helps.

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1  
So i can post a value to the same page it came from. Then the page just reloads and i pull the value from the post? –  SebastianOpperman Sep 26 '11 at 12:29
    
Of course, you can –  simone Sep 26 '11 at 12:32
    
Hi thanks guys it worked –  SebastianOpperman Sep 26 '11 at 12:58
    
But remember to use htmlspecialchars before printing anything. Otherwise there is risk of XSS attack –  Olli Sep 26 '11 at 13:04
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Just change your query like SELECT result FROM somedb WHERE eventname = '".$eventname."'

Then you just do: (remember to check before while has user already requested info)

The value was: <?php print $row["result"]; ?>

Remember to check $_POST["eventname"] with htmlspecialchars before inserting it to query.

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Thanks for the help –  SebastianOpperman Sep 26 '11 at 12:58
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