[PHP] Stumped!

[CSParker1]

I am trying to display a column from my database as a list.  Each listing 
needs to be a URL that links to another script that brings up all of the data 
in the row to edit.  I keep getting a parser error and I can't figure it out. 
 Here is the code and any help is greatly appreciated.

$meetingName");
?>

Re: [PHP] Re: Stumped!

[CSParker1]

Hmm, I am still getting a parse error on the last line of code...


In a message dated 12/16/2002 1:49:26 PM Eastern Standard Time, 
[EMAIL PROTECTED] writes:

> $sql = "SELECT .";
> $sql_e = mysql_query($sql);
> 
> while ($result = mysql_fetch_array($query_e)) {
> .
> }
> 
> You were missing the mysql_query
> 
> 
> <[EMAIL PROTECTED]> escribió en el mensaje
> [EMAIL PROTECTED]">news:[EMAIL PROTECTED]...
> >I am trying to display a column from my database as a list.  Each listing
> >needs to be a URL that links to another script that brings up all of the
> data
> >in the row to edit.  I keep getting a parser error and I can't figure it
> out.
> > Here is the code and any help is greatly appreciated.
> >
> > >$db = mysql_connect("localhost", "Uname", "PW");
> >
> >$select_db = mysql_select_db("machmedi_meetingRequest",$db);
> >$sql = "SELECT * FROM requests";
> >
> >while ($result = mysql_fetch_array($query)) {
> >$id= $result["id"];
> >$meetingName= $result["meetingName"];
> >
> >echo ("$meetingName ");
> >?>
> >
> 
> 


Christopher Parker
Senior Corporate Technical Specialist, Corporate Events
America Online Inc.
Phone: 703.265.5553
Fax: 703.265.2007
Cell: 703.593.3199