RE: [PHP] testing for blank var

[ROBERT MCPEAK]

Beautiful!

>>> Rick Emery <[EMAIL PROTECTED]> 03/21/02 09:19AM >>>
        if ( ! ISSET($img_url) )


-----Original Message-----
From: ROBERT MCPEAK [mailto:[EMAIL PROTECTED]] 
Sent: Thursday, March 21, 2002 8:18 AM
To: [EMAIL PROTECTED] 
Subject: [PHP] testing for blank var


if $img_url has a value, then I'd like to show the image, if it
doesn't,
then I'd like to show a message.  What's wrong with my code?  Am I
incorrectly testing for the value?  The else works fine, but not the
if.
 Thanks!

        if (!$img_url)
        {
        echo "<b>No Image URL Entered"</b><br>";
        }
        else
        {
        echo "<img src=\"$img_url\">";
        }


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