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I'm using PHP 5.4.6 with MySQL 5.5.27 and Apache 2.4.2.

My problem is that I'm trying to fetch the value of a URL passed variable using $_GET but an error always comes up stating: Undefined index: err in thispage.php at this line.

I looked around and realized that most of the developers solved that by using the isset() function. But this doesn't solve my problem because I need to get the actual value of the variable sent in the URL!

The URL is http://localhost/Edugate/index.php?err=1.

This is my code in the index.php page:

<?php
$error = $_GET['err'];

if($error == 1)
    print "<img src='icons/error.png' alt='error'> Icorrect usename or password...";
?>
share|improve this question
2  
You said isset doesn't solve your problem and you definitely need the value from the URL. Well, if the value was passed in the URL, you wouldn't be getting errors. Additionally, isset definitely solves your problem :) –  rdlowrey Aug 29 '12 at 2:15
    
You may want to read again about what isset() is / does: php.net/manual/en/function.isset.php –  PeeHaa Aug 29 '12 at 2:16
    
Check if there is a .htaccess file in that folder. It may be that a command in that file removes all get data. The code you posted should just work (although dirty) –  John Aug 29 '12 at 2:20

2 Answers 2

Use isset as prescribed by your fellow developers.

<?php
if(isset($_GET['err']) && $_GET['err'] == 1)
    print "<img src='icons/error.png' alt='error'> Incorrect username or password...";
?>

*Incorrect *username, by the way.

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Thank you very much guys, I really appreciate it. the isset will solve half of my problem. Because let's say that the variables sent in the URL are going to by used in some kind algorithm in php. I still need to retrieve their values and I'm not finding a way to that.. –  user1631838 Aug 29 '12 at 2:43
    
@user1631838: Er, $_GET['(parameter name)'] is how you get the values. –  minitech Aug 29 '12 at 3:22

You could use something as simple as:

$error = isset($_GET['err']) ? (int)$_GET['err'] : null;

if ($error !== null) {
  // error
}

// or

if ($error === 1) {
} else if ($error === 2) {
}
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thnxxxxx, that will solve the problem! I can't believe that I missed this concept!. I'm used to JAVA programming but it's been a while... PHP is a whole new thing for me so I probably need to read more as you stated. –  user1631838 Aug 29 '12 at 2:58

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