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I presumed this was easy code but this doesnt work as intended:

$id = $_GET['id'];
if (!isset($id)){
    header("HTTP/1.1 404 not found");
    include("404.php");
}
else {
    include('includes/functions.php'); 
}

So i've taken the get parameters off of the URL yet i dont receive a 404 error?

Any ideas?

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3 Answers 3

up vote 11 down vote accepted

You must do the test on $_GET['id'] directly:

if(!isset($_GET['id']) { ... }

Even if $_GET['id'] isn't set, since you tried to assign it to $id, $id starts to exist, so the test returns true and thus you don't have a 404 error.

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got it thanks!! –  benhowdle89 Feb 26 '11 at 1:11
    
my pleasure to help :) –  krtek Feb 26 '11 at 1:14
    
Remember to accept this answer as best answer. :) –  Jake Feb 26 '11 at 1:16
    
Does $_GET work differently compared to other arrays? If an array doesn't have a value for that key you'll get a PHP notice and $id will be set to null. Therefore isset($id) will be false in that case and the test should pass. I just tried it and the original code works for me in the PHP 5.3.2 interactive shell. –  David Harkness Feb 26 '11 at 1:55
    
No, absolutely not. First of all, isset don't check if the value is null. And second of all, you'll get a notice when accessing an unexisting key only outside of an isset() statement. Actually this is the point of isset, testing if a variable or array element actually exists or not. –  krtek Feb 26 '11 at 2:00

You are checking if $id is set. And it is :

$id = $_GET['id'];

So you must check if the get variable is set:

isset($_GET['id'])
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you have created $id variable in first line. You should check $_GET['id']. Also you can check this variable for empty.

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check for emptiness on a non-existing variable can lead to some errors depending on the configuration of the PHP interpreter. –  krtek Feb 26 '11 at 1:12
    
I mean after checking for existing if (!isset($_GET['id']) || empty($_GET['id'])) { ... } –  lc0 Feb 26 '11 at 1:26

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