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The problem is when the referer is not empty I still get the link instead of the image.

<?php

if($_SERVER['HTTP_REFERER'] != " "){
  $goodreferer = 0;
}   
else {
  $goodreferer = 1;
}

$image = 'http://www.example.com/imglink.gif';
$url = 'http://example.net/';

if ($show = 1 && $goodreferer = 1) {
  header("Location: ".$url);
} 
else {
  header("Location: ".$image);
  exit;
}

?>
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have you tried if(empty($_SERVER['HTTP_REFERER']) || !isset($_SERVER['HTTP_REFERRER']) $goodreferer = 1; else $goodreferer = 0; –  Horen Nov 3 '12 at 13:20
2  
Check your operators: = and == –  nickhar Nov 3 '12 at 13:22

2 Answers 2

You're assigning a value to the variable, instead of comparing.

  • = means assigment, $variable = 5 means variable is now equal to five.
  • == means comparison, $variable == 5 will return whether the variable is equal to five.

Also, PHP has a built-in function to check for emptiness of a string. empty().

So the corrected version:

<?php
if (!empty($_SERVER['HTTP_REFERER'])) {
    $goodreferer = 0;
}
else {
    $goodreferer = 1;
}

$image = 'http://www.imglink.gif';
$url   = 'http://link.com';

if ($show == 1 && $goodreferer == 1) {

    header("Location: " . $url);
}
else {
    header("Location: " . $image);
    exit;
}
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thank you for the fast response, it's not working as i expected, first off have I misunderstood the referer empty / not empty? - when the script is loaded in the website the referer is empty, when the script is loaded directly from the address bar the referer is not empty, correct? –  mixer Nov 3 '12 at 13:41
    
@mixer: Referer should be filled with the page the user used to get to your page. That's not always the case though, it's not 100% reliable. Referer would be empty if you typed the address in your address bar, and should not be empty if you clicked a link which led you to this page. –  Second Rikudo Nov 3 '12 at 13:45
    
so the code above says when the referer is empty go to the image, but it still goes to the url when typed? –  mixer Nov 3 '12 at 13:53
    
@mixer: Also, unless you're defining $show somewhere, the condition will always be FALSE, and you always get to the image. Like I said, Referer isn't 100% reliable. –  Second Rikudo Nov 3 '12 at 14:01

Replace $_SERVER['HTTP_REFERER'] != " " with !isset($_SERVER['HTTP_REFERER']) Also use $show == 1 && $goodreferer == 1 as Madara pointed.

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thank you I see the mistake now –  mixer Nov 3 '12 at 13:42

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