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I see my script is vulnerable to XSS, I am new to PHP so I really have no idea where I should look at. Here are all the codes I use:

<?php
$host = $_SERVER['HTTP_HOST'];
$map = opendir(gif);
$m = 0;
while(false !=($file = readdir($map))){
if($file != "." && $file != ".."){
$gif[$m]= $file;
$m++;
}
}
$random_gif=rand(0,count($gif)-1);
?>

&

<html>
<head>
    <meta http-equiv = "Content-Type" content = "text/html; charset=UTF-8">
    <title><?php echo $_GET['gif']; ?> - Xanu</title>
</head>
<body><center>
<object width="650" height="650">
<embed src="gif/<?php echo $_GET['gif']; ?>" width="640" height="480"></embed>
<br><b><font face="Arial">
        <font size="10"><?php echo $_GET['gif']; ?></font><br><br>
        Link naar de bullshit die hier boven staat?<br>
        <input type="text" size="55" name="giflink" value="http://<?php echo $host; ?     
>/file.php?gif=<?php echo $_GET['gif']; ?>"><br><br>
<?php
echo '<a href="http://'.$host.'/file.php?gif='.$gif[$random_gif].'">Klik hier voor       nieuwe bullshit!</a>';
?>
share|improve this question
    
possible duplicate of Protection against XSS exploits? – MeNa Dec 19 '13 at 22:47
up vote 0 down vote accepted

You're sending $_GET['gif'] back to user , so you should use htmlspecialchar:

<?php echo htmlspecialchar($_GET['gif'] , ENT_QUOTES); ?>
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