我正在尝试使用以下方法伪造请求的引用者:
<?php
$url = "http://www.blabla.com";
function doMagic($url)
{
$curl = curl_init();
$header[0] = "Accept: text/xml,application/xml,application/xhtml+xml,";
$header[0] .= "text/html;q=0.9,text/plain;q=0.8,image/png,*/*;q=0.5";
$header[] = "Cache-Control: max-age=0";
$header[] = "Connection: keep-alive";
$header[] = "Keep-Alive: 300";
$header[] = "Accept-Charset: ISO-8859-1,utf-8;q=0.7,*;q=0.7";
$header[] = "Accept-Language: en-us,en;q=0.5";
$header[] = "Pragma: ";
curl_setopt($curl, CURLOPT_URL, $url);
curl_setopt($curl, CURLOPT_USERAGENT, "Mozilla/5.0 (Windows NT 6.1; WOW64; rv:7.0.1) Gecko/20100101 Firefox/7.0.12011-10-16 20:23:00");
curl_setopt($curl, CURLOPT_HTTPHEADER, $header);
curl_setopt($curl, CURLOPT_REFERER, "http://www.fakeRef.com");
curl_setopt($curl, CURLOPT_ENCODING, "gzip,deflate");
curl_setopt($curl, CURLOPT_AUTOREFERER, true);
curl_setopt($curl, CURLOPT_RETURNTRANSFER, 1);
curl_setopt($curl, CURLOPT_TIMEOUT, 10);
$html = curl_exec($curl);
echo 'Curl error: '. curl_error($curl);
curl_close($curl);
return $html;
}
$text = doMagic($url);
print("$text");
?>
我有一个本地 apache 服务器,用于运行这个 PHP 脚本:localhost/script.php。问题是实际的引用者(Piwik 报告的)是 localhost/script.php,而不是http://www.fakeRef.com。
这里有什么问题?