80
function url(){
    if(isset($_SERVER['HTTPS'])){
        $protocol = ($_SERVER['HTTPS'] && $_SERVER['HTTPS'] != "off") ? "https" : "http";
    }
    else{
        $protocol = 'http';
    }
    return $protocol . "://" . $_SERVER['HTTP_HOST'];
}

For example with the function above, it works fine if I work with the same directory, but if I make a sub directory, and work in it, it will give me the location of the sub directory also for example. I just want example.com but it gives me example.com/sub if I'm working in the folder sub. If I'm using the main directory,the function works fine. Is there an alternative to $_SERVER['HTTP_HOST']?

Or how could I fix my function/code to get the main url only? Thanks.

1

14 Answers 14

121

Use SERVER_NAME.

echo $_SERVER['SERVER_NAME']; //Outputs www.example.com
5
  • 3
    @barbushin's answer below is better nowadays. Commented Oct 5, 2017 at 14:24
  • 2
    Here's the link to barbushin's answer: stackoverflow.com/a/43911112/457268 It presupposes knowledge of the domain though, and is not useful if one wants to dynamically determine the host name.
    – k0pernikus
    Commented Feb 17, 2020 at 9:22
  • 2
    @barbushin's answer is not better. Its flat out wrong. Hardcoding the domain is not the correct answer.
    – JNAK
    Commented Mar 12, 2021 at 8:59
  • it outputs for me: example.com not www.example.com
    – hamburger
    Commented Apr 14, 2021 at 9:59
  • Although this can be spoofed if not configured properly, it's still better than gethostname() which does not work when on virtual host, I've posted the comparison and solution/config as a new answer: stackoverflow.com/a/77815115/1835470
    – jave.web
    Commented Jan 14 at 12:57
59

You could use PHP's parse_url() function

function url($url) {
  $result = parse_url($url);
  return $result['scheme']."://".$result['host'];
}
3
  • $_SERVER['SERVER_NAME'] wasn't an option since we do interactive domain hosting with custom ports. (Why should we make things easy ?) Commented Nov 7, 2014 at 10:48
  • 1
    I believe parse_url return nothing, if no http. For example: $url = "example.com"; Commented Feb 8, 2019 at 11:15
  • 2
    Please add some explanation to your answer by editing it, such that others can learn from it - where does $url come from?
    – Nico Haase
    Commented Apr 8, 2020 at 13:20
41

Shortest solution:

$domain = parse_url('http://google.com', PHP_URL_HOST);
6
  • 4
    This should be accepted as answer, because its cross domain capability
    – Naveen DA
    Commented Dec 27, 2017 at 5:23
  • 14
    This gives you the string "google.com". It's a flat out wrong answer. Commented May 3, 2018 at 0:59
  • 1
    @AyexeM You're supposed to change "google.com" to your website's domain.
    – undo
    Commented Dec 2, 2018 at 18:10
  • 19
    @rahuldotech That makes no sense, copy paste your domain in there and it will return your domain? How is that helpful ? OP wants the domain of the server, not how to parse a domain from a string. Commented Feb 26, 2019 at 18:34
  • 1
    How I understand the question is how to get the domain segment without knowing what the domain is. That is, relative to the page you are loading. What if you are testing locally, then uploading to production? If you already know the domain, you don't need to retrieve it dynamically. I think the assumption is we don't know the domain the resource is loading from.
    – TARKUS
    Commented Jun 4, 2019 at 11:13
31
/**
 * Suppose, you are browsing in your localhost 
 * http://localhost/myproject/index.php?id=8
 */
function getBaseUrl() 
{
    // output: /myproject/index.php
    $currentPath = $_SERVER['PHP_SELF']; 

    // output: Array ( [dirname] => /myproject [basename] => index.php [extension] => php [filename] => index ) 
    $pathInfo = pathinfo($currentPath); 

    // output: localhost
    $hostName = $_SERVER['HTTP_HOST']; 

    // output: http://
    $protocol = strtolower(substr($_SERVER["SERVER_PROTOCOL"],0,5))=='https'?'https':'http';

    // return: http://localhost/myproject/
    return $protocol.'://'.$hostName.$pathInfo['dirname']."/";
}
3
  • 1
    Umm... see php.net/manual/en/reserved.variables.server.php $_SERVER["SERVER_PROTOCOL"] returns a string like HTTP/1.0 or HTTP/1.1 and has nothing to do with https. You're probably looking for something like $_SERVER['HTTPS'] == 'on' or the undocumented REQUEST_SCHEME. See this related question and here's the answer I used: stackoverflow.com/a/14270161/466314
    – Ultimater
    Commented May 10, 2017 at 7:30
  • See, Previously I have wrote 5, It was correct but minor changes should be there like, $protocol = strtolower(substr($_SERVER["SERVER_PROTOCOL"],0,5))=='https'?'https':'http';
    – Jasmeen
    Commented May 11, 2017 at 6:31
  • 1
    No, strtolower(substr($_SERVER["SERVER_PROTOCOL"],0,5))=='https'‌​ is always false because $_SERVER["SERVER_PROTOCOL"] doesn't work the way you think it does. It will never contain HTTPS anywhere in it. The example given in the apache documentation <If "%{SERVER_PROTOCOL} != 'HTTPS'"> is wrong as it's always true: httpd.apache.org/docs/2.4/rewrite/remapping.html#canonicalhost
    – Ultimater
    Commented May 12, 2017 at 23:29
11

Use parse_url() like this:

function url(){
    if(isset($_SERVER['HTTPS'])){
        $protocol = ($_SERVER['HTTPS'] && $_SERVER['HTTPS'] != "off") ? "https" : "http";
    }
    else{
        $protocol = 'http';
    }
    return $protocol . "://" . parse_url($_SERVER['REQUEST_URI'], PHP_URL_HOST);
}

Here is another shorter option:

function url(){
    $pu = parse_url($_SERVER['REQUEST_URI']);
    return $pu["scheme"] . "://" . $pu["host"];
}
1
  • parse_url returns nothing, if there is no http or https, i.e example.com Commented Apr 25, 2019 at 11:29
6

Step-1

First trim the trailing backslash (/) from the URL. For example, If the URL is http://www.google.com/ then the resultant URL will be http://www.google.com

$url= trim($url, '/');

Step-2

If scheme not included in the URL, then prepend it. So for example if the URL is www.google.com then the resultant URL will be http://www.google.com

if (!preg_match('#^http(s)?://#', $url)) {
    $url = 'http://' . $url;
}

Step-3

Get the parts of the URL.

$urlParts = parse_url($url);

Step-4

Now remove www. from the URL

$domain = preg_replace('/^www\./', '', $urlParts['host']);

Your final domain without http and www is now stored in $domain variable.

Examples:

http://www.google.com => google.com

https://www.google.com => google.com

www.google.com => google.com

http://google.com => google.com

1
  • 4
    what if other subdomain is used instead www?
    – bksi
    Commented Jun 11, 2019 at 22:13
2

2 lines to solve it

$actual_link = (isset($_SERVER['HTTPS']) && $_SERVER['HTTPS'] === 'on' ? "https" : "http") . "://$_SERVER[HTTP_HOST]$_SERVER[REQUEST_URI]";
$myDomain = preg_replace('/^www\./', '', parse_url($actual_link, PHP_URL_HOST));
1
  • This answer is missing its educational explanation. Commented Jan 11, 2021 at 0:15
2
/* Get sub domain or main domain url
 * $url is $_SERVER['SERVER_NAME']
 * $index int remove subdomain if acceess from sub domain my current url is https://support.abcd.com ("support" = 7 (char))
 * $subDomain string 
 * $issecure string https or http
 * return url
 * call like echo getUrl($_SERVER['SERVER_NAME'],7,"payment",true,false);
 * out put https://payment.abcd.com
 * second call echo getUrl($_SERVER['SERVER_NAME'],7,null,true,true);
*/
function getUrl($url,$index,$subDomain=null,$issecure=false,$www=true) {
  //$url=$_SERVER['SERVER_NAME']
  $protocol=($issecure==true) ?  "https://" : "http://";
  $url= substr($url,$index);
  $www =($www==true) ? "www": "";
  $url= empty($subDomain) ? $protocol.$url : 
  $protocol.$www.$subDomain.$url;
  return $url;
}
2

Use this code is whork :

if (!preg_match('#^http(s)?://#', $url)) {
         $url = 'http://' . $url;
}
$urlParts = parse_url($url);
$url = preg_replace('/^www\./', '', $urlParts['host']);
1
  • This answer is missing its educational explanation. Also, I would prepare the url with a single preg call instead of two. ...and please use correct spelling. Commented Jan 11, 2021 at 0:19
1

This works fine if you want the http protocol also since it could be http or https. $domainURL = $_SERVER['REQUEST_SCHEME']."://".$_SERVER['SERVER_NAME'];

0

Please try this:

$uri = $_SERVER['REQUEST_URI']; // $uri == example.com/sub
$exploded_uri = explode('/', $uri); //$exploded_uri == array('example.com','sub')
$domain_name = $exploded_uri[1]; //$domain_name = 'example.com'

I hope this will help you.

1
  • In here $domain_name = 'sub' not 'example.com'. If need to get 'example.com' , then change the last code to $domain_name = $exploded_uri[0]; Commented Jan 4, 2017 at 11:58
0

TL;DR

Specific http server (apache/nginx) config or whitelist of hosts & $_SERVER['SERVER_NAME'].


gethostname() ? only for non-virtual host...

https://www.php.net/manual/en/function.gethostname.php

gets the standard host name for the local machine.

... but if you're on a virtual host, this will still return the system host, not the virtual one :-( ...
(typically e.g. shared web hosting)

So what about $_SERVER['SERVER_NAME']?

https://www.php.net/manual/en/reserved.variables.server.php

Well, this on the other hand can be spoofed if not configured properly,
but it does return the virtual host if on virtual host.

Note: Under Apache 2, UseCanonicalName = On and ServerName must be set. Otherwise, this value reflects the hostname supplied by the client, which can be spoofed. It is not safe to rely on this value in security-dependent contexts.

Nginx => the same thing, docs just don't mention it.

Solution

Basically you have 2 options:

  1. If you can configure your http server, you can force it to be your value, not value from request, this differs per http server you use:

    • Apache: UseCanonicalName (to On) & ServerName directives have to be set - most likely in your <VirtualHost>
    • Nginx: you have to set the server_name directive in your server{} block.
  2. If you can't configure your server or can't rely on its setting, you can at least whitelist the allowed hostnames

<?php
    $allowedHosts = [
        'localhost',
        'example.com',
        'www.example.com',
    ];

    if (!\in_array($_SERVER['HTTP_HOST'], $allowedHosts)) {
        exit('You trynna spoof me?');
    }
-1

Tenary Operator helps keep it short and simple.

echo (isset($_SERVER['HTTPS']) ? 'http' : 'https' ). "://" . $_SERVER['SERVER_NAME']  ;
1
  • ^ What they said. You probably also want to check the value of $_SERVER Commented Dec 5, 2018 at 9:44
-3

If you're using wordpress, use get_site_url:

get_site_url()

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