Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have the next URL: http://domen.com/aaa/bbb/ccc. How can I get the string after http://domen.com/?

Thanks a lot.

share|improve this question

7 Answers 7

up vote 10 down vote accepted
$sub = substr($string, 0, 10);

But if you actually want to parse the URL (that is, you want it to work with all URLs), use parse_url. For "http://domen.com/aaa/bbb/ccc", it would give you an array like this:

Array
(
    [scheme] => http
    [host] => domen.com
    [user] => 
    [pass] => 
    [path] => /aaa/bbb/ccc
    [query] => 
    [fragment] => 
)

You could then compile this into the original url (to get http://domen.com/):

$output = $url['scheme'] . "://" . $url['host'] . $url['path'];

assuming $url contains the parse_url results.

share|improve this answer
4  
+1 for parse_url() –  BoltClock Oct 2 '10 at 19:53
2  
The substr example would be more appropriate to this question if it were of the substr($string, 17) variety. But regardless, parse_url should be used if applicable. –  Matthew Oct 2 '10 at 20:25
1  
^ I didn't count the characters. –  Thomas O Oct 2 '10 at 20:26

You can use PHP's split.

Your code will be something like:

$s = "http://domen.com/aaa/bbb/ccc";
$vals = split("http://domen.com/", $s);
// $v will contain aaa/bbb/ccc
$v = $vals[1];
share|improve this answer
    
PHP doesn't support array dereferencing, so split(...)[0] won't work. You'd need to store the result in a variable and then access the member... –  ircmaxell Oct 2 '10 at 19:55
    
@ircmxaell: yup. thanks. –  Pablo Santa Cruz Oct 2 '10 at 19:57

parse_url()

share|improve this answer

If you simply want the string and the "http://domen.com/" part is fixed:

$url = 'http://domen.com/aaa/bbb/ccc';
$str = str_replace('http://domen.com/','',$url);
share|improve this answer

Use the regex for example like the function preg_replace

share|improve this answer

Try this:

preg_replace('/^.*?\w\//', '', $url)
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.