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I want to make a preg_match in my code but the result is nothing ... (or null or empty ?)

$domain = "stackoverflow.com";

$uriToTest = "http://stackoverflow.com/";

$pattern = "/^http(s)?://(([a-z]+)\.)*".$domain."/";

echo preg_match($pattern, $uriToTest);

What is the problem ?

share|improve this question
    
I think you got an error, yes? – user1646111 Jul 24 '13 at 9:59
1  
You've got an error - you need to escape your forward slashes. preg_match is returning false – SmokeyPHP Jul 24 '13 at 9:59
    
also you need to escape the . in .com. – Tdelang Jul 24 '13 at 10:01
    
Your pattern in invalid. So it should show error. check your error log. Check your pattern. what you want. – Asuraya Jul 24 '13 at 10:02
    
Additionally, if you want $domain to be matched literally you should use preg_quote() and hand over the regex delimiter you used. Otherwise regex special characters like the . in your string can match things you don't expect. – stema Jul 24 '13 at 10:07
up vote 3 down vote accepted

If you take a look at your pattern, it's this

/^http(s)?://(([a-z]+)\.)*stackoverflow.com/

The delimiter is used as a matching character, and if you had errors turned on, you'd get a "Unknown modifier" error. So first tip: TURN ERROR REPORTING ON!

To fix it, try using a different delimiter, e.g. {}, as it's easier to read than loads of leaning toothpicks...

{^http(s)?://(([a-z]+)\.)*stackoverflow.com}

The other problem is the dot in the $domain becomes a wildcard match - anytime you insert unknown data into a regex, get in the habit of using preg_quote to escape it, e.g.

$pattern = "{^http(s)?://(([a-z]+)\.)*".preg_quote($domain, '{')."}";

(Note - nice catch from stema in the comments: if you use a different delimiter, you must pass that preg_quote. It's clever enough to spot paired delimiters, so if you pass { it will also escape })

share|improve this answer
1  
+1 for adding preg_quote($domain) to your answer. But shouldn't you add the delimiter as parameter, like preg_quote($string, '/')? But I have no idea, how you can add it, if you use a pair of brackets as delimiters. – stema Jul 24 '13 at 10:12
    
that's a really good point - I checked and if you pass '{' it will escape '}' too. I will amend. – Paul Dixon Jul 24 '13 at 10:19
    
I understood what is my problem now. I tried { } but I didn't know preg_quote ... - Why when I'm adding a slash at the end, it didn't work ? Like this : "{^http(s)?://(([a-z]+)\.)*".preg_quote($domain, '{')."/}" (I want to catch this to avoid domain like stackoverflow.com.eu ...) Sorry for my stupid question ... but regex in PHP is not my friend ^^ – Tata2 Jul 24 '13 at 11:39
    
that pattern works for me. – Paul Dixon Jul 24 '13 at 11:44
    
Oh ... ok it's maybe my $domain which was wrong ... :) - Thanks for your help ! – Tata2 Jul 24 '13 at 11:46

You're most likely getting an error and preg_match is returning false, as you are not escaping your forward slashes in your expression. Either use something else like a # as the expression delimeter or escape any forward slashes to stop the parser from trying to end the expression (/ should be \/ - or change the / at either end to be #)

//Quick fix to yours
$pattern = "/^http(s)?:\/\/(([a-z]+)\.)*".preg_quote($domain,'/')."/";
//More legible fix
$pattern = '#^https?://(([a-z]+)\.)*'.preg_quote($domain,'#').'#';

Note that you don't need parenthesis around the s in https (unless you're hoping to capture it)

share|improve this answer

You need to escape your forward slashes and the . in the domain name

$domain = "stackoverflow.com";

$uriToTest = "http://stackoverflow.com/";

$escapedDomain = str_replace('.', '\.', $domain);

$pattern = "/^http(s)?:\/\/(([a-z]+)\.)*".$escapedDomain."/";

echo preg_match($pattern, $uriToTest);
share|improve this answer

Edited

$domain = "stackoverflow.com";

  $uriToTest = "http://stackoverflow.com/";

  $pattern = "^http(s)?://(([a-z]+)\.)*".$domain."^";

  preg_match($pattern, $uriToTest,$matches);
  print_r($matches);

share|improve this answer
    
Why are you using the start of string anchor ^ as regex delimiter? – stema Jul 24 '13 at 10:03
    
Inorder to avoid error. preg_match delimiter must be started from backslash. you can write in this way as well $pattern = "^\http(s)?://(([a-z]+)\.)*".$domain."^"; – M Shahzad Khan Jul 24 '13 at 10:07
    
I agree, I think that's confusing advice – Paul Dixon Jul 24 '13 at 10:09
    
But you are introducing another error. The OP already used the regex special character ^ in the regex to match the start of the string. – stema Jul 24 '13 at 10:09
    
check i have edited the code. – M Shahzad Khan Jul 24 '13 at 10:11

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