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This code outputs the $captured array, but $captured[1] contains bar/this rather than my expected bar. What's missing in my regex to stop from returning more than bar?

<?php

    $pattern = '/foo/:any/';
    $subject = '/foo/bar/this/that';

    $pattern = str_replace(':any', '(.+)', $pattern);
    $pattern = str_replace(':num', '([0-9]+)', $pattern);
    $pattern = str_replace(':alpha', '([A-Za-z]+)', $pattern);

    echo '<pre>';

    $pattern = '#^' . $pattern . '#';
    preg_match($pattern, $subject, $captured);

    print_r($captured);
    echo '</pre>';
share|improve this question
2  
I fail to see how your regex pattern could work at all. The string replacements will turn it into /foo/(.+)/, and now you've got a / pattern delimiter INSIDE your pattern without being escaped. At mininum it should look like /foo\/(.+)/ to make it a valid regex. –  Marc B Nov 11 '11 at 22:33
    
Ah sorry I also had $pattern = '#^' . $pattern . '#'; in there, forgot to add it. –  Matthew Nov 11 '11 at 22:37

3 Answers 3

up vote 5 down vote accepted

Use a non-greedy modifier to make the + match as few characters as possible instead of as many as possible:

$pattern = str_replace(':any', '(.+?)', $pattern);
                                   ^

You probably also want to add delimiters round your regular expression and anchor it to the start of the string:

$pattern = '#^/foo/:any/#';
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Wouldn't that be the same as $pattern = str_replace(':any', '(.*)', $pattern); –  mowwwalker Nov 11 '11 at 22:30
1  
@Walkerneo: No. The asterisk is still greedy (but it allows zero repetitions whereas + needs at least one). –  Tim Pietzcker Nov 11 '11 at 22:33
    
@Walkerneo no. + is a greedy search and will take all found characters until the last / is found. The ? makes the search non-greedy, and stops at the first occurence of /. –  Brian Graham Nov 11 '11 at 22:34
    
@Mark: Isn't it strange that he didn't get bar/this/that in $captured[1]? –  Tim Pietzcker Nov 11 '11 at 22:34
1  
@BrianGraham: But the slashes in his pattern are taken as delimiters. Actually, now that I'm looking at it, he should be getting an "invalid mode modifier" error because foo would be his pattern and (.+)/ would be interpreted as mode modifiers...Ah, now he's commented his question explaining what he left out of the question... –  Tim Pietzcker Nov 11 '11 at 22:37

The dot is greedy and matches as many characters as possible. Either make it lazy:

$pattern = str_replace(':any', '(.+?)', $pattern);

or keep it from matching slashes:

$pattern = str_replace(':any', '([^\/]+)', $pattern);
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Your code is rather confusing and misleading and if run it, it outputs a warning:

Warning: preg_match(): Unknown modifier '(' in php shell code on line 1

What I think is wrong is:

$pattern = '/foo/:any/';
#should be
$pattern = '/foo\/:any/';

because you need to escape a forward slash in regexp.

After this is fixed the script returns:

(
  [0] => foo/bar/this/that
  [1] => bar/this/that
)

Which is an expected result. As you match foo/ and everything afterwards with (.*). If you want to match anything until the next forward slash you have some possibilities:

$pattern = '/foo/(.*?)/'     #non greedy
$pattern = '/foo/([^\/]*)/'  #not matching any forward slash
$pattern = '@foo/:any/@'     #or using different start and end markers, e.g. @
share|improve this answer
    
I had different delimiters that I forgot to include in the original post (now edited) like so: $pattern = '#^' . $pattern . '#';, that way I wouldn't have to escape forward slashes. –  Matthew Nov 11 '11 at 23:16

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