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Hi have this URL string which I need to extract possibly using regex but need to do it from the right side to left. For example:

http://localhost/wpmu/testsite/files/2012/06/testimage.jpg

And I need to extract this part:

2012/06/testimage.jpg

How can this be done? Thanks in advance...

UPDATE: since only the "files" in the URL is a constant, I would like to extract everything after "files".

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3  
There are several ways. What is the exact logic you need to delimit what needs to be stripped off versus what stays? –  King Skippus Jul 1 '12 at 17:42
    
you could use explode function and after that, use sizeof( $array) - someValue to get it as array items –  aacanakin Jul 1 '12 at 17:45
    
I think the only thing that is constant here is "files" so I am guessing I want to extract everything after the files –  Rick Jul 1 '12 at 17:47
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7 Answers

up vote 1 down vote accepted
$matches = array();
$string = 'http://localhost/wpmu/testsite/files/2012/06/testimage.jpg';
preg_match('/files\/(.+)\.(jpg|gif|png)/', $string, $matches);
echo $matches[1]; // Just the '2012/06/testimage.jpg' part
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Thanks for that however I just updated the post and realize "files" was the only constant...so everything after files is what i need. –  Rick Jul 1 '12 at 17:49
    
Just remove everything before /files. Updated my answer. The file extension check at the end of regex is a good way to ensure that you are actually only dealing with image URIs. –  holodoc Jul 1 '12 at 17:55
    
getting a unknown modifier error...any ideas? –  Rick Jul 1 '12 at 18:28
    
Sorry I left one / unescaped. Take a look at the modified code. –  holodoc Jul 1 '12 at 18:49
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You do not necessarily need to use regular expressions.

$str = 'http://localhost/wpmu/testsite/files/2012/06/testimage.jpg';
$result = substr( $str, strpos( $str, '/files/') + 7);
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I guess this solution is probably a lot faster than regex. –  flec Jul 1 '12 at 18:04
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Use explode() and select the last 3 (or based on you logic) parts. No of parts can be determined by finding the no of elements

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This will get you everything after files:

$string = 'http://localhost/wpmu/testsite/files/2012/06/testimage.jpg';
preg_match('`files/(.*)`', $string, $matches);
echo $matches[1];

Update: But i think Doug Owings solution will be a lot faster.

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All you need to check is this function i think:

http://php.net/manual/en/function.substr.php

If "http://localhost/wpmu/testsite/files/" part is stable, then you know which part to get rid off.

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Yeah that's the thing, it is not stable, so my question was asking from the right side... –  Rick Jul 1 '12 at 17:46
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I like the easy solution of explode (as suggest by knightrider):

$url="http://localhost/wpmu/testsite/files/2012/06/testimage.jpg";
function getPath($url,$segment){
          $_parts = explode('/',$url);

                  return join('/',array_slice($_parts,$segment));
}

echo getPath($url,-3)."\n";
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No need for a regex:

function getEndPath($url, $base) {
    return substr($url, strlen($base));
}

Also, a more general solution to return the end part of a url path by specifying a level:

/**
 * Get last n-level part(s) of url.
 *
 * @param string $url the url
 * @param int $level the last n links to return, with 1 returning the filename
 * @param string $delimiter the url delimiter
 * @return string the last n levels of the url path
 */ 
function getPath($url, $level, $delimiter = "/") {
    $pieces = explode($delimiter, $url);
    return implode($delimiter, array_slice($pieces, count($pieces) - $level));
}
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