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I have a $source var which I get with curl and contains the following commented out string

//"url":"http://lh5.ggpht.com/_EpgGIto9934/TKXKqAw7uFI/AAAAAAAAGrM/PrQiCNyUdEo/8827.jpg","
$regex = "!url/"/:/"(.*)8827/.jpg!U";
preg_match_all($regex, $source, $res);
var_dump($res);

I want to get the http://.....jpg address What am I doing wrong? Thanks

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1  
What kind of string is that? Where does it come from? I don't think this needs a Regex – Pekka 웃 Dec 27 '10 at 16:34
1  
Also for what you were doing wrong: the escaping. It's \ backslash, not /. – mario Dec 27 '10 at 16:44
up vote 4 down vote accepted

That looks like json. If that's the case you won't need regular expressions for that. You can just use json_decode

<?php

$s = "//\"url\":\"http://lh5.ggpht.com/_EpgGIto9934/TKXKqAw7uFI/AAAAAAAAGrM/PrQiCNyUdEo/8827.jpg\",\"";

$regex = '/http(.+)\.jpg/';
preg_match($regex, $s, $matches);
echo $matches[0];

?>
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You may use that regex

http.+\....(?=",".+)

That will work for all 3 letters extensions.

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<?php
$source = '"url":"http://lh5.ggpht.com/_EpgGIto9934/TKXKqAw7uFI/AAAAAAAAGrM/PrQiCNyUdEo/8827.jpg","';
$regex = '/^.*\/([^\/]+\.jpg).*$/';
preg_match($regex, $source, $res);
print_r($res);
$jpg = $res[1];
?>
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