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I have a following string and I want to extract image123.jpg.

..here_can_be_any_length "and_here_any_length/image123.jpg" and_here_also_any_length

image123 can be any length (newimage123456 etc) and with extension of jpg, jpeg, gif or png.

I assume I need to use preg_match, but I am not really sure and like to know how to code it or if there are any other ways or function I can use.

Any help will be appreciated.

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In case the surrounding is markup, consider using DOM, XPath or SimpleHTML –  Gordon Mar 27 '10 at 16:11
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3 Answers 3

up vote 5 down vote accepted

You can use:

if(preg_match('#".*?\/(.*?)"#',$str,$matches)) {
   $filename = $matches[1];
}

Alternatively you can extract the entire path between the double quotes using preg_match and then extract the filename from the path using the function basename:

if(preg_match('#"(.*?)"#',$str,$matches)) {
    $path = $matches[1]; // extract the entire path.
    $filename =  basename ($path); // extract file name from path.
}
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What about something like this :

$str = '..here_can_be_any_length "and_here_any_length/image123.jpg" and_here_also_any_length';
$m = array();
if (preg_match('#".*?/([^\.]+\.(jpg|jpeg|gif|png))"#', $str, $m)) {
    var_dump($m[1]);
}

Which, here, will give you :

string(12) "image123.jpg" 

I suppose the pattern could be a bit simpler -- you could not check the extension, for instance, and accept any kind of file ; but not sure it would suit your needs.


Basically, here, the pattern :

  • starts with a "
  • takes any number of characters until a / : .*?/
  • then takes any number of characters that are not a . : [^\.]+
  • then checks for a dot : \.
  • then comes the extension -- one of those you decided to allow : (jpg|jpeg|gif|png)
  • and, finally, the end of pattern, another "

And the whole portion of the pattern that corresponds to the filename is surrounded by (), so it's captured -- returned in $m

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$string = '..here_can_be_any_length "and_here_any_length/image123.jpg" and_here_also_any_length';
$data = explode('"',$string);
$basename = basename($data[1]);
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Awesome - very compact and to the point. –  ProfVersaggi Jul 14 at 17:54
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