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I am using drupal and have a variable that contains loads of html. What I want to do is select the first image that appears in that html, capture the image src so that I can manipulate the image in other ways and then remove all images from the html. I should now have a variable containing the captured first image source, and a variable containing the html minus any images.

To place the first image into a variable I have tried -

    $texthtml =  $node->teaser;
preg_match('/<img.+src=[\'"](?P<src>.+?)[\'"].*>/i', $texthtml, $image);
echo $image['src'];

This works fine so long as the image code follows the following logic - 'img src..' however thanks to my content management system, some img tags dont place 'src' straight after 'img' such as - 'img class..'. In this instance the above code only takes the first image that follows the specific order of 'img src..' How do I do this where the img code can be in any order?

To then remove the image from the original string I am successfully using -

 $stripped = $node->teaser;
$stripped = preg_replace("/<img[^>]+\>/i", "(image) ", $stripped); 
echo $stripped;

Thanks!

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Please reedit your question as it is not clear if you do not really want to extract src part of tag (which would make more sense I think) or really want to just get rid of img part –  Marcin Orlowski Aug 26 '12 at 17:57
    
Don't use regex to parse html! –  Eric Aug 26 '12 at 17:58
    
WebnetMobile.com - I have re-edited the question, apologies. Eric, what should I do instead? Thanks! –  Rob Aug 26 '12 at 20:37

1 Answer 1

Use following,

preg_match_all('/\<img(.*?)\/\>/', $texthtml, $matches);
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Thanks Amar! This is giving me an array that looks like this - Array ( [0] => Array ( [0] => (image here) [1] => How do I get the image out of this? Also curious as to Eric's comment above about not using regex.. Thanks! –  Rob Aug 26 '12 at 21:05

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