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I use the following regexp in a php function to replace URLs with proper HTML links:

return preg_replace('@(https?://([-\w\.]+[-\w])+(:\d+)?(/([\w/_\.#-]*(\?\S+)?[^\.\s])?)?)@', '<a href="$1" target="_blank">$1</a>', $s);

But when $s has for value a string like

<li>http://www.link.com/something.pdf</li>

the function returns

<li><a href="http://www.link.com/something.pdf</li">http://www.link.com/something.pdf</li></a></li>

Does anyone know how to modify the regexp to get the intended string, i.e.

<li><a href="http://www.link.com/something.pdf">http://www.link.com/something.pdf</a></li> ?

without excluding from the replacement substrings of the URL introduced by '%', '?' or '&' ?

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2 Answers 2

up vote 0 down vote accepted

Really easy solution:

return '<li>'.preg_replace('@(https?://([-\w.]+[-\w])+(:\d+)?(/([\w-.~:/?#\[\]\@!$&\'()*+,;=%]*)?)?)@', '<a href="$1" target="_blank">$1</a>', $s).'</li>';

If you really want a regex:

return preg_replace('@(https?://([-\w.]+[-\w])+(:\d+)?(/([\w-.~:/?#\[\]\@!$&\'()*+,;=%]*)?)?)@', '<a href="$1" target="_blank">$1</a>', $s);
share|improve this answer
    
Thanks, but not quite. If I applied your solution, my surrounding "<li></li>" would be gone. Isn't it possible to exclude the </li> from the link without ruining the layout, so that I get exactly something in the form of my last code line? –  Nycticorax Jan 18 '13 at 13:17
    
I updated my answer, hope this will help you. –  Louis XIV Jan 18 '13 at 13:55
    
Thank you, two last problems: (i) too loose: some "<" still get in the replacement (ii) too tight: some "&" (used as php variables separator) are still not caught in the replacement –  Nycticorax Jan 18 '13 at 14:19
    
I edited my regex, if it doesn't work, please check my first solution which is also working I think. –  Louis XIV Jan 18 '13 at 15:29
    
Awesome ! I think some '%' might still get through, but this is a huge improvement on what I had ! Thank you so much and have a beautiful day. –  Nycticorax Jan 18 '13 at 15:44

You rpattern is not sufficient (to catch all the links), but anyway, instead of \S+ you might want to have [^\s<>]+ because the former catches everything non-space.

Same applies to [^\.\s]. Make this [^\s<>.]. You don't need to escape the dot when used in a character class, so my addition to this group was basically the greater than and less than signs.

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Thanks inhan, but this of course destroys all the php variables (and any character after '%') in the URL since it leaves '?' out of the replacement and stops at '%'. Without these two problems, it would be fine ... (I wish a knew more about regexp, sorry.) –  Nycticorax Jan 18 '13 at 14:05
    
\S means [^\s]. All I did was to add < and > signs to this unwanted character range. –  inhan Jan 18 '13 at 14:08
    
Sorry inhan, but whenever there is a pattern like 'longLink.html?id=...' or 'longLink%C3%' in the URL, the replacement leaves anything after '?' or '%' out of the link. –  Nycticorax Jan 18 '13 at 14:36
    
You would better search for or build a better rule for url matching anyway. I just tried to patch yours. –  inhan Jan 18 '13 at 15:04
    
Thanks, I wish I knew how to build one. And I didn't find any specific rule able to do the job. –  Nycticorax Jan 18 '13 at 15:12

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