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I have this expression:

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

But a link like

http://photoartkalmar.com/Photoart%20Kalmar%20high%20res/Gigapixel/Vienna%2050%20Gigapixel/Donauturm.html

or that ends with something.jpg

The anchor link stops at % or . on the urls, so it doesnt make it all a link only half of it. How can i fix this?

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1 Answer 1

Of course, put a % symbol in the correct place in the regex: [\w/_\.][\w/_\.%]

Look at this whole line to see exactly where:

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