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I am trying to make a PHP regex preg_replace in order to remove everything after a specific string.Lets say I have an article, and at the end of every article there is a specific pattern of words that the article always ends. As following.

Input string:

Lorem ipsum dolor sit amet, consectetur adipiscing elit. Cras vestibulum pellentesque egestas. Sed quis velit eros. Phasellus vitae, euismod lectus nec, auctor libero. In venenatis sapien id nunc varius vehicula./Site.com/ Risus mt 12/04/2015, ora 20:56 Tags: sapien lectus kalon fames laoreet

Desired output:

Lorem ipsum dolor sit amet, consectetur adipiscing elit. Cras vestibulum pellentesque egestas. Sed quis velit eros. Phasellus vitae, euismod lectus nec, auctor libero. In venenatis sapien id nunc varius vehicula./Site.com/

Consequently I want to remove the pattern and everything after the pattern in input string which is in bold. "Risus më 12/04/2015, ora 20:56" since it will always be the same and follow a date and time, a digit format.

I am trying to do something like the code below, but I am unable to build the regex without getting errors since I am not sure on the correct syntax of the desired pattern.

$desired_string = preg_replace('\^Risus m.\s\d\d\D\d\d\D\d\d\d\d\\D\s(ora)','',$string);

Thank you!!

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If you want to use regex to delete something after a marker in the text up to the end, you need to use .*?. So, you can use something like this:

\s*Risus\s+m.\s+\d{2}\D\d{2}\D\d+,\s+ora.*$

PHP code:

$re = "/\\s*Risus\\s+m.\\s+\\d{2}\\D\\d{2}\\D\\d+,\\s+ora.*$/"; 
$str = "Lorem ipsum dolor sit amet, consectetur adipiscing elit. Cras vestibulum pellentesque egestas. Sed quis velit eros. Phasellus vitae, euismod lectus nec, auctor libero. In venenatis sapien id nunc varius vehicula./Site.com/ Risus mt 12/04/2015, ora 20:56 Tags: sapien lectus kalon fames laoreet"; 
$result = preg_replace($re, "", $str);

See demo.

  • Thanks for the explanation. Everything worked great. As I am trying to understand the Regex pattern, \\s* ~ zero or more occurrences of whitespace \\s+ ~ one or more occurrences of whitespace \\d{2} ~ two digits \\D ~ non digit character \\d+ ~ one or more occurrences of digits $ end of string? ora.* ~ i dont understand this, why we are using here the dot, when there is actually a space?? THe changes that I had to make in my PHP code were, that I had to add an additional dot here **\\s+m.. ** since I had a special character there.Otherwise it would not work. – comsci_dude Apr 14 '15 at 9:14
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    All is correct, and .* just means "match any symbol, 0 or more repetitions, but a newline up to the end of the string $". So, . also matches a space. – Wiktor Stribiżew Apr 14 '15 at 9:19
  • Thank you for clearing this up my friend!! – comsci_dude Apr 14 '15 at 9:56

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