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I am doing a simple tutorial which able to catch the keywords automatically, the code is as below:-

$content = "#abc i love you #def #you , and you?";
preg_match_all("/[\n\r\t]*\#(.+?)\s/s",$content, $tag_matches);
print_r($tag_matches);

output:-
Array ( [0] => Array ( [0] => #abc [1] => #def [2] => #you ) [1] => Array ( [0] => abc [1] => def [2] => you ) )

'#' symbol with words are the keywords

the output is correct, but if I insert any punctuation symbols beside the keyword, e.g: #you, , the output will become you, , may I know how do I filter punctuation symbols after keywords?

besides this, if I insert any keywords together just like #def#you, , the output is def#you, is anyone can help me to separate it/

Thanks All.

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up vote 1 down vote accepted

Try using a word boundary \b instead of whitespace \s. That will stop the match when it reaches anything other than a word character (i.e., [a-zA-Z0-9_]).

/[\n\r\t]*\#(.+?)\b/s

Conceptually, that's what you were trying to do anyway by putting whitespace there (i.e., denote end of word).

share|improve this answer
    
thanks for your help, it is solved. – 風吟月 Aug 7 '12 at 18:00

You could try:

    /[\n\r\t]*\#([\w]*)\s/s

The * actually has the same behavior as +?. By matching the . you are every character. If you have tags which are hyphenated you may want to add - inside of the brackets.

share|improve this answer
    
"* actually has the same behavior as +?" Actually, it is different. You're thinking of (.+)?. +? is a lazy quantifier, meaning it's a + that stops at the smallest match rather than being as greedy as possible. * is "0 or more; as many as possible" while +? is "1 or more; as few as possible". – Wiseguy Aug 7 '12 at 17:47
    
Oops you're right. Should've looked at that closer. – eomer Aug 8 '12 at 0:32

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