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Trying to replace all occurrences of an @mention with an anchor tag, so far I have:

$comment = preg_replace('/@([^@ ])? /', '<a href="/$1">@$1</a> ', $comment);

Take the following sample string:

"@name kdfjd fkjd as@name @ lkjlkj @name"

Everything matches okay so far, but I want to ignore that single "@" symbol. I've tried using "+" and "{2,}" after the "[^@ ]" which I thought would enforce a minimum amount of matches, but it's not working.

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1  
Just figured it out: preg_replace('/@([^@ ]+)/', '<a href="/$1">@$1</a> ', $comment); –  Rob Apr 30 '12 at 13:02
    
do not use spaces in the expressions. lead to problems. instead use \s –  VIPIN JAIN May 1 '12 at 5:28

5 Answers 5

up vote 6 down vote accepted

Replace the question mark (?) quantifier ("optional") and add in a + ("one or more") after your character class:

@([^@ ]+)
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not working check my answer –  VIPIN JAIN Apr 30 '12 at 13:30

Try:

'/@(\w+)/i'

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ERROR: unable to parse :P –  VIPIN JAIN Apr 30 '12 at 13:32
    
@VIPINJAIN: Looks syntactically correct to me. Semantically, not so much -- \b refers to the boundary between word chars and no-word chars, and @ not being a word char, it wouldn't match unless whatever preceded it was a word. –  cHao Apr 30 '12 at 14:51
    
he only want to remove the @ and space not other characters like hyphen etc. check your code it skips many special charactes –  VIPIN JAIN May 1 '12 at 5:19
    
Skipping characters that shouldn't be skipped, while bad, still means it parses and runs. Which pretty much by definition means it's not a parse error. If you're gonna call something broken, at least be correct about why. –  cHao May 1 '12 at 5:40

use this code

$comment = preg_replace('/@([^(@|\s)]+)/', '<a href="/$1">@$1</a>', $comment);

perfectly working and tested.

enjoy

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Inside a character class, (, |, and ) lose their special meaning -- they're just characters. So [^(@|\s)] actually means something like (?:(?!\(|@|\s|\)).). You're either not matching all kinds of stuff you should, or matching all kinds of stuff you shouldn't, depending on whether punctuation should be part of what gets matched. [^@\s] means what you intended, but whether that's correct depends again on whether it's correct to match punctuation as well. –  cHao May 1 '12 at 5:33
4  
Oh, and your attitude sucks. I'm sure that got you at least one of the 3 downvotes. –  cHao May 1 '12 at 5:45

Replacing ? with + will work but not as you expect.

Your expression does not match @name at the end of string.

$comment = preg_replace('#@(\w+)#', '<a href="/$1">$0</a> ', $comment);

This should do what you want. \w+ stands for letter (a-zA-Z0-9)

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work but not as expected, he wants no space and no @ symbol. but it removes all –  VIPIN JAIN Apr 30 '12 at 13:32

The regex

(^|\s)(@\w+)

Might be what you are after.

It basically means, the start of the line, or a space, then an @ symbol followed by 1 or more word characters.

E.g.

preg_match_all('/(^|\s)(@\w+)/', '@name1 kdfjd fkjd as@name2 @ lkjlkj @name3', $result);
var_dump($result[2]);

Gives you

Array
    (
        [0] => @name1
        [1] => @name3
    )
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wrong, first instance skipped –  VIPIN JAIN Apr 30 '12 at 13:30
    
@VIPINJAIN, ummm no its not: ideone.com/AcXO3 –  Petah Apr 30 '12 at 13:41
    
so u edited!!!! –  VIPIN JAIN May 1 '12 at 5:12
    
@VIPINJAIN: No, you're just bad at spotting errors. Note, no "edited" timestamp on the message. So it was in its current state for at least 15 minutes before you decided to misdiagnose it. –  cHao May 1 '12 at 5:59

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