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I'm looking for a regex to find words in string starting with # and not have any more repeated #

Given:

Hi I'm #hany #هانى my Friend #john#john is ##here . good bye#all .

I want the final result as this:

Hi I'm <a>#hany</a> <a>#هانى</a> my Friend #john#john is ##here . good bye#all .

I'm using this:

echo preg_replace('/(?!\b)#(\\S+)/','<a>$0</a>',$string);

I want only words starting with # and not have any more hashes like twitter hash-tags.

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2 Answers 2

up vote 3 down vote accepted

Try this pattern:

echo preg_replace('/(?<=\s)(#[^#\s]+)(?=\s)/', '<a>$0</a>' ,$string);

Output:

Hi I'm <a>#hany</a> <a>#هانى</a> my Friend #john#john is ##here . good bye#all .
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it works fine ,but i want to echo <a>$1</a> output like: Hi I'm <a>hany</a> <a>هانى</a> my Friend #john#john is ##here . good bye#all . and another one to scape the non english words output like: Hi I'm <a>hany</a> #هانى my Friend #john#john is ##here . good bye#all . –  Eng Hany Atwa Jul 21 '13 at 2:32
    
i modified it to: echo preg_replace('/(?<=\s)#([^#\s]+)(?=\s)/', '<a>$0</a>' ,$string); and to scape non-english words: echo preg_replace('/(?<=\s)@([^@\W]+)(?=\s)/', '<a>$0</a>' ,$string); thanks alot –  Eng Hany Atwa Jul 21 '13 at 2:49
    
You're welcome. –  Pé de Leão Jul 21 '13 at 5:52

Try with this:

echo preg_replace('~(?<=\s|^)#[^\s#]++~um', '<a>$0</a>', $string);

Explanations:

~             # pattern delimiter (instead of /, but it's the same)
(?<=          # open a lookbehind (means "preceded by")
    \s | ^    # a white character (space, tab, newline...) or the begining of the line
)             # close the lookbehind
#             # literal #
[^\s#]++      # all that is not a # or a white character, one or more times (possessive)
~             # delimiter
um            # u for unicode string, m for multiline mode
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