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I have folowing string: user1 fam <user@example.com>, user2 fam <user2@example.com>, ...

How can i get mail address from this string with regular expression. I need in output list of mail address

user@example.com
uesr2@example.com

I try:

<.*>

But it's ouput with < >:

   <user@example.com>
   <uesr2@example.com>

Thank you.

p.s. Thank you @xanatos for comment, I use Erlang

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You should ALWAYS, ALWAYS, ALWAYS write the language you are using, when asking for Regex (well, unless you are asking about comparison between many languages :-) ). There are more implementations of Regex than stars in the sky or grain of sands on the Earth. :-) –  xanatos Mar 12 '11 at 10:56
    
You may consider not using regex's for it at all. The parse is rather simple if you define the state machine directly in Erlang. –  I GIVE CRAP ANSWERS Mar 12 '11 at 13:09

4 Answers 4

up vote 1 down vote accepted
  • You need to use the option ungreedy so that it only matches the individual bracket pairs.

  • global so that you can get all the matches.

  • and you need {capture, all_but_first, list} so that you get the actual values (list can also be binary if you prefer binary results). all_but_first tells re to not return the whole match (which would include <>), just the group.

Result:

1> S.
"user1 fam <user@example.com>, user2 fam <user2@example.com>, "
2> re:run(S, "<(.+)>", [ungreedy, global, {capture, all_but_first, list}]).
{match,[["user@example.com"],["user2@example.com"]]}
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As the other have said, but to make it faster:

<([^>]*)>

In this way the Regex won't have to backtrack (with the other Regexes suggested, the Regex will match all the string and then will begin to rollback to find a >)

I'll add that, for historical reasons, there are small differences between the . and, for example [\s\S]. Both catch all the characters EXCEPT the \n. The first one (.) doesn't catch it. So by using the [^>] you are catching the \n, but this shouldn't be a problem for what you are doing. http://www.regular-expressions.info/dot.html

Just to be complete, because it's a problem that often happens, there is another variant:

<((?:(?!>).)*)>

(you can substitute the . with [\s\S] if you want, or use the SingleLine option if your language supports it, to make the . behave in a different way). The point here is that the "stop" expression can be longer than one character. Instead of (?!>) you could have inserted (?!%%) and it would have stopped at %%. BUT I'm not sure this variant work with Erlang (I hadn't noticed the new Tag... It wasn't there when I orginally read the question and I'm not an Erlang programmer... And it seems at least two Erlang programmers have different opinions on the argument :-) )

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This isn't just the fastest way, it's the only way (unless you choose to specify a whitelist of all the characters it should match). –  Alan Moore Mar 12 '11 at 12:47
    
@Alan ??? What are you speaking of? The use of [^>]* instead of .*? or what? –  xanatos Mar 12 '11 at 12:53
    
I meant <([^>]*)>. When I wrote that comment, there was the only the one regex in the answer. By the way, Erlang's regex flavor doesn't support lookaheads, so your second offering won't work. –  Alan Moore Mar 12 '11 at 13:10
    
@Alan Yes, Erlang does support lookaheads: re manual page –  Adam Lindberg Mar 12 '11 at 13:14
    
@Alan The <(.*?)> should work correctly, so I still don't see how the [^>] is the only way (even in bold :-) ) –  xanatos Mar 12 '11 at 13:14

Use groups. See your regex engine's documentation for more details.

>>> re.findall('<(.*?)>', 'user1 fam <user@example.com>, user2 fam <user2@example.com>, ...')
['user@example.com', 'user2@example.com']
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Keep it simple and use <([^>]*)> which is about as fast as it can get and works for most versions of regular expressions. This is faster as it never has to backtrack while using <(.*?)> will cause backtracking.

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