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Suppose I have a list called @emailList, and I would like to pass a reference to that list to a subroutine called sendEmail. I know I can do it this way:

my @emailList = split(/[$EMAIL_DELIMS]+/, $emailListStr);
sendEmail(\@emailList);

But if I want to create a reference to the output of split directly without using the intermediate variable @emailList, what's the correct syntax? I have already tried:

sendEmail(\@{split(/[$EMAIL_DELIMS]+/, $emailListStr)});

… as well as many subtle variations of this, but perl always complains. Suggestions?

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1 Answer 1

up vote 9 down vote accepted
sendEmail([ split(/[$EMAIL_DELIMS]+/, $emailListStr) ]);

will create an anonymous array populated using the list returned by split and pass it to sendEmail.

Also, you might want to use Email::Address->parse.

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heh, beaten by 19 secs... –  Oesor Jan 27 '11 at 22:13
    
Thanks, works like a charm! –  Mansoor Siddiqui Jan 27 '11 at 22:24
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Though touched on, you should look into and understand the difference between contexts (scalar and list) and variables (scalar, array and hash), as that's going to let you know exactly why this works. –  Oesor Jan 27 '11 at 22:42
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The real difference that needs understanding is the difference between a "list" and an "array". You cannot have a list "named" anything, lists are not "nameable". Mansoor has an array named @emailList the value in that array is a "list". –  tadmc Jan 28 '11 at 2:19
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