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I have an array containing a number of names:

Fred Smith
Dave Davidson
John
Andy Wood
Robin van Persie

foreach my $name ( @arrayOfNames ) {
     my ($first, $last) = $name =~ /(.*)\s+(.).*/;
     print "$first$last";
}

Using the foreach loop shown above it should print the following:

FredS
DavidD
John
AndyW
RobinvP

However, it does not handle one word names (John) or more than two word names (Robin van Persie) correctly:

For one word names (John) I get errors as shown below

Use of uninitialized value $first in concatenation...
Use of uninitialized value $last in concatenation...

And for more than two word names (Robin van Persie) it prints Robin vanP instead of RobinvP

How should it be changed to cater for these one word and more than two word names? Should one word and more than two word names be moved into a new array and then dealt with later on or can the regex be altered to cater for this?

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3  
In your example, shouldn't Andy Wood become AndyW? –  Qeole Jun 20 '14 at 9:54

3 Answers 3

up vote 5 down vote accepted

You can use split instead of a regex to separate the first name from the other names:

my ($first, @rest) = split;

Then substr within map to extract the initials:

my @initials = map { substr $_, 0, 1 } @rest;

Then join them all together:

join '', $first, @initials;

Putting it all together:

for (@arrayOfNames) {
    my ($first, @rest) = split;
    print join '', $first, map { substr $_, 0, 1 } @rest;
}
share|improve this answer
    
That example isn't consistent. Some are surname followed by first name initial, others are initials followed by first name. –  RobEarl Jun 20 '14 at 10:17
    
Sorry I meant SmithF, DavidsonD, John, WoodA, vanPersieR –  perl-user Jun 20 '14 at 10:20
    
join '', @rest, substr $first, 0, 1;. If you want John instead of J, add a conditional on @rest –  RobEarl Jun 20 '14 at 10:38
    
Can this also be changed around to get SFred, DDave, John, WAndy ...? I tried moving things around but can get it like that? thanks –  perl-user Jun 20 '14 at 11:11
    
join '', (map { substr $_, 0, 1 } @rest), $first;. You need the parenthesis otherwise Perl treats it as part of a list (@rest, $first) and passes it through map –  RobEarl Jun 20 '14 at 11:16

I can't think of a way to do this easily with regex, but this works:

#!/usr/bin/perl
use strict;
use warnings;
use Data::Dumper;

my @names = ('Fred Smith', 'Dave Davidson', 'John', 'Andy Wood', 'Robin van Persie');

my @abbvr = map { my ($n, @n) = split;
                  $n .= substr($_, 0, 1) for @n;
                  $n } @names;

print Dumper @abbvr;
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Could you show me an example of the reverse one below your first answer?. When I try and use substr($n, 0, 0) = substr($_, 0, 1) for reverse @n; it gives me SFredS, DDaveD, John, WAndyW and vPRobinPv. Thanks –  perl-user Jun 20 '14 at 10:27

Using a regular expression:

use strict;
use warnings;

chomp(my @names = <DATA>);

my @abbrs = map {s/\s+(.)\S*/$1/gr} @names;

use Data::Dump;
dd @abbrs;

__DATA__
Fred Smith
Dave Davidson
John
Andy Wood
Robin van Persie

Outputs:

("FredS", "DaveD", "John", "AndyW", "RobinvP")

Note, if using an older version of perl that doesn't support the /r switch, the following will work just fine:

my @abbrs = map {(my $ab = $_) =~ s/\s+(.)\S*/$1/g\; $ab} @names;

Also, another possible edge case would be John Paul II. Perhaps that abbreviation should equal JohnPII? If so, the following adjustment would take care of that s/\s+(.[A-Z]*)\S*/$1/gr

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You could change the inner (.) to be (\S) to avoid people wondering whether the . can match a space. However, I believe the regular expression will do the right thing with either the . or the \S. –  AdrianHHH Jun 21 '14 at 7:33

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