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What's the best way to get the last N elements of a Perl array?

If the array has less than N, I don't want a bunch of undefs in the return value.

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4 Answers 4

up vote 25 down vote accepted
@last_n = @source[-$n..-1];

If you require no undefs, then:

@last_n = ($n >= @source) ? @source : @source[-$n..-1];
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That doesn't work if @source has fewer than $n items. –  mike Mar 4 '09 at 18:10
    
It work okay. undefs go into @last_n in the positions for which @source has no values, which is correct for some not-entirely-unreasonable semantics of what it means to "take the last N elements". –  chaos Mar 4 '09 at 18:13
    
oh, I've never used negative subscripts like that, I learned something today! –  Nathan Mar 4 '09 at 23:49
4  
That's pretty clever! –  Schwern Mar 5 '09 at 2:59
1  
What's wrong with improving your answers? –  brian d foy Sep 23 '09 at 15:59

I think what you want is called a slice.

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my $size = (scalar @list) - 1; my @newList = @list[$size-$n..$size];

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Doesn't work. You need the .. sigil, not comma, and $size is too large by one. –  chaos Mar 4 '09 at 18:15
    
you're right, too much time in groovy- I'll edit to match –  Tim Howland Mar 4 '09 at 18:17
    
May as well just say $#list like Nathan instead of putting scalar(@list) - 1 in a variable. –  chaos Mar 4 '09 at 18:31
    
I thought about that- since the OP was new to perl, I thought it would be better to avoid the $# construction, in favor of the more straightforward scalar call- I remember hating all the wacky special variables when I was getting started. –  Tim Howland Mar 4 '09 at 19:04
    
Who said I'm new to Perl? –  mike Mar 6 '09 at 22:18
@a = (a .. z);
@last_five = @a[ $#a - 4 .. $#a ];
say join " ", @last_five;

outputs:

v w x y z

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