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This question already has an answer here:

I'm looking for a computationally less expensive way to access the last item of a list returned by a subroutine (without modifying the subroutine itself).

As I see it what I'm doing below is actually copying the returned list into a named array @list, or into an anonymous array [], and then accessing the last value of that array, not directly the last item of the returned list.

Is there any shortcut here? How can I directly access the last item of the returned list?

sub range { return 0 .. 10**7 }

This takes 0.808 seconds of user time according to GNU time:

my @array = range();
print pop @array;

And here 0.792 seconds:

my @array = range();
print $array[$#array], "\n"

0.680 seconds:

print pop [ range() ]

marked as duplicate by ThisSuitIsBlackNot, Community Feb 6 '16 at 15:06

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  • 2
    I think you're a little confused about lists vs. arrays. See Arrays vs. Lists in Perl: What's the Difference? – ThisSuitIsBlackNot Feb 6 '16 at 14:17
  • 1
    This may be premature optimisation though. Check if it actually matters before faffing about. – Sobrique Feb 6 '16 at 15:16
  • @Sobrique I'd be more worried about memory usage than speed in this case. – ThisSuitIsBlackNot Feb 6 '16 at 15:21
  • Yes, with a mahoosive array, popping the last. But if you've a mahoosive array (and memory iis a concern), I'd be tempted to not use a sub that created (and returned) it in the first place. – Sobrique Feb 6 '16 at 15:23
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    Your test cases are maybe 2x speed improvement in a single operation. That's insignificant, unless you're doing it a lot in your program. And if you are, you really want to better optimise the generate-and-return, not the popping last element. – Sobrique Feb 6 '16 at 15:26
4

Subroutines don't return arrays, they only return lists. But you're correct that

my @array = list();

copies the values returned by list() into an array. If you only care about the last value, you can use a list slice:

use strict;
use warnings 'all';
use 5.010;

sub range {
    return 0 .. 10**7;
}

my ($last) = ( range() )[-1];
say $last; # 10000000
  • Nice. Just for the record this takes 0.440 seconds here. – n.r. Feb 6 '16 at 14:18
  • Be aware that range() is called in list context here. Lots of built-in functions have different behavior in list vs. scalar context, e.g. localtime. – ThisSuitIsBlackNot Feb 6 '16 at 14:31
  • The parentheses enclosing $last are meant to avoid a list count, right? – n.r. Feb 6 '16 at 14:31
  • With the parens the RHS is evaluated in list context; without, scalar context. Slices in scalar context return the last item in the slice, so in this case it doesn't make a difference. – ThisSuitIsBlackNot Feb 6 '16 at 14:37

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