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I always use @_[0] to get the first parameter and use @_[1] to get the second one. But when I search up code snippets online, I find many people like to use the shift keyword. I don't find the shift keyword being intuitive at all. Is there any functional differences between these two? Thanks.

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5  
If you use @_[0] and @_[1], you would get a warning saying it's better to use $_[0] and $_[1]. –  ikegami Sep 27 '12 at 18:25
6  
Not using warnings is a horrible mistake. Never write code without both use strict; use warnings;. –  TLP Sep 27 '12 at 19:15

2 Answers 2

up vote 13 down vote accepted

Yes, there is a difference between the two. shift would change the @_ (You could argue this would be an operation that would make shift slower) $_[0] or $_[1] is just assignment and would not change @_ at all.

The aesthetic way of writing this is :

sub this_is_better {
    my ( $foo, $bar, $hey, $whoa, $doll, $bugs ) = @_;
}
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2  
shift is not that much slower than simple assignment. It really depends on what you want to do. E.g., a common idiom is my $self = shift; my %args = @_; which removes the first element from @_ and dumps the remaining elements into a hash. –  harleypig Sep 27 '12 at 18:23
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@user1032613: You specifically asked if there were any "functional differences"; you did not ask about "performance differences". If you meant the latter rather than the former, please update your question. (FWIW, I prefer the "aesthetic" way. +1) –  Nemo Sep 27 '12 at 18:23
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As for performance, the Perl interpreter recognizes a number of patterns and handles them very efficiently. I would not be surprised if these were the same speed or if the "apparently slower" idiom were actually 10x faster. Write a test and measure if you care. –  Nemo Sep 27 '12 at 18:26
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Performance is tricky. Perl 5.10.0 actually had a bug that made shift significantly faster than my (...) = @_ (a list-assignment optimization accidentally got disabled). It was fixed in 5.10.1. –  cjm Sep 27 '12 at 18:42
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With so many layers between your code and the machine, you can't guess at which operation is going to be faster. Remember to benchmark before making performance pronouncements, my($foo) = @_ is one of the slowest ways to get arguments. shift and $_[0] are pretty much identical (shift is the fastest in 5.16 by a small margin) but its actually my $foo vs my($foo) which makes the difference. SURPRISE! BUT none of this matters, what you're doing in the subroutine is going to swamp any performance difference. –  Schwern Sep 27 '12 at 19:28

As stated in the documentation, shift without using an explicit array simply takes the next parameter from @_ in the subroutine locally by removing arguments from the beginning and shifting the remaining elements to the front.

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There is a functional difference ... shift modifies @_ while assignment does not. –  harleypig Sep 27 '12 at 18:25
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@harleypig In a way it treats the array like a stack which is what I tried to explain toward the end. –  squiguy Sep 27 '12 at 18:29
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Using "popping" is probably not a good idea in perl context, since pop actually removes an element from the end of the array. –  TLP Sep 27 '12 at 19:14
    
@TLP You're correct. I'll re-word my answer. –  squiguy Sep 27 '12 at 19:18

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