5

So, I just tracked down a bug which can be demonstrated in this trivial subroutine:

sub foo {
    my $bar = shift or die "Missing bar", # <--- not a semicolon
    my @items = ();
    push @items, $bar;
    return @items;
}

Obviously the mistake is that the first line of the subroutine ends in a comma. This had some rather unusual consequences, as can be seen:

say foo(1); # 1
say foo(1); # 11
say foo(1); # 111
say foo(1); # 1111

Now, I understand that this isn't a syntax error because of how the comma operator works. I understand that @items is not being set to () because the right side of the or isn't being reached. My question is, how can a variable declared with my inside of a subroutine allow data to persist between subroutine calls? It seems as if the my is turning into an our somehow.

5

B::Deparse is invaluable in exercises like this:

$ perl -MO=Deparse 31191808.pl
sub foo {
    die 'Missing bar', my(@items) = () unless my $bar = shift @_;
    push @items, $bar;
    return @items;
}

which makes this a variant of the my $var if 0 trick/bug/curiosity. Its effect is to create a lexical but static variable, which will not be reinitialized each time foo is called.

3

What you are doing is very similar to this snippet :

use v5.14; # Implies strict
sub foo {
    my @something= () if 0;
    push @something, shift;
    say @something;
}

foo($_) for 1..5;

The output will be :

1
12
123
1234
12345

In Perl, conditionally declaring a variable makes it only assign a value whenever that condition is true. If you changed the if 0 to if $_[0] == 3, you'd get a completely different sequence of numbers. This is actually an old bug in Perl that cannot be fixed anymore because a lot of code might depend on it, but if you're lucky you might see this warning: "Deprecated use of my() in false conditional"

3

You have discovered the comma-operator

From perldoc perlop:

Binary "," is the comma operator. In scalar context it evaluates its left argument, throws that value away, then evaluates its right argument and returns that value.

So this is actually considered a single statement:

my $bar = shift or die "Missing bar", my @items = ();

Perl evaluates the LHS and discards the result, since this is an assignment that doesn't really discard anything 1 is still assigned to $bar, then evaluates the RHS and returns that value. An important note here is that this means that @items is initialized as a static lexical variable within your sub, but remains static across calls to foo(). Similar to how state variables work.

At this point in the subroutine you have assigned 1 to $bar. The next line is:

push @items, $bar;

Perl pushes $bar onto the static lexical variable @items. The next statement returns a list of a single element 1.

Subsequent calls to foo continue to add elements to @items array and then return these elements. This is why you see an increasing number of 1 from your subroutine calls.

  • I'm not sure about this answer. It is NOT a global variable. I'm using strict and warnings, and the variable is not accessible outside of the subroutine. – AKHolland Jul 2 '15 at 18:49
  • @AKHolland sorry, I had revised the second paragraph after I realized it wasn't global but forgot to modify the later ones. – Hunter McMillen Jul 2 '15 at 18:51
  • Understood, thanks – AKHolland Jul 2 '15 at 18:53

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