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I'm writing Perl for quite some time now and always discovering new things, and I just ran into something interesting that I don't have the explanation to it, nor found it over the web.

sub a {
   sub b {
     print "In B\n";
   }
}
b();

how come I can call b() from outside its scope and it works?

I know its a bad practice to do it, and I dont do it, I use closured and such for these cases, but just saw that.

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You could only enforce this type of scoping with OOP –  cyber-guard Apr 17 '12 at 13:47
    
something like closures will help you ;) it is not the same you are asking about, but another good implementation of subroutines. –  gaussblurinc Apr 17 '12 at 13:51

4 Answers 4

up vote 11 down vote accepted

Subroutines are stored in a global namespace at compile time. In your example b(); is short hand for main::b();. To limit visibility of a function to a scope you need to assign an anonymous subroutines to a variable.

Both named and anonymous subroutines can form closures, but since named subroutines are only compiled once if you nest them they don't behave as many people expect.

use warnings;
sub one {
    my $var = shift;
    sub two {
        print "var: $var\n";
    }
}
one("test");
two();
one("fail");
two();
__END__
output:
Variable "$var" will not stay shared at -e line 5.
var: test
var: test

Nesting named subroutines is allowed in Perl but it's almost certainly a sign that the code is doing someting incorrectly.

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That is an interesting example. How do you explain that it does not update $var the second time? Curiously, if you remove the line one("test"), it complains about the undefined variable, but then one("fail") is allowed to update $var. Undefined behaviour? –  TLP Apr 17 '12 at 13:56
    
I believe I found the answer in perlref. –  TLP Apr 17 '12 at 14:04
4  
@TLP, sub two {} is BEGIN { *two = sub {} }, so it captures over the $var that existed when it was compiled. my is basically a new that occurs on scope exit, so two's $var becomes distinct from one's $var after the first run of $one. –  ikegami Apr 17 '12 at 16:03
1  
@ikegami That is a good explanation, thank you. –  TLP Apr 17 '12 at 16:07

The following prints 123.

sub a {
    $b = 123;
}

a();
print $b, "\n";

So why are you surprised that the following does too?

sub a {
    sub b { return 123; }
}

a();
print b(), "\n";

Nowhere is any request for $b or &b to be lexical. In fact, you can't ask for &b to be lexical (yet).

sub b { ... }

is basically

BEGIN { *b = sub { ... }; }

where *b is the symbol table entry for $b, @b, ..., and of course &b. That means subs belong to packages, and thus can be called from anywhere within the package, or anywhere at all if their fully qualified name is used (MyPackage::b()).

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Subroutines are defined during compile time, and are not affected by scope. In other words, they cannot truly be nested. At least not as far as their own scope is concerned. After being defined, they are effectively removed from the source code.

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1  
Well, they can be nested, just not lexically scoped. –  brian d foy Apr 17 '12 at 14:28
    
@briandfoy It seems there is more to it than I knew.. found a very cryptical explanation in perlref. Is this behaviour intentional? What possible use could it have? –  TLP Apr 17 '12 at 14:32
    
@briandfoy - "I assume by 'can be nested' you mean 'can be physically placed inside another sub's code'; as opposed to 'can have semantics affected by such nested placement'", correct? –  DVK Apr 17 '12 at 14:34
    
@DVK In Ven'Tatsu's answer, the two subs are seemingly nested, at least as far as the variable is concerned. I tried it with strict, and it is valid code. –  TLP Apr 17 '12 at 14:36
    
@DVK Yes, "nested" as inside a "{ }" block in the source code. –  dolmen Apr 18 '12 at 16:43

The "official" way to create nested subroutines in perl is to use the local keyword. For example:

sub a {
    local *b = sub {
        return 123;
    };
    return b();  # Works as expected
}

b();  # Error: "Undefined subroutine &main::b called at ..."

The perldoc page perlref has this example:

sub outer {
    my $x = $_[0] + 35;
    local *inner = sub { return $x * 19 };
    return $x + inner();
}

"This has the interesting effect of creating a function local to another function, something not normally supported in Perl."

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