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Newbie in Perl again here, trying to understand closure in Perl.

So here's an example of code which I don't understand:

sub make_saying  {
    my $salute = shift;
    my $newfunc = sub {
        my $target = shift;
        print "$salute, $target!\n";
    };
    return $newfunc;            # Return a closure
}
$f = make_saying("Howdy");      # Create a closure
$g = make_saying("Greetings");  # Create another closure
# Time passes...
$f->("world");
$g->("earthlings");

So my questions are:

  1. If a variable is assigned to a function, is it automatically a reference to that function?
  2. In that above code, can I write $f = \make_saying("Howdy") instead? And when can I use the & because I tried using that in passing the parameters (&$f("world")) but it doesn't work.
  3. and lastly, In that code above how in he** did the words world and earthlings get appended to the words howdy and greetings.

Note: I understand that $f is somewhat bound to the function with the parameter howdy so that's my understanding how the world got appended. What I don't understand is the 2nd function inside. How that one operates its magic. Sorry I really don't know how to ask this one.

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4  
+1 Good and well written question. I hope there are some insightful answers here :) –  gideon Jun 11 '13 at 8:22
3  
"# Return a closure". This is a common misunderstanding, reflected in many definitions of (lexical) "closure". The outer function actually returns a (reference to a) function. In doing so, a closure is formed. –  Beetroot-Beetroot Jun 11 '13 at 10:56
    
@Beetroot-Beetroot I guess the reasoning is that the closure is, of necessity, carried with the function wherever it goes, so in a sense is "returned" along with the function. Or does that not fit the definition of "closure" you're hinting at here either? (Genuinely curious to understand the distinction.) –  IMSoP Jun 11 '13 at 12:15
    
@IMSoP If we are being precise, neither my $x = 5; return sub { 1 + $_[0]} nor my $x = 5; my $f = sub { $x + $_[0] }; $f->(37); are using closures: In the 1st example, the function does not reference any variables in the outer scope. The 2nd example uses the function in the same environment where it was defined. In practice, it is best to think of closures as a function-pointer × environment pair. When the closure is called, the environment is re-installed, then the function is run. On exit, the environment is de-installed, and the callers environment is re-entered. –  amon Jun 11 '13 at 12:34
    
@amon I'm not sure I follow the two examples: in the first case, I can see that the compiler could discover that nothing from the environment is needed, and discard it; in the second, the environment never needs to be re-installed in practice. But in both, it needs to be captured, at least conceptually, for the language to support closures. Otherwise, a function which was passed around, with its captured environment, but never executed, would also not be a closure, which seems an impractical definition. –  IMSoP Jun 11 '13 at 15:35

2 Answers 2

up vote 10 down vote accepted

In Perl, scalar variables cannot hold subroutines directly, they can only hold references. This is very much like scalars cannot hold arrays or hashes, only arrayrefs or hashrefs.

The sub { ... } evaluates to a coderef, so you can directly assign it to a scalar variable. If you want to assign a named function (e.g. foo), you have to obtain the reference like \&foo.

You can call coderefs loke $code->(@args) or &$code(@args).

The code

$f = \make_saying("Howdy")

evaluates make_saying("Howdy"), and takes a reference to the returned value. So you get a reference that points to a coderef, not a coderef itself.

Therefore, it can't be called like &$f("world"), you need to dereference one extra level: &$$f("world").


A closure is a function that is bound to a certain environment.

The environment consists of all currently visible variables, so a closure always remembers this scope. In the code

my $x;
sub foo {
  my $y;
  return sub { "$x, $y" };
}

foo is a closure over $x, as the outer environment consists of $x. The inner sub is a closure over $x and $y.

Each time foo is executed, we get a new $y and therefore a new closure. Each time it is called, a different closure is returned.

When we execute make_saying("Howdy"), the $salute variable is set to Howdy. The returned closure remembers this scope.

When we execute it again with myke_saying("Greetings"), the body of make_saying is evaluated again. The $salute is now set to Greetings, and the inner sub closes over this variable. This variable is seperate from the previous $salute, which still exists, but isn't accessible except through the first closure.

The two greeters have closed over seperate $salute variables. When they are executed, their respective $salute is still in scope, and they can access and modify the value.

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I am slowly getting the concept here. But still it's not that clear. So question: if my understanding is correct, everytime the make_saying function is called, a new $salute is formed? right? But what is the use of $target there? –  Belmark Caday Jun 11 '13 at 8:54
1  
Hey, i think i got it, correct me if i'm wrong and ignore my first comment. Here's how i see it now: At first $f calls make_saying then make_saying returns the address of its subroutine, so now $f points to its subroutine (note that at that time $target is empty so only $salute is initialized). So when the last statement: $f->("world"); It is not calling make_saying anymore, it is calling its subroutine instead which is pointed to by $f, thus initializing $target. Am i right? –  Belmark Caday Jun 11 '13 at 9:01
    
$target is the name of the parameter expected by the inner closure when it is called. This is made a little more confusing by Perl's sub-routines not having named parameters in the normal way; in e.g. PHP, it would look like function make_saying($salute) { $newfunc = function($target) { print "$salute, $target!\n"; }; return $newfunc; } with make_saying and the anonymous closure each taking a single named parameter. my $target = shift; is just the standard Perl way of expecting a parameter and calling it $target. –  IMSoP Jun 11 '13 at 9:27
1  
@BelmarkCaday Yes, your understanding is good enough for now: calling $f calls the anonymous sub, not make_saying. The $target isn't special, it's just a variable inside the anonymous sub, and will be initialized once $f is called. I think the best way to learn about closures is to use them. –  amon Jun 11 '13 at 9:40
    
Oh, if somebody wants named parameters in Perl, there are various modules that support this, e.g. Method::Signatures: use Method::Signatures; func make_saying($salute){ func($target){ print "$salute, $target!\n" } } or syntax 'function' –  amon Jun 11 '13 at 9:44

If a variable is asigned to a function, is it automatically a reference to that function?

No. In example the function make_saying return reference another function. Such closures do not have name and can catch a variable from outside its scope (variable $salute in your example).

In that above code, can i write $f = \make_saying("Howdy") instead? And when can i use the & cause i tried using that in passing the parameters (&$f("world")) but it doesnt work.

No. $f = \make_saying("Howdy") is not what you think (read amon post for details). You can write $f = \&make_saying; which means "put into $f reference to function make_saying". You can use it later like this:

my $f = \&make_saying;
my $other_f = $f->("Howdy");
$other_f->("world");

and lastly, In that code above how in he** did the words world and earthlings got appended to the words howdy and greetings.

make_saying creating my variable which goes into lamda (my $newfunc = sub); that lambda is returned from make_saying. It holds the given word "Howdy" through "closing" (? sorry dont know which word in english).

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but how come when i write like this $f = sub {1} and print $f. I can see that $f holds an address.? –  Belmark Caday Jun 11 '13 at 8:34
    
@BelmarkCaday you craete anonymous function and put it into $f. Thats it, when you print it you see that function's address. If you want to execute it and print its result, you should call it: $f = sub {1}; print $f->() –  PSIAlt Jun 11 '13 at 8:37

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