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I sometimes see Perl code like this:

my ( $variable ) = blah....

What is the point of putting parentheses around a single variable? I thought parentheses were only used when declaring multiple variables, like:

my ( $var1, $var2, $var3 ) = blah...
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2  
it might be helpful for maintenance, if it is apparent that a list might be the future expectation. I normally use it while reading subroutine arguments, like my ($arg1) = @_ rather than my $arg1 = shift –  Unos Apr 5 '12 at 15:34
    
I'm just used to typing m y (. And, a list of one item is still a list. :) –  brian d foy Apr 5 '12 at 21:21

5 Answers 5

up vote 23 down vote accepted

There are several scenarios when there is a difference:

  1. When array is on right side

    my @array = ('a', 'b', 'c');
    my  $variable  = @array;           #  3   size of @array
    my ($variable) = @array;           # 'a'  $array[0]
    
  2. When list is on right side

    my  $variable  = qw/ a b c d /;    # 'd'  last  item of the list
    my ($variable) = qw/ a b c d /;    # 'a'  first item of the list
    
  3. Subroutine with variable (array/scalar) return value

    sub myFunction {
      ...
      return (wantarray() ? @array : $scalar);
    }
    my  $variable  = myFunction(...);  # $scalar   from the subroutine
    my ($variable) = myFunction(...);  # $array[0] from the subroutine
    
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2  
1  
Thanks, I like that you provided several scenarios. –  phileas fogg Apr 5 '12 at 22:17
1  
@brian d foy, I don't understand your comment. Are you trying to imply that the term "array" or "list" is misused in this post? Because I don't see any misuse. –  ikegami Apr 5 '12 at 22:55
    
$var = @array also does not set $var to $#array + 1, as the edited comment now reads. As @TLP said, it sets $var to the number of elements in @array. $#array, by contrast, is dependent on the value of $[ ($ARRAY_BASE). (Granted, changing that value is deprecated and dangerous.) –  pilcrow Apr 6 '12 at 15:14

The parentheses create a list context which affects how the right hand side of the assignment is evaluated.

Compare

my $x = grep { /s/ } qw(apples bananas cherries);
print $x;

with

my ($x) = grep { /s/ } qw(apples bananas cherries);
print $x;

You will often use this construction when you just want to grab the first element of a list and discard the rest.

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Technically, it affects how both sides of the assignment operator is evaluated (by changing which assignment operator is used). –  ikegami Apr 5 '12 at 20:10
    
Thanks, that makes sense. –  phileas fogg Apr 5 '12 at 22:15

I'm not a Perl pro (by all means, I'm not), but AFAIK it has to do with lists. Perl has different contexts (scalar, list). Using ($var) switches to list context, $var is scalar context.

my $var = (1, 2, 4); # $var = 4 (last element)
my ($var) = (1, 2, 4); # $var = 1

Please downvote this answer, if it is totally wrong :)

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You're right, and $var = grep {; defined } (1, 2, 4); = 3 (items) –  Axeman Apr 5 '12 at 17:20
    
Also my @a = (1,2,4); my $v = @a; print $v; = 3 –  knittl Apr 5 '12 at 17:30
    
However $var = (1, 2, 4) assigns 4 to $var. grep behaves in a specific way depending on its context, and in scalar context it provides the number of list elements that pass the test. That is different from the behaviour of a list in scalar context. –  Borodin Apr 5 '12 at 18:31
    
@Borodin: yes, like I wrote in my answer –  knittl Apr 5 '12 at 19:27
1  

You are confusing two different things. First off, when using my to declare several variables, you need to use parentheses:

my $foo, $bar;  

Does not work, as it is considered to be two different statements:

my $foo;
$bar;

So you need parentheses to group together the argument into an argument list to the function my:

my($foo, $bar);

Secondly, you have explicit grouping in order to invoke list context:

$foo, $bar = "a", "b"; # wrong!

Will be considered three separate statements:

$foo;
$bar = "a";
"b";

But if you use parentheses to group $foo and $bar into a list, the assignment operator will use a list context:

($foo, $bar) = ("a", "b");

Curiously, if you remove the RHS parentheses, you will also experience a hickup:

($foo, $bar) = "a", "b"; # Useless use of a constant (b) in void context

But that is because the = operator has higher precedence than comma ,, which you can see in perlop. If you try:

my @array = ("a", "b");
($foo, $bar) = @array;

You will get the desired behaviour without parentheses.

Now to complete the circle, lets remove the list context in the above and see what happens:

my @array = ("a", "b");
$foo = @array;
print $foo;

This prints 2, because the array is evaluated in scalar context, and arrays in scalar context return the number of elements they contain. In this case, it is 2.

Hence, statements such as these use list context:

my ($foo) = @array;          # $foo is set to $array[0], first array element
my ($bar) = ("a", "b", "c"); # $bar is set to "a", first list element

It is a way of overriding the scalar context which is implied in scalar assignment. For comparison, these assignments are in scalar context:

my $foo = @array;            # $foo is set to the number of elements in the array
my $bar = ("a", "b", "c");   # $bar is set to "c", last list element
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Interestingly enough, my $foo = ("a", "b"); print $foo; will print b, and not 2 –  knittl Apr 5 '12 at 16:07
    
@knittl Not as interesting as it sounds, because only arrays have that behaviour, not lists. In scalar context, lists return their last element instead. –  TLP Apr 5 '12 at 16:09
1  
    
There's really no such thing as a list in scalar context. There's just scalars separated by the scalar version of the comma operator. It's as much a list as $a && $b && $c. –  brian d foy Apr 5 '12 at 21:25
    
@brian d foy, $x=(4,5,6); has a list in scalar context. Notice the "s" that follows "list" in perl -MO=Concise -e'$x=(4,5,6);' The list/comma operator is not a binary operator like &&. –  ikegami Apr 5 '12 at 22:58

I have posted an in-depth explanation on the subject on another site.

[I can't post it here. StackOverflow doesn't support tables. Not that anyone usually has a problem with offsite linking to documentation.]

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Why the downvote? –  ikegami Apr 5 '12 at 22:49
1  
Apparently someone does have a problem with offsite linking to documentation. I usually recommend to add a summary to your answer. –  Brad Gilbert Apr 6 '12 at 8:23
    
@Brad Gilbert, Repeating what was already said 4 times is not a good thing as far as I'm concerned. –  ikegami Apr 6 '12 at 11:08
1  
@Brad Gilbert, Yes, but I did link to a site that has been around as long as PerlMonks. –  ikegami Apr 6 '12 at 21:25
1  
I was pointing out that Link-Only answers are very much discouraged on Stack Overflow. –  Brad Gilbert Apr 13 '12 at 19:20

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