38

I found an example of some Perl code I needed, but it had something in it that I didn't recognise.

my $i //= '08';

I can't find any reference to this anywhere! It appears to be the same as:

my $i = '08';

Am I missing something?

7
  • 5
    Did you check man perlop? That's usually the first place to look for Perl operators. Dec 12, 2012 at 18:58
  • 5
    To be fair, perlop doesn't say what it does, only lists its precedence and lets you draw the conclusion that it's $foo = $foo // $bar
    – Wooble
    Dec 12, 2012 at 19:00
  • 1
    This must be a secret Perl operator because I can't find it searching on Google. Or Perl documentation is very poor.
    – ceklock
    Dec 12, 2012 at 19:09
  • 1
    @Wooble, Actually, it does. See "Assignment Operators", which defines it in terms of //, which is defined in "Logical Defined-Or".
    – ikegami
    Dec 12, 2012 at 19:11
  • 1
    @Upland With Google, it's difficult. But try out symbolhound. It's made exactly for that purpose. And sorry for answering that late. ;-)
    – PerlDuck
    Nov 25, 2016 at 10:19

5 Answers 5

64

The //= operator is the assignment operator version of the // or 'logical defined-or' operator.

In the context of a my variable declaration, the variable is initially undefined so it is equivalent to assignment (and would be better written as my $i = '08';). In general, though,

$i //= '08';

is a shorthand for:

$i = (defined $i) ? $i : '08';

It is documented in the Perl operators (perldoc perlop) in two places (tersely under the assignment operators section, and in full in the section on 'logical defined-or'). It was added in Perl 5.10.0.

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    Thank you very much ... I seem to have lived my life ignorant of this until today. I first checked the camel book .. then Google .. and found nothing. But now I know .. thanks again
    – Upland
    Dec 12, 2012 at 19:15
  • Are you really going to use undocumented operators in your code??
    – ceklock
    Dec 12, 2012 at 19:18
  • 1
    @tecnotron: Which undocumented operator are you referring to? Dec 12, 2012 at 19:25
  • The operator that generated this question, of course ( //= ). But I am saying it to @Upland.
    – ceklock
    Dec 12, 2012 at 19:28
  • 8
    @tecnotron: I provided references to the documentation for the operator in the current Perl version. If you're using Perl 5.8.x (or, perish the thought, something older), then it is not available and hence undocumented. But it was added in Perl 5.10.0 and is available in later versions too. Dec 12, 2012 at 19:30
7

Short answer: It's the same as my $i = '08';. You probably wanted $i //= '08';.


First, let's look at $i //= '08';

EXPR1 //= EXPR2;

is the same as

EXPR1 = EXPR1 // EXPR2;

except that EXPR1 is only evaluated once. It's a convenient way of writing

EXPR1 = EXPR2 if !defined(EXPR1);

See perlop for documentation on Perl operators.


Back to my $i //= '08';. That means

my $i;
$i = '08' if !defined($i);

but $i will always be undefined in that situation. It would be far better to write

my $i = '08';

But, the code was probably supposed to be

$i //= '08';   # no `my`
6

It is "defined-or" operator.

$i //= '08';

is equivalent to:

$i = defined($i)? $i: '08';

It was introduced in Perl 5.10.0, and not supported by older versions.

2
  • 1
    This does not answer the question, which is about **my** $i //= ...;
    – ikegami
    Dec 12, 2012 at 19:41
  • 2
    the question is posted as "What is //= in perl?" Dec 12, 2012 at 20:11
5

$i //= '08' is the same as $i = defined($i) ? $i : '08'. It's almost the same as $i ||= '08', which translates to $i = $i ? $i : '08'. Now, when you declare your variable with my, it's set to undef. Thus, it will always follow the 08 branch. Also, in case you're wondering, the // operator appeared in the Perl v5.10; so it would generate a compilation error on the older Perls.

4

It's almost the same as ||, except that it checks if $i is defined, not just true.

2
  • 4
    This does not answer the question, which is about **my** $i //= ...;
    – ikegami
    Dec 12, 2012 at 19:41
  • Could we call it for the case of simplified illustration a 'null coalesce' operator?
    – FantomX1
    Oct 26, 2021 at 11:08

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