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I happen to meet a perl code with the following syntax.

sub new{
my ($class, $value)=@_;
$lobby ||= bless{
e=>undef;},$class
}

what does the syntax ||= mean?

I failed to google it as a key word, and I could not find similar syntax in the perldoc.

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1  
Google is often not that helpful for random Perl queries (largely because there's so much bad information about Perl out there on the web). You're better off using the Perl documentation web page (perldoc.perl.org) or the Perl search engine (perlhacks.com/search). –  Dave Cross Nov 16 '12 at 11:40
    
it's also the fact that punctuation is hard to search for in Google! –  plusplus Nov 16 '12 at 14:57

5 Answers 5

up vote 9 down vote accepted

You'll find the meaning of operators in perlop.

Now what it does: $lhs ||= $rhs is equivalent to $lhs = $lhs || $rhs. This means that $rhs is assigned to $lhs if $lhs is false in the Perlish sense. This can be if $lhs is undef, if it is an empty string, a number that is 0.

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3  
In a wider sense, ||= here appears to be initializing a singleton the first time new is called. –  ysth Nov 16 '12 at 8:57
    
@MortizBunkus it is good, but it appears to be really Perlish false. You said about undef and numeric zero and empty string. All good, i just want to add "0" and empty list. –  gaussblurinc Nov 16 '12 at 11:48
    
@loldop, Empty lists are never false. Or true. It's impossible to evaluate the truthness of an empty list. Well, that's assuming you're referring to a list value. If you're referring to the stub operator (()), then mentioning both it and undef is as redundant as mentioning 0 and 0+0 –  ikegami Nov 17 '12 at 12:18
EXPR1 ||= EXPR2;

is the same as

EXPR1 = EXPR1 || EXPR2;

except EXPR1 is only evaluated once. It's a convenient way of setting a default. For example:

sub foo {
   my %args = @_;
   $args{host} ||= "localhost";  # Provide a default host name if none provided.
   ...
}

In your case, you appear to have a singleton constructor. The first time new it's called, it'll create a new object. On subsequent calls, it'll return the previously created object.

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x ||= y is the short for x = x || y

See the perlop documentation.

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Just to complete this, in non-ancient versions of perl (since 5.10) you can use the defined-or operator // instead of the truth-or ||, which has better semantics when using it to set a default value:

$foo ||= 42;    # $foo = $foo || 42;

for example sets this variable's value to 42 iff $foo is false in a perlish sense. The problem is, that this operator can't distinguish defined-but-false values from undefined values because both are false.

$foo //= 42;    # $foo = $foo // 42;

This line sets $foos value iff it was undefined before, which is what we want often. It short-cirquits too, exactly like ||.

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$x ||= $y;

is same as

$x = $x || $y;
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