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When trying to assign a variable and test it for definedness in one operation in Perl, as would be useful for instance in an if's condition, it would seem natural to me to write:

if ( defined my $thing = $object->get_thing ) {
    $thing->do_something;
}

As far as my understanding goes, defined has the precedence of a rightward list operator, which is lower than that of the assignment, therefore I would expect my code above to be equivalent to:

if ( defined ( my $thing = $object->get_thing ) ) {
    $thing->do_something;
}

While the latter, parenthesised code does work, the former yields the following fatal error: "Can't modify defined operator in scalar assignment".

It's not a big deal having to add parentheses, but I would love to understand why the first version doesn't work, e.g. what kind of "thing" defined is and what is its precedence?

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1 Answer 1

up vote 10 down vote accepted

Named operators are divided into unary operators (operators that always take exactly one operand) and list operators (everything else)[1].

defined and my[2] are unary operators, which have much higher precedence than other named operators.

The same goes for subs, so I'll use them to demonstrate.

$ perl -MO=Deparse,-p -e'sub f :lvalue {}  sub g :lvalue {}  f g $x = 123;'
sub f : lvalue { }
sub g : lvalue { }
f(g(($x = 123)));
-e syntax OK

$ perl -MO=Deparse,-p -e'sub f($) :lvalue {}  sub g($) :lvalue {}  f g $x = 123;'
sub f ($) : lvalue { }
sub g ($) : lvalue { }
(f(g($x)) = 123);
-e syntax OK

But of course, defined is not an lvalue function, so finding it on the LHS of an assignment results in an error.


  1. and, or, not, xor, lt, le, gt, ge, eq, ne and cmp are not considered named operators.

  2. my is very unusual. Aside from having both a compile-time and run-time effect, its syntax varies depending on whether parens are used around its argument(s) or not. Without parens, it's a unary operator. With parens, it's a list operator.

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Do you know what determines that defined has higher precedence than assignment? For instance, print my $test = 'test' does print "test". –  scozy Apr 14 '14 at 13:32
    
I have updated my answer. –  ikegami Apr 14 '14 at 13:48
    
@scozy: don't think of 'my' as an operator with precedence. The keyword 'my' induces a special parsing. –  gensym Apr 14 '14 at 14:03
1  
@gensym, That makes no sense. Keyword requiring special parsing is pretty much the very definition of an operator. (The only bit missing is "usable in an expression".) Furthermore, saying "consider my is special" doesn't help since the question is asking how do my and defined work given that they are special. –  ikegami Apr 14 '14 at 15:04

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