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Why does // have lower precedence than == in (at least) perl 5.010?

For example, this

use 5.010;
my $may_be_undefined = 1;
my $is_equal_to_two = ($may_be_undefined//0 == 2);
say $is_equal_to_two;

prints (for me) very unexpected result.

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Because Larry Wall designed it that way? –  lwburk Dec 12 '11 at 2:44

1 Answer 1

up vote 13 down vote accepted

It's because of the category of operators which // falls under, aswell as ==.

== is an "equality operator" though // falls under the category of "C-style logical operators".

As an example; && is in the same "category" as //, with that said both of the statements below are equivalent when it comes to operator precedence. That might make it easier to understand?

  print "hello world" if $may_be_undefined && 0 == 2;
  print "hello world" if $may_be_undefined // 0 == 2;

Documentation of C-style Logical Defined-Or ( // )

Although it has no direct equivalent in C, Perl's // operator is related to its C-style or. In fact, it's exactly the same as ||, except that it tests the left hand side's definedness instead of its truth.

Thus, $a // $b is similar to defined($a) || $b (except that it returns the value of $a rather than the value of defined($a)) and yields the same result as defined($a) ? $a : $b (except that the ternary-operator form can be used as a lvalue, while $a // $b cannot).

This is very useful for providing default values for variables. If you actually want to test if at least one of $a and $b is defined, use defined($a // $b) .

The ||, // and && operators return the last value evaluated (unlike C's || and &&, which return 0 or 1).

Documentation of Operator Precedence and Associativity

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OK, but why is // in this category? &&, || etc. are logical operators. I don't see // as a C-style logical operator. –  Karel Bílek Dec 12 '11 at 2:43
@KarelBílek I modified my post and added relevant info and links to the perl documentation regarding the matter, the text explains it quite well. –  Filip Roséen - refp Dec 12 '11 at 2:47
@Karel, 3 || 4 return 3 not 1 in Perl, i.e. // does operate like a Perl logical operator. Yes, 0//1 returns 0 but that's fine. –  Jeff Burdges Dec 12 '11 at 2:51
Larry Wall (or whoever added it to Perl) does see it as a logical operator - so you had better adjust your expectations to match the language you are using (or decide not to use the operator). –  Jonathan Leffler Dec 12 '11 at 3:19
From perlop, about a language design decision made back in 1989: "Operators borrows from C keep the same precedence relationship with each other, even where C's precedence is slightly screwy. (This makes learning Perl easier for C folks.)" –  mob Dec 12 '11 at 15:35

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