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I'm running this one-liner from the command line:

perl -MList::Util=sum -E 'my $x = 0; say sum(++$x, ++$x)'

Why does it say "4" instead of "3"?

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3 Answers 3

up vote 4 down vote accepted

You are modifying $x twice in the same statement. According to the docs, Perl will not guarantee what the result of this statements is. So it may quite be "2" or "0".

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The passage in the docs is not relevant. It says the result isn't defined because operand evaluation order of operators isn't defined. While that's true for + (used in the example), it's not for the comma operator (used by the OP). The LHS of the comma operator is documented to be evaluated before the RHS. –  ikegami Aug 6 '11 at 0:11
    
Mind you, Perl doesn't guarantee the result in this case either, but it's for a different reason. Knowing the result depends on knowing whether pre-increment returns the original (now modified) scalar, or a copy of it, and that is not documented. (It's the former, fyi.) –  ikegami Aug 6 '11 at 0:14

First, keep in mind that Perl passes by reference. That means

sum(++$x, ++$x)

is basically the same as

do {
   local @_;
   alias $_[0] = ++$x;
   alias $_[1] = ++$x;
   ∑
}

Pre-increment returns the variable itself as opposed to a copy of it*, so that means both $_[0] and $_[1] are aliased to $x. Therefore, sum sees the current value of $x (2) for both arguments.

Rule of thumb: Don't modify and read a value in the same statement.

* — This isn't documented, but you're asking why Perl is behaving the way it does.

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+1 I think you meant to type " the current value of $x (2)". –  FMc Aug 6 '11 at 10:52
    
@FMc, Thanks, fixed. –  ikegami Aug 7 '11 at 4:34

Because both incrementers are executed before the sum is calculated.

After both execute, x = 2.

2 + 2 = 4.
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1  
If that was the reason, then sum(++$x, ++$x) and sum(0 + ++$x, 0 + ++$x) would give the same result. –  ikegami Aug 6 '11 at 0:20
1  
@ikegami not true, because the expression ++$x has an lvalue nature but the expression 0 + ++$x has an rvalue nature. Usually that's irrelevant since they're being used as rvalues, but in the undefined case where you do two preincrements inside a function call, it happens to have an early-vs-late-bind-ish effect. –  hobbs Aug 6 '11 at 2:42
    
@hobbs, You say what I said isn't true, yet you proceed to agree with my point that the lvalue nature of the op is the actual reason. This is covered in detail in my answer. –  ikegami Aug 7 '11 at 4:32

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