5

I recently encountered this and became most displeased:

while (my ($key, $value) = each (%hash1, %hash2)) {
} 

Gave this error: Experimental each on scalar is now forbidden at ...

But this, which seems to be the same operation using a superfluous variable:

my %h = (%hash1, %hash2);
while (my ($key, $value) = each %h) {
} 

Compiled and worked just fine.

What's the reason for this, and is my displeasure warranted?

8
  • What is it that you mean each should do in that case? Take a key/value from the first hash until it runs out, and then from the second hash? Or take a key/value from each hash (i,e, 2 keys 2 values)? I assume its the first, because I am human and can understand your subtext. But Perl logic would be to add the hashes to an array, and then loop over the array, and each-ing the hashes in turn.
    – TLP
    Jan 23, 2022 at 23:02
  • each's operand must be a hash, and (%hash1, %hash2) isn't a hash.
    – ikegami
    Jan 23, 2022 at 23:06
  • I should think it would take the result of the expression (%a, %b) and push it onto the stack as a temporary and the each operator would apply to that. But I think what happens is, since Perl fluidly moves between hashes and arrays, is that (%a, %b) actually returns an array, and %c = (%a, %b) works because assigning an array to %c, gets auto converted into a hash. Still, to be consistent each should work with arrays too (grabbing two elements at a time) Jan 24, 2022 at 1:14
  • 1
    @Silvio Mayolo Re "It's two hashes in list context.", It's in scalar context in the problematic code.
    – ikegami
    Jan 24, 2022 at 4:04
  • 1
    @TLP, In the versions of Perl that accepted an expression for each's operand, the expression is evaluated in scalar context because a reference is expected. Though it's true that in the OP's version, the concept of context doesn't apply since it's not valid code.
    – ikegami
    Jan 24, 2022 at 15:28

2 Answers 2

6

There are a couple of issues that come up here. First, let's deal with your immediate problem.

my %h = (%hash1, %hash2);
while (my ($key, $value) = each(%hash1, %hash2)) { ... }

each is actually an ordinary function in Perl, not a special syntax or something. So, as far as Perl is concerned, you're calling each with two arguments, not one. each expects either an array or hash value (basically, something that begins with % or @), which is why each(%h) works. You can create a local hash and pass that using a bit more convoluted syntax

while (my ($key, $value) = each(%{{%hash1, %hash2}})) { ... }

Here, we use the hashref constructor to make a new hash {%hash1, %hash2}. This is a scalar value that happens to point to a hash. Then we immediately dereference it with %{...}. Unfortunately, this causes another problem. If you try to run this code, it'll compile fine but then infinitely loop forever. To see why this is, we'll need to take a brief tangent.

each is a bit of an oddball in Perl. It's actually stateful and stores the so-called state of its call in the hash object. So

my %h = (a => 1, b => 2);
say each(%h);
say each(%h);

These two calls to each will return different values. One will return ("a", 1) and the other will return ("b", 2) (the order of the two returns is unspecified).

Now, your while condition is going to run anew every time it loops, so if we create a temporary hash at every loop iteration, and Perl is trying to store its each state in the hash every time, then you'll never reach the end of iteration since you'll never iterate more than once on any given hash before it's erased and replaced with a new one.

My recommendation is to just use the temporary. Even if you could do it with each and the merged hash, you'd be making a new merged hash at every loop iteration. Alternatively, you can use keys to simply get all of the keys as a single list. This will only happen once, since it's happening as the head of a for loop.

for my $key (keys %{{%hash1, %hash2}}) {
    my $value = $hash1{$key} // $hash2{$key};
    ...
}
0
3

Syntax for each:

each HASH
each ARRAY

This means

each %NAME
each %BLOCK
each EXPR->%*

each @NAME
each @BLOCK
each EXPR->@*

What you have does not match any of those patterns.


For a while, there was an experimental feature that allowed one to use

each EXPR

as long as the expression returned a reference to a hash or array.

The experiment was a failure, so this is no longer allowed. But your code wouldn't work even in a version of Perl with this feature. Your expression (%hash1, %hash2 in scalar context) returns the size of %hash2 or a weird string (depending on the version of Perl), and neither of those is a reference to a hash or a reference to an array.


Now, you might be tempted to use

each %{ { %hash1, %hash2 } }

Unfortunately, that creates a new hash each time it's evaluated, so you will perpetually get the first element of this new hash.

3
  • It also accepts each %SIMPLE_SCALAR where SIMPLE_SCALAR is $NAME, $BLOCK or $SIMPLE_SCALAR.
    – ikegami
    Jan 24, 2022 at 16:00
  • is each ARRAY 5.12+ worth mentioning
    – user17693816
    Jan 24, 2022 at 16:29
  • @Neither, Added.
    – ikegami
    Jan 24, 2022 at 16:31

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