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I basically want to do this:

foreach my $key (keys $hash_ref) {

    Do stuff with my $key and $hash_ref

    # Delete the key from the hash
    delete $hash_ref->{$key};
}

Is it safe? And why?

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2 Answers 2

up vote 10 down vote accepted

You're not iterating over the hash, you're iterating over the list of keys returned by keys before you even started looping because

for my $key (keys %$hash_ref) {
   ...
}

is roughly the same as

my @anon = keys %$hash_ref;
for my $key (@anon) {
   ...
}

Deleting from the hash causes no problem whatsoever.


each, on the other, does iterate over a hash. Each time it's called, each returns a different element. Yet, it's still safe to delete the current element!

# Also safe
while (my ($key) = each(%$hash_ref)) {
   ...
   delete $hash_ref->{$key};
   ...
}

"If you add or delete a hash's elements while iterating over it, entries may be skipped or duplicated--so don't do that. Exception: It is always safe to delete the item most recently returned by each()"

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The wording "in the current implementation" scares me a little, because it sounds like there's space there to change the implementation such that it is no longer safe. I wouldn't rely on that, but then I wouldn't use each() either - foreach keys is fine. –  LeoNerd Jun 3 '12 at 15:08
    
@LeoNerd, older Perl (at least 5.10) just say "It is always safe to delete..." For obvious compatibility reasons, I doubt this will ever be changed without introducing some use feature or other similar pragma. –  Oleg V. Volkov Aug 2 '12 at 19:49
    
who added that "in the current implementation"? it wasn't always there, and shouldn't be there now, unless there's a really really good reason. update: Doesn't seem to be there anymore. –  ysth Mar 9 at 19:21
    

It is safe, because keys %hash provides entire list once, before you start iterating. foreach then continues to work on this pre-generated list, no matter what you change inside actual hash.

It eats up your memory though, because you keep entire list until you've done.

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