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I use exists and defined in if statements all the time

if (exists($a->{b}) and defined($a->{b})

is there a subroutine that does both of these at the same time?

UPDATE:
Seems I didn't give very good example code. For a better question and matching answer check out checking-for-existence-of-hash-key-creates-key.

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3 Answers 3

up vote 2 down vote accepted

defined(...) can only be true when exists(...) is true, so the answer to your question is that the subroutine is called defined.

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That's not right. At worst you inadvertently promote $a to a hash reference when you use the -> operator on it. –  mob Oct 29 '12 at 21:07
    
It should be noted that my initial assumption was wrong (defined does not create a key). –  Eric Fossum Oct 29 '12 at 21:09
    
nit: defined is an operator, not a sub. –  ikegami Oct 29 '12 at 21:17

That's the same thing as

if (defined($a->{b}))

Regarding the reply in the comments, defined does not instantiate the keys.

>perl -E"if (exists($a->{b}) and defined($a->{b})) { }  say 0+keys(%$a);"
0

>perl -E"if (defined($a->{b})) { }  say 0+keys(%$a);"
0

->, on the other hand, autovivifies as normal.

>perl -E"if (defined($a->{b})) { }  say $a || 0;"
HASH(0x3fbd8c)

But that's the case for exists too.

>perl -E"if (exists($a->{b}) and defined($a->{b})) { }  say $a || 0;"
HASH(0x81bd7c)

If you're trying to avoid autovivification, you'd use

>perl -E"if ($a && defined($a->{b})) { }  say $a || 0;"
0

or

>perl -E"no autovivification; if (defined($a->{b})) { }  say $a || 0;"
0
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Nope, when using defined on a hash you inadvertently create the key. –  Eric Fossum Oct 29 '12 at 20:57
    
"No, it doesn't" is the answer of a 5yo. Don't contradict someone without backing it up, or at least verifying your claim. My code will never create a key. It can create a hash ref in $a, but so can your original code. (It's -> that creates the hash ref, and that's the first thing executed in both your code and my code.) –  ikegami Oct 29 '12 at 20:59
2  
@EricFossum You may be thinking of autovivification, which occurs if you use defined on a two-dimensional structure, such as defined $foo->{bar}{baz}, which creates the sublevel $foo->{bar} but not baz. –  TLP Oct 29 '12 at 21:02
    
@TLP, Yes, but his code would do exactly the same. –  ikegami Oct 29 '12 at 21:02
    
@ikegami The comment was for Eric. Your code is fine. –  TLP Oct 29 '12 at 21:03
  • exists() checks if the key exists (even if undef value)
  • defined() checks if there is a value defined

if you only want to check if the key exists (even if undef) then just use exists()

here is a related questions that explains it quite nicely : What's the difference between exists and defined?

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