Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

Update Note: I've modified this question to hopefully ask it in a better way. Originally, I had more code that was attempting to demonstrate what I was after, but it was only getting in the way. Also, I was making references to "defined". It turns out that wasn't really what I was after. The updated question should clarify what I'm trying to do.

I'm trying to figure out a way to check if a hash has been declared in a perl script while inside a module function.

Given the following script (

#!/usr/bin/perl -w

use strict; 
use checkHash;

our %testHash = ("key"=>"value");

print &checkHash() ? 1 : 0;

Along with this module (;

sub checkHash { 
    if(%main::testHash) { 
        return 1; 
    else { 
        return 0; 


Running on a Mac with OS X 10.6.7 and perl v5.10.0, the return value of checkHash is "1" which I would expect. However, if I remove the key value pair from the script by changing the line:

our %testHash = ("key"=>"value");


our %testHash = ();

The return value is "0". My original assumption was that this would be "1", but after reading about the way the test I'm using is testing for the size in the hash, I see why that was incorrect thinking.

My questions is:

Is there a test that can be used in the checkHash module that will return true if the hash it's testing exists, but doesn't have any keys assigned to it?

share|improve this question
Why? What are you really trying to accomplish? I am asking because, all my life, I never faced a situation a test like this was needed. – Sinan Ünür Jul 27 '11 at 0:36
I'm building a little framework module that sets up some basic logging, debugging and other common functions. I'm planning to use a hash defined with "our" in the main script to pass a few pieces of info back and forth to the framework module. When I'm bootstrapping the framework, I wanted to put in a check to make sure the hash existed. That's where the question started from. Since the main script would only define the hash, but no values, I couldn't figure it out. (Note: I'm now looking at calling a bootstrap to populate the hash, but I'd still like to know the answer to this question). – Alan W. Smith Jul 27 '11 at 1:27
The answer to your question is a question: What do you think "defined" means? It sounds like you think it means the same thing as "declared". It doesn't. – darch Jul 27 '11 at 6:50
@darch - Yep. I was basically thinking "defined" and "declared" were the same thing. I was trying to write around that, but obviously, that was creating confusion. I'm going to update the question to help address that for anyone who hits this in the future. – Alan W. Smith Jul 27 '11 at 15:41

4 Answers 4

up vote 4 down vote accepted

Testing whether a given symbol has been declared is almost certainly useless and a desire to perform it is indicative of a design problem. For the sake of completeness, however, here's tests for both lexical and dynamic symbols:

Find out if the lexical symbol $whoopee has been declared:

use Try::Tiny;
my $declared = try { use strict; $whoopee; 1 };

Find out if any dynamic symbol called FooPackage::whoopee has been declared (including hashes that spell their names %FooPackage::whoopee):

my $declared = exists $FooPackage::{whoopee};
share|improve this answer
You're correct. I wasn't wording my question well at all. The goal was to see if a hash had been declared. I've updated the question to try to clarify that. Incidentally, by changing from "if(%main::testHash)" to "if(exists $main::{testHash})" I get the behavior I was expecting. As I'm relatively new to making my own modules a design problem is pretty likely. In fact, I changed the approach I was using when I ran into this, but it's nice to know there is an answer that works. – Alan W. Smith Jul 27 '11 at 16:25

defined() is not a meaningful test on aggregates (arrays and hashes). perldoc -f defined has this to say:

Use of "defined" on aggregates (hashes and arrays) is deprecated. It used to report whether memory for that aggregate has ever been allocated. This behavior may disappear in future versions of Perl. You should instead use a simple test for size:

               if (@an_array) { print "has array elements\n" }
               if (%a_hash)   { print "has hash members\n"   }
share|improve this answer
The problem with that test is that when there are no members in the hash, it still shows up as false when I test it. Even though the hash itself hash been setup with "my %testHash" or "our %testHash". I'm trying to figure out a way I can safely check to see if the hash already exists before assigning a new key/value to it, but so far have only been able to get that test to work if there is already at least one key/value pair. – Alan W. Smith Jul 27 '11 at 1:17
That's the point: "the hash already exists" is a meaningless test. Variables exist when you need them to, or under strict, for lexicals or unqualified package variables, when you've declared them. There should be no need to do what you are trying to. – ysth Jul 27 '11 at 3:43
I wasn't asking this well, but didn't realize it until I started getting answers. I've updated the question to try to ask it better. The test I really wanted was in the module itself. The idea being that a little framework module I'm writing could use a shared hash to communicate with its main script. The framework would check to make sure the hash was declared (not defined, which is where I created a lot of confusion) and available before attempting to use it. I haven't done that much of work building framework modules, so this may be way off base, but it seemed to make sense. – Alan W. Smith Jul 27 '11 at 16:44
So what would be the harm if it didn't check that it was declared? – ysth Jul 27 '11 at 19:54
but setting the flag in the hash makes it exist, with no warning: $main::c{'debug'} = 1; – ysth Jul 28 '11 at 18:31

See perldoc perldata

If you evaluate a hash in scalar context, it returns false if the hash is empty. If there are any key/value pairs, it returns true; more precisely, the value returned is a string consisting of the number of used buckets and the number of allocated buckets, separated by a slash.

That explains why your defined test seemed to work.

share|improve this answer
This answer should have been a comment. – Sinan Ünür Jul 27 '11 at 0:55

You can just count the keys:

sub checkHash {
    return ( scalar keys %main::testHash ) ? 1 : 0;

perl -le 'my %h; print ( scalar keys %h ) ? 1 : 0;'
perl -le 'my %h = (foo=>1); print ( scalar keys %h ) ? 1 : 0;'
share|improve this answer
Looks like you reversed the colon and the question mark(i.e. should be "return (scalar keys %main::testHash) ? 1 : 0;"). However, this doesn't help since there aren't any keys to count. It still returns false. – Alan W. Smith Jul 27 '11 at 0:58
Thanks for catching that. It does work though; I added an example. ysth's is better and what I probably would have done. – gpojd Jul 27 '11 at 1:23
One more catch, looks like an extra "=>1)" made it into the first example. Something like "perl -le 'my %h; print ( scalar keys %h ) ? 1 : 0;'". The trick that I'm looking for is a way to do that test, but get it to return 1 instead of 0. As it is, when there are no keys in %h, you get the same result if you don't even declare it (e.g. perl -le 'print ( scalar keys %h ) ? 1 : 0;'). I'm looking for a test that will show me that will return true even when no keys exist. (I should probably be saying "initialized" instead of "defined" to avoid confusion, but that just occurred to me. – Alan W. Smith Jul 27 '11 at 1:36

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.