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The following code works fine with Active Perl 5.14.2:

my %hzones = ();
#%hzones= (
#    'zone1' =>  {
#                  'ns1' => 'ip1',
#                  'ns1' => 'ip2',
#                  },
#    'zone2' =>  {
#                  'ns1' => 'ip1',
#                  'ns2' => 'ip2'
#                  }
#);

foreach my $k1 ( keys %hzones ) {
    debug("# $k1",$d); 
    while ( my ($key, $value) = each($hzones{ $k1 }) ) { # Problem is here   217 
        while ( my ($nsname, $nsip) = each(%$value) ) { 
            debug("## $nsname , $nsip",$d);
    }
    # Creation de la zone et ajout dans infoblox
    $session->add(createZone($k1)) or error("Add zone for ".$k1." failed: ", 
        $session->status_code(). ":" .$session->status_detail());
    }
}

Now, if I try to use this code on RedHat 5.3 with Perl 5.8.8, I have the following error:

Type of arg 1 to each must be hash (not hash element) at
  ./migration-arpa.pl line 217, near "}) "
Execution of ./migration-arpa.pl aborted due to compilation
  errors.

Question: How do I fix this error? How do I traverse my hashtable?

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13  
Perl 5.7 is an ancient development release. Don't use it. –  Quentin Jun 11 '12 at 11:52
2  
Red Hat 5.3 came with Perl 5.8.8 as standard (see vault.centos.org/5.3/os/i386/CentOS). If you're running 5.7 then that means that someone has downgraded your version of Perl to a development (i.e. unstable) version of Perl. Really, don't use that for any serious work. –  Dave Cross Jun 11 '12 at 12:43
    
He said he's using 5.8.8 in the post. The subject must be a typo. Fixed. –  ikegami Jun 11 '12 at 20:20
    
Yes @ikegami, it's 5.8.8. –  Yohann Jun 11 '12 at 20:21
    
Updated subject to reflect that greater perl in question is 5.14, not 5.12. –  pilcrow Jun 12 '12 at 14:15

2 Answers 2

up vote 16 down vote accepted

What Quentin said, but you could try replacing

each($hzones{ $k1 })

with

each(%{$hzones{ $k1 }})

which dereferences the hash ref.

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9  
Support for automatic derefencing of hashrefs was added in Perl 5.14. –  Quentin Jun 11 '12 at 11:56

The ability to do pass a reference to each (each($hzones{ $k1 })) was introduced in 5.14.0. Before that, one had to pass a hash (each(%{ $hzones{ $k1 })). That still works, and it will continue to work.

So, to be backwards compatible, use

each(%{ $hzones{ $k1 })

instead of

each($hzones{ $k1 })

Note: Passing a reference to each is marked as experimental, and I consider it buggy since it doesn't work with all hashes.

share|improve this answer
    
If it's experimental to pass a reference to each, what would be the best alternative to use without each ? –  Yohann Jun 11 '12 at 20:17
    
@Yohann, The only alternative (while still using each) is to pass a hash, as shown. –  ikegami Jun 11 '12 at 20:18
    
I was very excited about it, and now I agree, there are too many odd cases. I attempt never to use it. Unfortunately I accidently forgot a dereferencing % before a scalar once, the code worked, so I released ... and broke everything before 5.14. Oh well, easily remedied, but lesson learned. –  Joel Berger Jun 12 '12 at 17:50

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