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use 5.010;
use strict;
use warnings;
use JSON::XS;
use YAML::XS;
my %data = ();
my $content = <<HERE;
{
  "name":"BLAHBLAH","contact":{"phone":"12345","twitter":"BLAHBLAH"},
  "location": {"address":"NOTTELLING","lat":10,"lng":10,"postalCode":"1234",
  "city":"BLAH","state":"BLAH","country":"BLAH"},
  "categories":[{"id":"BLAH","name":"BLAH"}]
}
HERE

my $id = "name1";

sub function {
    my ( $id, $data, $content ) = @_;
    my %data = %$data;
    my $out = decode_json($content);
    say "out:", Dump $out;
    $data{$id} = $out;
}

function( $id, \%data, $content );
say "data:", Dump %data;

This doesn't work as the way I expected. Can you please tell me why and how it will work?

share|improve this question
    
You should not correct the code in your question as the answers are not reasonable if you do. –  matthias krull May 21 '12 at 7:47

3 Answers 3

up vote 2 down vote accepted

The reason that you're not finding anything in the package-scoped %data (the one defined just after use YAML::XS) is because you're creating a brand-new and completely independent %data inside of function with the line

my %data = %$data;

This creates a new hash and copies the contents of the hash referenced by $data into it.

Try this instead:

sub function {
  my ($id, $data, $content) = @_;
  my $out = decode_json($content);
  say "out:", Dump $out;
  $data->{$id} = $out;
}
share|improve this answer
    
great solution. Thanks! –  Ivan Wang May 20 '12 at 12:06

"This doesn't work as the way i expected."

What were you expecting? Let's step through the errors:

1) date != data

2) $content=~m!(,*)! will leave $1 empty, since $content doesn't contain any commas.

3) decode_json($1) will throw a runtime error, since $1 is empty and decode_json() can only be applied to a properly formatted JSON string.

4) $id is not defined.

"Can you please tell me why and how it will work?"

It won't work, if that isn't clear yet. There are more errors than code there.

"how do I assign a hash ref into hash?"

Use the \ unary reference operator, eg:

my %h = ();

my %h2 = (
    a => 10
);

$h{h2} = \%h2;

print $h{h2}->{a};  

You can also declare a scalar ($) as a reference to an anonymous (unnamed) hash; here $hr is a reference, the hash itself has no symbol or name associated with it:

my $hr = {
    n => 42
};

# as an existing hash member:

$h{h3} = {
    x => 666,
    # some other examples:
    hr => \%h2,
    hr2 => {
        x => 1024
    }    
};

Notice curly braces {} used in the declaration instead of (). When you are nesting (anonymous) hashes as with hr2, always use that form.

If you search for perl hash tutorial you'll find more in-depth things.

share|improve this answer
    
Hey goldilocks, I apologize for my silly typos. I just made up everything in this question. hope now it is more understandable. My question is still that, how do I assign a hash ref into hash? Many thanks. –  Ivan Wang May 20 '12 at 9:14
1  
$hash{one} = \%h; this element of hash, which assign ref to another hash. –  gaussblurinc May 20 '12 at 9:41
    
@IvanWang: I added some examples, see above. –  goldilocks May 20 '12 at 9:42
    
also you can do this: %hash=\%hash; this statement create an key SCALAR{\d+} and value of this key in hash will be undef –  gaussblurinc May 20 '12 at 9:43
    
do you mind to come back and check my codes again, because I just did the third time correction. I promise I really check everything this time. And I fixed all my stupid typos. Please help. –  Ivan Wang May 20 '12 at 11:45

I think you have a typo:

function($id,/%data,$content);

must be

function($id,\%data,$content);

and $content is not a reference to %data hash, so in your function you should do:

my %data=%$data;  # in place of "my %content=%$content;"
share|improve this answer
    
do you mind to come back and check my codes again, because I just did the third time correction. I promise I really check everything this time. And I fixed all my stupid typos. Please help. –  Ivan Wang May 20 '12 at 11:27

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