2
$text =~ s/(cat|tomatoes)/ ${{ qw<tomatoes cat cat tomatoes> }}{$1} /ge;

And I can't replace ${{ qw<tomatoes cat cat tomatoes> }}{$1} with { qw<tomatoes cat cat tomatoes> }->{$1},why?

UPDATE

  5 @array = qw<a b c d>;
  6 $ref = \@array;
  7 @{$ref} = qw<1 2 3 4>;
  8 #@$ref = qw<1 2 3 4>;//also works
  9 print "@array";

So it indicates neither {} nor ${} is required to dereferencing,the {} is only required when ambiguity arises,and $ only in scalar context.

3 Answers 3

10
${{ qw<tomatoes cat cat tomatoes> }}{$1} 

is

my $ref = { qw<tomatoes cat cat tomatoes> };
${ $ref }{$key}

The inner brackets form an anonymous hash constructor. It creates a hash, assigns the contents of the brackets to it, then returns a reference to it.

The outer brackets are part of the hash dereference. They can be omitted (e.g. $$ref{$key} instead of ${$ref}{$key}) when unambiguous (e.g. when dereferencing a simple scalar), but this is not such a circumstance.

One can also dereference using the arrow notation, so one could also have used

{ qw<tomatoes cat cat tomatoes> }->{$1} 

The difference is that the version being used is simply a variable lookup, so it doesn't require /e, while the latter is Perl code, so it does require /e.


If you had just

${ qw<tomatoes cat cat tomatoes> }{$1} 

that would be the same as

${ "tomatoes" }{$1} 

since qw() in scalar context returns the last value. That, in turn, is the same as

$tomatoes{$1} 

(except that use strict; wouldn't allow it) and that's obviously not what you want.

3
  • @new_perl, I've added to my answer.
    – ikegami
    Commented Jun 28, 2011 at 6:40
  • I've updated with what I'm doubting about above.Say,I need a final confirm of my conclusion.
    – new_perl
    Commented Jun 28, 2011 at 7:04
  • 1
    @new_perl, "and $ only in scalar context" is wrong. See Dereferencing Syntax
    – ikegami
    Commented Jun 28, 2011 at 8:42
2

The outer brackets dereference the anonymous hash created by the inner brackets.

Update for clarification: The second format you use would work if you give the compiler a clue by putting a + in front of it:

+{ qw<tomatoes cat cat tomatoes }->{$1}

13
  • @DavidO,I never heard that {} is used for dereference before.Is that true?
    – new_perl
    Commented Jun 28, 2011 at 5:48
  • What does the additional + do?
    – new_perl
    Commented Jun 28, 2011 at 5:50
  • In the case of ${{qw........, the ${ dereferences the anonymous hash created with the anonymous hash constructor {}. The second case is syntactically ambiguous to the compiler unless you give it a clue as to your intent. The + causes the compiler to see the {} as an expression (a hash constructor) rather than a code block.
    – DavidO
    Commented Jun 28, 2011 at 5:52
  • @DavidO,isn't $ enough to derefefence it,like in the case $$r{key},why is ${ mandated here?
    – new_perl
    Commented Jun 28, 2011 at 5:55
  • @new_perl: ${} dereferences 'something'. But it needs a reference to dereference. The anonymous hash constructor {} nested in there creates a hash reference with, in your case, two elements inside it (2 key/value pairs). Imagine ${[ qw/this that the other/]}[0] or ${$some_scalar}. Hash, array, scalar; consistent behavior.
    – DavidO
    Commented Jun 28, 2011 at 5:58
1

The Perl parser is getting mixed up about what you mean by the {} around qw. Instead of using the curly braces to create a hash ref it sees the curly braces as creating a code block. You can force {} to mean "create a hash" by putting a plus sign in front of it:

$text='The cat ate the bacon'; $text =~ s/(cat|tomatoes)/ +{qw(tomatoes cat cat tomatoes)}->{$1} /ge; print "The text is now $text\n";

This prints "The text is now The tomatoes ate the bacon"

See the section on creating hash references here: http://perldoc.perl.org/perlref.html

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