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I know a little bit perl, but not enough deeply to understand the next.

Reading perldelta 5.18 i found the next piece of code what is already disabled in 5.18. Not counting this, still want understand how it's works.

Here is the code and in the comments are what i understand

%_=(_,"Just another "); #initialize the %_ hash with key=>value   _ => 'Just another'
$_="Perl hacker,\n";    #assign to the $_ variable with "Perl..."
s//_}->{_/e;            # darkness. the /e - evauates the expression, but...
print

it prints:

Just another Perl hacker,

I tried, the perl -MO=Deparse and get the next

(%_) = ('_', 'Just another ');   #initializing the %_ hash
$_ = "Perl hacker,\n";           # as above
s//%{'_';}/e;                    # substitute to the beginning of the $_ - WHAT?
print $_;                        # print the result
japh syntax OK

What is strange (at least for me) - running the "deparsed" code doesn't gives the original result and prints:

1/8Perl hacker,

I would be very happy:

  1. if someone can explain the code, especially if someone could write an helper code, (with additional steps) what helps me understand how it is works - what happens.
  2. explain, why the deparsed code not prints the original result.

What means the %{'_';} in the deparsed code?

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2  
I can't explain everything, but for some reason _}->{_ in the regex is equivalent to ${_}{_} (which by itself looks funny, but not too unreadable). –  mzedeler Jun 1 '13 at 19:05
2  
@mzedeler Thank you!. And the ${_}{_} is equivalent to $_{_} what is even more readable for me, because it is like any other hash, $hash{key}. Yes, at least now understand - what is substituting... ;) –  Nemo Jun 1 '13 at 19:12
    
What I don't get is how the arrow operator somehow gets gobbled up, because it should only work if $_ was a hash reference. –  mzedeler Jun 1 '13 at 19:41
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1 Answer 1

up vote 14 down vote accepted

The code actually executed by the substitution operator is probably actually something like

my $code = "do { $repl_expr }";

So when the replacement expression is _}->{_, the following is executed:

do { _}->{_ }

_ simply returns the string _ (since strict is off), so that's the same as

do { "_" }->{_}

which is the same as

"_"->{_}

What you have there is a hash element dereference, where the reference is a symbolic reference (i.e. a string rather than an actual reference). Normally forbidden by strict, here's an example of a symbolic reference at work:

%h1 = ( id => 123 );
%h2 = ( id => 456 );
print "h$_"->{id}, "\n"
   for 1..2;

So that means

"_"->{_}    # Run-time symbol lookup

is the same as

$_{_}       # Compile-time symbol lookup

A similar trick is often used in one-liners.

perl -nle'$c += $_; END { print $c }'

can be shortened to

perl -nle'$c += $_; }{ print $c'

Because the code actually executed when -n is used is obtained from something equivalent to

my $code = "LINE: while (<>) { $program }";

%{'_';}

is a very weird way to write

%{'_'}

which is a hash dereference. Again, the reference here is a symbolic reference. It's equivalent to

%_

In scalar context, hash current returns a value that reports some information about that hash's internals (or a false value if empty). There's been a suggestion to change it to return the number of keys instead.

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1  
REALLY GREAT explanation! Thanx a lot! But, why running the Deparsed code gives different result? Or better, why the deparse doesn't gives the $_{_} and gives only %_ ? –  Nemo Jun 1 '13 at 19:59
    
Because it tries to ignore the do or whatever got added by the replacment expression, but ends up ignoring something else since the do is not the first op anymore. –  ikegami Jun 1 '13 at 20:02
    
youre a king! Thank you :) –  Nemo Jun 1 '13 at 20:03
    
Or in more general terms, the code creates compiled code that should never exist, so an assumption Deparse makes is failing. –  ikegami Jun 1 '13 at 20:03
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