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I have the following Perl code.

#!/usr/bin/perl
use strict;
use warnings;
use diagnostics;

my @array = (  3, 4, 1, 4, 7, 7, 4, 1, 3, 8 );
my %unordered;
@unordered{@array} = undef;

foreach my $key (keys %unordered) {
print "Unordered: $key\n";
}

my %seen;
my @ordered;

foreach my $element (@array) {
  if (  not $seen{$element}++ ) {
    push @ordered, $element;
  }
}

In the last foreach code block, I am unable to understand this - in the first iteration, the expression not $seen{$element}++ evaluate to not 0 - true - so the if block execute. In the second iteration the expression not $seen{$element}++ should again evaluate to not 0 - true as the hash is empty. So, reading the scalar $seen{$element} will read 0 and not 0 will evaluate to true. So, the if block should execute again. But, the book says it stops after first iteration. Can anyone explain this?

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4  
What do you think ++ is doing here? –  n.m. Sep 8 '13 at 5:16
3  
The hash %seen has the same keys as %unordered so can be used in the same way without building two hashes. –  Borodin Sep 8 '13 at 7:56
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2 Answers

The last foreach loop can be detailled as:

# loop on all elements of the array
foreach my $element (@array) {
    # if the current element haven't been seen yet
    if ( not exists $seen{$element} ) {
        # add current element into ordered array
        push @ordered, $element;
    }
    # Increment the number of time element have been seen
    $seen{$element}++;
}

At the end, @ordered will contain:

(3, 4, 1, 7, 8)

A better name should be @unique instead of @ordered.

%seen will contain:

(3 => 2, 4 => 3, 1 => 2, 7 => 2, 8 => 1)
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In the second iteration the hash will no longer be empty, because the ++ operator will have put a 1 in there. In a third iteration the value will be 2 (which for the purposes of this program is the same as 1, it just means "seen at least once before").

At the end of your program %seen will contain the number of times each entry appears in your list.

if $a++ increments the value of $a (treating it as 0 if missing), and then returns the value before that increment to the comparison.

It is important to use the postfix operator, as if ++$a will not work here: It also places a 1 in your hash, but it returns the modified value (so 1 even for the first iteration).

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In the second iteration, the $element will have values 2 in the foreach line. So $seen{$element} will be undef i.e. 0 again. And, if block should execute. –  Rabin Halder Sep 8 '13 at 6:32
    
@RabinHalder, not true. Only the ++ affects the contents of %seen, the not is only for the benefit of the if. –  tjd Sep 8 '13 at 11:40
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