13

I have to make modifications to a Perl script, and this is my first attempt at understanding Perl. I see the following:

my %trades;
...
foreach my $row (@$rows) {
  @{$trades{pop @$row}} = @$row;
}

I am confused by this because it appears that we are popping off the last item in the array @$row and setting the hash key of %trades to be the item that was popped off and setting the value to be @$row.

Is this understanding correct?

  • 10
    Just a style note: it's typically "Perl" for the language, and "perl" for the program. It's not "PERL" unless your shift key is stuck. :) – cHao Jun 7 '13 at 16:47
  • Could also be written $trades{pop @$row} = $row; or my $id = pop @$row; $trades{$id} = $row; – ikegami Jun 7 '13 at 17:51
  • @ikegami: No. Because yours copies references whereas the original copies array elements. – Borodin Jun 7 '13 at 18:56
  • @Borodin, That's the whole point. Why make needless copies. (They're already clobbering @$row as a side-effect.) – ikegami Jun 7 '13 at 19:03
  • 1
    @ikegami: Then your "Could also be written" is misleading without a qualification. The modification of the rows may be deliberate. – Borodin Jun 7 '13 at 19:07
26

To understand that piece of code, we need to be clear of three things:

  • Evaluation order:

    EXPR_A = EXPR_B
    

    evaluates EXPR_B before evaluating EXPR_A.

  • Copying semantics:

    @new_array = @old_array
    

    copies the values of @old_array over to @new_array.

  • Dereferencing of complex data structures:

    @{ $trades{$key} }
    

    accesses the entry called $key in the %trades hash, and treats it as an array reference.

Together, your code is equivalent to this:

foreach my $row (@$rows) {
  my @copy = @$row;
  my $key = pop @$row;
  @{ $trades{$key} } = @copy;
}

(while preserving all side effects I can see)

So for example

$rows = [
  [1, 2, "keyA"],
  [3, 4, "keyB"],
];

would create

%trades = (
  keyA => [1, 2, "keyA"],
  keyB => [3, 4, "keyB"],
);
$rows = [
  [1, 2],
  [3, 4],
];

Whoever wrote that line had very precise knowledge about evaluation order and loves to torture maintenance programmers.

  • 2
    specifically, it appears to be filling %trades with a copy of each row from @rows, where the key for each entry is the value of the last column of that row. – Alnitak Jun 7 '13 at 16:50
  • I would have +1000 for you if I could for your last comment alone. – czchlong Jun 7 '13 at 17:00
  • 6
    Whoever wrote that code may know Perl, but doesn't know much about good software development practices. And one of the multitude of idiots that gave Perl such an awful reputation that most companies refuse to use it. – DVK Jun 7 '13 at 17:05
  • 2
    I think it's far more likely that the author wanted to use the last element of each array as a key for the rest, and didn't expect that the pop wouldn't remove that key. As it stands the assignment would be better written as @{$trades{$row->[-1]}} = @$row and pop is superfluous except that it changes the stuff in $rows. – Borodin Jun 7 '13 at 18:55
  • I don't know - this can be perfectly acceptable if $rows is a short-lived temporary variable in a tight scope. – Leonardo Herrera Jun 7 '13 at 20:18
3

The loop is equivalent to

my %trades = map { $_->[-1] => [ @$_ ] } @$rows

except that this way @$rows remains unmodified. IMO it should be written that way.

  • Except the last element for each row in $rows is lost in the original code. – Leonardo Herrera Jun 7 '13 at 20:20

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