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I'm writing a Linked List in Perl. The linked list has nodes that are linked together. Each node has a value. This value can be anything, an object, a string, a number, a reference, and more.

The question that I've is how do I compare the value for equality. When writing the find function, I need to find the given value in the linked list. However, since the value can be anything, I don't know how to implement the comparison operation.

Here's the relevant code fragment that I've so far for the find operation:

sub find {
    my $val = shift; # we're looking for this value

    my $node = $LinkedList->{head}; # we start looking at the beginning of LL

    while (defined $node) {
        # this is the relevant part, how do I compare $val to $node->{val}
        if ($node->{val} == $val) {
            return $node;
        if ($node->{val} eq $val) {
            return $node;

        $node = $node->{next};

Would using two checks with == and eq be enough? (Would this handle references, objects, and so on?)

share|improve this question
What's your definition of equality? –  ikegami Jul 8 '14 at 19:44
Well the linked list is a generic data structure. So if I add numbers to it, then equality should return true if numbers are equal. If I add strings, then it should return true if strings are equal, and so on. –  bodacydo Jul 8 '14 at 19:45
Three can be stored using three numerical formats and two string formats. Should three stored as a signed integer and three stored as a UTF8=0 string be considered equal? What about three stored as an object that overloads numification? Your definition is highly incomplete. What's your definition of equality? –  ikegami Jul 8 '14 at 19:48
In that case I don't know. :( –  bodacydo Jul 8 '14 at 19:49
The type of values is normally implied from how you use the data. Pass a value to == or +? It must be a number. Pass one to eq or .? It must be a string. No such implication is made from placing the value in the linked list. If your values have type information that you want to compare, you'll have to explicitly store that information along with your values. Perl can't read your mind. –  ikegami Jul 8 '14 at 20:52

1 Answer 1

You're asking the wrong question. You don't need a generic compare function; you simply need the ability to provide a task-specific compare function.

If you have meaningful differences in the type of data in the linked list, you must be able to differentiate them somehow or else you wouldn't be able to use the information in the list. Exactly how you differentiate them isn't important; what's important is that you must already know how to do so.

Simply code that knowledge you already have into a compare function you pass to find or to the constructor.

sub find {
   my ($self, $is_equal, $arg) = @_;

   my $ap = do { no strict 'refs'; \*{caller().'::a'} };  local *$ap;
   my $bp = do { no strict 'refs'; \*{caller().'::b'} };  local *$bp;

   *$ap = \$arg;

   for (my $node = $self->{head}; $node; $node = $node->{next}) {
      *$bp = \( $head->{val} );
      return $node if $is_equal->();

   return undef;

Example usage:

sub is_same_flight {
   # Returns true if $a and $b represent the same flight.

$flights->find(\&is_same_flight, $flight);


my $is_same_flight = sub {
   # Returns true if $a and $b represent the same flight.

$flights->find($is_same_flight, $flight);
share|improve this answer
Very nice trick of getting $a and $b to work in the callback. Thanks for the answer! –  bodacydo Jul 8 '14 at 22:21
I guess there is a significant performance boost using aliased $a and $b rather than just passing them as arguments? I know this is how sort works, but I always thought it was a little crufty. Particularly as you need to ensure they are not declared as lexicals. –  harmic Jul 9 '14 at 1:32
@harmic, Don't know. It's much cleaner looking than using $_[0] and $_[1], at least. You already need to avoid declaring them as lexicals, so no new penalty. Not that it has EVER been a problem. –  ikegami Jul 9 '14 at 11:57

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