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I have the following implementation of a linked list in Ruby:

class Node
  attr_accessor :data, :next

  def initialize(data = nil)
    @data = data
    @next = nil
  end
end

class LinkedList
  def initialize(items)
    @head = Node.new(items.shift)
    items.inject(@head) { |last, data| @tail = last.next = Node.new(data) }
  end

  def iterate
    return nil if @head.nil?

    entry = @head
    until entry.nil?
      yield entry
      entry = entry.next
    end
  end

  def equal?(other_list)
    #How do I check if all the data for all the elements in one list are the same in the other one?
  end
end

I have tried using the .iterate like this:

def equals?(other_list)
  other_list.iterate do |ol|
    self.iterate do |sl|
      if ol.data != sl.data
         return false
      end
    end
  end
  return true
end

But this is doing a nested approach. I fail to see how to do it.

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2 Answers 2

up vote 2 down vote accepted

You can't do it easily with the methods you have defined currently, as there is no way to access a single next element. Also, it would be extremely useful if you implemented each instead of iterate, which then gives you the whole power of the Enumerable mixin.

class LinkedList
  include Enumerable  # THIS allows you to use `zip` :)

  class Node # THIS because you didn't give us your Node
    attr_accessor :next, :value
    def initialize(value)
      @value = value
      @next = nil
    end
  end

  def initialize(items)
    @head = Node.new(items.shift)
    items.inject(@head) { |last, data| @tail = last.next = Node.new(data) }
  end

  def each
    return enum_for(__method__) unless block_given?  # THIS allows block or blockless calls
    return if @head.nil?

    entry = @head
    until entry.nil?
      yield entry.value  # THIS yields node values instead of nodes
      entry = entry.next
    end
  end

  def ==(other_list)
    # and finally THIS - get pairs from self and other, and make sure all are equal
    zip(other_list).all? { |a, b| a == b }
  end
end

a = LinkedList.new([1, 2, 3])
b = LinkedList.new([1, 2, 3])
c = LinkedList.new([1, 2])

puts a == b  # => true
puts a == c  # => false

EDIT: I missed this on the first run through: equal? is supposed to be referential identity, i.e. two variables are equal? if they contain the reference to the same object. You should not redefine that method, even though it is possible. Rather, == is the general common-language meaning of "equal" as in "having the same value", so I changed it to that.

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Nice explanation and solution, Amadan. +1. A small point: since you include Enumerable you have use of Enumerable#to_a, so I think the method equal? can be simplified to self.to_a == other_list.to_a. Is that correct? –  Cary Swoveland Aug 26 '14 at 2:32
    
@CarySwoveland: Yes :) However, it would create two new arrays from the original lists. My method does not do that. –  Amadan Aug 26 '14 at 3:53

I think there is something wrong with your initialize method in LinkedList, regardless could this be what you need

...
def equal?(other_list) other_index = 0 cur_index = 0 hash = Hash.new other_list.iterate do |ol| hash[ol.data.data] = other_index other_index += 1 end self.iterate do |node| return false if hash[node.data.data] != cur_index return false if !hash.has_key?(node.data.data) cur_index += 1 end return true end ...

Assuming this is how you use your code

a = Node.new(1)
b = Node.new(2)
c = Node.new(3)

listA = [a,b,c]

aa = Node.new(1)
bb = Node.new(2)  
cc = Node.new(3)

listB = [aa,bb,cc]

linkA = LinkedList.new(listA)
linkB = LinkedList.new(listB)

puts linkA.equal?(linkB)
share|improve this answer
    
Thanks. What do you think is wrong with my initialize method? –  Hommer Smith Aug 26 '14 at 2:00

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