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https://open.kattis.com/problems/teque

I would need to do this problem with these 4 methods in O(1) time (gg)

push_back x: insert x into the back of the teque.

push_front x: insert x into the front.

push_middle x: insert x into the middle of the teque. x now becomes the new median element of the teque, where the median is defined as the ((size of teque)+1)/2 indexed element (0-based).

get i: prints out the ith index element (0-based) of the teque.

The issues I'm having is how to approach this question, as I have no idea how to solve this using arrays due to insert requiring o(n) time for push forward and push middle

I cant use Java's inbuilt HashMap or ArrayList as apparently it incurs an memory overhead, due to boxing. In the case of teque, many solutions involving HashMap<Integer, Integer> will actually exceed the memory limit on the auto grader being used, so we have been told to use arrays instead

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    Welcome to Stack OverFlow! Your question currently Needs more focus, which doesn't meet this site's requirements. Please edit your question following these guidelines: stackoverflow.com/help/how-to-ask – Ann Zen Jul 14 '20 at 4:28
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    I would argue that a coding challenge is similar to a homework question, therefore: Note the following, which appears on this Web page: How do I ask and answer homework questions? (1) It is okay to ask about homework. (2) Make a good faith attempt to solve the problem yourself first. (3) Ask about specific problems with your existing implementation. – Abra Jul 14 '20 at 4:34
  • Sure, I'll edit it, give me some time – Agate Jul 14 '20 at 4:48
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As the challenge says, a teque is a triple-ended queue, which can be implemented using 2 double-ended queues (deques).

Since you need O(1) complexity for get(i), the double-ended queues have to be implemented using arrays, i.e. you can implement the teque using 2 array deques, similar to 2 ArrayDeque objects, but you can't use ArrayDeque itself since it doesn't support get-by-index.

Lets call the 2 array deques frontDeque and backDeque. At any time, the two deques must be the same size, and if the teque size is odd, the extra element must be in the front deque.

The 4 operations are then:

  • pushBack(x): Do the equivalent of backDeque.addLast(x). If needed to balance the sizes of the 2 deques, also do frontDeque.addLast(backDeque.removeFirst()) to move an element from backDeque to frontDeque.

  • pushFront(x): Do the equivalent of frontDeque.addFirst(x). If needed to balance the sizes of the 2 deques, also do backDeque.addFirst(frontDeque.removeLast()) to move an element from frontDeque to backDeque.

  • pushMiddle(x): Do the equivalent of frontDeque.addLast(x) or backDeque.addFirst(x) depending on which of the 2 deques need the element to stay balanced.

  • get(i): Return frontDeque[i] or backDeque[i - frontDeque.length] depending on the value of i.

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