430. Flatten a Multilevel Doubly Linked List

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You are given a doubly linked list which in addition to the next and previous pointers, it could have a child pointer, which may or may not point to a separate doubly linked list. These child lists may have one or more children of their own, and so on, to produce a multilevel data structure, as shown in the example below.

Flatten the list so that all the nodes appear in a single-level, doubly linked list. You are given the head of the first level of the list.

 

Example 1:

Input: head = [1,2,3,4,5,6,null,null,null,7,8,9,10,null,null,11,12]
Output: [1,2,3,7,8,11,12,9,10,4,5,6]
Explanation:

The multilevel linked list in the input is as follows:

技术图片

After flattening the multilevel linked list it becomes:

技术图片

Example 2:

Input: head = [1,2,null,3]
Output: [1,3,2]
Explanation:

The input multilevel linked list is as follows:

  1---2---NULL
  |
  3---NULL

Example 3:

Input: head = []
Output: []

 

How multilevel linked list is represented in test case:

We use the multilevel linked list from Example 1 above:

 1---2---3---4---5---6--NULL
         |
         7---8---9---10--NULL
             |
             11--12--NULL

The serialization of each level is as follows:

[1,2,3,4,5,6,null]
[7,8,9,10,null]
[11,12,null]

To serialize all levels together we will add nulls in each level to signify no node connects to the upper node of the previous level. The serialization becomes:

[1,2,3,4,5,6,null]
[null,null,7,8,9,10,null]
[null,11,12,null]

Merging the serialization of each level and removing trailing nulls we obtain:

[1,2,3,4,5,6,null,null,null,7,8,9,10,null,null,11,12]
class Solution {
    public Node flatten(Node head) {
        if( head == null) return head;
    // Pointer
        Node p = head; 
        while( p!= null) {
            /* CASE 1: if no child, proceed */
            if( p.child == null ) {
                p = p.next;
                continue;
            }
            /* CASE 2: got child, find the tail of the child and link it to p.next */
            Node temp = p.child;
            // Find the tail of the child
            while( temp.next != null ) 
                temp = temp.next;
            // Connect tail with p.next, if it is not null
            temp.next = p.next;  
            if( p.next != null )  p.next.prev = temp;
            // Connect p with p.child, and remove p.child
            p.next = p.child; 
            p.child.prev = p;
            p.child = null;
        }
        return head;
    }
}

https://leetcode.com/problems/flatten-a-multilevel-doubly-linked-list/discuss/150321/Easy-Understanding-Java-beat-95.7-with-Explanation

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