/**

 *

 * Source : https://oj.leetcode.com/problems/populating-next-right-pointers-in-each-node/

 * Source : https://oj.leetcode.com/problems/populating-next-right-pointers-in-each-node-ii/

 *

 *

 *

 * Given a binary tree

 *

 *     struct TreeLinkNode {

 *       TreeLinkNode *left;

 *       TreeLinkNode *right;

 *       TreeLinkNode *next;

 *     }

 *

 * Populate each next pointer to point to its next right node.

 * If there is no next right node, the next pointer should be set to NULL.

 *

 * Initially, all next pointers are set to NULL.

 *

 * Note:

 *

 * You may only use constant extra space.

 * You may assume that it is a perfect binary tree (ie, all leaves are at the same level, and every parent has two children).

 *

 * For example,

 * Given the following perfect binary tree,

 *

 *          1

 *        /  \

 *       2    3

 *      / \  / \

 *     4  5  6  7

 *

 * After calling your function, the tree should look like:

 *

 *          1 -> NULL

 *        /  \

 *       2 -> 3 -> NULL

 *      / \  / \

 *     4->5->6->7 -> NULL

 *

 * 下面是II，如果是一般二叉树而不是特殊的完全二叉树，求解，因为适合II的解同样可以解决问题I，这里直接解决问题II

 *

 *

 * * Follow up for problem "Populating Next Right Pointers in Each Node".

 * What if the given tree could be any binary tree? Would your previous solution still work?

 *

 * Note:

 * You may only use constant extra space.

 *

 * For example,

 * Given the following binary tree,

 *

 *          1

 *        /  \

 *       2    3

 *      / \    \

 *     4   5    7

 *

 * After calling your function, the tree should look like:

 *

 *          1 -> NULL

 *        /  \

 *       2 -> 3 -> NULL

 *      / \    \

 *     4-> 5 -> 7 -> NULL

 *

 */

public class PopulatingNextRightPointers {

    /**

     *

     * 将二叉树的每一层节点连接成为一个单向链表

     *

     * 假设当前层已经连接好，那么下一层怎么连接？

     * 从当前层的最左节点开始

     *      如果当前根节点root的左右子树都为空，则直接向后移动一个节点

     *

     *      leftMost = root.left != null ? root.left : root.right

     *      cur = leftMost

     *

     *      循环当前一层的所有节点，知道2下一个节点为空，说明当前层循环完

     *      左右子树中至少有一个，：

     *          如果cur==左子树，如果右子树不为空则将cur.next = root.right，且将cur和root向后移，cur = cur.next,root = root.next

     *          如果cur == 右子树，直接将根节点向后移root = root.next

     *          如果cur和左右子树都不相同，则说明cur属于上一个根节点的子节点

     *              如果当前根节点的左右子节点都为空，根节点向后移

     *              否则更新cur，cur = root.left != null ? root.left : root.right,cur = cur.next

     *

     *      对下一层（上面已经连接成链表）进行递归

     *

     * @param root

     * @return

     */

    public TreeLinkedNode populate (TreeLinkedNode root) {

        // 没有子节点，将当前层向后移动一个

        while (root != null && root.leftChild == null && root.rightChild == null) {

            root = root.next;

        }

        if (root == null) {

            return null;

        }

        TreeLinkedNode leftMost = root.leftChild != null ? root.leftChild : root.rightChild;

        TreeLinkedNode cur = leftMost;

        while (root != null) {

            if (cur == root.leftChild) {

                if (root.rightChild != null) {

                    cur.next = root.rightChild;

                    cur = cur.next;

                }

                root = root.next;

            } else if (cur == root.rightChild) {

                root = root.next;

            } else {

                if (root.leftChild == null && root.rightChild == null) {

                    root = root.next;

                } else {

                    cur.next = root.leftChild != null ? root.leftChild : root.rightChild;

                    cur = cur.next;

                }

            }

        }

        populate(leftMost);

        return root;

    }

    public TreeLinkedNode populateByIterator (TreeLinkedNode root) {

        TreeLinkedNode leftMost = root;

        while (leftMost != null) {

            root = leftMost;

            // 没有子节点，将当前层向后移动一个

            while (root != null && root.leftChild == null && root.rightChild == null) {

                root = root.next;

            }

            if (root == null) {

                return null;

            }

            leftMost = root.leftChild != null ? root.leftChild : root.rightChild;

            TreeLinkedNode cur = leftMost;

            while (root != null) {

                if (cur == root.leftChild) {

                    if (root.rightChild != null) {

                        cur.next = root.rightChild;

                        cur = cur.next;

                    }

                    root = root.next;

                } else if (cur == root.rightChild) {

                    root = root.next;

                } else {

                    if (root.leftChild == null && root.rightChild == null) {

                        root = root.next;

                    } else {

                        cur.next = root.leftChild != null ? root.leftChild : root.rightChild;

                        cur = cur.next;

                    }

                }

            }

        }

        return root;

    }

    private class TreeLinkedNode {

        int value;

        TreeLinkedNode next;

        TreeLinkedNode leftChild;

        TreeLinkedNode rightChild;

        public TreeLinkedNode(int value) {

            this.value = value;

        }

    }

    public TreeLinkedNode createTree (char[] treeArr) {

        TreeLinkedNode[] tree = new TreeLinkedNode[treeArr.length];

        for (int i = 0; i < treeArr.length; i++) {

            if (treeArr[i] == '#') {

                tree[i] = null;

                continue;

            }

            tree[i] = new TreeLinkedNode(treeArr[i]-'0');

        }

        int pos = 0;

        for (int i = 0; i < treeArr.length && pos < treeArr.length-1; i++) {

            if (tree[i] != null) {

                tree[i].leftChild = tree[++pos];

                if (pos < treeArr.length-1) {

                    tree[i].rightChild = tree[++pos];

                }

            }

        }

        return tree[0];

    }

    public static void main(String[] args) {

        PopulatingNextRightPointers nextRightPointers = new PopulatingNextRightPointers();

        char[] arr = new char[]{'1','2','3','4','5','#','7'};

        TreeLinkedNode root = nextRightPointers.createTree(arr);

        nextRightPointers.populate(root);

        root = nextRightPointers.createTree(arr);

        nextRightPointers.populateByIterator(root);

    }

}