链表插入排序
题目
Sort a linked list using insertion sort.
解题思路
- 一个指针指从原始列表头部开始逐步往后移指向插入元素;
- 一个指针从头遍历已排序链表,找到插入节点,将元素插入:
代码
if (head == null || head.next == null){
return head;
}
ListNode first = new ListNode(0);
first.next = head;
ListNode cur = head.next;
head.next = null;
while (cur != null){
ListNode p = first;
while(p!=null && p.next != null){
if (cur.val < p.next.val ){
break;
}
p = p.next;
}
ListNode temp = cur.next;
cur.next = p.next;
p.next = cur;
cur = temp;
}
return first.next;
二叉树后序遍历
题目
Given a binary tree, return the postorder traversal of its nodes’ values.
For example:
Given binary tree{1,#,2,3}, return[3,2,1].
Note: Recursive solution is trivial, could you do it iteratively?
解法一,递归遍历
递归遍历比较简单,直接上代码
代码
public ArrayList<Integer> postorderTraversal(TreeNode root) {
ArrayList<Integer> orderList = new ArrayList<>();
traversal(orderList,root);
return orderList;
}
public void traversal(ArrayList<Integer> list, TreeNode node){
if (node == null ){
return;
}
traversal(list, node.left);
traversal(list, node.right);
list.add(node.val);
}
解法二,非递归遍历
- 将根节点如栈
- 循环访问栈顶节点,若栈顶节点是叶子节点或是上次出栈节点的父节点,将其值放入列表中,并将该元素出栈;
- 若右节点不为空则将右节点入栈,左节点不为空也将左节点入栈
代码
public ArrayList<Integer> postorderTraversalItera(TreeNode root) {
ArrayList<Integer> orderList = new ArrayList<>();
Stack<TreeNode> stack = new Stack<>();
if (root != null){
stack.push(root);
}
TreeNode head = root;
while (!stack.empty()){
TreeNode p = stack.peek();
if ( (p.left == null && p.right == null) || p.right == head || p.left == head ){
orderList.add(p.val);
head = p;
stack.pop();
}else {
if (p.right != null){
stack.push(p.right);
}
if (p.left != null){
stack.push(p.left);
}
}
}
return orderList;
}