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@ -261,7 +261,7 @@ obj = null;
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finalize() 类似 C++ 的析构函数,用来做关闭外部资源等工作。但是 try-finally 等方式可以做的更好,并且该方法运行代价高昂,不确定性大,无法保证各个对象的调用顺序,因此最好不要使用。
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当一个对象可被回收时,如果需要执行该对象的 finalize() 方法,那么就有可能通过在该方法中让对象重新被引用,从而实现自救。
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当一个对象可被回收时,如果需要执行该对象的 finalize() 方法,那么就有可能通过在该方法中让对象重新被引用,从而实现自救。自救只能进行一次,如果回收的对象之前调用了 finalize() 方法自救,后面回收时不会调用 finalize() 方法。
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## 垃圾收集算法
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@ -130,6 +130,8 @@ info 与 man 类似,但是 info 将文档分成一个个页面,每个页面
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/usr/local/bin:/usr/bin:/usr/local/sbin:/usr/sbin:/home/dmtsai/.local/bin:/home/dmtsai/bin
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```
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env 命令可以获取当前终端的环境变量。
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## sudo
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sudo 允许一般用户使用 root 可执行的命令,不过只有在 /etc/sudoers 配置文件中添加的用户才能使用该指令。
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@ -1062,20 +1062,21 @@ public void reOrderArray(int[] nums) {
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<div align="center"> <img src="../pics//207c1801-2335-4b1b-b65c-126a0ba966cb.png" width="500"/> </div><br>
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```java
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public ListNode FindKthToTail(ListNode head, int k) {
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public ListNode FindKthToTail(ListNode head, int k)
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{
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if (head == null)
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return null;
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ListNode fast, slow;
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fast = slow = head;
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while (fast != null && k-- > 0)
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fast = fast.next;
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ListNode P1 = head;
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while (P1 != null && k-- > 0)
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P1 = P1.next;
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if (k > 0)
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return null;
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while (fast != null) {
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fast = fast.next;
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slow = slow.next;
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ListNode P2 = head;
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while (P1 != null) {
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P1 = P1.next;
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P2 = P2.next;
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}
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return slow;
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return P2;
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}
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```
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@ -1083,6 +1084,12 @@ public ListNode FindKthToTail(ListNode head, int k) {
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[NowCoder](https://www.nowcoder.com/practice/253d2c59ec3e4bc68da16833f79a38e4?tpId=13&tqId=11208&tPage=1&rp=1&ru=/ta/coding-interviews&qru=/ta/coding-interviews/question-ranking)
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## 题目描述
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一个链表中包含环,请找出该链表的环的入口结点。
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要求不能使用额外的空间。
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## 解题思路
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使用双指针,一个指针 fast 每次移动两个节点,一个指针 slow 每次移动一个节点。因为存在环,所以两个指针必定相遇在环中的某个节点上。假设相遇点在下图的 z1 位置,此时 fast 移动的节点数为 x+2y+z,slow 为 x+y,由于 fast 速度比 slow 快一倍,因此 x+2y+z=2(x+y),得到 x=z。
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@ -1092,16 +1099,15 @@ public ListNode FindKthToTail(ListNode head, int k) {
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<div align="center"> <img src="../pics//71363383-2d06-4c63-8b72-c01c2186707d.png" width="600"/> </div><br>
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```java
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public ListNode EntryNodeOfLoop(ListNode pHead) {
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public ListNode EntryNodeOfLoop(ListNode pHead)
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{
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if (pHead == null || pHead.next == null)
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return null;
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ListNode slow = pHead, fast = pHead;
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while (fast != null && fast.next != null) {
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do {
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fast = fast.next.next;
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slow = slow.next;
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if (slow == fast)
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break;
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}
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} while (slow != fast);
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fast = pHead;
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while (slow != fast) {
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slow = slow.next;
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@ -1159,7 +1165,8 @@ public ListNode ReverseList(ListNode head) {
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### 递归
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```java
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public ListNode Merge(ListNode list1, ListNode list2) {
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public ListNode Merge(ListNode list1, ListNode list2)
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{
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if (list1 == null)
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return list2;
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if (list2 == null)
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@ -1177,7 +1184,8 @@ public ListNode Merge(ListNode list1, ListNode list2) {
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### 迭代
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```java
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public ListNode Merge(ListNode list1, ListNode list2) {
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public ListNode Merge(ListNode list1, ListNode list2)
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{
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ListNode head = new ListNode(-1);
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ListNode cur = head;
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while (list1 != null && list2 != null) {
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@ -1209,20 +1217,22 @@ public ListNode Merge(ListNode list1, ListNode list2) {
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## 解题思路
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```java
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public boolean HasSubtree(TreeNode root1, TreeNode root2) {
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public boolean HasSubtree(TreeNode root1, TreeNode root2)
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{
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if (root1 == null || root2 == null)
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return false;
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return isSubtree(root1, root2) || HasSubtree(root1.left, root2) || HasSubtree(root1.right, root2);
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return isSubtreeWithRoot(root1, root2) || HasSubtree(root1.left, root2) || HasSubtree(root1.right, root2);
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}
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private boolean isSubtree(TreeNode root1, TreeNode root2) {
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private boolean isSubtreeWithRoot(TreeNode root1, TreeNode root2)
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{
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if (root2 == null)
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return true;
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if (root1 == null)
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return false;
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if (root1.val != root2.val)
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return false;
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return isSubtree(root1.left, root2.left) && isSubtree(root1.right, root2.right);
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return isSubtreeWithRoot(root1.left, root2.left) && isSubtreeWithRoot(root1.right, root2.right);
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}
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```
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## 解题思路
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```java
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public void Mirror(TreeNode root) {
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public void Mirror(TreeNode root)
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{
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if (root == null)
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return;
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swap(root);
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Mirror(root.right);
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}
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private void swap(TreeNode root) {
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private void swap(TreeNode root)
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{
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TreeNode t = root.left;
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root.left = root.right;
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root.right = t;
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## 解题思路
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```java
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boolean isSymmetrical(TreeNode pRoot) {
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boolean isSymmetrical(TreeNode pRoot)
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{
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if (pRoot == null)
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return true;
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return isSymmetrical(pRoot.left, pRoot.right);
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}
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boolean isSymmetrical(TreeNode t1, TreeNode t2) {
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boolean isSymmetrical(TreeNode t1, TreeNode t2)
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{
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if (t1 == null && t2 == null)
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return true;
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if (t1 == null || t2 == null)
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@ -1293,7 +1307,8 @@ boolean isSymmetrical(TreeNode t1, TreeNode t2) {
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## 解题思路
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```java
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public ArrayList<Integer> printMatrix(int[][] matrix) {
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public ArrayList<Integer> printMatrix(int[][] matrix)
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{
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ArrayList<Integer> ret = new ArrayList<>();
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int r1 = 0, r2 = matrix.length - 1, c1 = 0, c2 = matrix[0].length - 1;
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while (r1 <= r2 && c1 <= c2) {
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## 解题思路
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```java
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private Stack<Integer> stack = new Stack<>();
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private Stack<Integer> dataStack = new Stack<>();
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private Stack<Integer> minStack = new Stack<>();
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public void push(int node) {
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stack.push(node);
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public void push(int node)
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{
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dataStack.push(node);
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minStack.push(minStack.isEmpty() ? node : Math.min(minStack.peek(), node));
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}
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public void pop() {
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stack.pop();
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public void pop()
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{
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dataStack.pop();
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minStack.pop();
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}
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public int top() {
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return stack.peek();
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public int top()
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{
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return dataStack.peek();
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}
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public int min() {
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public int min()
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{
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return minStack.peek();
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}
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```
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使用一个栈来模拟压入弹出操作。
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```java
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public boolean IsPopOrder(int[] pushA, int[] popA) {
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int n = pushA.length;
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public boolean IsPopOrder(int[] pushSequence, int[] popSequence)
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{
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int n = pushSequence.length;
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Stack<Integer> stack = new Stack<>();
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for (int pushIndex = 0, popIndex = 0; pushIndex < n; pushIndex++) {
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stack.push(pushA[pushIndex]);
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while (popIndex < n && stack.peek() == popA[popIndex]) {
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stack.push(pushSequence[pushIndex]);
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while (popIndex < n && stack.peek() == popSequence[popIndex]) {
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stack.pop();
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popIndex++;
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}
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@ -1392,21 +1412,20 @@ public boolean IsPopOrder(int[] pushA, int[] popA) {
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不需要使用两个队列分别存储当前层的节点和下一层的节点,因为在开始遍历一层的节点时,当前队列中的节点数就是当前层的节点数,只要控制遍历这么多节点数,就能保证这次遍历的都是当前层的节点。
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```java
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public ArrayList<Integer> PrintFromTopToBottom(TreeNode root) {
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public ArrayList<Integer> PrintFromTopToBottom(TreeNode root)
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{
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Queue<TreeNode> queue = new LinkedList<>();
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ArrayList<Integer> ret = new ArrayList<>();
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if (root == null)
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return ret;
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queue.add(root);
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while (!queue.isEmpty()) {
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int cnt = queue.size();
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while (cnt-- > 0) {
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TreeNode t = queue.poll();
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if (t.left != null)
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queue.add(t.left);
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if (t.right != null)
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queue.add(t.right);
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if (t == null)
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continue;
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ret.add(t.val);
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queue.add(t.left);
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queue.add(t.right);
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}
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}
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return ret;
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@ -1424,10 +1443,9 @@ public ArrayList<Integer> PrintFromTopToBottom(TreeNode root) {
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## 解题思路
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```java
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ArrayList<ArrayList<Integer>> Print(TreeNode pRoot) {
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ArrayList<ArrayList<Integer>> Print(TreeNode pRoot)
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{
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ArrayList<ArrayList<Integer>> ret = new ArrayList<>();
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if (pRoot == null)
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return ret;
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Queue<TreeNode> queue = new LinkedList<>();
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queue.add(pRoot);
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while (!queue.isEmpty()) {
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@ -1435,13 +1453,14 @@ ArrayList<ArrayList<Integer>> Print(TreeNode pRoot) {
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int cnt = queue.size();
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while (cnt-- > 0) {
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TreeNode node = queue.poll();
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if (node == null)
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continue;
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list.add(node.val);
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if (node.left != null)
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queue.add(node.left);
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if (node.right != null)
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queue.add(node.right);
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queue.add(node.left);
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queue.add(node.right);
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}
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ret.add(list);
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if (list.size() != 0)
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ret.add(list);
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}
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return ret;
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}
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@ -1458,10 +1477,9 @@ ArrayList<ArrayList<Integer>> Print(TreeNode pRoot) {
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## 解题思路
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```java
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public ArrayList<ArrayList<Integer>> Print(TreeNode pRoot) {
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public ArrayList<ArrayList<Integer>> Print(TreeNode pRoot)
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{
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ArrayList<ArrayList<Integer>> ret = new ArrayList<>();
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if (pRoot == null)
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return ret;
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Queue<TreeNode> queue = new LinkedList<>();
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queue.add(pRoot);
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boolean reverse = false;
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@ -1470,16 +1488,17 @@ public ArrayList<ArrayList<Integer>> Print(TreeNode pRoot) {
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int cnt = queue.size();
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while (cnt-- > 0) {
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TreeNode node = queue.poll();
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if (node == null)
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continue;
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list.add(node.val);
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if (node.left != null)
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queue.add(node.left);
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if (node.right != null)
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queue.add(node.right);
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queue.add(node.left);
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queue.add(node.right);
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}
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if (reverse)
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Collections.reverse(list);
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reverse = !reverse;
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ret.add(list);
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if (list.size() != 0)
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ret.add(list);
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}
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return ret;
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}
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@ -1500,13 +1519,15 @@ public ArrayList<ArrayList<Integer>> Print(TreeNode pRoot) {
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## 解题思路
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```java
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public boolean VerifySquenceOfBST(int[] sequence) {
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public boolean VerifySquenceOfBST(int[] sequence)
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{
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if (sequence == null || sequence.length == 0)
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return false;
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return verify(sequence, 0, sequence.length - 1);
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}
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private boolean verify(int[] sequence, int first, int last) {
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private boolean verify(int[] sequence, int first, int last)
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{
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if (last - first <= 1)
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return true;
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int rootVal = sequence[last];
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|
@ -1537,18 +1558,20 @@ private boolean verify(int[] sequence, int first, int last) {
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```java
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private ArrayList<ArrayList<Integer>> ret = new ArrayList<>();
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public ArrayList<ArrayList<Integer>> FindPath(TreeNode root, int target) {
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public ArrayList<ArrayList<Integer>> FindPath(TreeNode root, int target)
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{
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backtracking(root, target, new ArrayList<>());
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return ret;
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}
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private void backtracking(TreeNode node, int target, ArrayList<Integer> path) {
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private void backtracking(TreeNode node, int target, ArrayList<Integer> path)
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{
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if (node == null)
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return;
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path.add(node.val);
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target -= node.val;
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if (target == 0 && node.left == null && node.right == null) {
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ret.add(new ArrayList(path));
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ret.add(new ArrayList<>(path));
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} else {
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backtracking(node.left, target, path);
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backtracking(node.right, target, path);
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|
@ -1582,7 +1605,8 @@ private void backtracking(TreeNode node, int target, ArrayList<Integer> path) {
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<div align="center"> <img src="../pics//8f3b9519-d705-48fe-87ad-2e4052fc81d2.png" width="600"/> </div><br>
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||||
|
||||
```java
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||||
public RandomListNode Clone(RandomListNode pHead) {
|
||||
public RandomListNode Clone(RandomListNode pHead)
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{
|
||||
if (pHead == null)
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return null;
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// 插入新节点
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||||
|
@ -1629,14 +1653,14 @@ public RandomListNode Clone(RandomListNode pHead) {
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private TreeNode pre = null;
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||||
private TreeNode head = null;
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||||
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||||
public TreeNode Convert(TreeNode root) {
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if (root == null)
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return null;
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||||
public TreeNode Convert(TreeNode root)
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||||
{
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||||
inOrder(root);
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||||
return head;
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||||
}
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||||
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||||
private void inOrder(TreeNode node) {
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private void inOrder(TreeNode node)
|
||||
{
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||||
if (node == null)
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||||
return;
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inOrder(node.left);
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|
@ -1661,35 +1685,35 @@ private void inOrder(TreeNode node) {
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|||
## 解题思路
|
||||
|
||||
```java
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||||
public class Solution {
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||||
private String deserializeStr;
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||||
|
||||
private String deserializeStr;
|
||||
public String Serialize(TreeNode root)
|
||||
{
|
||||
if (root == null)
|
||||
return "#";
|
||||
return root.val + " " + Serialize(root.left) + " " + Serialize(root.right);
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||||
}
|
||||
|
||||
public String Serialize(TreeNode root) {
|
||||
if (root == null)
|
||||
return "#";
|
||||
return root.val + " " + Serialize(root.left) + " " + Serialize(root.right);
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||||
}
|
||||
public TreeNode Deserialize(String str)
|
||||
{
|
||||
deserializeStr = str;
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||||
return Deserialize();
|
||||
}
|
||||
|
||||
public TreeNode Deserialize(String str) {
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||||
deserializeStr = str;
|
||||
return Deserialize();
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||||
}
|
||||
|
||||
private TreeNode Deserialize() {
|
||||
if (deserializeStr.length() == 0)
|
||||
return null;
|
||||
int index = deserializeStr.indexOf(" ");
|
||||
String node = index == -1 ? deserializeStr : deserializeStr.substring(0, index);
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||||
deserializeStr = index == -1 ? "" : deserializeStr.substring(index + 1);
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||||
if (node.equals("#"))
|
||||
return null;
|
||||
int val = Integer.valueOf(node);
|
||||
TreeNode t = new TreeNode(val);
|
||||
t.left = Deserialize();
|
||||
t.right = Deserialize();
|
||||
return t;
|
||||
}
|
||||
private TreeNode Deserialize()
|
||||
{
|
||||
if (deserializeStr.length() == 0)
|
||||
return null;
|
||||
int index = deserializeStr.indexOf(" ");
|
||||
String node = index == -1 ? deserializeStr : deserializeStr.substring(0, index);
|
||||
deserializeStr = index == -1 ? "" : deserializeStr.substring(index + 1);
|
||||
if (node.equals("#"))
|
||||
return null;
|
||||
int val = Integer.valueOf(node);
|
||||
TreeNode t = new TreeNode(val);
|
||||
t.left = Deserialize();
|
||||
t.right = Deserialize();
|
||||
return t;
|
||||
}
|
||||
```
|
||||
|
||||
|
|
Loading…
Reference in New Issue
Block a user