Merge branch 'youngyangyang04:master' into master

2025-07-08 16:54:50 +08:00 · 2022-07-07 09:11:02 +08:00
parent 0e480c58f0 5ec1432dc2
commit 79fcbcb3b1
12 changed files with 351 additions and 9 deletions
--- a/problems/0017.电话号码的字母组合.md
+++ b/problems/0017.电话号码的字母组合.md
@ -557,6 +557,37 @@ func letterCombinations(_ digits: String) -> [String] {
 }
 ```
 ## Scala:
 ```scala
 object Solution {
  import scala.collection.mutable
  def letterCombinations(digits: String): List[String] = {
    var result = mutable.ListBuffer[String]()
    if(digits == "") return result.toList // 如果参数为空，返回空结果集的List形式
    var path = mutable.ListBuffer[Char]()
    // 数字和字符的映射关系
    val map = Array[String]("", "", "abc", "def", "ghi", "jkl", "mno", "pqrs", "tuv", "wxyz")
    def backtracking(index: Int): Unit = {
      if (index == digits.size) {
        result.append(path.mkString)  // mkString语法：将数组类型直接转换为字符串
        return
      }
      var digit = digits(index) - '0' // 这里使用toInt会报错！必须 -'0'
      for (i <- 0 until map(digit).size) {
        path.append(map(digit)(i))
        backtracking(index + 1)
        path = path.take(path.size - 1)
      }
    }
    backtracking(0)
    result.toList
  }
 }
 ```
 -----------------------
 <div align="center"><img src=https://code-thinking.cdn.bcebos.com/pics/01二维码一.jpg width=500> </img></div>
--- a/problems/0027.移除元素.md
+++ b/problems/0027.移除元素.md
@ -339,7 +339,6 @@ int removeElement(int* nums, int numsSize, int val){
 }
 ```
 Kotlin:
 ```kotlin
 fun removeElement(nums: IntArray, `val`: Int): Int {
@ -351,7 +350,6 @@ fun removeElement(nums: IntArray, `val`: Int): Int {
    }
 ```
 Scala:
 ```scala
 object Solution {
@ -368,5 +366,20 @@ object Solution {
 }
 ```
 C#:
 ```csharp
 public class Solution {
    public int RemoveElement(int[] nums, int val) {
        int slow = 0;
        for (int fast = 0; fast < nums.Length; fast++) {
            if (val != nums[fast]) {
                nums[slow++] = nums[fast];
            }
        }
        return slow;
    }
 }
 ```
 -----------------------
 <div align="center"><img src=https://code-thinking.cdn.bcebos.com/pics/01二维码一.jpg width=500> </img></div>
--- a/problems/0039.组合总和.md
+++ b/problems/0039.组合总和.md
@ -502,5 +502,35 @@ func combinationSum(_ candidates: [Int], _ target: Int) -> [[Int]] {
 }
 ```
 ## Scala
 ```scala
 object Solution {
  import scala.collection.mutable
  def combinationSum(candidates: Array[Int], target: Int): List[List[Int]] = {
    var result = mutable.ListBuffer[List[Int]]()
    var path = mutable.ListBuffer[Int]()
    def backtracking(sum: Int, index: Int): Unit = {
      if (sum == target) {
        result.append(path.toList) // 如果正好等于target，就添加到结果集
        return
      }
      // 应该是从当前索引开始的，而不是从0
      // 剪枝优化：添加循环守卫，当sum + c(i) <= target的时候才循环，才可以进入下一次递归
      for (i <- index until candidates.size if sum + candidates(i) <= target) {
        path.append(candidates(i))
        backtracking(sum + candidates(i), i)
        path = path.take(path.size - 1)
      }
    }
    backtracking(0, 0)
    result.toList
  }
 }
 ```
 -----------------------
 <div align="center"><img src=https://code-thinking.cdn.bcebos.com/pics/01二维码一.jpg width=500> </img></div>
--- a/problems/0040.组合总和II.md
+++ b/problems/0040.组合总和II.md
@ -693,5 +693,37 @@ func combinationSum2(_ candidates: [Int], _ target: Int) -> [[Int]] {
 }
 ```
 ## Scala
 ```scala
 object Solution {
  import scala.collection.mutable    
  def combinationSum2(candidates: Array[Int], target: Int): List[List[Int]] = {
    var res = mutable.ListBuffer[List[Int]]()
    var path = mutable.ListBuffer[Int]()
    var candidate = candidates.sorted
    def backtracking(sum: Int, startIndex: Int): Unit = {
      if (sum == target) {
        res.append(path.toList)
        return
      }
      for (i <- startIndex until candidate.size if sum + candidate(i) <= target) {
        if (!(i > startIndex && candidate(i) == candidate(i - 1))) {
          path.append(candidate(i))
          backtracking(sum + candidate(i), i + 1)
          path = path.take(path.size - 1)
        }
      }
    }
    backtracking(0, 0)
    res.toList
  }
 }
 ```
 -----------------------
 <div align="center"><img src=https://code-thinking.cdn.bcebos.com/pics/01二维码一.jpg width=500> </img></div>
--- a/problems/0077.组合.md
+++ b/problems/0077.组合.md
@ -673,5 +673,63 @@ func combine(_ n: Int, _ k: Int) -> [[Int]] {
 }
 ```
 ### Scala
 暴力:
 ```scala
 object Solution {
  import scala.collection.mutable // 导包
  def combine(n: Int, k: Int): List[List[Int]] = {
    var result = mutable.ListBuffer[List[Int]]() // 存放结果集
    var path = mutable.ListBuffer[Int]() //存放符合条件的结果
    def backtracking(n: Int, k: Int, startIndex: Int): Unit = {
      if (path.size == k) {
        // 如果path的size == k就达到题目要求，添加到结果集，并返回
        result.append(path.toList)
        return
      }
      for (i <- startIndex to n) { // 遍历从startIndex到n
        path.append(i) // 先把数字添加进去
        backtracking(n, k, i + 1) // 进行下一步回溯
        path = path.take(path.size - 1) // 回溯完再删除掉刚刚添加的数字
      }
    }
    backtracking(n, k, 1) // 执行回溯
    result.toList // 最终返回result的List形式，return关键字可以省略
  }
 }
 ```
 剪枝:
 ```scala
 object Solution {
  import scala.collection.mutable // 导包
  def combine(n: Int, k: Int): List[List[Int]] = {
    var result = mutable.ListBuffer[List[Int]]() // 存放结果集
    var path = mutable.ListBuffer[Int]() //存放符合条件的结果
    def backtracking(n: Int, k: Int, startIndex: Int): Unit = {
      if (path.size == k) {
        // 如果path的size == k就达到题目要求，添加到结果集，并返回
        result.append(path.toList)
        return
      }
      // 剪枝优化
      for (i <- startIndex to (n - (k - path.size) + 1)) { 
        path.append(i) // 先把数字添加进去
        backtracking(n, k, i + 1) // 进行下一步回溯
        path = path.take(path.size - 1) // 回溯完再删除掉刚刚添加的数字
      }
    }
    backtracking(n, k, 1) // 执行回溯
    result.toList // 最终返回result的List形式，return关键字可以省略
  }
 }
 ```
 -----------------------
 <div align="center"><img src=https://code-thinking.cdn.bcebos.com/pics/01二维码一.jpg width=500> </img></div>
--- a/problems/0077.组合优化.md
+++ b/problems/0077.组合优化.md
@ -346,5 +346,34 @@ func combine(_ n: Int, _ k: Int) -> [[Int]] {
 }
 ```
 Scala:
 ```scala
 object Solution {
  import scala.collection.mutable // 导包
  def combine(n: Int, k: Int): List[List[Int]] = {
    var result = mutable.ListBuffer[List[Int]]() // 存放结果集
    var path = mutable.ListBuffer[Int]() //存放符合条件的结果
    def backtracking(n: Int, k: Int, startIndex: Int): Unit = {
      if (path.size == k) {
        // 如果path的size == k就达到题目要求，添加到结果集，并返回
        result.append(path.toList)
        return
      }
      // 剪枝优化
      for (i <- startIndex to (n - (k - path.size) + 1)) { 
        path.append(i) // 先把数字添加进去
        backtracking(n, k, i + 1) // 进行下一步回溯
        path = path.take(path.size - 1) // 回溯完再删除掉刚刚添加的数字
      }
    }
    backtracking(n, k, 1) // 执行回溯
    result.toList // 最终返回result的List形式，return关键字可以省略
  }
 }
 ```
 -----------------------
 <div align="center"><img src=https://code-thinking.cdn.bcebos.com/pics/01二维码一.jpg width=500> </img></div>
--- a/problems/0216.组合总和III.md
+++ b/problems/0216.组合总和III.md
@ -502,5 +502,35 @@ func combinationSum3(_ count: Int, _ targetSum: Int) -> [[Int]] {
 }
 ```
 ## Scala
 ```scala
 object Solution {
  import scala.collection.mutable
  def combinationSum3(k: Int, n: Int): List[List[Int]] = {
    var result = mutable.ListBuffer[List[Int]]()
    var path = mutable.ListBuffer[Int]()
    def backtracking(k: Int, n: Int, sum: Int, startIndex: Int): Unit = {
      if (sum > n) return // 剪枝，如果sum>目标和，就返回
      if (sum == n && path.size == k) {
        result.append(path.toList)
        return
      }
      // 剪枝
      for (i <- startIndex to (9 - (k - path.size) + 1)) {
        path.append(i)
        backtracking(k, n, sum + i, i + 1) 
        path = path.take(path.size - 1)
      }
    }
    backtracking(k, n, 0, 1) // 调用递归方法
    result.toList // 最终返回结果集的List形式
  }
 }
 ```
 -----------------------
 <div align="center"><img src=https://code-thinking.cdn.bcebos.com/pics/01二维码一.jpg width=500> </img></div>
--- a/problems/0239.滑动窗口最大值.md
+++ b/problems/0239.滑动窗口最大值.md
@ -654,8 +654,7 @@ object Solution {
    // 最终返回res，return关键字可以省略
    res
  }
-
+ }
 }
 class MyQueue {
  var queue = ArrayBuffer[Int]()
@ -678,5 +677,84 @@ class MyQueue {
  def peek(): Int = queue.head
 }
 ```
 PHP:
 ```php
 class Solution {
    /**
     * @param Integer[] $nums
     * @param Integer $k
     * @return Integer[]
     */
    function maxSlidingWindow($nums, $k) {
        $myQueue = new MyQueue();
        // 先将前k的元素放进队列
        for ($i = 0; $i < $k; $i++) { 
            $myQueue->push($nums[$i]);
        }
        $result = [];
        $result[] = $myQueue->max(); // result 记录前k的元素的最大值
        for ($i = $k; $i < count($nums); $i++) {
            $myQueue->pop($nums[$i - $k]); // 滑动窗口移除最前面元素
            $myQueue->push($nums[$i]); // 滑动窗口前加入最后面的元素
            $result[]= $myQueue->max(); // 记录对应的最大值
        }
        return $result;
    }
 }
 // 单调对列构建
 class MyQueue{
    private $queue;
    public function __construct(){
        $this->queue = new SplQueue(); //底层是双向链表实现。
    }
    public function pop($v){
        // 判断当前对列是否为空
        // 比较当前要弹出的数值是否等于队列出口元素的数值，如果相等则弹出。
        // bottom 从链表前端查看元素, dequeue 从双向链表的开头移动一个节点
        if(!$this->queue->isEmpty() && $v == $this->queue->bottom()){
            $this->queue->dequeue(); //弹出队列
        }
    }
    public function push($v){
        // 判断当前对列是否为空
        // 如果push的数值大于入口元素的数值，那么就将队列后端的数值弹出，直到push的数值小于等于队列入口元素的数值为止。
        // 这样就保持了队列里的数值是单调从大到小的了。
        while (!$this->queue->isEmpty() && $v > $this->queue->top()) {
            $this->queue->pop(); // pop从链表末尾弹出一个元素，
        }
        $this->queue->enqueue($v);
    }
    // 查询当前队列里的最大值 直接返回队首
    public function max(){
        // bottom 从链表前端查看元素, top从链表末尾查看元素
        return $this->queue->bottom(); 
    }
    // 辅助理解: 打印队列元素
    public function println(){
        // "迭代器移动到链表头部": 可理解为从头遍历链表元素做准备。
        // 【PHP中没有指针概念，所以就没说指针。从数据结构上理解，就是把指针指向链表头部】
        $this->queue->rewind();
        echo "Println: ";
        while($this->queue->valid()){
            echo $this->queue->current()," -> ";
            $this->queue->next();
        }
        echo "\n";
    } 
 }
 ```
 -----------------------
 <div align="center"><img src=https://code-thinking.cdn.bcebos.com/pics/01二维码一.jpg width=500> </img></div>
--- a/problems/0538.把二叉搜索树转换为累加树.md
+++ b/problems/0538.把二叉搜索树转换为累加树.md
@ -352,6 +352,24 @@ function convertBST(root: TreeNode | null): TreeNode | null {
 };
 ```
 ## Scala
 ```scala
 object Solution {
  def convertBST(root: TreeNode): TreeNode = {
    var sum = 0
    def convert(node: TreeNode): Unit = {
      if (node == null) return
      convert(node.right)
      sum += node.value
      node.value = sum
      convert(node.left)
    }
    convert(root)
    root
  }
 }
 ```
 -----------------------
--- a/problems/0707.设计链表.md
+++ b/problems/0707.设计链表.md
@ -104,8 +104,9 @@ public:
    // 在第index个节点之前插入一个新节点，例如index为0，那么新插入的节点为链表的新头节点。
    // 如果index 等于链表的长度，则说明是新插入的节点为链表的尾结点
    // 如果index大于链表的长度，则返回空
    // 如果index小于0，则置为0，作为链表的新头节点。
    void addAtIndex(int index, int val) {
-        if (index > _size) {
+        if (index > _size || index < 0) {
            return;
        }
        LinkedNode* newNode = new LinkedNode(val);
--- a/problems/0977.有序数组的平方.md
+++ b/problems/0977.有序数组的平方.md
@ -420,6 +420,24 @@ object Solution {
 }
 ```
-
+C#：
 ```csharp
 public class Solution {
    public int[] SortedSquares(int[] nums) {
        int k = nums.Length - 1;
        int[] result = new int[nums.Length];
        for (int i = 0, j = nums.Length - 1;i <= j;){
            if (nums[i] * nums[i] < nums[j] * nums[j]) {
                result[k--] = nums[j] * nums[j];
                j--;
            } else {
                result[k--] = nums[i] * nums[i];
                i++;
            }
        }
        return result;
    }
 }
 ```
 -----------------------
 <div align="center"><img src=https://code-thinking.cdn.bcebos.com/pics/01二维码一.jpg width=500> </img></div>
--- a/problems/背包理论基础01背包-1.md
+++ b/problems/背包理论基础01背包-1.md
@ -356,9 +356,13 @@ func test_2_wei_bag_problem1(weight, value []int, bagweight int) int {
 	// 递推公式
 	for i := 1; i < len(weight); i++ {
 		//正序,也可以倒序
-		for  j := weight[i];j<= bagweight ; j++ {
+	    for j := 0; j <= bagweight; j++ {
-			dp[i][j] = max(dp[i-1][j], dp[i-1][j-weight[i]]+value[i])
+	        if j < weight[i] {
-		}		
+	            dp[i][j] = dp[i-1][j]
 	        } else {
 	            dp[i][j] = max(dp[i-1][j], dp[i-1][j-weight[i]]+value[i])
 	        }
 	    }		
 	}
 	return dp[len(weight)-1][bagweight]
 }