力扣爆刷第117天之CodeTop100五连刷71-75
文章目录
一、48. 旋转图像
题目链接:https://leetcode.cn/problems/rotate-image/description/
思路:向右旋转90度可以由两个操作来达成,即先沿着nums[0][0]和nums[n][n]对角线进行对折,然后再左右对折。
class Solution {
public void rotate(int[][] matrix) {
int n = matrix.length;
for(int i = 0; i < n; i++) {
for(int j = i; j < n; j++) {
int t = matrix[i][j];
matrix[i][j] = matrix[j][i];
matrix[j][i] = t;
}
}
for(int i = 0; i < n; i++) {
for(int j = 0; j < n/2; j++) {
int t = matrix[i][j];
matrix[i][j] = matrix[i][n-j-1];
matrix[i][n-j-1] = t;
}
}
}
}
二、39. 组合总和
题目链接:https://leetcode.cn/problems/combination-sum/description/
思路:组合成一个数,元素无重可复用,开始索引位置不需要加1,然后利用排序,可以早停,其他的就是递归模板。
class Solution {
int sum = 0;
List<Integer> list = new ArrayList<>();
List<List<Integer>> resList = new ArrayList<>();
public List<List<Integer>> combinationSum(int[] candidates, int target) {
Arrays.sort(candidates);
backTracking(candidates, target, 0);
return resList;
}
void backTracking(int[] candidates, int target, int start) {
if(sum == target) {
resList.add(new ArrayList(list));
return;
}
for(int i = start; i < candidates.length && sum + candidates[i] <= target; i++) {
sum += candidates[i];
list.add(candidates[i]);
backTracking(candidates, target, i);
sum -= candidates[i];
list.remove(list.size()-1);
}
}
}
三、113. 路径总和 II
题目链接:https://leetcode.cn/problems/path-sum-ii/description/
思路:对二叉树进行递归,路径指的是从根节点到叶子节点,故而前序遍历,在进入左右子树之前搜集结果,当前节点的左右子树递归结束时,要向上一级返回,需要进行回溯的返回操作。
class Solution {
int sum = 0, pro = 0;
List<Integer> list = new ArrayList<>();
List<List<Integer>> resList = new ArrayList<>();
public List<List<Integer>> pathSum(TreeNode root, int targetSum) {
backTracking(root, targetSum);
return resList;
}
void backTracking(TreeNode root, int targetSum) {
if(root == null) return;
sum += root.val;
list.add(root.val);
if(root.left == null && root.right == null && sum == targetSum) {
resList.add(new ArrayList(list));
}
backTracking(root.left, targetSum);
backTracking(root.right, targetSum);
sum -= root.val;
list.remove(list.size()-1);
}
}
四、34. 在排序数组中查找元素的第一个和最后一个位置
题目链接:https://leetcode.cn/problems/find-first-and-last-position-of-element-in-sorted-array/description/
思路:采用二分查找,分别查找左边界和右边界,注意边界条件,越界和不符合的返回-1;
class Solution {
public int[] searchRange(int[] nums, int target) {
int left = findList(nums, 0, nums.length-1, target);
int right = findRight(nums, 0, nums.length-1, target);
return new int[]{left, right};
}
int findList(int[] nums, int left, int right, int target) {
while(left <= right) {
int mid = left + (right - left) / 2;
if(nums[mid] >= target) {
right = mid - 1;
}else{
left = mid + 1;
}
}
if(left < 0 || left >= nums.length) return -1;
return nums[left] == target ? left : -1;
}
int findRight(int[] nums, int left, int right, int target) {
while(left <= right) {
int mid = left + (right - left) / 2;
if(nums[mid] <= target) {
left = mid + 1;
}else{
right = mid - 1;
}
}
if(right < 0 || right >= nums.length) return -1;
return nums[right] == target ? right : -1;
}
}
五、394. 字符串解码
题目链接:https://leetcode.cn/problems/decode-string/description/
思路:字符串的编码符合栈的规律,故使用两个栈,一个栈记录数字,一个栈记录前面已经拼接好的片段,一个字符串作为全局变量接收字符,遇到左括号时记录数字和已经拼好的片段,然后计数和字符串重置,用来记录括号内部的字符,遇到右括号,用之前栈里记录的数字循环拼接这一段字符串,最后再和栈里保存的括号左边的片段进行拼接。
class Solution {
public String decodeString(String s) {
int num = 0;
LinkedList<Integer> stk1 = new LinkedList<>();
LinkedList<String> stk2 = new LinkedList<>();
StringBuilder res = new StringBuilder();
for(char c : s.toCharArray()) {
if(c >= '0' && c <= '9') {
num = num * 10 + Integer.parseInt(c + "");
}else if(c == '[') {
stk1.push(num);
stk2.push(res.toString());
num = 0;
res = new StringBuilder();
}else if(c == ']') {
StringBuilder t = new StringBuilder();
int count = stk1.pop();
for(int i = 0; i < count; i++) {
t.append(res);
}
res = new StringBuilder(stk2.pop() + t);
}else{
res.append(c);
}
}
return res.toString();
}
}
