滑动窗口的问题一般分为两类,一类是窗口大小固定,求解窗口内数据的最值问题,一类是窗口大小可变,求解窗口长度的最值问题。核心思想是使用快慢型双指针模拟滑动窗口,利用指针的移动模拟窗口的滑动,对窗口中不断变换的数据进行比较。需要注意的是边界处理。
leetcode643
固定窗口大小,求窗口内数据和的最大值。初始时,计算下标从0开始窗口大小为k的和,作为和的最大值,将固定窗口每次向右移动1个单位,即最左侧的元素滑出,右侧的下一个元素滑入,计算和,进行比较
public double findMaxAverage(int[] nums, int k) {
int maxSum = 0;
for(int i=0;i<k;i++){
maxSum+=nums[i];
}
int sum = maxSum;
int right = k;
while(right<nums.length){
sum=sum+nums[right]-nums[right-k];
maxSum = Math.max(sum,maxSum);
right++;
}
return (double)maxSum/k;
}
leetcode674
窗口大小可变,如果序列递增,继续添加元素到序列中,计算当前最长递增序列,进行比较,否则窗口滑动到当前位置,继续寻找递增序列
public int findLengthOfLCIS(int[] nums) {
int left = 0;
int right = 1;
int maxLen = 1;
while(right<nums.length){
if(nums[right]-nums[right-1]<=0){
left = right;
}
maxLen = Math.max(maxLen,right-left+1);
right++;
}
return maxLen;
}
leetcode3
使用map存储当前遍历到的字符,key表示字符本身,value表示字符下标,当子串不重复时,存储,继续遍历,计算最大长度,重复时,将窗口滑动到重复元素的下一位置,继续操作
public int lengthOfLongestSubstring(String s) {
if(s.length()==0){
return 0;
}
Map<Character,Integer> map = new HashMap<Character,Integer>();
char[]chars = s.toCharArray();
int left = 0;
int right = 1;
int maxLen = 1;
map.put(chars[left],left);
while(right<chars.length){
if(map.containsKey(chars[right])){
left = Math.max(map.get(chars[right])+1,left);
}
map.put(chars[right],right);
maxLen = Math.max(right-left+1,maxLen);
right++;
}
return maxLen;
}
leetcode209
窗口右侧不断右移,直至数据和超过target,计算长度并比较,窗口左侧右移,直至数据和小于target,计算长度并比较
public int minSubArrayLen(int target, int[] nums) {
int left = 0;
int right = 0;
int sum = 0;
int minLen = Integer.MAX_VALUE;
while(right<nums.length){
sum+=nums[right++];
while(sum>=target){
minLen = Math.min(right-left,minLen);
sum-=nums[left++];
}
}
return minLen==Integer.MAX_VALUE?0:minLen;
}
leetcode11
初始时,窗口占满整个数组,计算水容量,之后不断缩小短板,计算水容量
public int maxArea(int[] height) {
int left = 0;
int right = height.length-1;
int maxNum = 0;
while(left<right){
if(height[left]<height[right]){
maxNum = Math.max((right-left)*height[left],maxNum);
left++;
}else{
maxNum = Math.max((right-left)*height[right],maxNum);
right--;
}
}
return maxNum;
}
leetcode567
以短串长度为窗口大小,在长串中滑动,比较两串字符个数是否相同,可通过数组对应位置的值作为元素出现次数来进行比较
public boolean checkInclusion(String s1, String s2) {
if(s1.length()>s2.length()){
return false;
}
int n = s1.length();
int[] count1 = new int[26];
int[] count2 = new int[26];
char[] chars1 = s1.toCharArray();
char[] chars2 = s2.toCharArray();
for(int i=0;i<n;i++){
count1[chars1[i]-'a']++;
count2[chars2[i]-'a']++;
}
if(Arrays.equals(count1,count2)){
return true;
}
int right = n;
while(right<s2.length()){
count2[chars2[right]-'a']++;
int left = right-n;
count2[chars2[left]-'a']--;
if(Arrays.equals(count1,count2)){
return true;
}
right++;
}
return false;
}
leetcode438
与上一题类似,找到字母异位后记录开始下标
public List<Integer> findAnagrams(String s, String p) {
List<Integer> res = new ArrayList<>();
if(p.length()>s.length()){
return res;
}
int n = p.length();
int[] count1 = new int[26];
int[] count2 = new int[26];
char[] chars1 = p.toCharArray();
char[] chars2 = s.toCharArray();
int left = 0;
for(int i=0;i<n;i++){
count1[chars1[i]-'a']++;
count2[chars2[i]-'a']++;
}
if(Arrays.equals(count1,count2)){
res.add(left);
}
int right = n;
while(right<s.length()){
count2[chars2[right]-'a']++;
left = right-n;
count2[chars2[left]-'a']--;
if(Arrays.equals(count1,count2)){
res.add(left+1);
}
right++;
}
return res;
}
leetcode239
将遍历到的元素以二元组的形式存放在大顶堆中,二元组分别元素和对应下标,最值即为堆顶元素,判断最值之前,需要将不属于滑动窗口范围内的堆顶元素移除
public int[] maxSlidingWindow(int[] nums, int k) {
int[] ans = new int[nums.length - k + 1];
PriorityQueue<int[]> maxHeap = new PriorityQueue<>((a,b)->(b[0]-a[0]));
int res = 0;
int left = 0;
int right = k;
for (int i = left; i < right; i++) {
maxHeap.offer(new int[]{nums[i],i});
}
ans[res++] = maxHeap.peek()[0];
while (right < nums.length) {
maxHeap.offer(new int[]{nums[right],right++});
left++;
while(maxHeap.peek()[1]<left){
maxHeap.poll();
}
ans[res++] = maxHeap.peek()[0];
}
return ans;
}