From a150c61f9db97521b2b758affe64e202d6a821d4 Mon Sep 17 00:00:00 2001 From: KailokFung Date: Wed, 23 Jun 2021 18:01:20 +0800 Subject: [PATCH] =?UTF-8?q?fix(0239):=20=E6=96=B0=E5=A2=9E=E4=B8=80?= =?UTF-8?q?=E7=A7=8Djava=E5=86=99=E6=B3=95?= MIME-Version: 1.0 Content-Type: text/plain; charset=UTF-8 Content-Transfer-Encoding: 8bit --- problems/0239.滑动窗口最大值.md | 35 ++++++++++++++++++++++++++ 1 file changed, 35 insertions(+) diff --git a/problems/0239.滑动窗口最大值.md b/problems/0239.滑动窗口最大值.md index d108335b..ad54a940 100644 --- a/problems/0239.滑动窗口最大值.md +++ b/problems/0239.滑动窗口最大值.md @@ -208,6 +208,7 @@ public: Java: ```Java +//解法一 //自定义数组 class MyQueue { Deque deque = new LinkedList<>(); @@ -260,6 +261,40 @@ class Solution { return res; } } + +//解法二 +//利用双端队列手动实现单调队列 +/** + * 用一个单调队列来存储对应的下标,每当窗口滑动的时候,直接取队列的头部指针对应的值放入结果集即可 + * 单调队列类似 (tail -->) 3 --> 2 --> 1 --> 0 (--> head) (右边为头结点,元素存的是下标) + */ +class Solution { + public int[] maxSlidingWindow(int[] nums, int k) { + ArrayDeque deque = new ArrayDeque<>(); + int n = nums.length; + int[] res = new int[n - k + 1]; + int idx = 0; + for(int i = 0; i < n; i++) { + // 根据题意,i为nums下标,是要在[i - k + 1, k] 中选到最大值,只需要保证两点 + // 1.队列头结点需要在[i - k + 1, k]范围内,不符合则要弹出 + while(!deque.isEmpty() && deque.peek() < i - k + 1){ + deque.poll(); + } + // 2.既然是单调,就要保证每次放进去的数字要比末尾的都大,否则也弹出 + while(!deque.isEmpty() && nums[deque.peekLast()] < nums[i]) { + deque.pollLast(); + } + + deque.offer(i); + + // 因为单调,当i增长到符合第一个k范围的时候,每滑动一步都将队列头节点放入结果就行了 + if(i >= k - 1){ + res[idx++] = nums[deque.peek()]; + } + } + return res; + } +} ``` Python: