> 如果阅读时,发现错误,或者动画不可以显示的问题可以添加我微信好友 **[tan45du_one](https://raw.githubusercontent.com/tan45du/tan45du.github.io/master/个人微信.15egrcgqd94w.jpg)** ,备注 github + 题目 + 问题 向我反馈 > > 感谢支持,该仓库会一直维护,希望对各位有一丢丢帮助。 > > 另外希望手机阅读的同学可以来我的 [**公众号:程序厨**](https://raw.githubusercontent.com/tan45du/test/master/微信图片_20210320152235.2pthdebvh1c0.png) 两个平台同步,想要和题友一起刷题,互相监督的同学,可以在我的小屋点击[**刷题小队**](https://raw.githubusercontent.com/tan45du/test/master/微信图片_20210320152235.2pthdebvh1c0.png)进入。 ### [59.螺旋矩阵 II](https://leetcode-cn.com/problems/spiral-matrix-ii) 给你一个正整数 `n` ,生成一个包含 `1` 到 `n2` 所有元素,且元素按顺时针顺序螺旋排列的 `n x n` 正方形矩阵 `matrix` 。 **示例 1:** > 输入:n = 3 > 输出:[[1,2,3],[8,9,4],[7,6,5]] **示例 2:** > 输入:n = 1 > 输出:[[1]] 其实我们只要做过了螺旋矩阵 第一题,这个题目我们完全可以一下搞定,几乎没有进行更改,我们先来看下 **leetcode 54** 题的解析。 ### leetcode 54 螺旋矩阵 题目描述 _给定一个包含 m_ x n 个元素的矩阵(m 行, n 列),请按照顺时针螺旋顺序,返回矩阵中的所有元素。 示例一 > 输入:matrix = [[1,2,3],[4,5,6],[7,8,9]] > 输出:[1,2,3,6,9,8,7,4,5] 示例二 > 输入:matrix = [[1,2,3,4],[5,6,7,8],[9,10,11,12]] > 输出:[1,2,3,4,8,12,11,10,9,5,6,7] 这个题目很细非常细,思路很容易想到,但是要是完全实现也不是特别容易,我们一起分析下这个题目,我们可以这样理解,我们像剥洋葱似的一步步的剥掉外皮,直到遍历结束,见下图。 _![螺旋矩阵](https://pic.leetcode-cn.com/1615813563-uUiWlF-file_1615813563382)_ 题目很容易理解,但是要想完全执行出来,也是不容易的,因为这里面的细节太多了,我们需要认真仔细的考虑边界。 我们也要考虑重复遍历的情况即什么时候跳出循环。刚才我们通过箭头知道了我们元素的遍历顺序,这个题目也就完成了一大半了,下面我们来讨论一下什么时候跳出循环,见下图。 注:这里需要注意的是,框框代表的是每个边界。 ![](https://img-blog.csdnimg.cn/20210318095839543.gif) 题目代码: Java Code: ```java class Solution { public List spiralOrder(int[][] matrix) { List arr = new ArrayList<>(); int left = 0, right = matrix[0].length-1; int top = 0, down = matrix.length-1; while (true) { for (int i = left; i <= right; ++i) { arr.add(matrix[top][i]); } top++; if (top > down) break; for (int i = top; i <= down; ++i) { arr.add(matrix[i][right]); } right--; if (left > right) break; for (int i = right; i >= left; --i) { arr.add(matrix[down][i]); } down--; if (top > down) break; for (int i = down; i >= top; --i) { arr.add(matrix[i][left]); } left++; if (left > right) break; } return arr; } } ``` Python3 Code: ```python from typing import List class Solution: def spiralOrder(self, matrix: List[List[int]])->List[int]: arr = [] left = 0 right = len(matrix[0]) - 1 top = 0 down = len(matrix) - 1 while True: for i in range(left, right + 1): arr.append(matrix[top][i]) top += 1 if top > down: break for i in range(top, down + 1): arr.append(matrix[i][right]) right -= 1 if left > right: break for i in range(right, left - 1, -1): arr.append(matrix[down][i]) down -= 1 if top > down: break for i in range(down, top - 1, -1): arr.append(matrix[i][left]) left += 1 if left > right: break return arr ``` C++ Code: ```cpp class Solution { public: vector spiralOrder(vector>& matrix) { vector arr; int left = 0, right = matrix[0].size()-1; int top = 0, down = matrix.size()-1; while (true) { for (int i = left; i <= right; ++i) { arr.emplace_back(matrix[top][i]); } top++; if (top > down) break; for (int i = top; i <= down; ++i) { arr.emplace_back(matrix[i][right]); } right--; if (left > right) break; for (int i = right; i >= left; --i) { arr.emplace_back(matrix[down][i]); } down--; if (top > down) break; for (int i = down; i >= top; --i) { arr.emplace_back(matrix[i][left]); } left++; if (left > right) break; } return arr; } }; ``` Swift Code: ```swift class Solution { func spiralOrder(_ matrix: [[Int]]) -> [Int] { var arr:[Int] = [] var left = 0, right = matrix[0].count - 1 var top = 0, down = matrix.count - 1 while (true) { for i in left...right { arr.append(matrix[top][i]) } top += 1 if top > down { break } for i in top...down { arr.append(matrix[i][right]) } right -= 1 if left > right { break} for i in stride(from: right, through: left, by: -1) { arr.append(matrix[down][i]) } down -= 1 if top > down { break} for i in stride(from: down, through: top, by: -1) { arr.append(matrix[i][left]) } left += 1 if left > right { break} } return arr } } ``` 我们仅仅是将 54 反过来了,往螺旋矩阵里面插值,下面我们直接看代码吧,大家可以也可以对其改进,大家可以思考一下,如果修改能够让代码更简洁! Java Code: ```java class Solution { public int[][] generateMatrix(int n) { int[][] arr = new int[n][n]; int left = 0; int right = n-1; int top = 0; int buttom = n-1; int num = 1; int numsize = n*n; while (true) { for (int i = left; i <= right; ++i) { arr[top][i] = num++; } top++; if (num > numsize) break; for (int i = top; i <= buttom; ++i) { arr[i][right] = num++; } right--; if (num > numsize) break; for (int i = right; i >= left; --i) { arr[buttom][i] = num++; } buttom--; if (num > numsize) break; for (int i = buttom; i >= top; --i) { arr[i][left] = num++; } left++; if (num > numsize) break; } return arr; } } ``` Python3 Code: ```python from typing import List import numpy as np class Solution: def generateMatrix(self, n: int)->List[List[int]]: arr = np.array([[0] * n] * n) left = 0 right = n - 1 top = 0 buttom = n - 1 num = 1 numsize = n * n while True: for i in range(left, right + 1): arr[top][i] = num num += 1 top += 1 if num > numsize: break for i in range(top, buttom + 1): arr[i][right] = num num += 1 right -= 1 if num > numsize: break for i in range(right, left - 1, -1): arr[buttom][i] = num num += 1 buttom -= 1 if num > numsize: break for i in range(buttom, top - 1, -1): arr[i][left] = num num += 1 left += 1 if num > numsize: break return arr.tolist() ``` C++ Code: ```cpp class Solution { public: vector> generateMatrix(int n) { vector > arr(n, vector (n)); int left = 0, right = n-1, top = 0, buttom = n - 1, num = 1, numsize = n * n; while (true) { for (int i = left; i <= right; ++i) { arr[top][i] = num++; } top++; if (num > numsize) break; for (int i = top; i <= buttom; ++i) { arr[i][right] = num++; } right--; if (num > numsize) break; for (int i = right; i >= left; --i) { arr[buttom][i] = num++; } buttom--; if (num > numsize) break; for (int i = buttom; i >= top; --i) { arr[i][left] = num++; } left++; if (num > numsize) break; } return arr; } }; ``` Swift Code: ```swift class Solution { func generateMatrix(_ n: Int) -> [[Int]] { var arr:[[Int]] = Array.init(repeating: Array.init(repeating: 0, count: n), count: n) var left = 0, right = n - 1 var top = 0, bottom = n - 1 var num = 1, numSize = n * n while true { for i in left...right { arr[top][i] = num num += 1 } top += 1 if num > numSize { break} for i in top...bottom { arr[i][right] = num num += 1 } right -= 1 if num > numSize { break} for i in stride(from: right, through: left, by: -1) { arr[bottom][i] = num num += 1 } bottom -= 1 if num > numSize { break} for i in stride(from: bottom, through: top, by: -1) { arr[i][left] = num num += 1 } left += 1 if num > numSize { break} } return arr } } ``` Go Code: ```go func generateMatrix(n int) [][]int { res := make([][]int, n) for i := 0; i < n; i++ { res[i] = make([]int, n) } left, right := 0, n - 1 top, buttom := 0, n - 1 size, num := n * n, 1 for { for i := left; i <= right; i++ { res[top][i] = num num++ } top++ if num > size { break } for i := top; i <= buttom; i++ { res[i][right] = num num++ } right-- if num > size { break } for i := right; i >= left; i-- { res[buttom][i] = num num++ } buttom-- if num > size { break } for i := buttom; i >= top; i-- { res[i][left] = num num++ } left++ if num > size { break } } return res } ```