add #28 #29 python implement

2018-10-17 19:48:49 +08:00 · 2018-10-17 19:48:49 +08:00 · 5ac6f65910
commit 5ac6f65910
parent d31cff59f5
1 changed files with 115 additions and 0 deletions
--- a/notes/面试总结.md
+++ b/notes/面试总结.md
@ -30,6 +30,8 @@
 * [25. 合并两个排序的链表](#25-合并两个排序的链表)
 * [26. 树的子结构](#26-树的子结构)
 * [27. 二叉树的镜像](#27-二叉树的镜像)
 * [28 对称的二叉树](#28-对称的二叉树)
 * [29. 顺时针打印矩阵](#29-顺时针打印矩阵)
 * [参考文献](#参考文献)
 <!-- GFM-TOC -->
@ -2069,6 +2071,119 @@ class Solution:
    def swap(self, root):
        root.left, root.right = root.right, root.left
 ```
 # 28 对称的二叉树
 [NowCder](https://www.nowcoder.com/practice/ff05d44dfdb04e1d83bdbdab320efbcb?tpId=13&tqId=11211&tPage=1&rp=1&ru=/ta/coding-interviews&qru=/ta/coding-interviews/question-ranking)
 ## 题目描述
 <div align="center"> <img src="../pics//f42443e0-208d-41ea-be44-c7fd97d2e3bf.png" width="300"/> </div><br>
 ## 解题思路
 ```java
 boolean isSymmetrical(TreeNode pRoot) {
    if (pRoot == null)
        return true;
    return isSymmetrical(pRoot.left, pRoot.right);
 }
 boolean isSymmetrical(TreeNode t1, TreeNode t2) {
    if (t1 == null && t2 == null)
        return true;
    if (t1 == null || t2 == null)
        return false;
    if (t1.val != t2.val)
        return false;
    return isSymmetrical(t1.left, t2.right) && isSymmetrical(t1.right, t2.left);
 }
 ```
 ```python
 # -*- coding:utf-8 -*-
 # class TreeNode:
 #     def __init__(self, x):
 #         self.val = x
 #         self.left = None
 #         self.right = None
 class Solution:
    def isSymmetrical(self, pRoot):
        # write code here
        if pRoot == None:
            return True
        return self._isSymmetrical(pRoot.left, pRoot.right)
    def _isSymmetrical(self, t1, t2):
        if t1 == None and t2 == None:
            return True
        if t1 == None or t2 == None:
            return False
        if t1.val != t2.val:
            return False
        return self._isSymmetrical(t1.left, t2.right) and self._isSymmetrical(t1.right, t2.left)
 ```
 # 29. 顺时针打印矩阵
 [NowCoder](https://www.nowcoder.com/practice/9b4c81a02cd34f76be2659fa0d54342a?tpId=13&tqId=11172&tPage=1&rp=1&ru=/ta/coding-interviews&qru=/ta/coding-interviews/question-ranking)
 ## 题目描述
 下图的矩阵顺时针打印结果为：1, 2, 3, 4, 8, 12, 16, 15, 14, 13, 9, 5, 6, 7, 11, 10
 <div align="center"> <img src="../pics//6539b9a4-2b24-4d10-8c94-2eb5aba1e296.png" width="300"/> </div><br>
 ## 解题思路
 ```java
 public ArrayList<Integer> printMatrix(int[][] matrix) {
    ArrayList<Integer> ret = new ArrayList<>();
    int r1 = 0, r2 = matrix.length - 1, c1 = 0, c2 = matrix[0].length - 1;
    while (r1 <= r2 && c1 <= c2) {
        for (int i = c1; i <= c2; i++)
            ret.add(matrix[r1][i]);
        for (int i = r1 + 1; i <= r2; i++)
            ret.add(matrix[i][c2]);
        if (r1 != r2)
            for (int i = c2 - 1; i >= c1; i--)
                ret.add(matrix[r2][i]);
        if (c1 != c2)
            for (int i = r2 - 1; i > r1; i--)
                ret.add(matrix[i][c1]);
        r1++; r2--; c1++; c2--;
    }
    return ret;
 }
 ```
 ```python
 # -*- coding:utf-8 -*-
 class Solution:
    # matrix类型为二维列表，需要返回列表
    def printMatrix(self, matrix):
        # write code here
        len_row = len(matrix)
        len_column = len(matrix[0])
        print_list = []
        if(len_row == 0):
            return print_list
        for i in range(0,(min(len_row,len_column)-1)/2+1):#圈数
            #四条边打印+终止检测
            #注意打印个数处理即可
            for j in range(i,len_column-i):
                print_list.append(matrix[i][j])
            for j in range(i+1,len_row-i):
                print_list.append(matrix[j][len_column-i-1])
            if (len_row-1-i == i):
                return print_list
            for j in range(i+1,len_column-i):
                print_list.append(matrix[len_row-i-1][len_column-j-1])
            if (len_column-1-i == i):
                return print_list
            for j in range(i+1,len_row-i-1):
                print_list.append(matrix[len_row-j-1][i])
        return print_list
 ```
 # 参考文献