时代进步了, 周末也可以约面试, 不用请假去面试。现在有专业的面试公司帮助雇主进行面试.
We've partnered with Kxxxx to conduct this portion of our hiring process because they give you great scheduling flexibility (nights and weekends),
offer a no-questions-asked Redo Opportunity and they're experts at delivering fair, unbiased assessments.
既然他们可以提供重做一次, 我明天发邮件申请再来一个面试. 我的目的就是未来练习面试. 多好的机会.
今天电话面试主菜, 我只做到第二道题. 应该还有第三道,第 4 道.
第一道题目是模拟枚举类. 分类统计每个域名的访问次数. 比如:
输入:
aa.bb.com : 10
bb.com : 20
cc.com : 80
com 100
返回结果:
aa.bb.com : 10
bb.com : 20 + 10 = 30
com : 100 + 10 + 20 + 80 = 210
第2道题是求两个数组的最长公共子序列,咱没有系统的学动态规划,没有做出来,看了答案十几分钟看懂了。
https://www.lintcode.com/problem/longest-common-subsequence 原题.
思路: 动态规划, 可以用滚动数组优化空间复杂度.
转移方程: 如果前一个元素相同, 当前长度加一; 如果不等, 取前面的两种情况的最长的.
def longestCommonSubsequence(self, A, B): m, n = len(A), len(B) f = [[0] * (n + 1) for _ in range(m + 1)] for i in range(1, m + 1): for j in range(1, n + 1): if A[i - 1] == B[j - 1]: f[i][j] = f[i - 1][j - 1] + 1 else: f[i][j] = max(f[i][j - 1], f[i - 1][j]) return f[m][n]
Variant 本题有一点包装或者迷惑. 数组是一些单词, 返回最长的字符串.:
1 class Solution: 2 """ 3 @param A: A string 4 @param B: A string 5 @return: The length of longest common subsequence of A and B 6 """ 7 def longestCommonSubsequence(self, A, B): 8 res = "" 9 m, n = len(A), len(B) 10 f = [[0] * (n + 1) for _ in range(m + 1)] 11 fs = [[""] * (n + 1) for _ in range(m + 1)] 12 for i in range(1, m + 1): 13 for j in range(1, n + 1): 14 if A[i - 1] == B[j - 1]: 15 f[i][j] = f[i - 1][j - 1] + 1 16 fs[i][j] = fs[i - 1][j - 1] + A[i - 1] 17 else: 18 f[i][j] = max(f[i][j - 1], f[i - 1][j]) 19 if f[i][j - 1] > f[i - 1][j]: 20 fs[i][j] = fs[i][j - 1] 21 else: 22 fs[i][j] = fs[i - 1][j] 23 return fs[m][n] 24 25 26 o = Solution() 27 A = "abcfd" 28 B = "eacbf" 29 30 ans = o.longestCommonSubsequence(A, B) 31 print(ans)
今天还问了一些概念题都是我的短板,谁帮忙给答一下。
Composition and inheritance. 面向对象设计它们之间的差别是什么?各自的优缺点是什么? 能举个例子吗?
What is dependency injection? 也能举个例子吗?
概念题有5类,
产品,前端,操作系统,面向对象,还有测试, 我都不行,就选了操作系统和面向对象。
下回我试试产品和测试。