4.11百度度小满笔试
4.11百度度小满java笔试16:00-17:30
20道选择 2道编程(没想到还有选择 甚至还有多选
选择题
计网(ip地址)、OS(死锁)、算法知识(dp,prim算法)、java知识
编程题
1、n个灯 都开着 给m个数 每个数代表关闭i-n号灯
求每个灯的第一次关闭时间
简单题,因为求第一次关掉的时间,非常简单,每次更新最小值即可
public static void main(String[] args) { Scanner sc = new Scanner(System.in); int n = sc.nextInt(); int m = sc.nextInt(); int[] nums = new int[m]; int[] time = new int[n + 1]; for (int i = 0; i < m; i++) { nums[i] = sc.nextInt(); } int min = n + 1; for (int i = 0; i < m; i++) { if (nums[i] < min) { for (int j = nums[i]; j < min; j++) { time[j] = i + 1; } min = nums[i]; } } for (int i = 1; i <= n; i++) { if (i == n) System.out.print(time[i]); else System.out.print(time[i] + " "); } }
2、给定一个长度为n的字符串,求其中最长重复字符序列长度,同时有k次机会更改字符串
即 aaabbbccc k = 1
则输出 4
aaabaaac k = 1
输出 7 (b改为a)
滑动窗口即可
public static void main(String[] args) { Scanner sc = new Scanner(System.in); int n = sc.nextInt(); int k = sc.nextInt(); String s = sc.next(); int startIndex = 0, maxLen = 0, maxTimes = 1; int[] times = new int[128]; times[s.charAt(0)]++; for (int i = 1; i < n; i++) { char c = s.charAt(i); times[c]++; maxTimes = Math.max(times[c], maxTimes); int windowLen = i - startIndex + 1; if (windowLen > maxTimes + k) { times[s.charAt(startIndex)]--; startIndex++; } else { maxLen = Math.max(maxLen, windowLen); } } System.out.println(maxLen); }#度小满##Java工程师##笔经#