Note: This is an extension of House Robber.
After robbing those houses on that street, the thief has found himself a new place for his thievery so that he will not get too much attention. This time, all houses at this place are arranged in a circle. That means the first house is the neighbor of the last one. Meanwhile, the security system for these houses remain the same as for those in the previous street.
Given a list of non-negative integers representing the amount of money of each house, determine the maximum amount of money you can rob tonight without alerting the police.
Credits:Special thanks to @Freezen for adding this problem and creating all test cases.
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题目
在上次打劫完一条街道之后,窃贼又发现了一个新的可以打劫的地方,但这次所有的房子围成了一个圈,这就意味着第一间房子和最后一间房子是挨着的。每个房子都存放着特定金额的钱。你面临的唯一约束条件是:相邻的房子装着相互联系的防盗系统,且 当相邻的两个房子同一天被打劫时,该系统会自动报警。
给定一个非负整数列表,表示每个房子中存放的钱, 算一算,如果今晚去打劫,你最多可以得到多少钱 在不触动报警装置的情况下。
注意事项
这题是House Robber的扩展,只不过是由直线变成了圈
样例
给出nums = [3,6,4], 返回 6, 你不能打劫3和4所在的房间,因为它们围成一个圈,是相邻的.
分析
打劫房屋问题的扩展,要求首尾不能相连,那就调用上一题中的方法两次,第一次不包括尾,第二次不包括首,最后求出最大就可以了
代码
public class Solution {
public int rob(int[] nums) {
if (nums.length == 0) {
return 0;
}
if (nums.length == 1) {
return nums[0];
}
return Math.max(robber1(nums, 0, nums.length - 2), robber1(nums, 1, nums.length - 1));
}
public int robber1(int[] nums, int start, int end) {
if(start == end)
return nums[start];
if(end == start+1)
return Math.max(nums[start], nums[start+1]);
int[] dp = new int[end-start+2];
dp[start] = nums[start];
dp[start+1] = Math.max(nums[start], nums[start+1]);
for(int i=start+2;i<=end;i++)
dp[i] = Math.max(dp[i-1], dp[i-2] + nums[i]);
return dp[end];
}
}
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方法二
public class Solution {
public int rob(int[] nums) {
if (nums.length == 1) return nums[0];
return Math.max(rob(nums, 0, nums.length - 2), rob(nums, 1, nums.length - 1));
}
private int rob(int[] num, int lo, int hi) {
int include = 0, exclude = 0;
for (int j = lo; j <= hi; j++) {
int i = include, e = exclude;
include = e + num[j];
exclude = Math.max(e, i);
}
return Math.max(include, exclude);
}
}
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