LeetCode997.Find the Town Judge(找到小镇的法官)
997.Find the Town Judge(找到小镇的法官)
Description
In a town, there are N people labelled from 1 to N. There is a rumor that one of these people is secretly the town judge.
If the town judge exists, then:
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The town judge trusts nobody.
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Everybody (except for the town judge) trusts the town judge.
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There is exactly one person that satisfies properties 1 and 2.
You are given trust, an array of pairs trust[i] = [a, b] representing that the person labelled a trusts the person labelled b.
If the town judge exists and can be identified, return the label of the town judge. Otherwise, return -1.
在一个小镇里,按从 1 到 N 标记了 N 个人。传言称,这些人中有一个是小镇上的秘密法官。
如果小镇的法官真的存在,那么:
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小镇的法官不相信任何人。
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每个人(除了小镇法官外)都信任小镇的法官。
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只有一个人同时满足属性 1 和属性 2 。
给定数组 trust,该数组由信任对 trust[i] = [a, b] 组成,表示标记为 a 的人信任标记为 b 的人。
如果小镇存在秘密法官并且可以确定他的身份,请返回该法官的标记。否则,返回 -1。
题目链接:https://leetcode.com/problems/find-the-town-judge/
个人主页:http://redtongue.cn or https://redtongue.github.io/
Difficulty: easy
Example 1:
Input: N = 2, trust = [[1,2]]
Output: 2
Example 2:
Input: N = 3, trust = [[1,3],[2,3]]
Output: 3
Example 3:
Input: N = 3, trust = [[1,3],[2,3],[3,1]]
Output: -1
Example 4:
Input: N = 3, trust = [[1,2],[2,3]]
Output: -1
Example 5:
Input: N = 4, trust = [[1,3],[1,4],[2,3],[2,4],[4,3]]
Output: 3
Note:
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1 <= N <= 1000
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trust.length <= 10000
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trust[i] are all different
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trust[i][0] != trust[i][1]
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1 <= trust[i][0], trust[i][1] <= N
分析
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初始化字典A,每一项代表每个人被那些人信任;
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对于任意trust,a信任b,从A中删除a;
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同时若b在A中,则将a添加为信任b的list中;
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返回A中被信任N-1次的人,若无,返回-1。
参考代码
class Solution:
def findJudge(self, N: int, trust: List[List[int]]) -> int:
A={}
for i in range(N):
A[i+1]=[]
for t in trust:
x,y=t
if(x in A):
A.pop(x)
if(y in A):
A[y].append(x)
for a in A:
if(len(A[a])==N-1):
return a
return -1