John
Time Limit: 5000/1000 MS (Java/Others) Memory Limit: 65535/32768 K (Java/Others)
Total Submission(s): 6162 Accepted Submission(s): 3584
Problem Description
Little John is playing very funny game with his younger brother. There is one big box filled with M&Ms of different colors. At first John has to eat several M&Ms of the same color. Then his opponent has to make a turn. And so on. Please note that each player has to eat at least one M&M during his turn. If John (or his brother) will eat the last M&M from the box he will be considered as a looser and he will have to buy a new candy box.
Both of players are using optimal game strategy. John starts first always. You will be given information about M&Ms and your task is to determine a winner of such a beautiful game.
Both of players are using optimal game strategy. John starts first always. You will be given information about M&Ms and your task is to determine a winner of such a beautiful game.
Input
The first line of input will contain a single integer T – the number of test cases. Next T pairs of lines will describe tests in a following format. The first line of each test will contain an integer N – the amount of different M&M colors in a box. Next line will contain N integers Ai, separated by spaces – amount of M&Ms of i-th color.
Constraints:
1 <= T <= 474,
1 <= N <= 47,
1 <= Ai <= 4747
Constraints:
1 <= T <= 474,
1 <= N <= 47,
1 <= Ai <= 4747
Output
Output T lines each of them containing information about game winner. Print “John” if John will win the game or “Brother” in other case.
Sample Input
2
3
3 5 1
1
1
Sample Output
John
Brother
题意:有n给糖果,每种有ai颗,两个人每次都从一堆中吃几颗,不能不吃。吃掉最后一颗的人算输。John先吃,问最后谁会赢。
题解:nim博弈。先手必胜的结论有两个:(1)当所有种类糖果数量都是1的时候,就先手必胜,因为你拿一个我拿一个,最后一个肯定是另一个人拿的。(2)有充裕堆(存在一堆中的糖果数大于1的情况)的时候,异或和为0,先手必败,不为0,先手必胜。
反nim博弈的结论
1 #include<bits/stdc++.h> 2 using namespace std; 3 int main() { 4 int t; 5 while(~scanf("%d",&t)) 6 { 7 while(t--) 8 { 9 int n; 10 scanf("%d",&n); 11 int ai; 12 int ans=0;int num=0; 13 for(int i=0;i<n;i++) 14 { 15 scanf("%d",&ai); 16 ans=ans^ai; 17 if(ai>1)num++; 18 } 19 if(num)//有充裕堆,异或和不为0胜 20 { 21 if(ans==0)printf("Brother ") ; 22 else printf("John "); 23 } 24 else 25 { 26 if(ans==0)//有偶数个,且每个都为1 27 { 28 printf("John "); 29 }else 30 { 31 printf("Brother ") ; 32 } 33 } 34 } 35 } 36 return 0; 37 }