Problem Description The famous "Alice and Bob" are playing a game again. So now comes the new problem which need a person smart as you to decide the winner. The problem is as follows: They are playing on a rectangle paper, Alice and Bob take tur…

题目描述 众所周知,Alice和Bob非常喜欢博弈,而且Alice永远是先手,Bob永远是后手. Alice和Bob面前有3堆石子,Alice和Bob每次轮流拿某堆石子中的若干个石子(不可以是0个),拿到所有石子中最后一个石子的人获胜.这是一个只有3堆石子的Nim游戏. Bob错误的认为,三堆石子的Nim游戏只需要少的两堆的石子数量加起来等于多的那一堆,后手就一定会胜利.所以,Bob把三堆石子的数量分别设为 {k,4k,5k}(k>0). 现在Alice想要知道,在k 小于 2^n 的时候,有多…

http://acm.sdut.edu.cn/sdutoj/problem.php?action=showproblem&problemid=2608 Alice and Bob Time Limit: 1000ms   Memory limit: 65536K  有疑问?点这里^_^ 题目描述 Alice and Bob like playing games very much.Today, they introduce a new game. There is a polynomial li…

Alice and Bob Time Limit:3000MS     Memory Limit:128000KB     64bit IO Format:%lld & %llu Submit Status Practice ACdream 1112 Description Here  is Alice and Bob again ! Alice and Bob are playing a game. There are several numbers. First, Alice choose…

题目描述 Alice和Bob正在一棵树上玩游戏.这棵树有\(n\)个结点,编号由\(1\)到\(n\).他们一共玩\(q\)盘游戏. 在第\(i\)局游戏中,Alice从结点\(a_i\)出发,Bob从结点\(b_i\)出发.开始时,除了\(a_i\)和\(b_i\)这两个结点外,所有结点都没有染色.结点\(a_i\)被Alice染色,结点\(b_i\)被Bob染色. 接下来,两位玩家轮流移动,两位玩家移动步数之和为\(k_i\)步.Alice走第一步,Bob走第二步,Alice走第三步\(\c…

题目传送门 题意:Alice和 Bob轮流写数字,假设第 i 次的数字是S[i] ,那么第 i+1 次的数字 S[i+1] = S[i] + d[k] 或 S[i] - d[k],条件是 S[i+1] <= n && S[i-1]<S[i+1] 分析:设d[]最小的数字为mn,除此之外设为d,第一次A写了0,第二次B如果写了d,那么A可以写d - mn,确保自己有数直到胜利:如果B第一次写了mn,那么以后的数都只能加mn直到>n,这个很好判断谁胜利. 收获:博弈题想到了就…

It is so boring in the summer holiday, isn't it? So Alice and Bob have invented a new game to play. The rules are as follows. First, they get a set of n distinct integers. And then they take turns to make the following moves. During each move, either…

Alice and Bob Time Limit: 10000/5000 MS (Java/Others)    Memory Limit: 131072/131072 K (Java/Others)Total Submission(s): 147    Accepted Submission(s): 22 Problem Description As you know, Alice and Bob always play game together, and today they get a…

Description Alice和Bob在玩游戏.有n个节点,m条边(0<=m<=n-1),构成若干棵有根树,每棵树的根节点是该连通块内编号最 小的点.Alice和Bob轮流操作,每回合选择一个没有被删除的节点x,将x及其所有祖先全部删除,不能操作的人输 .注:树的形态是在一开始就确定好的,删除节点不会影响剩余节点父亲和儿子的关系.比如:1-3-2 这样一条链 ,1号点是根节点,删除1号点之后,3号点还是2号点的父节点.问有没有先手必胜策略.n约为10w. 显然只要算出每颗子树的sg值就可以…

Alice and Bob Time Limit: 1000ms   Memory limit: 65536K 题目描述 Alice and Bob like playing games very much.Today, they introduce a new game. There is a polynomial like this: (a0*x^(2^0)+1) * (a1 * x^(2^1)+1)*.......*(an-1 * x^(2^(n-1))+1). Then Alice as…