HDU - 5088: Revenge of Nim II (问是否存在子集的异或为0)
Nim is a mathematical game of strategy in which two players take turns removing objects from distinct heaps. On each turn, a player must remove at least one object, and may remove any number of objects provided they all come from the same heap.
---Wikipedia
Today, Nim takes revenge on you, again. As you know, the rule of Nim game is rather unfair, only the nim-sum (♁) of the sizes of the heaps is zero will the first player lose. To ensure the fairness of the game, the second player has a chance to move some (can be zero) heaps before the game starts, but he has to move one heap entirely, i.e. not partially. Of course, he can’t move all heaps out, at least one heap should be left for playing. Will the second player have the chance to win this time?
---Wikipedia
Today, Nim takes revenge on you, again. As you know, the rule of Nim game is rather unfair, only the nim-sum (♁) of the sizes of the heaps is zero will the first player lose. To ensure the fairness of the game, the second player has a chance to move some (can be zero) heaps before the game starts, but he has to move one heap entirely, i.e. not partially. Of course, he can’t move all heaps out, at least one heap should be left for playing. Will the second player have the chance to win this time?
InputThe first line contains a single integer T, indicating the number of test cases.
Each test case begins with an integer N, indicating the number of heaps. Then N integer Ai follows, indicating the number of each heap.
[Technical Specification]
1. 1 <= T <= 100
2. 1 <= N <= 1 000
3. 1 <= Ai <= 1 000 000 000 000OutputFor each test case, output “Yes” if the second player can win by moving some (can be zero) heaps out, otherwise “No”.Sample Input
3 1 2 3 2 2 2 5 1 2 3 4 5
Sample Output
No Yes Yes
Hint
For the third test case, the second player can move heaps with 4 and 5 objects out, so the nim-sum of the sizes of the left heaps is 1♁2♁3 = 0.
把上一题的S改为0即可。依然占位。
#include<bits/stdc++.h> #define lowbit(x) (x&-x) #define ll long long #define rep(i,a,b) for(int i=a;i<=b;i++) using namespace std; const int maxn=10100; ll a[maxn],x1[maxn],x2[maxn],c[65]; int main() { int T,N,cnt; scanf("%d",&T); while(T--){ scanf("%d",&N); rep(i,1,N) scanf("%lld",&a[i]); if(N==1) puts("No"); else { ll S=0; cnt=0; rep(i,0,42) c[i]=0; rep(i,1,N){ rep(j,1,cnt){ if(a[i]&lowbit(c[j])) a[i]^=c[j]; }if(a[i]!=0) c[++cnt]=a[i]; } rep(i,1,cnt) if(S&lowbit(c[i])) S^=c[i]; if(S!=0||cnt==N) puts("No"); else puts("Yes"); } } return 0; }
It is your time to fight!