每个数的SG值之和他有多少个1相关
打表复杂度:找K个有序的<n的非负数的复杂度为nk/(k!)
则这题的SG打表复杂度为648/7! 为1e10左右
void dfs(int cur, int yu, int ans, int next) { if(yu==0) { vis[ans]=1; return ; } for(int i=next; i<cur; i++) dfs(cur, yu-1, ans^sg[i], i); } void init() { sg[0]=0; for(int i=1;i<=64; i++) { memset(vis,0,sizeof(vis)); dfs(i, 7, 0, 0); for(int j=0;;j++) if(!vis[j]) { sg[i]=j; break; } printf("%d\n", sg[i]); } }
#include <bits/stdc++.h> using namespace std; typedef unsigned long long uLL; int sg[] = {0, 1, 2, 4, 8, 16, 32, 64, 128, 255, 256, 512, 1024, 2048, 3855, 4096, 8192, 13107, 16384, 21845, 27306, 32768, 38506, 65536, 71576, 92115, 101470, 131072, 138406, 172589, 240014, 262144, 272069, 380556, 524288, 536169, 679601, 847140, 1048576, 1072054, 1258879, 1397519, 2005450, 2097152, 2121415, 2496892, 2738813, 3993667, 4194304, 4241896, 4617503, 5821704, 7559873, 8388608, 8439273, 8861366, 11119275, 11973252, 13280789, 16777216, 16844349, 17102035, 19984054, 21979742, 23734709 }; int cal(uLL x) { int ret=0; for(int i=0;i<64;i++) if((x>>i)&1) ret++; return ret; } int main() { int n; while(cin>>n) { int ans=0; while(n--) { uLL t; cin>>t; ans ^= sg[cal(t)]; } if(ans) puts("B"); else puts("L"); } }