首页 > 代码库 > HDOJ 5299 Circles Game 圆嵌套+树上SG
HDOJ 5299 Circles Game 圆嵌套+树上SG
将全部的圆化成树,然后就能够转化成树上的删边博弈问题....
Circles Game
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/65536 K (Java/Others)Total Submission(s): 881 Accepted Submission(s): 255
Problem Description
There are n circles on a infinitely large table.With every two circle, either one contains another or isolates from the other.They are never crossed nor tangent.
Alice and Bob are playing a game concerning these circles.They take turn to play,Alice goes first:
1、Pick out a certain circle A,then delete A and every circle that is inside of A.
2、Failling to find a deletable circle within one round will lost the game.
Now,Alice and Bob are both smart guys,who will win the game,output the winner‘s name.
Alice and Bob are playing a game concerning these circles.They take turn to play,Alice goes first:
1、Pick out a certain circle A,then delete A and every circle that is inside of A.
2、Failling to find a deletable circle within one round will lost the game.
Now,Alice and Bob are both smart guys,who will win the game,output the winner‘s name.
Input
The first line include a positive integer T<=20,indicating the total group number of the statistic.
As for the following T groups of statistic,the first line of every group must include a positive integer n to define the number of the circles.
And the following lines,each line consists of 3 integers x,y and r,stating the coordinate of the circle center and radius of the circle respectively.
n≤20000,|x|≤20000,|y|≤20000。r≤20000。
As for the following T groups of statistic,the first line of every group must include a positive integer n to define the number of the circles.
And the following lines,each line consists of 3 integers x,y and r,stating the coordinate of the circle center and radius of the circle respectively.
n≤20000,|x|≤20000,|y|≤20000。r≤20000。
Output
If Alice won,output “Alice”,else output “Bob”
Sample Input
2 1 0 0 1 6 -100 0 90 -50 0 1 -20 0 1 100 0 90 47 0 1 23 0 1
Sample Output
Alice Bob
Author
FZUACM
Source
field=problem&key=2015+Multi-University+Training+Contest+1&source=1&searchmode=source" style="color:rgb(26,92,200); text-decoration:none">2015 Multi-University Training Contest 1
#include <iostream> #include <cstdio> #include <cstring> #include <algorithm> #include <cmath> #include <vector> using namespace std; #pragma comment(linker, "/STACK:1024000000,1024000000") const int maxn=20200; int n; struct Circle { int x,y,r; bool operator<(const Circle& cir) const { return r>cir.r; } }circle[maxn]; double dist(int a,int b) { return sqrt((circle[a].x-circle[b].x)*(circle[a].x-circle[b].x) +(circle[a].y-circle[b].y)*(circle[a].y-circle[b].y)); } vector<int> edge[maxn]; void Link(int u,int x) { bool fg=true; for(int i=0,sz=edge[u].size();i<sz;i++) { int v=edge[u][i]; double dd=dist(x,v); if(dd+circle[x].r>circle[v].r) continue; fg=false; Link(v,x); return ; } if(fg) edge[u].push_back(x); } int dp[maxn]; void dfs(int u) { int ret=-1; for(int i=0,sz=edge[u].size();i<sz;i++) { int v=edge[u][i]; dfs(v); if(ret==-1) ret=dp[v]+1; else ret^=dp[v]+1; } if(ret==-1) ret=0; dp[u]=ret; } int main() { int T_T; scanf("%d",&T_T); while(T_T--) { scanf("%d",&n); for(int i=1,x,y,r;i<=n;i++) { scanf("%d%d%d",&x,&y,&r); //circle[i]=(Circle){x,y,r}; circle[i].x=x; circle[i].y=y; circle[i].r=r; edge[i].clear(); } edge[0].clear(); sort(circle+1,circle+1+n); for(int i=1;i<=n;i++) { Link(0,i); dp[i]=0; } dfs(0); if(dp[0]==0) puts("Bob"); else puts("Alice"); } return 0; }
HDOJ 5299 Circles Game 圆嵌套+树上SG
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