标签:testcases sts include 直接 one pst back target anim
题目链接:http://poj.org/problem?id=3498
题目:
Description
Somewhere near the south pole, a number of penguins are standing on a number of ice floes. Being social animals, the penguins would like to get together, all on the same floe. The penguins do not want to get wet, so they have use their limited jump distance to get together by jumping from piece to piece. However, temperatures have been high lately, and the floes are showing cracks, and they get damaged further by the force needed to jump to another floe. Fortunately the penguins are real experts on cracking ice floes, and know exactly how many times a penguin can jump off each floe before it disintegrates and disappears. Landing on an ice floe does not damage it. You have to help the penguins find all floes where they can meet.
A sample layout of ice floes with 3 penguins on them.
Input
On the first line one positive number: the number of testcases, at most 100. After that per testcase:
One line with the integer N (1 ≤ N ≤ 100) and a floating-point number D (0 ≤ D ≤ 100 000), denoting the number of ice pieces and the maximum distance a penguin can jump.
N lines, each line containing xi, yi, ni and mi, denoting for each ice piece its X and Y coordinate, the number of penguins on it and the maximum number of times a penguin can jump off this piece before it disappears (−10 000 ≤ xi, yi≤ 10 000, 0 ≤ ni ≤ 10, 1 ≤ mi ≤ 200).
Output
Per testcase:
Sample Input
2 5 3.5 1 1 1 1 2 3 0 1 3 5 1 1 5 1 1 1 5 4 0 1 3 1.1 -1 0 5 10 0 0 3 9 2 0 1 1
Sample Output
1 2 4 -1
题意:n只企鹅跳冰块,每只最多跳d米,并且每只企鹅从当前冰块跳到另一个冰块上,当前冰块的寿命-1。问所有企鹅能否跳到同一块冰块上,如果可能的话,列举出所有可能性。
题解:注意题目中冰块下标是从0开始的。构图:源点S(0点),1-n枚举每个终点,把每个冰块所在的点分割成i(入口)和i+n(出口)两个点。S与i点连接,容量为该冰块上
原有企鹅的数目;i与i+n连接,容量为冰块的寿命;如果i冰块能够跳到j冰块,i+n和j连接,容量为INF。图构造好直接跑Dinic就可以啦。
1 //POJ 3498 2 #include <queue> 3 #include <cstdio> 4 #include <cstring> 5 #include <iostream> 6 #include <algorithm> 7 using namespace std; 8 9 const int N=233; 10 const int M=2*N*N; 11 const int INF=0x3f3f3f3f; 12 int n,s,t,cnt; 13 int Head[N],Depth[N],cur[N],Map[N][N]; 14 int Next[M],V[M],W[M]; 15 16 void init(){ 17 cnt=-1; 18 memset(Head,-1,sizeof(Head)); 19 memset(Next,-1,sizeof(Next)); 20 } 21 22 void add_edge(int u,int v,int w){ 23 cnt++;Next[cnt]=Head[u];V[cnt]=v;W[cnt]=w;Head[u]=cnt; 24 cnt++;Next[cnt]=Head[v];V[cnt]=u;W[cnt]=0;Head[v]=cnt; 25 } 26 27 bool bfs(){ 28 queue <int> Q; 29 while(!Q.empty()) Q.pop(); 30 memset(Depth,0,sizeof(Depth)); 31 Depth[s]=1; 32 Q.push(s); 33 while(!Q.empty()){ 34 int u=Q.front();Q.pop(); 35 for(int i=Head[u];i!=-1;i=Next[i]){ 36 if((W[i]>0)&&(Depth[V[i]]==0)){ 37 Depth[V[i]]=Depth[u]+1; 38 Q.push(V[i]); 39 } 40 } 41 } 42 if(Depth[t]==0) return 0; 43 return 1; 44 } 45 46 int dfs(int u,int dist){ 47 if(u==t) return dist; 48 for(int& i=cur[u];i!=-1;i=Next[i]){ 49 if((Depth[V[i]]==Depth[u]+1)&&W[i]!=0){ 50 int di=dfs(V[i],min(dist,W[i])); 51 if(di>0){ 52 W[i]-=di; 53 W[i^1]+=di; 54 return di; 55 } 56 } 57 } 58 return 0; 59 } 60 61 int Dinic(){ 62 int ans=0; 63 while(bfs()){ 64 for(int i=0;i<=2*n;i++) cur[i]=Head[i]; 65 while(int d=dfs(s,INF)) ans+=d; 66 } 67 return ans; 68 } 69 70 struct TnT{ 71 double x,y; 72 int n,m; 73 }node[N]; 74 75 double dis(TnT a,TnT b){ 76 return (a.x-b.x)*(a.x-b.x)+(a.y-b.y)*(a.y-b.y); 77 } 78 79 int check(){ 80 for(int i=1;i<=n;i++) add_edge(s,i,node[i].n); 81 for(int i=1;i<=n;i++) add_edge(i,i+n,node[i].m); 82 for(int i=1;i<=n;i++) 83 for(int j=1;j<=n;j++) 84 if(Map[i][j]) add_edge(i+n,j,INF); 85 86 return Dinic(); 87 88 } 89 90 int main(){ 91 int T; 92 double d; 93 scanf("%d",&T); 94 while(T--){ 95 int sum=0; 96 scanf("%d %lf",&n,&d); 97 for(int i=1;i<=n;i++){ 98 scanf("%lf %lf %d %d",&node[i].x,&node[i].y,&node[i].n,&node[i].m); 99 sum+=node[i].n; 100 } 101 for(int i=1;i<=n;i++){ 102 for(int j=1;j<=n;j++){ 103 if(i==j) Map[i][j]=1; 104 else if(dis(node[i],node[j])<=d*d) Map[i][j]=1; 105 else Map[i][j]=0; 106 } 107 } 108 vector <int> ans; 109 for(int i=1;i<=n;i++){ 110 init();s=0;t=i; 111 if(check()==sum) ans.push_back(i); 112 } 113 int len=ans.size(); 114 if(len==0) printf("-1\n"); 115 else{ 116 for(int i=0;i<len;i++){ 117 if(i!=len-1) printf("%d ",ans[i]-1); 118 else if(i==len-1) printf("%d\n",ans[i]-1); 119 } 120 } 121 122 } 123 124 return 0; 125 }
POJ 3498 March of the Penguins(网络流+枚举)
标签:testcases sts include 直接 one pst back target anim
原文地址:http://www.cnblogs.com/Leonard-/p/7897211.html
