链接:
http://uva.onlinejudge.org/index.php?option=com_onlinejudge&Itemid=8&category=24&page=show_problem&problem=1310
题目:
Any two outposts with a satellite channel can communicate via the satellite, regardless of their location. Otherwise, two outposts can communicate by radio only if the distance between them does not exceed D, which depends of the power of the transceivers. Higher power yields higher D but costs more. Due to purchasing and maintenance considerations, the transceivers at the outposts must be identical; that is, the value of D is the same for every pair of outposts.
Your job is to determine the minimum D required for the transceivers. There must be at least one communication path (direct or indirect) between every pair of outposts.
The first line of input contains N, the number of test cases. The first line of each test case contains 1 <= S <= 100, the number of satellite channels, and S < P <= 500, the number of outposts. P lines follow, giving the (x,y) coordinates of each outpost in km (coordinates are integers between 0 and 10,000). For each case, output should consist of a single line giving the minimum D required to connect the network. Output should be specified to 2 decimal points.
1 2 4 0 100 0 300 0 600 150 750
212.13
题目大意:
南极有n个科研站, 要把这些站用卫星或者无线电连接起来,使得任意两个都能直接或者间接相连。任意两个都有安装卫星设备的,都可以直接通过卫星通信,不管它们距离有多远。 而安装有无线电设备的两个站,距离不能超过D。 D越长费用越多。
现在有s个卫星设备可以安装,还有足够多的无线电设备,求一个方案,使得费用D最少(D取决与所有用无线电通信的花费最大的那条路径)。
分析与总结:
很自然的想到求最小生成树,然后为了使得D费用最少,就要让其中路径最长的那些用来安装卫星。 s个通信卫星可以安装s-1条最长的那些路径。 那么, 最小生成树中第p-s大的路径长度就是D。
只需要求出最小生成树上的所有路径长度,排好序,边得到答案。
代码:
1.Kruskal
#include<cstdio> #include<cstring> #include<cmath> #include<algorithm> #define N 505 using namespace std; double x[N], y[N], ans[N*N]; int n,m,f[N*N],rank[N*N]; struct Edge{ int u,v; double val; friend bool operator<(const Edge&a,const Edge&b){ return a.val<b.val; } }arr[N*N]; inline double getDist(double x1,double y1,double x2,double y2){ return sqrt((x1-x2)*(x1-x2)+(y1-y2)*(y1-y2)); } inline void init(){ for(int i=0; i<n*n; ++i) f[i]=i,rank[i]=0; } int find(int x){ int i,j=x; while(j!=f[j]) j=f[j]; while(x!=j){ i=f[x]; f[x]=j; x=i; } return j; } bool Union(int x, int y){ int a=find(x), b=find(y); if(a==b)return false; if(rank[a]>rank[b]) f[b]=a; else{ if(rank[a]==rank[b]) ++rank[b]; f[a]=b; } return true; } int main(){ int T; scanf("%d",&T); while(T--){ scanf("%d%d",&m,&n); init(); for(int i=1; i<=n; ++i) scanf("%lf%lf",&x[i],&y[i]); int pos=0; for(int i=1; i<=n; ++i){ for(int j=i+1; j<=n; ++j)if(i!=j){ arr[pos].u=i, arr[pos].v=j; arr[pos++].val = getDist(x[i],y[i],x[j],y[j]); } } sort(arr,arr+pos); int k=0; for(int i=0; i<pos; ++i){ if(Union(arr[i].u,arr[i].v)){ ans[k++] = arr[i].val; } } printf("%.2f\n", ans[k-m]); } return 0; }
2.Prim
#include<cstdio> #include<cstring> #include<cmath> #include<algorithm> #define N 505 using namespace std; double x[N], y[N], w[N][N], key[N], ans[N*N]; int n,m,pre[N],hash[N]; inline double getDist(double x1,double y1,double x2,double y2){ return sqrt((x1-x2)*(x1-x2)+(y1-y2)*(y1-y2)); } double Prim(){ memset(hash, 0, sizeof(hash)); hash[1] = 1; for(int i=1; i<=n; ++i){ key[i] = w[1][i]; pre[i] = 1; } int k=0; for(int i=1; i<n; ++i){ int u=-1; for(int j=1; j<=n; ++j)if(!hash[j]){ if(u==-1 || key[j]<key[u]) u=j; } ans[k++] = key[u]; hash[u] = 1; for(int j=1; j<=n; ++j)if(!hash[j]&&key[j]>w[u][j]){ key[j]=w[u][j]; pre[j]=u; } } sort(ans, ans+k); return ans[k-m]; } int main(){ int T; scanf("%d",&T); while(T--){ scanf("%d%d",&m,&n); for(int i=1; i<=n; ++i) scanf("%lf%lf",&x[i],&y[i]); int pos=0; memset(w, 0, sizeof(w)); for(int i=1; i<=n; ++i){ for(int j=i+1; j<=n; ++j){ w[i][j]=w[j][i]=getDist(x[i],y[i],x[j],y[j]); } } printf("%.2f\n", Prim()); } return 0; }
—— 生命的意义,在于赋予它意义。
原创 http://blog.csdn.net/shuangde800 , By D_Double (转载请标明)