题目大概说,有n头牛和b块草地,每头牛心中分别对每块草地都有排名,草地在牛中排名越高牛安排在那的幸福度就越小(。。。),每块草地都能容纳一定数量的牛。现在要给这n头牛分配草地,牛中的幸福度最大与幸福度最小的差值越小越好,问最小能多小。
显然又是枚举结果跑最大流看是否合法。不过,枚举幸福度的差值是做不了的,应该要枚举的是幸福度的最大值和幸福度的最小值。然后建图没啥好说的。。最后的结果要加1,因为题目说“including the endpoints”,虽然不知道什么意思。。
1 #include<cstdio>
2 #include<cstring>
3 #include<queue>
4 #include<algorithm>
5 using namespace std;
6 #define INF (1<<30)
7 #define MAXN 1111
8 #define MAXM 44444
9
10 struct Edge{
11 int v,cap,flow,next;
12 }edge[MAXM];
13 int vs,vt,NE,NV;
14 int head[MAXN];
15
16 void addEdge(int u,int v,int cap){
17 edge[NE].v=v; edge[NE].cap=cap; edge[NE].flow=0;
18 edge[NE].next=head[u]; head[u]=NE++;
19 edge[NE].v=u; edge[NE].cap=0; edge[NE].flow=0;
20 edge[NE].next=head[v]; head[v]=NE++;
21 }
22
23 int level[MAXN];
24 int gap[MAXN];
25 void bfs(){
26 memset(level,-1,sizeof(level));
27 memset(gap,0,sizeof(gap));
28 level[vt]=0;
29 gap[level[vt]]++;
30 queue<int> que;
31 que.push(vt);
32 while(!que.empty()){
33 int u=que.front(); que.pop();
34 for(int i=head[u]; i!=-1; i=edge[i].next){
35 int v=edge[i].v;
36 if(level[v]!=-1) continue;
37 level[v]=level[u]+1;
38 gap[level[v]]++;
39 que.push(v);
40 }
41 }
42 }
43
44 int pre[MAXN];
45 int cur[MAXN];
46 int ISAP(){
47 bfs();
48 memset(pre,-1,sizeof(pre));
49 memcpy(cur,head,sizeof(head));
50 int u=pre[vs]=vs,flow=0,aug=INF;
51 gap[0]=NV;
52 while(level[vs]<NV){
53 bool flag=false;
54 for(int &i=cur[u]; i!=-1; i=edge[i].next){
55 int v=edge[i].v;
56 if(edge[i].cap!=edge[i].flow && level[u]==level[v]+1){
57 flag=true;
58 pre[v]=u;
59 u=v;
60 //aug=(aug==-1?edge[i].cap:min(aug,edge[i].cap));
61 aug=min(aug,edge[i].cap-edge[i].flow);
62 if(v==vt){
63 flow+=aug;
64 for(u=pre[v]; v!=vs; v=u,u=pre[u]){
65 edge[cur[u]].flow+=aug;
66 edge[cur[u]^1].flow-=aug;
67 }
68 //aug=-1;
69 aug=INF;
70 }
71 break;
72 }
73 }
74 if(flag) continue;
75 int minlevel=NV;
76 for(int i=head[u]; i!=-1; i=edge[i].next){
77 int v=edge[i].v;
78 if(edge[i].cap!=edge[i].flow && level[v]<minlevel){
79 minlevel=level[v];
80 cur[u]=i;
81 }
82 }
83 if(--gap[level[u]]==0) break;
84 level[u]=minlevel+1;
85 gap[level[u]]++;
86 u=pre[u];
87 }
88 return flow;
89 }
90
91 int n,b,happy[1111][22],cap[22];
92 bool isok(int mm,int mx){
93 vs=0; vt=n+b+1; NV=vt+1; NE=0;
94 memset(head,-1,sizeof(head));
95 for(int i=1; i<=n; ++i) addEdge(vs,i,1);
96 for(int i=1; i<=n; ++i){
97 for(int j=1; j<=b; ++j){
98 if(mm<=happy[i][j] && happy[i][j]<=mx) addEdge(i,j+n,1);
99 }
100 }
101 for(int i=1; i<=b; ++i) addEdge(i+n,vt,cap[i]);
102 return ISAP()==n;
103 }
104 int main(){
105 int a;
106 scanf("%d%d",&n,&b);
107 for(int i=1; i<=n; ++i){
108 for(int j=1; j<=b; ++j){
109 scanf("%d",&a);
110 happy[i][a]=j;
111 }
112 }
113 for(int i=1; i<=b; ++i) scanf("%d",cap+i);
114 int res=INF;
115 for(int i=1; i<=b; ++i){
116 for(int j=i; j<=b; ++j){
117 if(isok(i,j)) res=min(res,j-i);
118 }
119 }
120 printf("%d",res+1);
121 return 0;
122 }
时间: 2024-10-25 02:03:40