标签:http io ar os sp for on 问题 ad
题目链接:点击打开链接
题意:
给定n长的序列,m ,k
选择一些数使得 选择的数和最大。输出和。
限制:对于任意的区间[i, i+m]中至多有k个数被选。
思路:
白书P367,区间k覆盖问题,把一个区间看成一个点,那么选了一个点就相当于覆盖了m个区间。
#include<iostream>
#include<stdio.h>
#include<string.h>
#include<queue>
#include<math.h>
using namespace std;
#define ll int
#define inf 0x3f3f3f3f
#define Inf 0x3FFFFFFFFFFFFFFFLL
#define N 3000
#define M 3000*3000
struct Edge {
ll to, cap, cost, nex;
Edge(){}
Edge(ll to,ll cap,ll cost,ll next):to(to),cap(cap),cost(cost),nex(next){}
} edge[M];
ll head[N], edgenum;
ll D[N], A[N], P[N];
bool inq[N];
void add(ll from,ll to,ll cap,ll cost) {
edge[edgenum] = Edge(to,cap,cost,head[from]);
head[from] = edgenum++;
edge[edgenum] = Edge(from,0,-cost,head[to]);
head[to] = edgenum++;
}
bool spfa(ll s, ll t, ll &flow, ll &cost) {
for(ll i = 0; i <= t; i++) D[i] = inf;
memset(inq, 0, sizeof inq);
queue<ll>q;
q.push(s);
D[s] = 0; A[s] = inf;
while(!q.empty()) {
ll u = q.front(); q.pop();
inq[u] = 0;
for(ll i = head[u]; ~i; i = edge[i].nex)
{
Edge &e = edge[i];
if(e.cap && D[e.to] > D[u] + e.cost)
{
D[e.to] = D[u] + e.cost;
P[e.to] = i;
A[e.to] = min(A[u], e.cap);
if(!inq[e.to])
{inq[e.to]=1; q.push(e.to);}
}
}
}
//若费用为inf则中止费用流
if(D[t] == inf) return false;
cost += D[t] * A[t];
flow += A[t];
ll u = t;
while(u != s) {
edge[ P[u] ].cap -= A[t];
edge[P[u]^1].cap += A[t];
u = edge[P[u]^1].to;
}
return true;
}
ll Mincost(ll s,ll t){
ll flow = 0, cost = 0;
while(spfa(s, t, flow, cost));
return cost;
}
void init(){memset(head,-1,sizeof head); edgenum = 0;}
int a[N], from, to, n, m, k;
void input(){
for(int i = 1; i<= n; i++)scanf("%d", &a[i]);
init();
from = 0; to = n+2;
add(from, 1, k, 0);
for(int i = 1; i <= n; i++){
int tmp = min(m+i, n+1);
add(i, tmp, 1, -a[i]);
add(i, i+1, k, 0);
}
add(n+1, to, k, 0);
}
int main(){
while(~scanf("%d %d %d", &n, &m, &k)){
input();
int cost = Mincost(from, to);
cout<<-cost<<endl;
}
return 0;
}
HDU 4106 Fruit Ninja 区间k覆盖问题 最小费用流
标签:http io ar os sp for on 问题 ad
原文地址:http://blog.csdn.net/qq574857122/article/details/41733865
