CF 724E - Goods transportation

最新推荐文章于 2022-06-09 22:47:46 发布

EIP_silly

最新推荐文章于 2022-06-09 22:47:46 发布

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分类专栏：网络流文章标签： CF 724E - Goods transportation

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E. Goods transportation

time limit per test2 seconds
memory limit per test256 megabytes
inputstandard input
outputstandard output
There are n cities located along the one-way road. Cities are numbered from 1 to n in the direction of the road.

The i-th city had produced pi units of goods. No more than si units of goods can be sold in the i-th city.

For each pair of cities i and j such that 1 ≤ i < j ≤ n you can no more than once transport no more than c units of goods from the city i to the city j. Note that goods can only be transported from a city with a lesser index to the city with a larger index. You can transport goods between cities in any order.

Determine the maximum number of produced goods that can be sold in total in all the cities after a sequence of transportations.

Input
The first line of the input contains two integers n and c (1 ≤ n ≤ 10 000, 0 ≤ c ≤ 109) — the number of cities and the maximum amount of goods for a single transportation.

The second line contains n integers pi (0 ≤ pi ≤ 109) — the number of units of goods that were produced in each city.

The third line of input contains n integers si (0 ≤ si ≤ 109) — the number of units of goods that can be sold in each city.

Output
Print the maximum total number of produced goods that can be sold in all cities after a sequence of transportations.

Examples
input
3 0
1 2 3
3 2 1
output
4
input
5 1
7 4 2 1 0
1 2 3 4 5
output
12
input
4 3
13 10 7 4
4 7 10 13
output
34

第一次遇到网络流中运用到最大流等于最小割这个思想，也是第一次写DP求最小割。

题目大意：城市 i 最多能生产pi件货物，最多有si件货物能在这里卖出。每个城市可以向编号比自己大的城市运送最多c件货物。求最多能卖出的货物的总数。
数据范围： $1 ≤ n ≤ 10 000, 0 ≤ c ≤ 10^9, 0 ≤ pi ≤ 10^9, 0 ≤ si ≤ 10^9$
网络流建图。一个源点S，一个汇点T，对于每个点i，生产货物pi件，则从S到连一条容量为pi的路径，可以销售货物si，则从i到T连一条容量为si的路径。然后每个点又向比自己大的点连一条容量为c的路径。
边的数量过多，需要的时间太多。
考虑到最大流等于最小割。
每个点都向编号比自己大的点连一条容量为c的路径。也就是说依次从小到大加入点的时候，边也是从从小的点指向大的点，也就是说整个过程是无后效性的。想到用DP来做。
$d p [i] [j]$ ，i表示从当前点，j表示i之前有几个点是和源点S是属于一个集合的。
如果当前点i属于集合S，我们只需要割掉这个点与汇点T的边s[i]就可以了，即
$d p [i] [j] = d p [i] [j - 1] + s [i]$
如果当前点i属于集合T，我们需要割点这个点与源点S的边p[i]和之前属于S的点指向当前点的容量为C的路径，即
$d p [i] [j] = d p [i] [j] + j * c + p [i]$
用一个滚动数组来防止空间太大就可以了

#include<bits/stdc++.h>
using namespace std;
#define ll long long

const int MAXN = 1e4+10;

ll p[MAXN],s[MAXN];

ll dp[2][MAXN];

int main()
{
    ll n,c;
    scanf("%lld%lld",&n,&c);
    for (int i = 1;i<=n;i++) scanf("%lld",&p[i]);
    for (int i = 1;i<=n;i++) scanf("%lld",&s[i]);
    int f = 0;
    for (int i = 1;i<=n;i++) dp[1][i] = dp[0][i] = 9e18;
    dp[1][0] = 0;
    for (int i = 1;i<=n;i++)
    {
        dp[f][0] = dp[f ^ 1][0] + p[i];
        for (int j = 1;j<=i;j++) dp[f][j] = min(dp[f ^ 1][j] + j * c + p[i],dp[f ^ 1][j-1] + s[i]);
        f ^= 1;
    }
    ll ans = 9e18;
    for (int i = 0;i<=n;i++) ans = min(ans,dp[f ^ 1][i]);
    cout<<ans;
    return 0;
}