POJ - 3186 Treats for the Cows(dp)
作者:互联网
FJ has purchased N (1 <= N <= 2000) yummy treats for the cows who get money for giving vast amounts of milk. FJ sells one treat per day and wants to maximize the money he receives over a given period time.
The treats are interesting for many reasons:
The first treat is sold on day 1 and has age a=1. Each subsequent day increases the age by 1.
Lines 2..N+1: Line i+1 contains the value of treat v(i)
Five treats. On the first day FJ can sell either treat #1 (value 1) or treat #5 (value 2).
FJ sells the treats (values 1, 3, 1, 5, 2) in the following order of indices: 1, 5, 2, 3, 4, making 1x1 + 2x2 + 3x3 + 4x1 + 5x5 = 43. 题意:每次可以从两端取一个数,假设取得数是 x ,这是第 i 次取,那么可获得价值 i * x, 问最后最大价值是多少。 。。。设 dp[i][j] 表示在左边去 i 个,右边取 j 个获得的最大价值,那么有状态转移方程: dp[i][j] = max(dp[i - 1][j] + val[i] * (i + j), dp[i][j - 1] + val[n - j + 1] * (i + j)) 并设初始状态 dp[i][0] (i 从 1 到 n) , dp[0][j] (j 从 1 到 n)
The treats are interesting for many reasons:
- The treats are numbered 1..N and stored sequentially in single file in a long box that is open at both ends. On any day, FJ can retrieve one treat from either end of his stash of treats.
- Like fine wines and delicious cheeses, the treats improve with age and command greater prices.
- The treats are not uniform: some are better and have higher intrinsic value. Treat i has value v(i) (1 <= v(i) <= 1000).
- Cows pay more for treats that have aged longer: a cow will pay v(i)*a for a treat of age a.
The first treat is sold on day 1 and has age a=1. Each subsequent day increases the age by 1.
Input
Line 1: A single integer, NLines 2..N+1: Line i+1 contains the value of treat v(i)
Output
Line 1: The maximum revenue FJ can achieve by selling the treatsSample Input
5 1 3 1 5 2
Sample Output
43
Hint
Explanation of the sample:Five treats. On the first day FJ can sell either treat #1 (value 1) or treat #5 (value 2).
FJ sells the treats (values 1, 3, 1, 5, 2) in the following order of indices: 1, 5, 2, 3, 4, making 1x1 + 2x2 + 3x3 + 4x1 + 5x5 = 43. 题意:每次可以从两端取一个数,假设取得数是 x ,这是第 i 次取,那么可获得价值 i * x, 问最后最大价值是多少。 。。。设 dp[i][j] 表示在左边去 i 个,右边取 j 个获得的最大价值,那么有状态转移方程: dp[i][j] = max(dp[i - 1][j] + val[i] * (i + j), dp[i][j - 1] + val[n - j + 1] * (i + j)) 并设初始状态 dp[i][0] (i 从 1 到 n) , dp[0][j] (j 从 1 到 n)
#include<cstdio>
#include<iostream>
#include<algorithm>
#define debug(x) cout << "[" << #x <<": " << (x) <<"]"<< endl
#define pii pair<int,int>
#define clr(a,b) memset((a),b,sizeof(a))
#define rep(i,a,b) for(int i = a;i < b;i ++)
#define pb push_back
#define MP make_pair
#define LL long long
#define ull unsigned LL
#define ls i << 1
#define rs (i << 1) + 1
#define INT(t) int t; scanf("%d",&t)
using namespace std;
const int maxn = 2e3 + 10;
int dp[maxn][maxn];
int a[maxn];
int main() {
int n;
while(~scanf("%d",&n)){
for(int i = 1;i <= n;++ i)
scanf("%d",&a[i]);
dp[1][0] = a[1];
dp[0][1] = a[n];
rep(i,2,n + 1) dp[i][0] = dp[i - 1][0] + a[i] * i;
rep(i,2,n + 1) dp[0][i] = dp[0][i - 1] + a[n - i + 1] * i;
for(int i = 1;i <= n;++ i)
for(int j = 1;j <= n;++ j)
dp[i][j] = max(dp[i - 1][j] + a[i] * (i + j),dp[i][j - 1] + a[n - j + 1] * (i + j));
int ans = 0;
for(int i = 0;i <= n;++ i)
ans = max(ans,dp[i][n - i]);
cout << ans << endl;
}
return 0;
}
标签:treats,value,3186,POJ,treat,Cows,FJ,dp,define 来源: https://www.cnblogs.com/rookie-acmer/p/11258352.html