题目链接: http://poj.org/problem?id=3186
Description
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.
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, N
Lines 2..N+1: Line i+1 contains the value of treat v(i)
Lines 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 treats
Sample 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.
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.
题目并没有看明白,还是看最后的Hint才明白的(雾),大意是,给一个数列,每次只能从头或从尾取一个数,第i次取的数乘i,求和最大为多少。
状态转移方程 以dp[i][j]表示列头取了i个数,列尾取了j个数,则dp[i][j]只与dp[i - 1][j]和dp[i][j - 1]有关,于是得到状态转移方程dp[i][j] = max( dp[i - 1][j] + val[i - 1] * ( i + j ), dp[i][j - 1] + val[n - j] * ( i + j ) ),注意边界情况,此处的val我是按下标从0开始的。
1 #include<iostream> 2 #include<cstring> 3 #include<cmath> 4 #include<algorithm> 5 using namespace std; 6 7 int val[2005]; 8 int dp[2005][2005]; 9 10 int main(){ 11 ios::sync_with_stdio( false ); 12 13 int n; 14 while( cin >> n ){ 15 for( int i = 0; i < n; i++ ) 16 cin >> val[i]; 17 memset( dp, 0, sizeof( dp ) ); 18 19 dp[1][0] = val[0]; 20 for( int i = 2; i <= n; i++ ) 21 dp[i][0] = dp[i - 1][0] + val[i - 1] * i; 22 23 dp[0][1] = val[n - 1]; 24 for( int i = 2; i <= n; i++ ) 25 dp[0][i] = dp[0][i - 1] + val[n - i] * i; 26 27 for( int i = 1; i <= n; i++ ) 28 for( int j = 1; j + i <= n; j++ ) 29 dp[i][j] = max( dp[i - 1][j] + val[i - 1] * ( i + j ), dp[i][j - 1] + val[n - j] * ( i + j ) ); 30 31 int ans = 0; 32 for( int i = 0; i <= n; i++ ) 33 ans = max( ans, dp[i][n - i] ); 34 35 cout << ans << endl; 36 } 37 38 return 0; 39 }