hdu 1024 Max Sum Plus Plus (动态规划)

Max Sum Plus Plus
Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 37418    Accepted Submission(s): 13363
Problem Description
Now I think you have got an AC in Ignatius.L's "Max Sum" problem. To be a brave ACMer, we always challenge ourselves to more difficult problems. Now you are faced with a more difficult problem.
Given a consecutive number sequence S1, S2, S3, S4 ... Sx, ... Sn (1 ≤ x ≤ n ≤ 1,000,000, -32768 ≤ Sx ≤ 32767). We define a function sum(i, j) = Si + ... + Sj (1 ≤ i ≤ j ≤ n).
Now given an integer m (m > 0), your task is to find m pairs of i and j which make sum(i1, j1) + sum(i2, j2) + sum(i3, j3) + ... + sum(im, jm) maximal (ix ≤ iy ≤ jx or ix ≤ jy ≤ jx is not allowed).
But I`m lazy, I don't want to write a special-judge module, so you don't have to output m pairs of i and j, just output the maximal summation of sum(ix, jx)(1 ≤ x ≤ m) instead. ^_^
 
Input
Each test case will begin with two integers m and n, followed by n integers S1, S2, S3 ... Sn.
Process to the end of file.
 
Output
Output the maximal summation described above in one line.
 
Sample Input
1 3 1 2 3
2 6 -1 4 -2 3 -2 3
 
Sample Output
6
8
Hint
Huge input, scanf and dynamic programming is recommended.

C/C++:

 #include <bits/stdc++.h>
#define INF 0x3f3f3f3f
using namespace std; const int MAX = 1e6 + ; int m, n, pre[MAX], dp[MAX], num[MAX], ans, j; int main()
{
while (~scanf("%d%d", &m, &n))
{
memset(dp, , sizeof(dp));
memset(pre, , sizeof(pre)); for (int i = ; i <= n; ++ i) scanf("%d", &num[i]);
for (int i = ; i <= m; ++ i)
{
ans = -INF;
for (j = i; j <= n; ++ j)
{
dp[j] = max(dp[j - ], pre[j - ]) + num[j];
pre[j - ] = ans;
ans = max(dp[j], ans);
}
// pre[j - 1] = ans;
} printf("%d\n", ans);
}
return ;
}
上一篇:Ronco创投原则 - 硅谷创业教父Paul Graham文摘


下一篇:HDU 1024 Max Sum Plus Plus [动态规划+m子段和的最大值]