HDU 1024 Max Sum Plus Plus

Max Sum Plus Plus

Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 6721 Accepted Submission(s): 2248

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 ... S_x, ... S_n (1 ≤ x ≤ n ≤ 1,000,000, -32768 ≤ S_x ≤ 32767). We define a function sum(i, j) = S_i + ... + S_j (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(i_m, j_m) maximal (i_x ≤ i_y ≤ j_x or i_x ≤ j_y ≤ j_x 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(i_x, j_x)(1 ≤ x ≤ m) instead. ^_^

Input

Each test case will begin with two integers m and n, followed by n integers S₁, S₂, S₃ ... S_n.
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.

Author

JGShining（极光炫影）

 

 

　用两个数组pre[]和now[]来存储前一个状态的值 ， now[]存储当前状态的值；

　　

#include<stdio.h>
#include<string.h>
#define MAX 1000050 
int pre[MAX] , now[MAX] , num[MAX] ; // pre[] 存储前一个状态的最大值 ， now[]存储当前状态的值 
int max_sum ;
int max ( int a , int b )
{
    return a > b ? a : b ;
}
int main ()
{
    int n , m ;
    while ( scanf("%d%d" , &m , &n) != EOF )
    {
          for ( int i = 1 ; i <= n ; ++ i )
          {
              scanf ( "%d" , num + i ) ;
          }
          memset( pre , 0 , sizeof (pre) ) ;
          memset( now , 0 , sizeof (pre) ) ;
          for ( int i = 1 ; i <= m ; ++ i )  
          {
              max_sum = -9999999 ;
              for ( int j = i ; j <= n ; ++ j )
              {
                  now[j] = max ( now[j-1] + num[j] , pre[j-1] + num[j] ) ;
                  pre[j-1] = max_sum ;
                  if ( max_sum < now[j] ) 
                       max_sum = now[j] ;
              }
          }
          printf ( "%d\n" , max_sum ) ; 
    }
    return  0 ;
}