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After culling his most favorite fruits from the trees in an orchard,Keen AS, a mischievous monkey, is confused of the way in which he can combine these piles of fruits into one in the most laborsaving manner. Each turn he can merely combine any two piles into a larger one. Obviously, by combining N-1 times for N piles of fruits, one pile results eventually. It always takes AS a certain quantity of units of stamina, which equals to the sum of the amounts of fruits in each of the two piles combined, to complete a combination. For instance, given three piles of fruits, containing 1, 2, and 9 fruits respectively, the combination of 1 and 2 would cost 3=1+2 units of stamina, and two piles-3 and 9-are resulted; finally, combining them would cost another 12=3+9 units of stamina, and the total units of stamina taken in the whole procedure is 15=3+12. Surely there are many a possible means to combine these three piles; however, it can be proved that 15 is the minimum amount of units of stamina in demand, and that is what your program is required to do. in this problem ,the fruits are put in a strait line. A pile of fruits 'P' can only combined with the rightest pail on the left of P or the leftest on the right of P, and the united pile will at the position of the bigger one.

Input

The input file consists of many test cases. The first line contains an integer N (<=100), indicating the number of piles, and the second line contains N integers, each of which represents the amount of fruits in a pile. no integer will more than 10000, the sequence of integer also means the location of the piles.

Output

Your program should print the minimum amount of units of stamina that are required to combine these piles of fruits into one on request.

Sample Input

3
1 2 9

Sample Output

15

典型的石子合并问题。
#include<stdio.h>
int a[101][101],sum[101];
int stone[101];
int main()
{
    int n,i,j,k,flag,l,t;
    while(scanf("%d",&n)!=EOF)
    {
        for(i=1;i<=n;i++)
        scanf("%d",&stone[i]);
        sum[0]=0;
        for(i=1;i<=n;i++)
        {
            sum[i]=sum[i-1]+stone[i];      
            a[i][i]=0;
        }
        for(l=1;l<=n-1;l++)
        for(i=1;i<=n-l;i++)
        {
            flag=0;
            j=i+l;
            for(k=i;k<j;k++)                              
            {
                t=a[i][k]+a[k+1][j]+sum[j]-sum[i-1];
                if(!flag)
                {
                    flag=1;
                    a[i][j]=t;
                }
                else if(t<a[i][j])
                a[i][j]=t;
            }
        }
        printf("%d\n",a[1][n]);
    }
    return 0;
}
posted on 2009-06-30 21:01 luis 阅读(462) 评论(0)  编辑 收藏 引用 所属分类: 动态规划

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