【HDU】4923 Room and Moor(2014多校第六场1003)

Room and Moor

Time Limit: 12000/6000 MS (Java/Others)    Memory Limit: 262144/262144 K (Java/Others)
Total Submission(s): 263    Accepted Submission(s): 73

Problem Description

PM Room defines a sequence A = {A₁, A₂,..., A_N}, each of which is either 0 or 1. In order to beat him, programmer Moor has to construct another sequence B = {B₁, B₂,... , B_N} of the same length, which satisfies that:

 

Input

The input consists of multiple test cases. The number of test cases T(T<=100) occurs in the first line of input.

For each test case:
The first line contains a single integer N (1<=N<=100000), which denotes the length of A and B.
The second line consists of N integers, where the ith denotes A_i.

 

Output

Output the minimal f (A, B) when B is optimal and round it to 6 decimals.

 

Sample Input

4

9

1 1 1 1 1 0 0 1 1

9

1 1 0 0 1 1 1 1 1

4

0 0 1 1

4

0 1 1 1

 

Sample Output

1.428571

1.000000

0.000000

0.000000

 

Source

2014 Multi-University Training Contest 6

 

Recommend

hujie   |   We have carefully selected several similar problems for you:  4930 4929 4928 4927 4926 

 

题意：很容易就读懂了。

题解：首先去掉前导零和最后的1，相当于把整个序列分成几个区间，每部分以1开头，0结尾，即如1 0   1 1 0 0等，可知对于每一个区间，要取得最小值，那这个部分所有的值即对应的这个区间内的平均数，如果这个平均数和前面一个区间的相比较大，就压入栈，否则将栈里的元素顶出，并与当前区间合并求平均数……知道比前面的大为止，最后求出每个区间的对应的Seg(ai - bi)^2 就可以了。至于为什么。。。。说实话全是YY，居然A掉了。。

 

AC代码如下：

 

#include <cstdio>
#include <cstring>
#include <stack>
using namespace std;

#define eps 0.00000001
const int LEN = 100010;

int arr[LEN];
struct line
{
    int l, r, sum;
    double rate;
};

stack<line> s;

int main()
{
    int T, n;
    line tmp;
    scanf("%d", &T);
    while(T--){
        scanf("%d", &n);
        for(int i = 0; i < n; i++)
            scanf("%d", arr+i);
        int h = 0;
        while(arr[h] == 0)
            h++;
        int k = n - 1;
        while(arr[k] == 1)
            k--;
        for(int i = h; i <= k; i++){
            if (i == h || i > h && arr[i-1] == 0 && arr[i] == 1){
                tmp.l = i;
                tmp.sum = 0;
            }
            if (i < k && arr[i] == 0 && arr[i+1] == 1 || i == k){
                tmp.r = i;
                //printf("l = %d, r = %d
", tmp.l, tmp.r);
                tmp.rate = tmp.sum * 1.0 / ((tmp.r - tmp.l + 1) * 1.0);
                //printf("rate=%f
", tmp.rate);
                while(true){
                    if (s.empty() || s.top().rate - tmp.rate < eps){
                        s.push(tmp);
                        break;
                    }
                    if (s.top().rate - tmp.rate > eps){
                        tmp.l = s.top().l;
                        tmp.sum += s.top().sum;
                        tmp.rate = tmp.sum*1.0 / ((tmp.r - tmp.l + 1)*1.0);
                        s.pop();
                    }
                }
            }
            if (arr[i] == 1)
                tmp.sum++;
        }
        double ans = 0;
        while(!s.empty()){
            ans += ((1 - s.top().rate) * (1 - s.top().rate) * s.top().sum + s.top().rate * s.top().rate * (s.top().r - s.top().l + 1 - s.top().sum));
            s.pop();
        }
        printf("%f
", ans);
    }
    return 0;
}