The task is really simple: given N exits on a highway which forms a simple cycle, you are supposed to tell the shortest distance between any pair of exits.

Input Specification:

Each input file contains one test case. For each case, the first line contains an integer N (in [3, 10⁵]), followed by N integer distances D₁ D₂ ... D_N, where D_i is the distance between the i-th and the (i+1)-st exits, and D_N is between the N-th and the 1st exits. All the numbers in a line are separated by a space. The second line gives a positive integer M (<=10⁴), with M lines follow, each contains a pair of exit numbers, provided that the exits are numbered from 1 to N. It is guaranteed that the total round trip distance is no more than 10⁷.

Output Specification:

For each test case, print your results in M lines, each contains the shortest distance between the corresponding given pair of exits.

Sample Input:

5 1 2 4 14 9

3

1 3

2 5

4 1

Sample Output:

3

10

7
这题做这么久真是没治了，本来不是很难的一题，被自己蠢到了……

#include <iostream>

#include <cmath>

using namespace std;

int exitPort[]; //开始少一个0，可见细心的重要性， 10^5并不是10005，不是五位数谢谢

int main()

{

    int N;

    cin >> N;

    exitPort[] = ;

    int sum = ;

    for(int i = ; i <= N + ; i++)

    {

        int road;

        cin >> road;

        sum += road;

        exitPort[i] = sum;

    }

    int M;

    cin >> M;

    while(M--)

    {

        int in, out;

        cin >> in >> out;

        if(sum - abs(exitPort[out] - exitPort[in]) > abs(exitPort[out] - exitPort[in])) //由于写成了abs(sum - exitPort[out] + exitPort[in]) 有一个点一直没过

        {

            cout << abs(exitPort[out] - exitPort[in]) << endl;

        }

        else

            cout << sum - abs(exitPort[out] - exitPort[in]) << endl;

    }

    return ;

}

这题唯一的收获就是定义数组的时候最好不要用exit做名称，有的OJ来说， exit是内置的变量，可能会有编译错误，因此修改为exitPort