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 ... DN, where Di is the distance between the i-th and the (i+1)-st exits, and DN 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
#include <algorithm> //用到了swap(), min() using namespace std; #include <cstdio> const int MAXN=100005; int onetodis[MAXN], dis[MAXN]; //1号结点到i号结点顺时针方向的下一个结点的距离,i号到下一个结点的距离 //例: onetodis[5] 即 1->5->1的距离 int main() { int n, sum=0, M; //总点数,一圈的总距离,M组待查的路径 int start, end; //待查找距离的两点的编号 scanf("%d", &n); for(int i=1; i<=n; i++){ //存入1->n中 scanf("%d", &dis[i]); //表示i->i的下一个结点的距离 sum += dis[i]; onetodis[i]=sum; //预处理onetodis[] 表示1->i的下一个结点的距离 } scanf("%d", &M); //待查的M组编号的距离 for(int i=0; i<M; i++){ scanf("%d%d", &start, &end); if(start>end) swap(start, end); //eg. 5->2 转化为求 2->5 int tmpdis=onetodis[end-1]-onetodis[start-1]; //start~end = (1~end)-(1->start) printf("%d ", min(tmpdis, sum-tmpdis)); //取两边最小的距离 } return 0; }