首页 > 学院 > 开发设计 > 正文

1044. Shopping in Mars (25)-二分(难)

2019-11-14 10:45:49
字体:
来源:转载
供稿:网友

题目链接:https://www.patest.cn/contests/pat-a-PRactise/1044 Shopping in Mars is quite a different experience. The Mars people pay by chained diamonds. Each diamond has a value (in Mars dollars M).Whenmakingthepayment,thechaincanbecutatanypositionforonlyonceandsomeofthediamondsaretakenoffthechainonebyone.Onceadiamondisoffthechain,itcannotbetakenback.Forexample,ifwehaveachainof8diamondswithvaluesM3, 2, 1, 5, 4, 6, 8, 7, and we must pay M$15. We may have 3 options:

Cut the chain between 4 and 6, and take off the diamonds from the position 1 to 5 (with values 3+2+1+5+4=15).Cut before 5 or after 6, and take off the diamonds from the position 4 to 6 (with values 5+4+6=15).Cut before 8, and take off the diamonds from the position 7 to 8 (with values 8+7=15). Now given the chain of diamond values and the amount that a customer has to pay, you are supposed to list all the paying options for the customer.

If it is impossible to pay the exact amount, you must suggest solutions with minimum lost.

Input Specification:

Each input file contains one test case. For each case, the first line contains 2 numbers: N (<=105), the total number of diamonds on the chain, and M (<=108), the amount that the customer has to pay. Then the next line contains N positive numbers D1 … DN (Di<=103 for all i=1, …, N) which are the values of the diamonds. All the numbers in a line are separated by a space.

Output Specification:

For each test case, print “i-j” in a line for each pair of i <= j such that Di + … + Dj = M. Note that if there are more than one solution, all the solutions must be printed in increasing order of i.

If there is no solution, output “i-j” for pairs of i <= j such that Di + … + Dj > M with (Di + … + Dj - M) minimized. Again all the solutions must be printed in increasing order of i.

It is guaranteed that the total value of diamonds is sufficient to pay the given amount.

Sample Input 1: 16 15 3 2 1 5 4 6 8 7 16 10 15 11 9 12 14 13 Sample Output 1: 1-5 4-6 7-8 11-11 Sample Input 2: 5 13 2 4 5 7 9 Sample Output 2: 2-4 4-5

#include<cstdio>const int maxn=100010;int a[maxn],sum[maxn];int n,S,nearS=100000010;int upper_bound(int L,int R,int x){//返回在[L,R]内第一个大于x的位置,如果都小于x,则返回右边界位置R int left=L,right=R,mid; while(left<right){ mid=(left+right)/2; if(sum[mid]>x){ right=mid; }else{ left=mid+1; } } return left;}int main(){ scanf("%d%d",&n,&S); sum[0]=0; for(int i=1;i<=n;i++){ scanf("%d",&sum[i]); sum[i]+=sum[i-1]; } for(int i=1;i<=n;i++){ int j=upper_bound(i,n+1,sum[i-1]+S); if(sum[j-1]-sum[i-1]==S){ nearS=S; break; }else if(j<=n&&sum[j]-sum[i-1]<nearS){ nearS=sum[j]-sum[i-1]; } } for(int i=1;i<=n;i++){ int j=upper_bound(i,n+1,sum[i-1]+nearS); if(sum[j-1]-sum[i-1]==nearS){ printf("%d-%d/n",i,j-1); } } return 0;}
发表评论 共有条评论
用户名: 密码:
验证码: 匿名发表