描述
传送门:我是传送门
The shorter, the simpler. With this problem, you should be convinced of this truth.
You are given an array A of N postive integers, and M queries in the form (l,r). A function F(l,r) (1≤l≤r≤N) is defined as:
You job is to calculate F(l,r), for each query (l,r).
输入
There are multiple test cases.
The first line of input contains a integer TT, indicating number of test cases, and TTtest cases follow.
For each test case, the first line contains an integer N(1≤N≤100000)N(1≤N≤100000).
The second line contains NN space-separated positive integers: A1,…,ANA1,…,AN (0≤Ai≤109)(0≤Ai≤109).
The third line contains an integer MM denoting the number of queries.
The following MM lines each contain two integers l,r(1≤l≤r≤N)l,r(1≤l≤r≤N), representing a query.
输出
For each query(l,r)(l,r), output F(l,r)F(l,r) on one line.
样例
输入
1
3
2 3 3
1
1 3
输出
2
思路
一个数比它大的数没有意义,比如10%100、20%30···
每次二分的找到右侧第一个比他小的就好了
代码
/*
* =================================================================
*
* Filename: hdu5875.cpp
*
* Link: http://acm.hdu.edu.cn/showproblem.php?pid=5875
*
* Version: 1.0
* Created: 2018/10/09 10时30分42秒
* Revision: none
* Compiler: g++
*
* Author: 杜宁元 (https://duny31030.top/), duny31030@126.com
* Organization: QLU_浪在ACM
*
* =================================================================
*/
#include <bits/stdc++.h>
using namespace std;
#define clr(a, x) memset(a, x, sizeof(a))
#define rep(i,a,n) for(int i=a;i<=n;i++)
#define pre(i,a,n) for(int i=n;i>=a;i--)
#define ll long long
#define max3(a,b,c) fmax(a,fmax(b,c))
#define ios ios_base::sync_with_stdio(false);cin.tie(0);cout.tie(0);
const double eps = 1e-6;
const int INF = 0x3f3f3f3f;
const int mod = 1e9 + 7;
const int N = 100050;
int n,q,t,a,x,y;
vector<int> Q;
int dp_min[N][30];
void RMQ_init(const vector<int>& A)
{
for(int i = 0;i < n;i++)
{
dp_min[i][0] = A[i];
}
for(int j = 1;(1 << j) <= n;j++)
for(int i = 0;i + (1 << j) - 1 < n;i++)
{
dp_min[i][j] = min(dp_min[i][j-1],dp_min[i+(1 << (j-1))][j-1]);
}
}
int RMQ_min(int L,int R)
{
int k = 0;
while((1 << (k+1)) <= (R-L+1)) // 如果2^(k+1) <= R-L+1,那么k还可以加1
{
k++;
}
// cout << "min = " << min(dp_min[L][k],dp_min[R-(1 << k)+1][k]) << endl;
return min(dp_min[L][k],dp_min[R-(1 << k)+1][k]);
}
int main()
{
ios
#ifdef ONLINE_JUDGE
#else
freopen("in.txt","r",stdin);
// freopen("out.txt","w",stdout);
#endif
scanf("%d",&t);
while(t--)
{
Q.clear();
clr(dp_min,0);
scanf("%d",&n);
rep(i,1,n) { scanf("%d",&a); Q.push_back(a); }
RMQ_init(Q);
scanf("%d",&q);
rep(i,1,q)
{
scanf("%d %d",&x,&y);
x--,y--;
int tmp = Q[x];
if(x == y)
{
printf("%d
",Q[x]);
continue;
}
x++;
while(x <= y)
{
int L= x,R = y;
int flag = 0;
while(L < R)
{
int mid = (L+R) >> 1;
if(RMQ_min(L,mid) <= tmp)
R = mid;
else
if(RMQ_min(mid+1,R) <= tmp)
L = mid+1;
else
{
flag = 1;
break;
}
}
if(flag) break;
tmp %= Q[L];
x = L+1;
}
printf("%d
",tmp);
}
}
fclose(stdin);
// fclose(stdout);
return 0;
}