C. Everyone is a Winner!
On the well-known testing system MathForces, a draw of n rating units is arranged. The rating will be distributed according to the following algorithm: if k participants take part in this event, then the n rating is evenly distributed between them and rounded to the nearest lower integer, At the end of the drawing, an unused rating may remain — it is not given to any of the participants.
For example, if n=5 and k=3, then each participant will recieve an 1 rating unit, and also 2 rating units will remain unused. If n=5, and k=6, then none of the participants will increase their rating.
Vasya participates in this rating draw but does not have information on the total number of participants in this event. Therefore, he wants to know what different values of the rating increment are possible to get as a result of this draw and asks you for help.
For example, if n=5, then the answer is equal to the sequence 0,1,2,5. Each of the sequence values (and only them) can be obtained as ⌊n/k⌋ for some positive integer k (where ⌊x⌋ is the value of x rounded down): 0=⌊5/7⌋, 1=⌊5/5⌋, 2=⌊5/2⌋, 5=⌊5/1⌋.
Write a program that, for a given n, finds a sequence of all possible rating increments.
Input
The first line contains integer number t (1≤t≤10) — the number of test cases in the input. Then t test cases follow.
Each line contains an integer n (1≤n≤109) — the total number of the rating units being drawn.
Output
Output the answers for each of t test cases. Each answer should be contained in two lines.
In the first line print a single integer m — the number of different rating increment values that Vasya can get.
In the following line print m integers in ascending order — the values of possible rating increments.
Example
input
4
5
11
1
3
output
4
0 1 2 5
6
0 1 2 3 5 11
2
0 1
3
0 1 3
题意
一共有n块钱,k个人[n/k]块钱,向下取整。
现在给你n块钱,你不知道有多少人,输出每个人可能获得多少钱
题解
视频题解 https://www.bilibili.com/video/av77514280/
随着k人数的增加,钱的数量肯定是不断下降的,那么我们可以二分出每一个下降的区间,然后就能输出答案了
代码
#include<bits/stdc++.h>
using namespace std;
long long n;
void solve(){
vector<long long>Ans;
cin>>n;
int x = 1;
Ans.push_back(n);
while(x<=n){
long long l = x,r = n+1,ans=l;
long long d = n/l;
while(l<=r){
long long mid=(l+r)/2;
if(n/mid==d){
l=mid+1;
ans=mid;
}else{
r=mid-1;
}
}
Ans.push_back(n/(ans+1));
x=ans+1;
}
sort(Ans.begin(),Ans.end());
Ans.erase(unique(Ans.begin(),Ans.end()),Ans.end());
cout<<Ans.size()<<endl;
for(int i=0;i<Ans.size();i++){
cout<<Ans[i]<<" ";
}
cout<<endl;
}
int main(){
int t;
cin>>t;
while(t--){
solve();
}
}