题目描述
We have a sequence of N integers: A1,A2,⋯,AN.
You can perform the following operation between 0 and K times (inclusive):
·Choose two integers i and j such that i≠j, each between 1 and N (inclusive). Add 1 to Ai and −1 to
Aj, possibly producing a negative element.
Compute the maximum possible positive integer that divides every element of A after the operations. Here a positive integer x divides an integer y if and only if there exists an integer z such that
y=xz.
Constraints
·2≤N≤500
·1≤Ai≤106
·0≤K≤109
·All values in input are integers.
输入
Input is given from Standard Input in the following format:
N K
A1 A2 ⋯ AN−1 AN
输出
Print the maximum possible positive integer that divides every element of A after the operations.
样例输入
【样例1】
2 3
8 20
【样例2】
2 10
3 5
【样例3】
4 5
10 1 2 22
【样例4】
8 7
1 7 5 6 8 2 6 5
样例输出
【样例1】
7
【样例2】
8
【样例3】
7
【样例4】
5
提示
样例1解释
7 will divide every element of A if, for example, we perform the following operation:
·Choose i=2,j=1. A becomes (7,21).We cannot reach the situation where 8 or greater integer divides every element of A.
样例2解释
Consider performing the following five operations:
·Choose i=2,j=1. A becomes (2,6).
·Choose i=2,j=1. A becomes (1,7).
·Choose i=2,j=1. A becomes (0,8).
·Choose i=2,j=1. A becomes (−1,9).
·Choose i=1,j=2. A becomes (0,8).
Then, 0=8×0 and 8=8×1, so 8 divides every element of A. We cannot reach the situation where 9 or greater integer divides every element of A.
思路
每次操作后,实际上a的总和不变,因此若存在x能整除a的总和,那么即可以以该数作为因子求解,暴力枚举[1,sum],若x求解后符合条件,则该x成立
代码实现
#pragma GCC optimize(3,"Ofast","inline")
#include<bits/stdc++.h>
using namespace std;
typedef long long ll;
typedef unsigned long long ull;
const int N=505;
const int M=20;
const int INF=0x3f3f3f;
const ull sed=31;
const ll mod=1e9+7;
const double eps=1e-8;
const double PI=acos(-1.0);
typedef pair<int,int>P;
int n,a[N],k,sum,temp[N];
bool judge(int x)
{
if(sum%x) return false;
for(int i=1;i<=n;i++) temp[i]=a[i]%x;
sort(temp+1,temp+1+n);
int l=1,r=n,op=0;
while(l<r)
{
if(temp[l]%x==0)
{
l++;
continue;
}
if(temp[r]%x==0)
{
r--;
continue;
}
int t=min(temp[l]%x,x-(temp[r]%x));
temp[l]-=t;
temp[r]+=t;
op+=t;
}
return op<=k;
}
int main()
{
scanf("%d%d",&n,&k);
for(int i=1;i<=n;i++)
{
scanf("%d",&a[i]);
sum+=a[i];
}
for(int i=sum;i>=1;i--)
{
if(judge(i))
{
printf("%d\n",i);
break;
}
}
return 0;
}
