做法就是先枚举右区间的区间和,循环从下标1开始,然后从2开始 全部插入到set里面,
然后枚举左区间,先把从下标1开始的组合删掉,再把下标2的值的组合删掉,然后枚举左区间的组合,用二分来查找差距最小的值
#include <iostream>
#include <set>
using namespace std;
typedef long long LL;
const int N = 1e3+10;
LL s[N],a[N];
int n,sum;
LL retleft,retright;
multiset <LL> mp;
int main()
{ios::sync_with_stdio(false);cin.tie(0);cin >> n;LL ret = 1e9;mp.insert(-1e9);mp.insert(1e9); for(int i = 1;i<=n;i++){cin >> a[i];s[i] = s[i-1]+a[i];}for(int i = 1;i<=n;i++){for(int j = i;j<=n;j++){mp.insert(s[j]-s[i-1]);}}for(int i = 1;i<=n;i++){for(int j = i;j<=n;j++){auto p = mp.find(s[j]-s[i-1]);mp.erase(p); }for(int j = i;j>=1;j--){LL k = s[i]-s[j-1];//s[j] auto it = mp.lower_bound(k);LL t1 = *it;it--;LL t2 = *it;LL dis = min(abs(t1-k),abs(t2-k)); ret = min(ret,dis);}}cout << ret << endl;}