Bike loves looking for the second maximum element in the sequence. The second maximum element in the sequence of distinct numbers x1, x2, ..., xk (k > 1) is such maximum element xj, that the following inequality holds: .
The lucky number of the sequence of distinct positive integers x1, x2, ..., xk (k > 1)is the number that is equal to the bitwise excluding OR of the maximum element of the sequence and the second maximum element of the sequence.
You've got a sequence of distinct positive integers s1, s2, ..., sn (n > 1). Let's denote sequence sl, sl + 1, ..., sr as s[l..r] (1 ≤ l < r ≤ n). Your task is to find the maximum number among all lucky numbers of sequences s[l..r].
Note that as all numbers in sequence s are distinct, all the given definitions make sence.
Input
The first line contains integer n (1 < n ≤ 105). The second line contains n distinct integers s1, s2, ..., sn (1 ≤ si ≤ 109).
Output
Print a single integer — the maximum lucky number among all lucky numbers of sequences s[l..r].
Examples
Input
5
5 2 1 4 3
Output
7
Input
5
9 8 3 5 7
Output
15
Note
For the first sample you can choose s[4..5] = {4, 3} and its lucky number is (4 xor 3) = 7. You can also choose s[1..2].
For the second sample you must choose s[2..5] = {8, 3, 5, 7}.
题意:给一个长度为 n 的序列,元素不重复,求任意区间中的最大元素与次大元素的异或值,然后再取这些值的最大值,注意区间长度任意。
题解:如果暴力的话是 O(n ^ 2) 的复杂度,显然不行,所以就需要用单调栈维护一下,O(n)解决,找到第一个比它大的数,看代码吧!!
#include <iostream>
#include <cstdio>
#include <stack>
using namespace std;
const int MAX = 1e5+100;
typedef long long ll;
ll a[MAX];
stack<ll> s;
int main(){
int n;
scanf("%d",&n);
for (int i = 0; i < n;i++){
scanf("%lld",&a[i]);
}
ll ans=0;
for (ll i = n-1; i >= 0;i--){
while(!s.empty()&&a[s.top()]<a[i]) s.pop();//单调栈找到第一个比它大的数 反向跑
if(!s.empty()) ans=max(ans,a[s.top()]^a[i]);
s.push(i);
}
for (ll i = 0; i < n;i++){
while(!s.empty()&&a[s.top()]<a[i]) s.pop();//单调栈找到第一个比它大的数 正向跑
if(!s.empty()) ans=max(ans,a[s.top()]^a[i]);
s.push(i);
}
// 必须两个方向跑,要不然会有遗漏
printf("%lld\n",ans);
return 0;
}