HDU 5792 World is Exploding 树状数组+枚举

题目链接：

http://acm.hdu.edu.cn/showproblem.php?pid=5792

World is Exploding

Time Limit: 2000/1000 MS (Java/Others)
Memory Limit: 65536/65536 K (Java/Others) #### 问题描述 > #### 输入 > The input consists of multiple test cases. > Each test case begin with an integer n in a single line. > > The next line contains n integers A1,A2⋯An. > 1≤n≤50000 > 0≤Ai≤1e9

输出

For each test case,output a line contains an integer.

样例

sample input
4
2 4 1 3
4
1 2 3 4

sample output
1
0

题解

数据给的50000，枚举两个点是不可能了，但题目只是要四元组的个数，并没有问每个四元组长什么样，那么我们可以考虑预处理统计一些值出来，枚举一个点尝试一下。

我们预处理出四个数组：ls[i],lg[i],rs[i],rg[i]。分别表示i左边比它小的，比它大的；i右边比它小的，比它大的个数。然后我们每次枚举左下角的点去做，再扣去算出来是三个点（一个点算重了，注意：不可能有两个点都算重）的情况，就可以了。具体的统计公式看代码。

代码

#include<map>
#include<cmath>
#include<queue>
#include<vector>
#include<cstdio>
#include<string>
#include<cstring>
#include<iostream>
#include<algorithm>
#define X first
#define Y second
#define mkp make_pair
#define lson (o<<1)
#define rson ((o<<1)|1)
#define mid (l+(r-l)/2)
#define pb(v) push_back(v)
#define sz() size()
#define all(o) (o).begin(),(o).end()
#define clr(a,v) memset(a,v,sizeof(a))
#define bug(a) cout<<#a<<" = "<<a<<endl
#define rep(i,a,b) for(int i=a;i<(b);i++)

using namespace std;

typedef long long LL;
typedef vector<int> VI;
typedef pair<int,int> PII;
typedef vector<pair<int,int> > VPII;

const int INF=0x3f3f3f3f;
const LL INFL=0x3f3f3f3f3f3f3f3fLL;
const double eps=1e-8;

//start----------------------------------------------------------------------

const int maxn = 5e4+10;
const int mod=21092013;

int n;

int ls[maxn],lg[maxn],rs[maxn],rg[maxn];
int arr[maxn],arr2[maxn];
VI ha;
int sumv[maxn];
void add(int x,int v){
	while(x<=n){
		sumv[x]+=v;
		x+=x&(-x);
	}
}

int sum(int x){
	int ret=0;
	while(x>0){
		ret+=sumv[x];
		x-=x&(-x);
	}
	return ret;
}

void init(){
	ha.clear();
	clr(ls,0); 
	clr(lg,0);
	clr(rs,0);
	clr(rg,0);
	clr(sumv,0);
}

int main() {
	while(scanf("%d",&n)==1&&n){
		init();
		rep(i,0,n){
			scanf("%d",&arr[i]);
			arr2[i]=arr[i]; 
			ha.pb(arr[i]);
		}
		sort(arr2,arr2+n);
		sort(all(ha));
		ha.erase(unique(all(ha)),ha.end());
		LL sums=0;
		rep(i,0,n){
			int id=lower_bound(all(ha),arr[i])-ha.begin()+1;
			ls[i]=sum(id-1); lg[i]=sum(n)-sum(id);
			int p1=lower_bound(arr2,arr2+n,arr[i])-arr2;
			int p2=upper_bound(arr2,arr2+n,arr[i])-arr2;
			rs[i]=p1-ls[i]; rg[i]=n-p2-lg[i];
			sums+=rs[i];
			add(id,1);
		}
		LL ans=0;
		rep(i,0,n){ 
			ans+=rg[i]*(sums-rs[i]-lg[i]);
		}
		rep(i,0,n){
			ans-=ls[i]*(rs[i]+lg[i]);
		}
		printf("%lld
",ans);
	}
	return 0;
}

//end-----------------------------------------------------------------------