题目大意:给出平面上n个点,一个点离所有点的最长距离和最短距离的差最小,求这个最小的差。
思路:50W的数据为何O(nsqrt(n))的暴力能过???
CODE:
#include <cstdio>
#include <cstring>
#include <iostream>
#include <algorithm>
#define MAX 500010
#define INF 0x3f3f3f3f
using namespace std;
#define min(a,b) ((a) < (b) ? (a):(b))
#define max(a,b) ((a) > (b) ? (a):(b))
int dim;
struct Point{
int x,y;
Point(int _,int __):x(_),y(__) {}
Point() {}
bool operator <(const Point &a)const {
return dim ? x < a.x:y < a.y;
}
void Read() {
scanf("%d%d",&x,&y);
}
}point[MAX];
inline int Calc(const Point &p1,const Point &p2)
{
return abs(p1.x - p2.x) + abs(p1.y - p2.y);
}
struct KDTree{
KDTree *son[2];
Point root;
int x0,y0,x1,y1;
KDTree(KDTree *_,KDTree *__,Point ___) {
son[0] = _,son[1] = __;
root = ___;
x0 = x1 = ___.x;
y0 = y1 = ___.y;
}
KDTree() {}
void Maintain(KDTree *a) {
x0 = min(x0,a->x0);
x1 = max(x1,a->x1);
y0 = min(y0,a->y0);
y1 = max(y1,a->y1);
}
int DisMin(const Point &p) {
int re = 0;
if(p.x < x0) re += x0 - p.x;
if(p.x > x1) re += p.x - x1;
if(p.y < y0) re += y0 - p.y;
if(p.y > y1) re += p.y - y1;
return re;
}
int DisMax(const Point &p) {
int re = 0;
re += max(abs(p.x - x0),abs(p.x - x1));
re += max(abs(p.y - y0),abs(p.y - y1));
return re;
}
}*root,none,*nil = &none;
int cnt;
KDTree *BuildTree(int l,int r,int d)
{
if(l > r) return nil;
dim = d;
int mid = (l + r) >> 1;
nth_element(point + l,point + mid,point + r + 1);
KDTree *re = new KDTree(BuildTree(l,mid - 1,!d),BuildTree(mid + 1,r,!d),point[mid]);
if(re->son[0] != nil) re->Maintain(re->son[0]);
if(re->son[1] != nil) re->Maintain(re->son[1]);
return re;
}
int _min,_max;
void AskMin(KDTree *a,const Point &p)
{
int dis = Calc(a->root,p);
if(dis) _min = min(_min,dis);
int l = a->son[0] == nil ? INF:a->son[0]->DisMin(p);
int r = a->son[1] == nil ? INF:a->son[1]->DisMin(p);
if(l < r) {
if(a->son[0] != nil) AskMin(a->son[0],p);
if(a->son[1] != nil && r <= _min) AskMin(a->son[1],p);
}
else {
if(a->son[1] != nil) AskMin(a->son[1],p);
if(a->son[0] != nil && l <= _min) AskMin(a->son[0],p);
}
}
void AskMax(KDTree *a,const Point &p)
{
int dis = Calc(a->root,p);
_max = max(_max,dis);
int l = a->son[0] == nil ? -INF:a->son[0]->DisMax(p);
int r = a->son[1] == nil ? -INF:a->son[1]->DisMax(p);
if(l > r) {
if(a->son[0] != nil) AskMax(a->son[0],p);
if(a->son[1] != nil && r >= _max) AskMax(a->son[1],p);
}
else {
if(a->son[1] != nil) AskMax(a->son[1],p);
if(a->son[0] != nil && l >= _max) AskMax(a->son[0],p);
}
}
int main()
{
cin >> cnt;
for(int i = 1; i <= cnt; ++i)
point[i].Read();
root = BuildTree(1,cnt,0);
int ans = INF;
for(int i = 1; i <= cnt; ++i) {
_min = INF,_max = -INF;
AskMin(root,point[i]);
AskMax(root,point[i]);
ans = min(ans,_max - _min);
}
cout << ans << endl;
return 0;
}BZOJ 1941 SDOI 2010 Hide and Seek K-D树
原文地址:http://blog.csdn.net/jiangyuze831/article/details/42152023
