Given n points on a 2D plane, find the maximum number of points that lie on the same straight line.
穷举法:
需要两重循环,第一重循环遍历起始点a,第二重循环遍历剩余点b。
a和b如果不重合,就可以确定一条直线。
对于每个点a,构建 斜率->点数 的map。
(1)b与a重合,以a起始的所有直线点数+1 (用dup统一相加)
(2)b与a不重合,a与b确定的直线点数+1
/**
* Definition for a point.
* struct Point {
* int x;
* int y;
* Point() : x(0), y(0) {}
* Point(int a, int b) : x(a), y(b) {}
* };
*/
class Solution {
public:
int maxPoints(vector<Point> &points) {
int size = points.size();
if(size == 0)
return 0;
else if(size == 1)
return 1;
int ret = 0;
for(int i = 0;i<size;i++){
int curmax = 1;
map<double,int>mp;
int vcnt = 0; //垂直点
int dup = 0; //重复点
for(int j = 0;j<size;j++){
if(j!=i){
double x1 = points[i].x - points[j].x;
double y1 = points[i].y - points[j].y;
if(x1 == 0 && y1 == 0){ //重复
dup++;
}else if(x1 == 0){ //垂直
if(vcnt == 0)
vcnt = 2;
else
vcnt++;
curmax = max(vcnt,curmax);
}else{
double k = y1/x1; //斜率
if(mp[k] == 0)
mp[k] = 2;
else
mp[k]++;
curmax = max(mp[k],curmax);
}
}
}
ret = max(ret,curmax+dup);
}
return ret;
}
};