阅读完相关内容后,我想到了这一点:
#include <vector>
#include <CGAL/Exact_predicates_inexact_constructions_kernel.h>
#include <CGAL/Delaunay_triangulation_2.h>
typedef CGAL::Exact_predicates_inexact_constructions_kernel K;
typedef CGAL::Delaunay_triangulation_2<K> Delaunay;
typedef K::Point_2 Point;
void load_points(std::vector< Point >& points)
{
points.push_back(Point(1., 1.));
points.push_back(Point(2., 1.));
points.push_back(Point(2., 2.));
points.push_back(Point(1., 2.));
}
int main()
{
std::vector< Point > points;
load_points(points);
Delaunay dt;
dt.insert(points.begin(), points.end());
std::cout << dt.number_of_vertices() << std::endl;
typedef std::vector<Delaunay::Face_handle> Faces;
Faces faces;
std::back_insert_iterator<Faces> result( faces );
result = dt.get_conflicts ( Delaunay::Point(1.5, 1.5),
std::back_inserter(faces) );
return 0;
}
这应该找到外接圆包含该点的面。之后,我必须采用这些三角形并使用一种方法来测试该点是否在它们内部(CGAL 会这样做吗?我知道这很容易实现)。
不管怎样,我怎样才能把三角形从脸上去掉呢?
答案是
CGAL::Triangle_2<K> f = dt.triangle(faces[0]);
std::cout << dt.triangle(faces[0]) << …