Files
MicrOBU/microbu-esp32c5/external/vanetza-idf/vanetza/geonet/areas.cpp
T
Ashin Walpola 0e9525162d Keep the colleague's microbu-esp32c5 tree in this repository
obu-firmware builds against vanetza-idf from microbu-esp32c5/external, but
that tree was gitignored, so a clone of this repository could not build the
firmware it ships. It is now committed here as ordinary files in its own
folder, microbu-esp32c5/: the colleague's commit cf4b99f plus the V2X2MAP
bridge's signature verification (--trust) used on the bench. Nothing is
fetched from or pushed to the colleague's repository; this repository and
its remotes carry everything. The folder's own .gitignore keeps build output,
downloaded components and private key material out, as it did there; the
committed file set is identical to that repository's tracked files.

The ESP32-C5 is still flashed from obu-firmware/, which only takes
vanetza-idf from microbu-esp32c5/, so the two stay separate folders.
FLASHING.md says how to take a newer version of the colleague's tree (copy
it over the folder, rebuild, test, commit).
2026-09-23 17:46:40 +02:00

116 lines
3.4 KiB
C++

#include "areas.hpp"
#include <boost/math/constants/constants.hpp>
#include <boost/units/cmath.hpp>
#include <algorithm>
#include <cassert>
#include <limits>
namespace vanetza
{
namespace geonet
{
double geometric_function(const Circle& c, const CartesianPosition& p)
{
if (c.r.value() != 0.0) {
const double x_over_r = p.x / c.r;
const double y_over_r = p.y / c.r;
return 1.0 - (x_over_r * x_over_r) - (y_over_r * y_over_r);
} else {
return -std::numeric_limits<double>::infinity();
};
}
double geometric_function(const Rectangle& r, const CartesianPosition& p)
{
if (r.a.value() != 0.0 && r.b.value() != 0.0) {
const double x_over_a = p.x / r.a;
const double y_over_b = p.y / r.b;
return std::min(1.0 - x_over_a * x_over_a, 1.0 - y_over_b * y_over_b);
} else {
return -std::numeric_limits<double>::infinity();
}
}
double geometric_function(const Ellipse& e, const CartesianPosition& p)
{
if (e.a.value() != 0.0 && e.b.value() != 0.0) {
const double x_over_a = p.x / e.a;
const double y_over_b = p.y / e.b;
return 1.0 - (x_over_a * x_over_a) - (y_over_b * y_over_b);
} else {
return -std::numeric_limits<double>::infinity();
}
}
struct geometric_function_visitor : public boost::static_visitor<double>
{
geometric_function_visitor(const CartesianPosition& p) : point(p) {}
template<class SHAPE>
double operator()(const SHAPE& s) const
{
return geometric_function(s, point);
}
const CartesianPosition& point;
};
double geometric_function(const decltype(Area::shape)& shape, const CartesianPosition& p)
{
geometric_function_visitor visitor(p);
return boost::apply_visitor(visitor, shape);
}
CartesianPosition canonicalize(const CartesianPosition& point, units::Angle azimuth)
{
using namespace boost::math::double_constants;
// area.angle is azimuth angle of EN 302 931 V1.1.1
const units::Angle zenith = half_pi * units::si::radian - azimuth;
const double sin_z = sin(zenith);
const double cos_z = cos(zenith);
// rotate canonical point around origin clockwise: zenith = 90 deg - azimuth
// other interpretation: rotate shape's long side onto abscissa
CartesianPosition canonical;
canonical.x = cos_z * point.x + sin_z * point.y;
canonical.y = -sin_z * point.x + cos_z * point.y;
return canonical;
}
struct area_size_visitor : public boost::static_visitor<units::Area>
{
units::Area operator()(const Circle& circle) const
{
using namespace boost::math::double_constants;
return pi * circle.r * circle.r;
}
units::Area operator()(const Rectangle& rectangle) const
{
using namespace boost::math::double_constants;
return 4.0 * rectangle.a * rectangle.b;
}
units::Area operator()(const Ellipse& ellipse) const
{
using namespace boost::math::double_constants;
return pi * ellipse.a * ellipse.b;
}
};
units::Area area_size(const Area& area)
{
return boost::apply_visitor(area_size_visitor(), area.shape);
}
bool inside_or_at_border(const Area& area, const GeodeticPosition& geo_position)
{
const CartesianPosition local = local_cartesian(area.position, geo_position);
const CartesianPosition canonical = canonicalize(local, area.angle);
return !outside_shape(area.shape, canonical);
}
} // namespace geonet
} // namespace vanetza