Files
MicrOBU/obu-firmware/external/vanetza-idf/vanetza/geodesy/tests/country_data_reader.cpp
T
Ashin Walpola d107534eb2 Keep vanetza-idf in obu-firmware, so a plain clone builds the firmware
obu-firmware builds against the vanetza-idf C-ITS library, which until now
came from the colleague's microbu-esp32c5 tree beside the repository and was
not tracked here, so a clone of this repository could not build the firmware
it ships. The library alone is now part of obu-firmware, as
obu-firmware/external/vanetza-idf: their external/vanetza-idf at commit
cf4b99f, unchanged (9775 files; see its PROVENANCE.md). CMake takes it from
there by default; -DVANETZA_IDF_DIR still points the build elsewhere.

The rest of the colleague's tree (their own VAM firmware, PKI tooling,
station-link Python tools, the V2X2MAP bridge) stays out of this repository
and gitignored; nothing is pushed to their repository. NOTES.md, docs/06,
TODO.md and the pcap verifier's usage line point at the new location.
2026-09-24 10:56:05 +02:00

277 lines
8.7 KiB
C++

#include <vanetza/common/byte_order.hpp>
#include <vanetza/geodesy/country_data_reader.hpp>
#include <gtest/gtest.h>
#include <cstring>
#include <map>
#include <vector>
using namespace vanetza;
using namespace vanetza::geodesy;
namespace
{
template<ByteOrder Order, typename T>
void append(std::vector<uint8_t>& buf, T v)
{
EndianType<T, Order> e = host_cast(v);
auto raw = e.get();
const auto* p = reinterpret_cast<const uint8_t*>(&raw);
buf.insert(buf.end(), p, p + sizeof(raw));
}
void append_u16le(std::vector<uint8_t>& buf, uint16_t v)
{
append<ByteOrder::LittleEndian>(buf, v);
}
void append_u32le(std::vector<uint8_t>& buf, uint32_t v)
{
append<ByteOrder::LittleEndian>(buf, v);
}
void append_u32be(std::vector<uint8_t>& buf, uint32_t v)
{
append<ByteOrder::BigEndian>(buf, v);
}
void append_f64le(std::vector<uint8_t>& buf, double v)
{
uint64_t bits;
std::memcpy(&bits, &v, sizeof(bits));
append<ByteOrder::LittleEndian>(buf, bits);
}
void append_f64be(std::vector<uint8_t>& buf, double v)
{
uint64_t bits;
std::memcpy(&bits, &v, sizeof(bits));
append<ByteOrder::BigEndian>(buf, bits);
}
std::vector<uint8_t> make_wkb_polygon_le(const std::vector<std::pair<double, double>>& ring)
{
std::vector<uint8_t> wkb;
wkb.push_back(0x01); // little-endian
append_u32le(wkb, 3); // type = Polygon
append_u32le(wkb, 1); // num_rings = 1
uint32_t num_points = static_cast<uint32_t>(ring.size()) + 1; // +1 for closing point
append_u32le(wkb, num_points);
for (const auto& p : ring) {
append_f64le(wkb, p.first); // lon
append_f64le(wkb, p.second); // lat
}
append_f64le(wkb, ring.front().first);
append_f64le(wkb, ring.front().second);
return wkb;
}
std::vector<uint8_t> make_wkb_polygon_be(const std::vector<std::pair<double, double>>& ring)
{
std::vector<uint8_t> wkb;
wkb.push_back(0x00); // big-endian
append_u32be(wkb, 3); // type = Polygon
append_u32be(wkb, 1); // num_rings = 1
uint32_t num_points = static_cast<uint32_t>(ring.size()) + 1;
append_u32be(wkb, num_points);
for (const auto& p : ring) {
append_f64be(wkb, p.first);
append_f64be(wkb, p.second);
}
append_f64be(wkb, ring.front().first);
append_f64be(wkb, ring.front().second);
return wkb;
}
std::vector<uint8_t> make_wkb_multipolygon_le(const std::vector<std::pair<double, double>>& ring)
{
auto poly_wkb = make_wkb_polygon_le(ring);
std::vector<uint8_t> wkb;
wkb.push_back(0x01); // little-endian
append_u32le(wkb, 6); // type = MultiPolygon
append_u32le(wkb, 1); // num_polygons = 1
wkb.insert(wkb.end(), poly_wkb.begin(), poly_wkb.end());
return wkb;
}
std::vector<uint8_t> make_entry(uint16_t m49, const std::vector<uint8_t>& wkb)
{
std::vector<uint8_t> entry;
append_u16le(entry, m49);
append_u32le(entry, static_cast<uint32_t>(wkb.size()));
entry.insert(entry.end(), wkb.begin(), wkb.end());
return entry;
}
std::vector<uint8_t> make_file(std::initializer_list<std::vector<uint8_t>> entries)
{
std::vector<uint8_t> buf;
append_u16le(buf, vanetza::geodesy::detail::country_data_format_version);
for (const auto& e : entries) {
buf.insert(buf.end(), e.begin(), e.end());
}
return buf;
}
// A simple square polygon approximating Europe: (5,45) to (15,55)
const std::vector<std::pair<double, double>> square_europe = {
{5.0, 45.0}, {15.0, 45.0}, {15.0, 55.0}, {5.0, 55.0}
};
// A simple square polygon approximating France: (-5,42) to (10,51)
const std::vector<std::pair<double, double>> square_france = {
{-5.0, 42.0}, {10.0, 42.0}, {10.0, 51.0}, {-5.0, 51.0}
};
} // anonymous namespace
TEST(CountryDataReader, empty_input)
{
auto result = read_country_data(nullptr, 0, [](M49Code, CountryPolygon&&) {});
EXPECT_TRUE(result.failed());
}
TEST(CountryDataReader, header_only)
{
auto data = make_file({});
std::map<uint16_t, CountryPolygon> result;
auto r = read_country_data(data.data(), data.size(), [&](M49Code code, CountryPolygon&& poly) {
result[code.value()] = std::move(poly);
});
EXPECT_TRUE(r.ok());
}
TEST(CountryDataReader, single_polygon_entry)
{
auto wkb = make_wkb_polygon_le(square_europe);
auto data = make_file({make_entry(276, wkb)});
std::map<uint16_t, CountryPolygon> result;
auto r = read_country_data(data.data(), data.size(), [&](M49Code code, CountryPolygon&& poly) {
result[code.value()] = std::move(poly);
});
EXPECT_TRUE(r.ok());
ASSERT_EQ(1u, result.size());
EXPECT_EQ(1u, result.count(276));
}
TEST(CountryDataReader, multipolygon_entry)
{
auto wkb = make_wkb_multipolygon_le(square_europe);
auto data = make_file({make_entry(276, wkb)});
std::map<uint16_t, CountryPolygon> result;
auto r = read_country_data(data.data(), data.size(), [&](M49Code code, CountryPolygon&& poly) {
result[code.value()] = std::move(poly);
});
EXPECT_TRUE(r.ok());
ASSERT_EQ(1u, result.size());
EXPECT_EQ(1u, result.count(276));
}
TEST(CountryDataReader, multiple_entries)
{
auto wkb1 = make_wkb_polygon_le(square_europe);
auto wkb2 = make_wkb_polygon_le(square_france);
auto data = make_file({make_entry(276, wkb1), make_entry(250, wkb2)});
std::map<uint16_t, CountryPolygon> result;
auto r = read_country_data(data.data(), data.size(), [&](M49Code code, CountryPolygon&& poly) {
result[code.value()] = std::move(poly);
});
EXPECT_TRUE(r.ok());
EXPECT_EQ(2u, result.size());
EXPECT_EQ(1u, result.count(276));
EXPECT_EQ(1u, result.count(250));
}
TEST(CountryDataReader, big_endian_wkb_payload)
{
auto wkb = make_wkb_polygon_be(square_europe);
auto data = make_file({make_entry(276, wkb)});
std::map<uint16_t, CountryPolygon> result;
auto r = read_country_data(data.data(), data.size(), [&](M49Code code, CountryPolygon&& poly) {
result[code.value()] = std::move(poly);
});
EXPECT_TRUE(r.ok());
ASSERT_EQ(1u, result.size());
EXPECT_EQ(1u, result.count(276));
}
TEST(CountryDataReader, truncated_version_header)
{
std::vector<uint8_t> data = {0x14}; // only 1 byte, not enough for version field
auto result = read_country_data(data.data(), data.size(), [](M49Code, CountryPolygon&&) {});
EXPECT_TRUE(result.failed());
}
TEST(CountryDataReader, unsupported_version)
{
std::vector<uint8_t> data;
append_u16le(data, vanetza::geodesy::detail::country_data_format_version + 1);
auto result = read_country_data(data.data(), data.size(), [](M49Code, CountryPolygon&&) {});
EXPECT_TRUE(result.failed());
}
TEST(CountryDataReader, truncated_entry_header)
{
std::vector<uint8_t> data;
append_u16le(data, vanetza::geodesy::detail::country_data_format_version);
data.push_back(0x14); // one byte of an entry header, not enough
auto result = read_country_data(data.data(), data.size(), [](M49Code, CountryPolygon&&) {});
EXPECT_TRUE(result.failed());
}
TEST(CountryDataReader, truncated_wkb_payload)
{
auto wkb = make_wkb_polygon_le(square_europe);
auto data = make_file({make_entry(276, wkb)});
// keep the version header + entry header intact but truncate halfway through the WKB
data.resize(data.size() - wkb.size() / 2);
auto result = read_country_data(data.data(), data.size(), [](M49Code, CountryPolygon&&) {});
EXPECT_TRUE(result.failed());
EXPECT_FALSE(result.message().empty());
}
TEST(CountryDataReader, wkb_size_exceeds_remaining)
{
std::vector<uint8_t> data;
append_u16le(data, vanetza::geodesy::detail::country_data_format_version);
append_u16le(data, 276);
append_u32le(data, 9999); // claims 9999 bytes of WKB
data.push_back(0x01); // just 1 byte
auto result = read_country_data(data.data(), data.size(), [](M49Code, CountryPolygon&&) {});
EXPECT_TRUE(result.failed());
}
TEST(CountryDataReader, unsupported_geometry_type)
{
std::vector<uint8_t> wkb;
wkb.push_back(0x01); // little-endian
append_u32le(wkb, 1); // type = Point (unsupported)
append_f64le(wkb, 10.0);
append_f64le(wkb, 50.0);
auto data = make_file({make_entry(276, wkb)});
auto result = read_country_data(data.data(), data.size(), [](M49Code, CountryPolygon&&) {});
EXPECT_TRUE(result.failed());
}
TEST(CountryDataReader, failure_reports_position)
{
// "truncated entry header" — position is the offset of the partial entry (right after version).
std::vector<uint8_t> data;
append_u16le(data, vanetza::geodesy::detail::country_data_format_version);
data.push_back(0x14); // partial entry header at offset 2
auto result = read_country_data(data.data(), data.size(), [](M49Code, CountryPolygon&&) {});
ASSERT_TRUE(result.failed());
EXPECT_EQ(sizeof(uint16_t), result.position());
}