Files
MicrOBU/obu-firmware/external/vanetza-idf/tools/socktap/cohda.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

76 lines
2.8 KiB
C++

#include "cohda.hpp"
#include <vanetza/access/access_category.hpp>
#include <vanetza/access/g5_link_layer.hpp>
#include <vanetza/common/serialization_buffer.hpp>
#include <vanetza/dcc/mapping.hpp>
#include <cassert>
#include <llc-api.h>
namespace vanetza
{
void insert_cohda_tx_header(const access::DataRequest& request, std::unique_ptr<ChunkPacket>& packet)
{
access::G5LinkLayer link_layer;
access::ieee802::dot11::QosDataHeader& mac_header = link_layer.mac_header;
mac_header.destination = request.destination_addr;
mac_header.source = request.source_addr;
mac_header.qos_control.user_priority(request.access_category);
ByteBuffer link_layer_buffer;
serialize_into_buffer(link_layer, link_layer_buffer);
assert(link_layer_buffer.size() == access::G5LinkLayer::length_bytes);
packet->layer(OsiLayer::Link) = std::move(link_layer_buffer);
const std::size_t payload_size = packet->size();
const std::size_t total_size = sizeof(tMKxTxPacket) + payload_size;
tMKxTxPacket phy = { 0 };
phy.Hdr.Type = MKXIF_TXPACKET;
phy.Hdr.Len = total_size;
phy.TxPacketData.TxAntenna = MKX_ANT_DEFAULT;
phy.TxPacketData.TxFrameLength = payload_size;
auto phy_ptr = reinterpret_cast<const uint8_t*>(&phy);
packet->layer(OsiLayer::Physical) = ByteBuffer { phy_ptr, phy_ptr + sizeof(tMKxTxPacket) };
}
boost::optional<EthernetHeader> strip_cohda_rx_header(CohesivePacket& packet)
{
static const std::size_t min_length = sizeof(tMKxRxPacket) + access::G5LinkLayer::length_bytes +
access::ieee802::dot11::fcs_length_bytes;
if (packet.size(OsiLayer::Physical) < min_length) {
return boost::none;
}
packet.set_boundary(OsiLayer::Physical, sizeof(tMKxRxPacket));
auto phy = reinterpret_cast<const tMKxRxPacket*>(&*packet[OsiLayer::Physical].begin());
if (phy->Hdr.Type != MKXIF_RXPACKET) {
return boost::none;
}
// Sanity check that sizes reported by Cohda LLC are correct, since we rely on Cohda's FCS checking
if (phy->Hdr.Len != packet.size() || phy->RxPacketData.RxFrameLength != packet.size() - sizeof(tMKxRxPacket)) {
return boost::none;
}
if (!phy->RxPacketData.FCSPass) {
return boost::none;
}
packet.trim(OsiLayer::Link, packet.size() - access::ieee802::dot11::fcs_length_bytes);
packet.set_boundary(OsiLayer::Link, access::G5LinkLayer::length_bytes);
access::G5LinkLayer link_layer;
deserialize_from_range(link_layer, packet[OsiLayer::Link]);
if (!access::check_fixed_fields(link_layer)) {
return boost::none;
}
EthernetHeader eth;
eth.destination = link_layer.mac_header.destination;
eth.source = link_layer.mac_header.source;
eth.type = link_layer.llc_snap_header.protocol_id;
return eth;
}
} // namespace vanetza