#ifndef SERIAL_LINK_H #define SERIAL_LINK_H #include #include #include // Binary framing for the phone <-> ESP32-C5 link (Phase 03). This runs over the ESP32-C5's // native USB Serial/JTAG peripheral (driver/usb_serial_jtag.h) - the same physical USB-C port // used for JTAG, exposed to the host as a fixed-VID/PID (0x303A/0x1001) USB CDC-ACM device. // Deliberately NOT the same wire as the ESP-IDF console/ESP_LOG output, which stays on the // OTHER USB-C port (the UART-bridge one, UART0, see sdkconfig CONFIG_ESP_CONSOLE_UART_NUM=0) - // mixing binary frames with human-readable log text on one wire would corrupt both, and this // way they're physically separate ports so there's no risk of that regardless. // // On the Android side, connect the phone (via USB-OTG) to the board's NATIVE USB-C port, not // the UART-bridge/flashing port. The usb-serial-for-android library's default prober doesn't // know Espressif's 0x303A/0x1001 VID/PID, so UsbSerialTransport.kt registers it manually via a // custom ProbeTable pointed at CdcAcmSerialDriver - see that file's KDoc. // // Frame format (both directions, symmetric): // [0xAA][0x55][type:1][length:2 LE][payload: length bytes][crc16:2 LE] // CRC16 is CRC-16/CCITT-FALSE (poly 0x1021, init 0xFFFF, no reflect, no xorout), computed over // type + length + payload only (not the two sync bytes). Same algorithm must be used on the // Kotlin side (see app SerialFrame.kt) - frames that don't checksum are silently dropped. // // Direction / types: // SERIAL_MSG_CAM_TX (0x01), phone -> ESP32: payload is a raw CAM UPER byte string, already // built by the phone (position/speed/heading/yaw rate baked in). On receipt the ESP32 // immediately GeoNetworking-wraps and transmits it - this IS the transmit clock now, there // is no independent on-chip timer. See main.c's rx-driven tx path. // SERIAL_MSG_CAM_RX (0x02), ESP32 -> phone: SUPERSEDED by SERIAL_MSG_V2X_RX, no longer sent. // The constant is kept so the numbering is not silently reused by a future message type. // SERIAL_MSG_V2X_RX (0x04), ESP32 -> phone: any ITS message received over the air, already // stripped of its 802.11/LLC-SNAP/GeoNetworking/BTP-B framing by gn_unwrap.c - the phone // never sees raw 802.11 frames. Payload is a fixed 14-byte prefix followed by the UPER bytes: // // [0..1] btp_dest_port uint16 LE 2001 = CAM, 2002 = DENM (ETSI TS 103 248) // [2] rssi int8 dBm, from the promiscuous RX metadata // [3] flags uint8 bit0: geo area fields below are valid // bit1: arrived signed (TS 103 097), signature NOT // verified. An app that tests only bit0 ignores it. // [4..7] geo_area_lat int32 LE 1/10 microdegree, GeoBroadcast destination area // [8..11] geo_area_lon int32 LE 1/10 microdegree // [12..13] geo_area_dist uint16 LE Distance A, metres (relevance radius for a circle) // [14..] UPER message bytes - exactly the message. Before 2026-09-11 they were followed by // the 8 bytes the chip's promiscuous RX appends (gn_unwrap.h, "Payload bounds"). // // All prefix fields are LITTLE-endian, matching this framing's own length field - note the // GeoNetworking wire format they came from is big-endian, so gn_unwrap.c converts. // Generic on purpose: adding MAPEM/SPATEM later needs a decoder on the phone and one port in // gn_unwrap.c, but no change to this protocol. No station id is carried separately - each // message's own ItsPduHeader.stationID is the meaningful identifier. // SERIAL_MSG_STATUS (0x03), ESP32 -> phone: heartbeat + counters, sent at 1 Hz so the phone can // distinguish "link idle" from "link dead" independent of CAM traffic (the app's watchdog in // UsbSerialTransport.kt declares the link dead after 3 missed beats). Payload is 8 bytes: // [status:1][oversize_drops:2 LE][tx_failures:2 LE][rx_crc_errors:2 LE][capabilities:1] // status 0 = ok. The counters are free-running totals since boot, saturating at 0xFFFF. // capabilities is a bitmask of the SERIAL_CAP_* flags below. It was appended as byte 7 rather // than inserted, so an app that predates it, and reads only the first 7 bytes, is unaffected. // They exist because the alternative - ESP_LOGW on the flashing port - is invisible to the // phone, which is the only thing watching during a bench session. Mirrored by EspLinkStatus // in the app's SerialFrame.kt. #define SERIAL_MSG_CAM_TX 0x01 #define SERIAL_MSG_CAM_RX 0x02 #define SERIAL_MSG_STATUS 0x03 #define SERIAL_MSG_V2X_RX 0x04 #define SERIAL_MSG_CAM_TX_PV 0x05 // Size of the V2X_RX prefix documented above. Must match the app's SerialFrame.kt. #define SERIAL_V2X_RX_PREFIX_LEN 14 // SERIAL_MSG_CAM_TX_PV (0x05), phone -> ESP32: a CAM together with the GeoNetworking Source // Position Vector to transmit it under. Payload is a fixed 24-byte prefix, then the CAM UPER: // // [0..5] mac 6 bytes pseudonym: the 802.11 source address AND the GN_ADDR MID // [6] station_type uint8 TS 102 894-2 StationType (2 = cyclist) // [7] flags uint8 bit0: PAI, position accuracy indicator // [8..11] tst uint32 LE ms at which lat/lon were acquired, TimestampIts mod 2^32 // [12..15] lat int32 LE 1/10 microdegree // [16..19] lon int32 LE 1/10 microdegree // [20..21] speed int16 LE 0.01 m/s // [22..23] heading uint16 LE 0.1 degree from north, clockwise, 0..3599 // [24..] CAM UPER bytes // // Little-endian like the rest of this framing; geonet.c converts to GeoNetworking's big-endian. // Every prefix field is something the phone already has when it builds the CAM, and none of it // can be known on this chip, which has no GNSS and no clock source on the OCB channel. Before // this message existed the GN header carried fixed placeholders instead (see main.c). // // A new type rather than a redefined CAM_TX, so app and firmware can be updated independently: // - old app, new firmware: the app sends CAM_TX, which is handled exactly as before. // - new app, old firmware: the app sends CAM_TX_PV only once the heartbeat advertises // SERIAL_CAP_CAM_TX_PV, and an old heartbeat carries no such bit, so it stays on CAM_TX. // Redefining CAM_TX would instead have double-wrapped every frame in one of those combinations // and sent one with no GN header in the other, silently, since neither side checks versions. #define SERIAL_CAM_TX_PV_PREFIX_LEN 24 // Capability bits, carried in byte 7 of the SERIAL_MSG_STATUS payload. #define SERIAL_CAP_CAM_TX_PV 0x01 // USB Serial/JTAG has no baud rate or GPIO pins to configure - it's a fixed on-chip USB device // controller wired directly to the native USB-C port's D+/D- lines in silicon. RX/TX buffer // sizes for usb_serial_jtag_driver_install() (see serial_link.c) are sized generously relative // to SERIAL_LINK_MAX_PAYLOAD below. #define SERIAL_LINK_USB_BUF_SIZE 1024 // Per-write block ceiling, and the mutex acquire timeout that must comfortably exceed the // worst case of one frame (4 writes: sync, head, payload, crc). Keep that relationship if you // change either number - a lock timeout below the max hold turns normal contention into // dropped frames, which is how the heartbeat was being starved by forwarded CAM_RX traffic. #define SERIAL_LINK_WRITE_TIMEOUT_MS 100 #define SERIAL_LINK_TX_LOCK_TIMEOUT_MS 600 // Max CAM payload this link will carry. MUST match SERIAL_LINK_MAX_PAYLOAD in the app's // SerialFrame.kt - a mismatch means every frame above the smaller of the two is rejected by that // side's "length exceeds max, resync" branch, silently. // // Raised from 160 to 512: 160 was reasoned from cam.c's 96-byte encode buffer, which only ever // described OUR OWN minimal CAM. A third-party CAM off the air carrying a path-history or // special-vehicle container comfortably exceeds it, and those stations would then never reach the // phone at all. 512 clears any realistic CAM. Our own CAM is 43 bytes of UPER. // // This, not the radio side, is the ceiling on the RX path. main.c captures up to RX_FRAME_MAX_LEN // (800) bytes per frame, sized for the CiT One's 528-byte DENM, so a larger ITS payload // does arrive here. serial_link_send_v2x_rx() then drops anything above this minus its 14-byte // prefix and counts it in the heartbeat's oversize-drop counter. #define SERIAL_LINK_MAX_PAYLOAD 512 // Initializes the USB Serial/JTAG driver and its background RX-framing and 1 Hz heartbeat tasks. // Call once from app_main, after nvs/event loop init. Both callbacks run in the RX task's context, // so keep them fast: they block the next frame's parsing. // on_cam_tx a complete, checksummed SERIAL_MSG_CAM_TX frame: bare CAM UPER. // on_cam_tx_pv a complete, checksummed SERIAL_MSG_CAM_TX_PV frame, already checked to carry at // least one CAM byte after its prefix: the 24-byte prefix, then the CAM UPER. typedef void (*serial_link_cam_tx_cb_t)(const uint8_t *cam_uper, int cam_len); typedef void (*serial_link_cam_tx_pv_cb_t)(const uint8_t *prefix, const uint8_t *cam_uper, int cam_len); void serial_link_init(serial_link_cam_tx_cb_t on_cam_tx, serial_link_cam_tx_pv_cb_t on_cam_tx_pv); // Sends a SERIAL_MSG_V2X_RX frame: the metadata prefix plus the UPER bytes gn_unwrap.c extracted // from an over-the-air frame. Pass has_geo_area=false and zeroes for the area fields when the // source frame carried no destination area (i.e. it was single-hop broadcast, not GeoBroadcast). // signed_unverified is gn_rx_t's flag of the same name; it sets bit1 of the prefix flags. // Returns true if the frame was written to the USB endpoint - not an end-to-end ack, the phone // may still drop it. bool serial_link_send_v2x_rx(uint16_t btp_dest_port, int8_t rssi, bool has_geo_area, bool signed_unverified, int32_t geo_area_lat_tenmicrodeg, int32_t geo_area_lon_tenmicrodeg, uint16_t geo_area_distance_a_m, const uint8_t *uper, int uper_len); // Sends one SERIAL_MSG_STATUS heartbeat frame immediately (status byte + the current counters). // Normally unnecessary to call by hand - serial_link_init() starts a task that does this at 1 Hz. bool serial_link_send_status(uint8_t status); // Records a failed esp_wifi_80211_tx() so it shows up in the next heartbeat's tx_failures // counter. Called from main.c's tx_radio_task - a CAM that reached the radio but didn't go out is // otherwise indistinguishable, from the phone's side, from one that transmitted fine. void serial_link_note_tx_failure(void); // Counts an ITS message that cannot be forwarded because it is too large, in the same heartbeat // counter serial_link_send_v2x_rx() uses for its own size check. For main.c's rx_forward_task, // whose capture buffer is smaller than the largest frames on air. void serial_link_note_oversize_drop(uint16_t btp_dest_port); #endif