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 FLASHING.md says how to take a newer version of the colleague's tree (copy it over the folder, rebuild, test, commit).
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obu-firmware — setup & flashing notes
Two toolchains - use a dedicated terminal for each
Since 2026-09-23 this project builds against ESP-IDF 6.0.2 exactly
(C:\Espressif\frameworks\esp-idf-v6.0.2): it is the vanetza-idf port (see
NOTES.md), and vanetza-idf's radio_c5.cmake refuses any other version because
the raw TX path pokes private Wi-Fi driver structures only validated there. The
previous C firmware used the receiver firmware's IDF 6.1; the separate
obu-cam-transmistter project builds against the global ESP-IDF 5.5.4.
Exporting two of them in one PowerShell window fails: the second export
inherits the first's IDF_PYTHON_ENV_PATH and reports every Python dependency
as unmet. Don't run install.bat to "fix" that - open a fresh terminal, or
clear the state with $env:IDF_PYTHON_ENV_PATH = $null; $env:IDF_PATH = $null.
The build also needs the colleague's microbu-esp32c5 tree, which this
repository carries as ordinary files in microbu-esp32c5/: vanetza-idf is taken
from its external/vanetza-idf. Pass -DVANETZA_IDF_DIR=<path> to idf.py if
it lives elsewhere. The first build downloads espressif/esp-boost into
managed_components/.
microbu-esp32c5/ is a copy, not a submodule: nothing is fetched from or pushed
to the colleague's repository (HAW GitLab, urban-mobility-lab/microbu/
microbu-esp32c5). It was taken at their commit cf4b99f plus our V2X2MAP
signature verification (local commit 428a386; that repository's history is kept
outside this one in ..\microbu-esp32c5-colleague.git). To take a newer version
of their tree, copy it over this folder, rebuild and test, and commit it here.
Every new PowerShell session
Set-ExecutionPolicy -Scope Process -ExecutionPolicy Bypass
$env:IDF_TOOLS_PATH = "C:\Espressif"
C:\Espressif\frameworks\esp-idf-v6.0.2\export.ps1
idf.py --version # v6.0.2
Going back to the previous firmware
firmware-backups/ in the repository root (gitignored) holds a full-flash image
of the COM3 board as it was before the port, with the esptool command to write
it back in its README.txt.
Build & flash
cd C:\Users\Ashin\AndroidStudioProjects\MicrOBU\obu-firmware
idf.py set-target esp32c5 # only needed once per clean build folder
idf.py build
idf.py -p COM5 -b 921600 flash monitor
Swap COM5 for whatever port the ESP32-C5 enumerates as (Device Manager →
Ports). monitor opens the serial console after flashing — Ctrl+] to exit.
If the build fails
- "includes X.h, provided by Y component(s)... not in the requirements
list" — IDF 5.x split the old monolithic
drivercomponent apart (esp_driver_gpio,esp_driver_uart, etc.). Add the named component toREQUIRESinmain/CMakeLists.txtand rebuild. Already fixed once foresp_driver_gpio+esp_driver_uart— if a new header comes up, same fix. - Otherwise, start clean before re-building:
idf.py fullclean idf.py build
Connecting the phone (ESP32-C5-WIFI6-KIT)
The board has two USB-C ports — use the right one:
- Native USB-C port (labeled for JTAG/native USB, up to 12 Mbps) — this
is where the phone plugs in via USB-OTG. The CAM serial link
(
serial_link.c) runs over the ESP32-C5's native USB Serial/JTAG peripheral on this port, enumerating as a CDC-ACM device under Espressif's VID/PID (0x303A/0x1001). - UART-bridge port (labeled for flashing) — this is what you use for
idf.py flash monitorfrom your PC. Leave the phone unplugged from this one; it only carriesidf.py's flashing protocol and the ESP_LOG console.
The app recognizes the ESP32-C5's VID/PID via a custom probe table in
UsbSerialTransport.kt (the default usb-serial-for-android prober doesn't
know Espressif's device IDs). If the phone doesn't detect anything when
plugged into the native port, first confirm with a tool like "USB Device
Info" (or adb shell dumpsys usb from a PC) that Android sees a USB device
at all — that isolates a bad/charge-only OTG cable from an app-side issue.
Bring-up checklist (phone <-> ESP32-C5 link)
Work down this list — each step isolates the layer below it.
- Flash and install together.
SERIAL_LINK_MAX_PAYLOADis 512 on both sides. A phone at 512 talking to firmware still at 160 (or vice versa) silently rejects every large frame at thelength exceeds max, resyncbranch. Never update one side alone. - Does Android see the device at all? Plug the phone into the native
USB-C port, hit Connect, and read logcat for
UsbSerialTransport. It logs every attached device and each device's interfaces. Empty list = cable / OTG / wrong port, below the app entirely. - Did the right interface get claimed? The C5's USB Serial/JTAG is a
composite device — expect CDC control (class 2) + CDC data (class 10) +
vendor-specific JTAG (class 255) in that dump. Compare against the
ports=count on thematched deviceline. - Is the link alive? The firmware sends a STATUS heartbeat at 1 Hz regardless of radio traffic, and the app marks the link ERROR after ~3.5 s of silence. Connected-and-staying-connected means device→host actually works.
- If it connects but no CAM_RX ever arrives — suspect DTR. The app now
asserts DTR/RTS on open (
openDevice()inUsbSerialTransport.kt), becauseCdcAcmSerialDriverdoesn't do it by default and the ESP32's USB Serial/JTAG endpoint may gate TX on the host opening the CDC line. This is still unverified on real hardware — test it both ways (with thesetDTR(true)call and with it commented out) and record the answer inserial_link.hnext to the VID/PID note, so nobody has to guess again. - Watch the counters, not just "Sent: N". The CAM Pinger card shows
consecutive write failures (phone side) and the firmware's tx-failure /
oversize-drop / CRC-error totals from the heartbeat. A rising
tx failmeans CAMs reach the ESP32 butesp_wifi_80211_txrejects them — a radio problem, not a link problem.
Connecting over Bluetooth instead
Settings > Connection > ESP32-C5 > link: Bluetooth, then Connect. The board
advertises as micrOBU-XXXX (last two bytes of its BT MAC; micrOBU-4AFA on
COM3), but only while nothing uses its native USB port. Android asks to pair
the first time: passkey 123456 (fixed in simple_ble.cpp). The bond is kept
on both sides; the board keeps one bond, so pairing a second phone or a PC
replaces the first. Log lines on the console start with cits_ble:.
Notes
- No
git submodule updateneeded here — obu-firmware has no pinned submodule of its own, unlike its-g5-receiver-firmware. - Don't use the global "ESP-IDF 5.5 PowerShell" shortcut or the receiver
firmware's 6.1 checkout — export from
esp-idf-v6.0.2, the version the vanetza-idf radio's undocumented driver internals were verified against. - The console (ESP_LOG, boot messages, panics) stays on the UART-bridge port. Opening it resets the board; do that only while nothing else depends on the session.