Files
uv-k5-v3-emulator/PERIPHERALS.md
T
mckero c0a09827ed UV-K5 V3 emulator: QEMU machine for the PY32F071
Adds a QEMU machine for the Puya PY32F071 (Cortex-M0+) so Quansheng UV-K5 V3
firmware can run on a PC. The firmware boots to its main loop in about five
seconds and the LCD contents are readable.

Register layouts come from the vendor CMSIS header shipped with the firmware
rather than guesswork. Modelled: RCC, GPIO, ADC, both SPI controllers, DMA1 and
the PY25Q16 flash; everything else answers through a logging catch-all, which is
how the next thing worth modelling gets identified.

Seven things had to be right before it would boot, each found by watching where
the firmware stopped: flash aliased at the application offset, clock ready bits,
self-clearing ADC calibration, SPI transfer flags, DMA-driven flash reads,
SysTick poll acceleration, and the bit-banged transceiver bus idling low.

SysTick needs explanation. SYSTICK_DelayUs polls the counter and accumulates
differences; under emulation a register read costs far more relative to guest
time, so a measured 120 ms delay would have taken about 7.7 hours. Lowering the
clock does not help because the bottleneck is loop iterations, not counter speed.
Reporting a value that runs ahead of the real counter does, via a new poll-boost
property on SysTick. Guest time therefore runs fast during delays: fine for
exercising menus and control flow, wrong for judging signal timing.

Also includes the host build of the CW timing chain (harness, stubs, shim,
tests), which compiles app/cwkeyer.c and app/cwmacro.c unmodified against stub
drivers with a virtual clock and scripted paddle input.

Known gap: keypad rows reach the firmware's scan and KEYBOARD_Poll returns the
right key code, but the UI does not react yet.

Not modelled, and not intended to be: radio behaviour. The transceiver chip has
no public datasheet, so keying envelopes and emissions need real hardware.
2026-08-27 14:59:21 +01:00

4.0 KiB
Raw Blame History

Peripherals a whole-machine simulation has to answer for

Derived from the firmware's own boot path (App/main.c → BOARD_Init) rather than from the datasheet, so the list is what this firmware actually touches.

Order matters: the boot sequence stops at the first peripheral that does not answer plausibly, so they have to be brought up roughly in this order.

Tier 1 — required to reach the main loop

Peripheral Firmware entry What the model must do Notes
Cortex-M0+ core, NVIC, SysTick Core/startup_py32f071xx.s, SYSTICK_Init execute Thumb, deliver SysTick 53 vectors in the table
RCC (clock tree) BOARD_Init report clocks ready, accept enables firmware polls ready flags
FLASH controller FLASH_Init accept latency/prefetch writes reads come from the ELF image
GPIO A/B/C/F GPIO_Init hold direction/pull state, report input levels keypad and PTT live here

Milestone: firmware reaches while (true) without faulting.

Tier 2 — required to see anything

Peripheral Firmware entry What the model must do Notes
SPI → ST7565 LCD driver/st7565.c decode page/column addressing into a 128×64 framebuffer 12 LL calls; the display is the main observable
Keypad matrix driver/keyboard.c drive rows, report the pressed column injected from the front end
SPI → PY25Q16 flash driver/py25q16.c commands 0x03/0x02/0x20/0x9F over a 2 MB file 66 LL calls — the heaviest driver
ADC ADC_Init, helper/battery.c return a plausible battery reading a flat value is enough at first

Milestone: boot logo appears, keys navigate the menu.

Note on the flash model: calibration data lives in it. Without a real dump the firmware takes error branches in the frequency and power paths, so a dump exported by UV Studio should be loaded into the image.

Tier 3 — radio behaviour

Peripheral Firmware entry What the model must do Notes
BK4829 (SPI) driver/bk4829.c track frequency, bandwidth, modulation, power, CTCSS/DCS, and carrier keying; allow RSSI injection no public datasheet — the driver is the specification
BK1080 (FM RX) BK1080_Init accept register writes, report a tuned state only needed for the FM broadcast feature

Milestone: scanning, Fox Hunt and the CW timing chain run end to end.

What this tier can and cannot give: it reproduces what the firmware commanded — frequency, power step, keying envelope in time — which is enough to catch wrong-VFO transmissions, missing carrier releases and bad key timing. It does not reproduce the analogue result: modulation quality, spurious emissions, receiver sensitivity. Those need a spectrum analyser on real hardware.

Tier 4 — host connectivity

Peripheral Firmware entry What the model must do Notes
UART UART_Init expose a PTY debug tracing
USB CDC VCP_Init, App/usb/ expose a virtual serial device this is the payoff — see below

The USB CDC path is the cheapest route to a web front end. The Fusion build already streams its screen to UV Studio's K5Viewer over USB serial and accepts remote key presses, so pointing the emulated CDC endpoint at a PTY lets the existing UV Studio page act as the simulator's UI. Screen mirroring and the virtual keypad are already written; they do not need reimplementing.

Memory map (from Core/py32f071xb.ld)

FLASH  0x08002800  118 KB   application (0x08000000..0x08002800 is the bootloader)
RAM    0x20000000   16 KB

The non-zero flash origin matters: loading the application at 0x08000000 puts the vector table in the wrong place and the machine faults immediately.

Bootloader

DFU lives in the first 10 KB and is a separate image. Deciding to emulate it too is worthwhile — flashing is the operation most likely to brick real hardware, and V3 enters DFU with PTT + side key 2 + power — but it is a distinct target from the application.