mirror of
https://github.com/MCKero6423/uv-k5-v3-emulator.git
synced 2026-10-02 03:15:36 +00:00
The page only knew its own input. A build called f4hwn.fusion.bin reports EGZUMER+F4HWN v6.0.0.CN, and with the multi-system release a committed external slot makes the factory bootloader reflash the internal flash from that slot on every power-on -- so the uploaded image never runs and the page keeps naming it. The firmware prints its own banner on USART1; tools/uvk5_banner.py reads it back, /api/firmware returns running: {banner, matches_uploaded, note}, and the page shows what the device reports, flagging it only when the running version is not in the uploaded image at all.
That reader also exposed a regression of my own: _start_stderr_pump had been rewritten to read the pipe in 64 KB chunks, which kept QEMU from blocking but delivered nothing to the log until 64 KB had accumulated -- and the banner is forty bytes, so it never appeared. It reads lines again, still starting before anything waits on QEMU, and test_uvk5_supervisor passes either way.
1244 lines
68 KiB
Markdown
1244 lines
68 KiB
Markdown
# Working on this repo
|
||
|
||
Notes for whoever picks this up next. Focused on what is not obvious from the
|
||
code, and on mistakes that already cost time here.
|
||
|
||
*中文:[AGENTS.zh-CN.md](AGENTS.zh-CN.md) · the two are kept in step; change both.*
|
||
|
||
## What this is
|
||
|
||
A QEMU machine for the Puya PY32F071 (Cortex-M0+), so Quansheng UV-K5 V3
|
||
firmware runs on a PC. Boots to the main loop in ~5 s; the LCD is readable.
|
||
|
||
The machine and every device model live in one file, `qemu/py32f071.c`. That is
|
||
deliberate: the models are small and tightly coupled to each other's wiring, and
|
||
splitting them would spread the board layout out without making any of it
|
||
clearer.
|
||
|
||
## How it boots
|
||
|
||
Worth reading before debugging anything that looks like a startup problem. There is
|
||
no bootloader, no kernel, no partition table and no filesystem -- the firmware is
|
||
the only code on the machine and it owns the CPU outright.
|
||
|
||
**The hardware knows two numbers.** A Cortex-M0+ coming out of reset does not run
|
||
any boot logic. It loads SP from the first word of the vector table and PC from the
|
||
second, and starts executing. That is the whole handoff.
|
||
|
||
.isr_vector 0x08002800 (readelf -SW, size 0xc0)
|
||
+0x00 0x20004000 initial SP, i.e. the top of the 16 KB SRAM
|
||
+0x04 0x08002d49 Reset_Handler, and the ELF entry point
|
||
|
||
Read it straight off the image when in doubt -- the bytes are little-endian, so
|
||
`00400020 492d0008` is SP 0x20004000 followed by PC 0x08002d49:
|
||
|
||
objdump -s -j .isr_vector firmware.elf | head -5
|
||
|
||
The odd address is not a typo: bit 0 flags Thumb state and the hardware masks it
|
||
off when fetching.
|
||
|
||
**`PY32_APP_OFFSET` 0x2800 is load-bearing.** Flash starts at `0x08000000` but the
|
||
first 10 KB is the factory bootloader region, so the application sits after it.
|
||
`armv7m_load_kernel()` is passed that offset for exactly this reason -- load at
|
||
`0x08000000` instead and the vector table lands in the wrong place, so the very
|
||
first fetch faults.
|
||
|
||
**Startup is 31 lines of assembly**, in the firmware's
|
||
`Core/startup_py32f071xx.s`:
|
||
|
||
set SP from _estack
|
||
bl SystemInit
|
||
copy .data from flash (_sidata) into RAM (_sdata .. _edata)
|
||
zero .bss (_sbss .. _ebss)
|
||
bl __libc_init_array
|
||
bl main
|
||
LoopForever: b LoopForever @ main never returns
|
||
|
||
The copy and the zero-fill are the interesting part. Initialised globals live in
|
||
flash but have to be writable, so they are copied word by word into RAM;
|
||
uninitialised globals must read as zero per the C standard, so `.bss` is cleared.
|
||
On a hosted OS the kernel and the loader do this for you. Here nobody does, so if
|
||
either loop is wrong you get globals that are silently garbage.
|
||
|
||
**Then the application:**
|
||
|
||
main() Core/Src/main.c -- clock config only, then Main()
|
||
Main() App/main.c -- the actual firmware
|
||
SYSTICK_Init() the 10 ms tick everything is timed against
|
||
BOARD_Init() GPIO, SPI, LCD, keypad matrix
|
||
UART_Init() where the SERIAL banner in the log comes from
|
||
SETTINGS_InitEEPROM() reads settings over SPI from the flash image
|
||
while (1) { ... } main loop, never exits
|
||
|
||
**There is no filesystem.** The nearest thing to "mounting a partition" is
|
||
`SETTINGS_InitEEPROM()` reading fixed byte offsets over SPI: `0xA008` for the power
|
||
save byte, `0x0E70` for the VFO indices, and so on. No metadata, no directory, no
|
||
checksum -- just an address that the code and the data both have to agree on. When
|
||
a setting reads back wrong, suspect the offset before suspecting the transport.
|
||
|
||
Boot time is emulation overhead. Measured on this machine: first pixels at ~1.6 s and
|
||
a drawn main screen at ~3.6 s after QEMU starts, which is the "~5 s" the README quotes.
|
||
A real radio is up in about a second.
|
||
|
||
## Ground rules
|
||
|
||
**Never edit the firmware to make the emulator work.** The firmware is the
|
||
reference. If something does not run, the model is wrong. A fix that changes
|
||
firmware source makes every later test meaningless, because you are no longer
|
||
testing what the radio runs.
|
||
|
||
**Register layouts come from the vendor CMSIS header**, not from a datasheet
|
||
search and not from inference:
|
||
|
||
<firmware>/Drivers/CMSIS/Device/PY32F071/Include/py32f071xB.h
|
||
|
||
When you need a bit position, read it from there. Several details are
|
||
unintuitive — `LL_ADC_FLAG_EOS` is really `ADC_SR_EOC` on this part — and
|
||
guessing produces models that look right and hang.
|
||
|
||
**Find the next thing to model by watching where the firmware stops**, not by
|
||
reading the datasheet front to back. Every peripheral here was added because the
|
||
firmware demonstrably waited on it:
|
||
|
||
tools/where.sh 4 # sample the call stack a few times
|
||
|
||
A stack that repeats in the same function across samples is a spin loop. Look at
|
||
what it reads.
|
||
|
||
## How to run it
|
||
|
||
python3 tools/make_flash.py # once; builds assets/flash.img
|
||
tools/run.sh # GDB stub on :1234, QMP on /tmp/uvk5-qmp.sock
|
||
|
||
tools/where.sh # where execution is
|
||
tools/gpiob_dump.sh # GPIOB registers
|
||
python3 tools/key.py MENU # inject a keypress
|
||
python3 tools/uvk5_buffers.py --qmp 127.0.0.1:4444 # this firmware's addresses
|
||
python3 tools/screenshot.py --frame-addr 0x... --status-addr 0x... \
|
||
--port 1234 --out screen.png
|
||
|
||
Screenshot addresses move between firmware builds, and `screenshot.py` reads guest RAM, so
|
||
it needs them. `tools/uvk5_buffers.py` finds them in the running firmware by matching the
|
||
display controller's memory against SRAM -- the images built here are program-header-only
|
||
ELFs with no symbol table, so `nm` has nothing to read for them (a fully linked ELF does).
|
||
|
||
Rebuild after editing the machine:
|
||
|
||
cd $QEMU/build && ninja qemu-system-arm # ~10 s incremental
|
||
|
||
After any change near the keypad or the GPIO wiring, run the regression test. It
|
||
boots its own instance on private ports, so it does not disturb a `run.sh`
|
||
session:
|
||
|
||
python3 tools/keypad_test.py
|
||
|
||
There is also a browser UI, which is usually the quickest way to poke at the
|
||
firmware by hand:
|
||
|
||
python3 tools/webui.py # no addresses: the page draws the panel's memory
|
||
|
||
Two things about it that matter when working on this repo:
|
||
|
||
- **It holds the QMP socket for its lifetime**, so `key.py` cannot run at the same
|
||
time. The socket accepts a single client.
|
||
- **It reads frames with QMP `memsave`, deliberately.** Not `pmemsave`, which
|
||
takes a *physical* address and silently returns zeros for `gFrameBuffer` --
|
||
a blank screen with no error. And not gdb, which halts the guest on every
|
||
attach: that stutters the stream and perturbs key debounce timing.
|
||
|
||
Its tests: `tools/test_uvk5_*.py` and `tools/test_webui.py` need no emulator,
|
||
`tools/test_webui_e2e.py` boots its own.
|
||
|
||
A firmware can also be loaded from the page rather than from the command line:
|
||
`POST /api/firmware` takes the image as its request body, stores it in
|
||
`work/firmware/`, and boots it -- restarting the emulator if it was running. The
|
||
image's **shape** is read out of the image (`tools/uvk5_image.py` on the host,
|
||
`uvk5_sniff_app_offset()` in the machine): an *application* image is linked for
|
||
`0x08002800`, a *full-flash* image starts at `0x08000000`, and address 0 has to alias
|
||
the matching base. Getting that wrong is silent -- the image lands 0x2800 bytes off and
|
||
the first fetch reads whatever data is there -- which is why it is not a flag and not a
|
||
file-name convention. A file that is not an image is refused without disturbing the
|
||
running radio.
|
||
|
||
Two things about that path are worth knowing, both found the hard way:
|
||
|
||
- **The flash image travels in the environment, not in `-M`.** Through the launcher,
|
||
QEMU rejected `-M uv-k5-v3,flash-image=...` with "unsupported machine type": the
|
||
identical argv started fine when run by hand, `-M help` in the *same* context listed
|
||
the machine, the argv `repr` was clean, and the environment diffed down to nothing
|
||
conclusive. The property still works when it is set, so both are supported; the
|
||
launcher now passes the bare machine name plus `UVK5_FLASH_IMAGE`, which the model
|
||
reads as a fallback. The root cause is unexplained -- do not "clean this up" without
|
||
re-testing a power-on from the page.
|
||
- **The screen is read from the display controller, not from guest RAM.** The panel
|
||
model keeps the controller's own display RAM (8 pages of 128 columns), and the web
|
||
page renders that, so the picture is right for *any* firmware -- builds sharing an
|
||
ancestor still differ in their display logic, and the multi-system release keeps its
|
||
image somewhere else entirely. Do not apply the driver's `0xA1` segment reverse on
|
||
top of the data: measured at one instant against the guest's own framebuffer, 8153 of
|
||
8192 pixels agree with no mirroring and 6557 with it. `memsave` of `gFrameBuffer`
|
||
remains the fallback for an emulator built without the panel model.
|
||
|
||
## The flash bugs: four faults, one symptom
|
||
|
||
"The frequency will not change" and "flash forgets everything after power off"
|
||
looked like two complaints. They were one root cause plus three real bugs found on
|
||
the way, all in this file. Worth reading before touching SPI, DMA or the flash
|
||
model, because each was invisible from the layer above.
|
||
|
||
1. **DMA used the wrong address space** — the actual cause. It moved bytes through
|
||
`address_space_memory`, which cannot decode this SoC's memory at all: the
|
||
container region is handed only to the ARMv7M core and never registered with
|
||
global system memory. Reads returned `MEMTX_DECODE_ERROR` and zeros; writes went
|
||
nowhere. DMA now runs over an `AddressSpace` built on the container.
|
||
2. **Page program did not wrap.** Real SPI NOR latches only the low address bits,
|
||
so a burst past the 256-byte page boundary continues at the start of the same
|
||
page. The model walked straight through, and a 512-byte burst at 0x008F00 (which
|
||
the firmware really does send in one CS assertion) spilled into 0x009000.
|
||
3. **DMA started too early.** Transfers ran when a channel was enabled, but on
|
||
hardware they start when the peripheral raises its request. The driver arms both
|
||
channels, then enables SPI, then sets TXDMAEN — so firing at arm time clocked
|
||
the bus before the read command had been sent.
|
||
4. **DMA channels ran one after another.** SPI is duplex and the driver pairs a
|
||
dummy-feeding TX channel with a data-collecting RX channel over one transfer.
|
||
Running them in sequence let TX finish before RX ever sampled the bus.
|
||
|
||
Any one of them zeroed the sector holding per-band VFO frequencies.
|
||
`RADIO_ConfigureChannel` substitutes a band's lower limit only for `0xFFFFFFFF`, so
|
||
a stored zero was taken literally and clamped to `BX4819_band1_lower` — 18 MHz.
|
||
That is the whole explanation for a typed frequency always reverting.
|
||
|
||
`tools/test_freq_entry.py` and the `MUST_NOT_CHANGE` guard in
|
||
`tools/test_flash_persist.py` exist to catch a regression in any of the four.
|
||
|
||
### What made this hard to find, and what to do instead
|
||
|
||
**Instrument the model, not the guest.** The frequency input box times out after
|
||
`key_input_timeout_500ms / 3`, about 2.5 s, and a gdb attach takes roughly 3 s. So
|
||
probing between digits clears the box, and the run reports a failure that the
|
||
measurement caused. This produced at least three confident wrong conclusions,
|
||
including "the firmware saved band 0" when the box had simply emptied. Add an
|
||
`fprintf` to `qemu/py32f071.c` and read stderr instead — the guest never stops.
|
||
|
||
**Never cap a diagnostic log before you know the shape of the data.** A probe
|
||
limited to the first six transactions showed only `0xFF` payloads, which supported
|
||
exactly the wrong conclusion. Without the cap, the writes that mattered were
|
||
obvious.
|
||
|
||
**Check that the build succeeded before believing a test.** A failed `ninja` leaves
|
||
the previous binary in place and the test still runs, so a stale build silently
|
||
answers the question. Two rounds of results were meaningless this way. Grep the
|
||
build output for `FAILED` and `error:` and stop if either appears.
|
||
|
||
**Reset the flash image between runs.** `assets/flash.img` is written by every
|
||
session. A test that starts from it may find its work already done — which shows up
|
||
as "the image is byte-identical", indistinguishable from broken persistence. Start
|
||
from `assets/pristine/`, and power the emulator off *before* restoring, since
|
||
shutdown flushes the old in-memory image back over the file.
|
||
|
||
**Do not hand-compute struct offsets.** The ELF has no DWARF and the structs
|
||
contain enums whose size cannot be assumed. Offsets computed by hand produced
|
||
`KEY_LOCK=4` and `TX_VFO=11`, neither of which is a possible value. Either use a
|
||
symbol that `nm` reports and whose type is unambiguous (`gInputBoxIndex` is a plain
|
||
`uint8_t`), or locate a field by behaviour — toggling the keypad lock with a long
|
||
`F` press and diffing the region found `KEY_LOCK` at `gEeprom+0x12` in one step.
|
||
|
||
**Read your own probe output carefully.** One probe printed `phase` before it was
|
||
incremented, which made a correct address decoder look off by one byte. Replaying
|
||
the logic in Python cleared it up; without that, a working implementation would
|
||
have been "fixed".
|
||
|
||
## Things that already went wrong
|
||
|
||
**GDB breakpoints halt the guest.** A key held across a breakpoint session is
|
||
never processed, because the main loop is not running. This produced a whole
|
||
round of "the keypress does nothing" that was really "the machine is stopped".
|
||
Use `tools/press_and_shot.sh` — it presses, lets the machine run, then reads the
|
||
framebuffer, with no breakpoints anywhere.
|
||
|
||
**Do not write the SysTick counter back when accelerating it.** Two attempts did
|
||
that. Each read re-anchored the count, so the value the firmware saw stopped
|
||
changing, its `if (cur != prev)` guard never fired, and the delay loop hung
|
||
outright — worse than the slowness being fixed. The working approach reports a
|
||
value that runs ahead of the real counter and leaves the timer alone.
|
||
|
||
**Lowering the clock does not speed up delay loops.** The bottleneck is loop
|
||
iterations per second, not counter speed. 48 MHz to 200 Hz bought 32x and was
|
||
nowhere near enough. Measured, not assumed.
|
||
|
||
**Unnamed qdev in and out lines share one namespace.** A device with both
|
||
unnamed `qdev_init_gpio_in` and `qdev_init_gpio_out` makes `qdev_get_gpio_in()`
|
||
ambiguous, and board wiring silently attaches to the wrong line. The GPIO model
|
||
uses `"pin-in"` and `"pin-out"` for this reason. Keep it that way.
|
||
|
||
**Key hold times must be SHORT, not generous.** This entry used to say the
|
||
opposite -- that guest time runs fast so a press needs a long hold, and that
|
||
`key.py` should hold for 2500 ms. That was wrong and it broke the keypad tooling
|
||
for a long time. 2500 ms is ~250 firmware ticks, six times past the long-press
|
||
threshold, so every press was dispatched as a *hold* and handlers that act on a
|
||
short release did nothing. See the keypad section below; `key.py` now holds 200 ms.
|
||
|
||
**Verify a tool's own parsing before trusting its output.** `gpio_watch.py`
|
||
reported `IDR=0x0000` for several rounds because its regex did not match gdb's
|
||
output format at all. The register was fine; the reader was broken. Cross-check
|
||
with `tools/gpiob_dump.sh`, which uses a different path.
|
||
|
||
The same trap one layer further out: **a redirect can change the encoding.** Three
|
||
probe runs under `qemu ... 2> probe.log` reported zero SPI transfers, zero flash
|
||
reads and zero chip-select changes, and "the firmware never touches SPI" was written
|
||
down as a finding. PowerShell 5.1 writes `2>` as UTF-16LE, so every ASCII line a
|
||
probe printed had a NUL between each character and a `startswith("LCDW")` filter
|
||
could never match it. Decoding the same file as UTF-16 showed a complete ST7565 init
|
||
sequence and 48 distinct settings reads. Before believing an empty probe, check that
|
||
the probe *can* be seen: read the file, count its bytes, or write it from `cmd /c`,
|
||
which does not re-encode.
|
||
|
||
**QMP `pmemsave` is physical, `memsave` is virtual.** The framebuffer symbols are
|
||
CPU virtual addresses, so `pmemsave` on `gFrameBuffer` returns a block of zeros
|
||
and reports success -- a blank screen with nothing logged anywhere. The web UI was
|
||
built on `pmemsave` first because a timing benchmark said it was fast; the
|
||
benchmark never checked the *contents*. Measure the thing you actually care
|
||
about: the bug surfaced only when a rendered frame came back with 0 lit pixels
|
||
where the gdb path reported 1693.
|
||
|
||
### The page is generated by an f-string, so check the script it serves
|
||
|
||
The web UI is one f-string. A stray backslash in a JavaScript string literal therefore
|
||
produces a page whose **whole** `<script>` fails to parse, and the only symptom is that
|
||
the status line sits on "connecting..." forever while every endpoint still answers
|
||
`curl` correctly. That shipped once: `.split('\\')` came out as `.split('\')`, an
|
||
unterminated string, and the page was dead from a browser's point of view while every
|
||
test passed.
|
||
|
||
`test_webui.TestPageScriptParses` extracts the served script and runs `node --check`
|
||
on it now. Test the artifact you ship, not the code that builds it.
|
||
|
||
### A probe needs to be able to see the thing it is looking for
|
||
|
||
Three separate rounds of "the firmware never touches the flash" were all the probe's
|
||
fault, and each one looked like a finding:
|
||
|
||
- A probe filtered on `address >= 0x0C0000`, so every frame without an address -- write
|
||
enable, and the sector erase that actually erases -- was dropped. "0 writes" was the
|
||
filter, not the firmware.
|
||
- A handshake was given 1.5 s to answer and the firmware needed about 4 s to enter its
|
||
serial mode. "No reply" was the timeout.
|
||
- Why a probe can be invisible at all: PowerShell 5.1 writes `2>` as UTF-16LE, so every
|
||
line had a NUL between each character and no filter could ever match.
|
||
|
||
Before believing an empty probe, make it print something you know is there.
|
||
|
||
### The flash model wrote the whole image back on every chip-select release
|
||
|
||
2 MB per release is nothing for a settings save. It is ruinous for the multi-system host
|
||
interface, which programs a slot 200 bytes at a time
|
||
(`App/app/uart.c`, `0x0724`, 12-byte header plus data): one 114 KB firmware became ~600
|
||
full rewrites, on the vCPU thread, and the *guest* -- and every host tool talking to it --
|
||
waited for each one. Measured: a single 64-byte slot write took six seconds.
|
||
|
||
The first fix was a 200 ms time-based throttle, which was wrong: it trades a slow test for
|
||
silently losing the last window of writes on a hard kill. The model now tracks the changed
|
||
byte range and writes only that, in place, which is both fast and the more faithful
|
||
behaviour -- real NOR does not make an interrupted program atomic. The exit notifier still
|
||
writes everything.
|
||
|
||
### The serial link carries the firmware's own screen stream
|
||
|
||
`K5Viewer` streams the display out of USART1. A host client that reads only while it is
|
||
waiting for a reply backs the socket up, and the **guest then blocks** writing to it: a
|
||
slot transfer started losing replies partway and a single small write took seconds. The
|
||
fix is a reader thread that drains continuously and lets the waiting code look at what has
|
||
been reassembled -- on the radio's side the same rule applies to whatever talks to it.
|
||
|
||
Also on that path: the firmware's receive buffer is 256 bytes
|
||
(`App/driver/uart.c: UART_DMA_Buffer[256]`), so a 240-byte chunk plus framing overran it
|
||
and every frame was dropped in silence; 200 fits. And the serial *session* times out after
|
||
~6 s without a `0x0514` (`gSerialConfigCountDown_500ms = 12`), which a long transfer
|
||
crosses -- measured by re-handshaking: the writes resume immediately.
|
||
|
||
With those four, `tools/uvk5_slots_serial.py` writes a slot through the firmware itself and
|
||
the device validates the CRC.
|
||
|
||
### A serial client that connects after boot misses everything
|
||
|
||
`-serial tcp:host:port,server=on,wait=off` **discards** what the guest writes until a
|
||
client connects. The firmware prints its banner in the first seconds, so a client that
|
||
attaches "once QEMU is up" -- four seconds later, say -- sees an empty port and it looks
|
||
exactly like a guest that never booted. Four rounds of "the bootloader sends nothing"
|
||
were that, not the bootloader.
|
||
|
||
Connect first, then let the guest run. The same trap applies to the 0x0518 flood a
|
||
bootloader emits while waiting for a host: it is continuous, so a late client *does* see
|
||
it -- which is why the mistake survived as long as it did, showing up only for the
|
||
one-shot startup output.
|
||
|
||
Two related habits, both learned here:
|
||
|
||
- **Check that the probe can see something you know is there.** A USART register probe
|
||
reported zero accesses, and the obvious reading was "the bootloader never programs the
|
||
USART". The application, run through the same probe, reported 2239 -- which is what
|
||
said the probe worked and the bootloader really was silent.
|
||
- **When a documented observation stops reproducing, treat the note as unverified.** The
|
||
bootloader's Moto-mode flood was written down from a run that is no longer reproducible
|
||
with the current build and image. Re-derive it before relying on it.
|
||
|
||
### A bare host:port is not a scheme
|
||
|
||
`uvk5_socket.connect` split its argument on ":" to find a scheme, so the endpoint the
|
||
supervisor, the web UI and the README all pass -- a plain `127.0.0.1:4444` -- became
|
||
scheme `127.0.0.1`, empty port, and an empty host. The connect then sat there until its
|
||
deadline. What that looks like from outside is "the page cannot power the emulator on",
|
||
while a QEMU started by hand with the identical command line answers QMP in half a
|
||
second, and the guest boots happily in the background the whole time.
|
||
|
||
Two things made it hard to see: the same helper also accepts `tcp:host:port`, so the
|
||
tests that used that form passed, and the failure is a *timeout* rather than an error, so
|
||
it reads as a slow or wedged emulator. `test_uvk5_socket` now covers every form that
|
||
reaches `connect`, and the lesson generalises: **when a helper accepts several spellings,
|
||
test each one** -- the one nobody tests is the one everybody passes.
|
||
|
||
The other half of the same fault was real and independent: QEMU's stderr had to be
|
||
drained from the moment it started. The firmware streams its display down that pipe, 64 KB
|
||
fills in about a second, and QEMU blocks writing to it -- which stops its main loop, so
|
||
QMP never answers either. Measured both ways: with the pipe drained, QMP accepts in 0.5 s;
|
||
with it left unread, never.
|
||
|
||
### A register you swallow is a hang the next program waits on
|
||
|
||
The factory bootloader would not start at all: no serial output, and the PC probe sampled
|
||
`0x08000f38` on every single sample. That address is inside the bootloader, and the two
|
||
instructions there are
|
||
|
||
0x0f38: ldr r2, [r1] ; r1 = 0x40022000, the flash controller
|
||
0x0f3a: lsls r2, r2, #30
|
||
0x0f3c: lsrs r2, r2, #30 ; r2 = ACR & 3, the LATENCY field
|
||
0x0f3e: cmp r2, #1 ; waiting for one wait state
|
||
0x0f40: bne 0x0f38
|
||
|
||
The flash controller model added earlier treated `ACR` and `OPTKEYR` as writes to
|
||
ignore -- it returned early, so the generic path never stored them, so `ACR` read back
|
||
zero forever and the bootloader spun before it ever configured its UART. Returning `false`
|
||
lets the value be stored, and the PC immediately moved into the application (`0x08013ea0`)
|
||
and serial output appeared.
|
||
|
||
Two lessons, both general:
|
||
|
||
- **A write-only register is still a register.** The application never read `ACR` back, so
|
||
its absence was invisible for as long as only the application ran. The next program to
|
||
touch the same peripheral found it at once.
|
||
- **"It used to work" is a bisect instruction.** The bootloader's Moto-mode flood had been
|
||
observed before the flash controller was modelled, and stopped reproducing afterwards.
|
||
The right move was to ask what changed between those two runs, not to distrust the
|
||
earlier note.
|
||
|
||
### Moto/DFU: the entry is a build flag, not a key
|
||
|
||
The factory bootloader in the first 10 KB does contain a Moto DFU handler at 38400 baud, and
|
||
the emulator runs the bootloader correctly. It is nevertheless unreachable from outside, and
|
||
the reason is in the bootloader's own code:
|
||
|
||
0x13f2 ldrb r0, [r4, #0] ; r4 = 0x20000020, a byte in SRAM
|
||
0x13f4 cmp r0, #1
|
||
0x13f6 beq ...
|
||
0x13f8 cmp r0, #2
|
||
0x13fa beq ...
|
||
0x13fc cmp r0, #3
|
||
0x13fe bne ... ; anything else keeps waiting
|
||
0x140e bl 0x06f0 ; only mode 3 gets here: the DFU handler
|
||
|
||
SRAM survives a soft reset and a power cycle does not, so that byte can only be set by a
|
||
program that then resets. In the application that is `overlay_FLASH_RebootToBootloader()`,
|
||
reached from the serial command `0x05DD` **only when the build defines `ENABLE_OVERLAY`**;
|
||
without it the same command is a plain `NVIC_SystemReset()`. Confirmed by sending `0x05DD` to
|
||
a running radio: no `0x0518` follows, and the PC never leaves the application.
|
||
|
||
Four ways in were ruled out by measurement, not by reading: PTT alone (the firmware's own
|
||
`BOOT_GetMode()` needs a second key), PTT+SIDE1/SIDE2 and MENU (the application's special
|
||
modes), a host byte inside the boot window including the `0x0530` handshake, and `0x05DD`.
|
||
Run alone with no valid application the bootloader does not enter DFU either: it stops in one
|
||
of the six self-branches at `0x080000dc`, which are hang slots, not a wait for input.
|
||
|
||
The general lesson: when a firmware's mode is chosen from a byte in RAM, the trigger is not an
|
||
input pin -- it is whatever wrote that byte before resetting. Find the writer in the source
|
||
(`0x05DD` here) and the `#ifdef` around it, and you have the whole condition.
|
||
|
||
### Two pixels bugs behind "the other firmware looks shifted"
|
||
|
||
Both were found by making the page *say where its picture came from*, and both had been
|
||
surviving because the wrong output looked plausible.
|
||
|
||
**The fallback that quietly drew every frame.** `uvk5_stream.py` used `STATUS_BYTES`
|
||
without importing it, so the panel branch raised `NameError` on every frame and a bare
|
||
`except Exception: pass` swallowed it. Every screen the page drew came from guest RAM at
|
||
one firmware build's addresses: right-looking for that build, plausible and offset for any
|
||
other. Found by reporting the source and the reason (`/api/panel` answered
|
||
`source: framebuffer, note: NameError: name 'STATUS_BYTES' is not defined`). With the panel
|
||
path working, the page's `/frame.png` matches the controller's own memory 8192/8192;
|
||
before the fix it was 5594/8192 against the same memory. `tools/test_uvk5_stream.py` now
|
||
asserts that the panel wins when it is reachable, and that a fallback is announced with its
|
||
reason.
|
||
|
||
**The column counter wrapped at 128 instead of 132.** The controller has 132 column
|
||
drivers and the glass shows 128 of them starting at column 4, which is why the model stores
|
||
pixels at `col - 4`. The counter was masked with `& 0x7f`, so addresses 128..131 came back
|
||
as 0..3, fell outside the `col >= 4` store, and were dropped: **every row lost its last four
|
||
pixels**. The battery icon lives in exactly those columns, so the symptom was a battery in
|
||
the wrong place and a picture that "looked shifted" on builds that draw to column 127 --
|
||
while the localised build, whose rightmost four columns are blank anyway, looked fine. That
|
||
is why this read as a firmware-specific problem. Measured, before and after: filling a page
|
||
with `0xFF` left columns 124..127 blank; now they light (10/10/12/7 lit across them), and
|
||
the same firmware's frame matches the panel memory 8192/8192.
|
||
|
||
The lesson in both cases is the same one this file keeps repeating: **a path that silently
|
||
substitutes a different source turns a hard error into a plausible wrong answer**, and a
|
||
byte that is off by four is invisible until something that matters lives in those four
|
||
columns. Report the source, and test that the preferred path is actually taken.
|
||
|
||
### The screen buffers are found, not hardcoded
|
||
|
||
The flag was `--frame-addr 0x200012BE --status-addr 0x2000163E` -- one build's
|
||
addresses, in the launcher, as a default. Pointed at another firmware that reads
|
||
somewhere else, the picture is plausible and wrong: measured, the build the user
|
||
actually flashed keeps its buffers at `0x2000129E` / `0x2000161E`, exactly 32 bytes
|
||
earlier, so every line landed 32 bytes off. That is what "the other firmware looks
|
||
shifted" was.
|
||
|
||
Nothing needs to be assumed. The firmware images here are minimal ELFs -- one program
|
||
header, no section headers, no symbol table (tools/bin2elf.py writes them) -- so there
|
||
are no `gFrameBuffer` symbols to read, but there is behaviour: the firmware's own
|
||
buffers hold the same bytes the controller holds, because that is where the driver
|
||
copied them from. `tools/uvk5_buffers.py` slides the controller's memory through SRAM
|
||
and keeps the offset that agrees; it reported 1024/1024 bytes and the right pair of
|
||
addresses for the exact file the user flashed.
|
||
|
||
So `--frame-addr` and `--status-addr` are optional now, `work/run-webui.ps1` no
|
||
longer passes them (or any machine-specific path), and the page reports what it found:
|
||
|
||
buffers: {"frame": 0x2000129E, "status": 0x2000161E, "how": "sram search",
|
||
"score": 1024, "total": 1024}
|
||
|
||
Two habits from this, both already in this file in other words: **a default that names
|
||
one machine's or one build's value is a bug waiting for a second build**, and **when
|
||
there are no symbols to read, ask the thing itself** -- the bytes in the buffers are
|
||
the answer, and they can be found by matching rather than guessed.
|
||
|
||
The panel path needs none of this, and is what the page draws from: the controller's
|
||
memory is the screen for every firmware. The addresses only serve the guest-RAM
|
||
fallback, which is why a failed search is reported and does not stop anything.
|
||
|
||
### The page must report what the device says it is running
|
||
|
||
The page knew only the file it had been handed, and those are different questions. A build
|
||
called `f4hwn.fusion.bin` can report `EGZUMER+F4HWN v6.0.0.CN` -- that one does -- so
|
||
"it still boots the CN version" was the page describing its input, not the radio. Worse,
|
||
with the multi-system release a committed external slot plus a valid state marker makes the
|
||
factory bootloader reflash the internal flash from that slot on every power-on: the uploaded
|
||
image is overwritten before it runs, and the page keeps naming a file that never executed.
|
||
|
||
The firmware answers the question itself. It prints `UV-K5 Firmware, ...` on USART1, the
|
||
machine tags it SERIAL, and `tools/uvk5_banner.py` reads it back. `/api/firmware` now
|
||
returns `running: {banner, matches_uploaded, note}` and the page shows `device reports: ...`,
|
||
flagging it only when the running version is not in the uploaded image at all -- because a
|
||
file name that differs from a banner usually just is a different name, and a hint that cries
|
||
wolf gets ignored.
|
||
|
||
Reading that banner back also exposed a bug of my own. It had stopped reaching the log
|
||
entirely: `_start_stderr_pump` was rewritten to read the pipe in 64 KB chunks so QEMU could
|
||
not block on it. That kept the deadlock fixed and silently lost the other half -- nothing
|
||
arrived until 64 KB had accumulated, and the banner is forty bytes. It reads lines again,
|
||
and still starts before anything waits on QEMU. **A rewrite that preserves the property you
|
||
were fixing while losing another is the expensive kind**, and this one hid because the log
|
||
still "worked" for the binary screen stream.
|
||
|
||
## The keypad: two real bugs, both fixed
|
||
|
||
The old note here said "keys reach the firmware but the UI does not react" and
|
||
blamed the machine model. There turned out to be two independent causes, in this
|
||
order:
|
||
|
||
1. **`tools/key.py` held every key for 2500 ms** — a tooling bug, covered
|
||
immediately below.
|
||
2. **`row_out` was not `volatile`, so GCC deleted the row-driving code** — a real
|
||
model bug, introduced later while removing debug prints. See
|
||
[row_out must stay volatile](#row_out-must-stay-volatile-or-gcc-deletes-the-keypad).
|
||
|
||
Both are fixed and `tools/keypad_test.py` guards against regressions in either.
|
||
|
||
The two SysTick mechanisms are separate, and conflating them caused this:
|
||
|
||
- SysTick **interrupts** fire at close to real time. `SysTick_Handler` sets
|
||
`gNextTimeslice`, which gates `APP_TimeSlice10ms` -> `CheckKeys`. So the
|
||
debounce thresholds in `App/misc.c` apply in wall clock as written:
|
||
`key_debounce_10ms = 2` (20 ms to register), `key_repeat_delay_10ms = 40`
|
||
(400 ms counts as *held*).
|
||
- The `poll-boost` property accelerates SysTick counter **reads**, so
|
||
`SYSTICK_DelayUs` converges. It does not speed up interrupt delivery.
|
||
|
||
A 2500 ms hold is ~250 ticks, six times past the long-press threshold. Every
|
||
press was dispatched as a hold, and the handlers act on a short release:
|
||
`MAIN_Key_MENU` returns early at the `if (bKeyHeld)` branch and never opens the
|
||
menu. Confirmed by reading `gDebounceCounter` mid-hold — it stood at 317 after a
|
||
3 s hold, which both proves the timeslice is running and shows the hold was far
|
||
too long.
|
||
|
||
Current values in `key.py`: `HOLD_MS = 200`, `LONG_HOLD_MS = 900`. Verified end
|
||
to end — `key.py MENU DOWN DOWN` moves the menu from 01/79 to 03/79, and
|
||
`key.py UP` moves it back to 02/79.
|
||
|
||
If a press seems ignored, do not lengthen the hold. Check whether the handler
|
||
wanted a short press, and check `gEeprom.KEY_LOCK` (the LCD draws a padlock when
|
||
the keypad is locked, and ignoring keys is then correct behaviour).
|
||
|
||
### Driving the menus: send a sequence as one burst
|
||
|
||
Three things will make a key sequence land somewhere you did not intend. All
|
||
three cost time here.
|
||
|
||
**gdb between presses halts the guest.** Every `gdb-multiarch -batch` attach
|
||
stops the machine for its duration. Inspecting `gMenuCursor` after each press
|
||
stretches a six-press sequence past the 20 s menu timeout
|
||
(`menu_timeout_500ms` in `App/misc.c`), so the UI silently falls back to the main
|
||
screen and the rest of the presses tune the VFO instead of navigating. Send the
|
||
whole sequence in one Python burst over QMP, then read state once at the end.
|
||
|
||
**UP/DOWN are inverted inside a submenu.** `MENU_Key_UP_DOWN` flips `Direction`
|
||
when `gIsInSubMenu` and `!gEeprom.SET_NAV` (`app/menu.c:2311`). In the list DOWN
|
||
moves down; editing a value, UP *decreases* it. Values also clamp at
|
||
`MENU_GetLimits` rather than wrapping, so overshooting sticks at the limit.
|
||
|
||
**MENU toggles rather than only entering.** On the main screen a short MENU opens
|
||
the menu; in the list it enters the submenu; in a submenu it commits
|
||
(`gFlagAcceptSetting = true`) and steps back out. Two MENU presses in a row from
|
||
the list therefore enter and immediately leave, which looks like nothing
|
||
happened.
|
||
|
||
Numeric jump: typing a menu number in the list jumps straight to it, which beats
|
||
counting DOWN presses. Single digits are reliable. Two-digit entry needs both
|
||
presses inside the same input-box window, and `MENU_Key_0_to_9` jumps and returns
|
||
as soon as the first digit is a valid index (`app/menu.c:1826`), so `3` then `0`
|
||
lands on 3 rather than 30. Pre-positioning `gMenuCursor` with gdb, in one attach
|
||
right after opening the menu, is the reliable way to reach a distant entry.
|
||
|
||
Verified this way: menu opens, DOWN/UP move the list, MENU enters a submenu, and
|
||
a digit selects a value. Screenshots confirmed Step at 01/79, RxDCS at 03/79
|
||
after two DOWN presses, and BatSav at 30/79 showing OFF.
|
||
|
||
### row_out must stay volatile or GCC deletes the keypad
|
||
|
||
`UVK5KeypadState::row_out` is declared `qemu_irq volatile`. Drop the `volatile`
|
||
and the keypad stops working entirely: no press reaches the UI, awake or in power
|
||
save, and nothing warns you. `tools/keypad_test.py` covers it.
|
||
|
||
The reason is visible in the object code. `qdev_init_gpio_out_named()` is
|
||
inlinable and only records the array; the lines are filled in later by
|
||
`qdev_connect_gpio_out_named()` from the board, which GCC cannot see. Left plain,
|
||
GCC at -O2 proves every element is still NULL, sees that `qemu_set_irq()` returns
|
||
immediately on a NULL irq, and deletes the body of `keypad_update_rows()` along
|
||
with **all five calls to it**:
|
||
|
||
callers reaching keypad_update_rows
|
||
plain {} <- none; the calls are gone
|
||
volatile {keypad_key_changed, keypad_col_changed, keypad_set_press,
|
||
keypad_reset, uvk5_machine_init}
|
||
|
||
`keypad_col_changed` compiles to a store and a `ret` with no call at all. With
|
||
`volatile` it ends in `jmp keypad_update_rows`. So no row line is ever driven,
|
||
the firmware's scan reads all-high, and the model looks broken.
|
||
|
||
Getting here took three wrong diagnoses, all worth knowing about:
|
||
|
||
1. **"Power save stops the keypad scan."** Written up here as a model gap. It was
|
||
not: the breakage was present awake too.
|
||
2. **"It needs settling time."** Three `fprintf(stderr, "TRACE ...")` probes had
|
||
been removed as cleanup, and restoring the one in `keypad_update_rows` fixed
|
||
it, as did a busy loop in the same place. That looked like a timing
|
||
dependency. It was not — the fprintf and the loop were just side effects GCC
|
||
could not discard, which kept the loop alive.
|
||
3. **"It is a compiler ordering problem."** A zero-cost
|
||
`__asm__ __volatile__("" ::: "memory")` also fixed it, 8/8. Same reason: a
|
||
barrier is an unknown side effect, so the loop survives.
|
||
|
||
What settled it was comparing the two object files instead of the behaviour. The
|
||
standalone `keypad_update_rows` symbol is instruction-identical either way, which
|
||
is why an early diff of just that function found nothing — the function is
|
||
inlined into its callers, and the difference is there.
|
||
|
||
Measurements, 3+ trials each, no debugger near the press:
|
||
|
||
| variant | result |
|
||
| --- | --- |
|
||
| plain `row_out` | 0/12 |
|
||
| `(void)r;` added — inert, no side effect | 0/6 |
|
||
| identical rebuild (stability control) | 0/6 |
|
||
| busy loop, 1 to 4000 iterations | 3/3 |
|
||
| `__asm__ ... "memory"` barrier | 12/12 |
|
||
| **`volatile row_out`** (the actual fix) | **10/10** |
|
||
|
||
Scope, checked rather than assumed: the other out-GPIO array in this file,
|
||
`PY32GpioState::out`, is **not** affected. Marking it volatile as well produces a
|
||
byte-identical object file, because the function that drives those lines
|
||
(`py32_gpio_write`) is only reachable through a `MemoryRegionOps` function-pointer
|
||
table, so GCC cannot do the whole-function reasoning that killed the keypad path.
|
||
Leave it plain.
|
||
|
||
The general shape to watch for: a device whose out-GPIO lines are only ever
|
||
connected from board code, driven from a function GCC can see all callers of. If a
|
||
model's outputs mysteriously do nothing, check the object code for the call before
|
||
assuming the logic is wrong:
|
||
|
||
objdump -dr build/libqemu-arm-softmmu.fa.p/hw_arm_py32f071.c.o \
|
||
| grep -c qemu_set_irq
|
||
|
||
Two measurement mistakes made this much harder than it needed to be, both worth
|
||
avoiding:
|
||
|
||
- **Reading key state after releasing the key.** `gKeyReading0` is always
|
||
`KEY_INVALID` once the key is up, so it "proves" the press was never seen. Read
|
||
mid-hold instead.
|
||
- **Trusting a gdb breakpoint on `KEYBOARD_Poll`.** With the guest stopped the
|
||
scan's delays cost no guest time, so `Poll` returns `KEY_MENU` under a
|
||
breakpoint on a build where it returns `KEY_INVALID` when running free. That
|
||
single observation sent this in the wrong direction for a long time.
|
||
|
||
Two related facts, both confirmed by experiment, so nobody spends time on them:
|
||
|
||
- **Patching battery save in `assets/flash.img` does nothing.**
|
||
`SETTINGS_InitEEPROM` compares a version string at flash `0x00A160`, finds a
|
||
mismatch on a fresh image, and writes the settings sector.
|
||
`PY25Q16_WriteBuffer` erases the whole 4 KB sector before reprogramming, so a
|
||
byte planted at `0x00A00B` is gone before the read at `settings.c:169` sees it.
|
||
- **Settings do persist now, which changes how to test.** The PY25Q16 model loads
|
||
the image at realize time, keeps it in RAM, and writes it back over a temp file when
|
||
CS is released or the process exits, so *every session leaves `assets/flash.img`
|
||
changed*. Measured after one real session: the settings block at `0x00A000`, which
|
||
starts life as all `0xFF`, held the guest's settings, `0x8000..0x8800` had moved,
|
||
and the file differed from the pre-session copy in 2239 bytes. Diff against
|
||
`assets/pristine/` (or a copy you kept) instead of assuming a fresh image, and power
|
||
the emulator off before restoring it. On Windows this silently did nothing until
|
||
`rename()` was replaced by `g_rename()` -- see the portability section.
|
||
|
||
Useful here: `tools/scan_trace.sh` (what the scan reads), `tools/key_result.sh`
|
||
(what Poll returns), `tools/trace_run.sh` (the TRACE points).
|
||
|
||
The three `fprintf(stderr, "TRACE ...")` probes that used to sit in
|
||
`qemu/py32f071.c` are gone -- they fired on every keypad poll and buried the
|
||
console. They went in `py32_gpio_set_input`, `keypad_update_rows` and
|
||
`keypad_col_changed`; `git log -p -- qemu/py32f071.c` has the exact lines, and
|
||
they are still the quickest way to see whether a press reaches the model
|
||
(`grep -c 'keypad row0 -> 0'` on the captured stderr).
|
||
|
||
Redirect that stderr to a file rather than a pipe, and be aware that the
|
||
`keypad_update_rows` one changes timing enough to matter -- see the settle-loop
|
||
note above.
|
||
|
||
Note the ELF at `uvk5-sat/build/CW/nr7y.cw.elf` carries no DWARF, so gdb reports
|
||
`'gEeprom' has unknown type`. Scalars work if you cast through their address
|
||
(`*(unsigned short*)&gDebounceCounter`); struct fields need manual offsets.
|
||
|
||
## The BK4819, and where modelling it stops
|
||
|
||
The register interface is modelled (`TYPE_UVK5_BK4819`): the bit-banged three-wire
|
||
bus is decoded, registers read back what the firmware wrote, and the ones it reads
|
||
without writing return plausible values. Wiring is CS on PF9, SCL PB8, SDA PB9 with
|
||
both directions connected. `tools/test_bk4819.py` inspects the register file over QOM.
|
||
|
||
This is what it fixed: RSSI used to read hard zero at 18 call sites — -160 dBm — so
|
||
the S-meter showed empty and squelch and scan logic evaluated a dead band. The main
|
||
screen now comes up on 400 MHz rather than the 18 MHz floor, because band setup is no
|
||
longer reading zeros.
|
||
|
||
Two constraints are not negotiable, both from untimed spin loops in the firmware:
|
||
|
||
- **REG_0C bit 0 must stay clear.** `app/app.c:910` and `:1417` are
|
||
`while (BK4819_ReadRegister(BK4819_REG_0C) & 1u)` with no timeout at all. A stuck
|
||
bit hangs the guest; it does not degrade.
|
||
- **A soft reset must re-seed the measurement registers.** `REG_00` bit 15, which
|
||
`BK4819_Init` issues first, would otherwise leave them zero — real hardware keeps
|
||
measuring. Not hypothetical: the first test run decoded 48 registers correctly and
|
||
still reported RSSI as 0 for precisely this reason.
|
||
|
||
### Running the tests
|
||
|
||
bash tools/run_tests.sh # everything
|
||
bash tools/run_tests.sh -q # unit tests only, no emulator, ~15 s
|
||
|
||
Use the runner rather than pasting individual commands. It checks the build first and
|
||
**stops** on failure, which matters more than it sounds: `ninja` leaves the previous
|
||
binary in place when it fails, so tests run happily against code that was never
|
||
compiled. That produced two rounds of entirely meaningless results before the habit
|
||
stuck.
|
||
|
||
It also rebuilds only when `qemu/py32f071.c` differs from the copy in the QEMU tree, so
|
||
a plain test run does not pay for a rebuild it does not need.
|
||
|
||
The runner checks *itself* first, via `tools/test_run_tests.sh`. Its first version wrote
|
||
|
||
if "$@" 2>&1 | sed 's/^/ /'; then
|
||
|
||
which tests **sed's** exit status, not the test's — so every test would have counted as
|
||
passing whatever broke. Hence `PIPESTATUS[0]`, and a self-check that asserts a failing
|
||
test really is counted and named. A runner that cannot fail is worse than none, because
|
||
it gets trusted. Test output also goes through `tr -cd` first: gdb-driven tests emit
|
||
stray bytes that make the log a "binary file" to grep, which swallows the summary.
|
||
|
||
Emulator tests boot their own QEMU on private ports and take 20-30 s each, so they do
|
||
not disturb a running `run.sh` or web UI session.
|
||
|
||
### Keeping the docs honest
|
||
|
||
python3 tools/check_docs.py # also runs as part of run_tests.sh -q
|
||
|
||
Documentation rots quietly, and reading it does not find that. Translating everything
|
||
into Chinese turned up four claims that had already drifted: the endpoint table was
|
||
missing three routes, the modelled-peripheral list omitted TIM2, the audit table still
|
||
called TIM a stub after TIM2 was modelled, and neither README listed several library
|
||
modules. All four were found by comparing against the source, none by proofreading.
|
||
|
||
So the comparison is mechanical now. It checks that every tool a README names exists,
|
||
that every test in `run_tests.sh` is documented in both languages, that internal `.md`
|
||
links resolve, that the translation pairs have matching heading structure, that the
|
||
memory-map addresses match the model's `#define`s, that every long flag a doc passes to
|
||
a tool actually exists in it, and that documented firmware `file:line` references still
|
||
point at what the prose claims.
|
||
|
||
Two things the checker itself needed before it could run anywhere but the author's
|
||
machine: every read is `encoding="utf-8"` (the default is the locale codec, and on
|
||
Windows that is GBK, which cannot decode the Chinese docs at all), and the firmware
|
||
tree path comes from `UVK5_FW_DIR` rather than being hardcoded, so the `file:line`
|
||
checks can be pointed at whatever tree you have.
|
||
|
||
The flag check earned its own lesson. Its first version matched only to the end of the
|
||
line, so on a wrapped command like
|
||
|
||
python3 tools/uvk5_buffers.py --qmp 127.0.0.1:4444 # this firmware's addresses
|
||
python3 tools/screenshot.py --frame-addr 0x... --status-addr 0x... \
|
||
--port 1234 --out screen.png
|
||
|
||
it saw `--frame-addr` and nothing else -- 4 of 9 flags, and it reported a clean run.
|
||
**A check that silently covers a quarter of what it claims is worse than no check**,
|
||
because the clean result is believed. Continuations are joined before matching now.
|
||
|
||
One caution, from writing it. An early version compared firmware constants with a regex
|
||
that took the first number on the line, so `key_debounce_10ms = 20 / 10` read as 20 and
|
||
the checker declared the docs wrong for saying 2. **The docs were right and the checker
|
||
was broken.** A checker that cries wolf gets ignored, so anything it cannot verify
|
||
unambiguously is left out rather than guessed at.
|
||
|
||
### Counting distinct frames proves less than it looks
|
||
|
||
Worth knowing before writing any test that watches the screen.
|
||
|
||
Once the receiver reports a varying RSSI, the meter and its dBm readout redraw
|
||
constantly. So "are consecutive frames different" returns yes on a **completely parked
|
||
radio**. A first attempt at checking that scanning still worked scored 8/8 distinct
|
||
frames and established nothing at all.
|
||
|
||
Compare the rows that answer the actual question instead. The framebuffer is 128x64 as
|
||
8 pages of 128 bytes, page *p* covering rows 8p..8p+7:
|
||
|
||
page 0 status line
|
||
pages 1-2 upper VFO, large frequency digits
|
||
page 3 upper VFO sub-line
|
||
pages 5-7 lower VFO
|
||
|
||
`tools/test_scan.py` compares pages 1-2, which only change when the radio retunes: 6
|
||
distinct tunings over 6 samples. That matters because an always-busy receiver is a
|
||
plausible way to stall a scan, and the S-meter work made the receiver always busy.
|
||
|
||
Page 4 is *not* the meter row, incidentally — it stayed byte-identical across all six
|
||
samples while the frequency changed.
|
||
|
||
### What is actually reproduced, and what only answers reads
|
||
|
||
Written after a fair criticism: progress reports kept saying what *runs* rather than
|
||
what is genuinely reproduced. Those are different, and the gap is easy to hide.
|
||
|
||
Counted from the firmware's own call sites:
|
||
|
||
| peripheral | call sites | state |
|
||
|---|---|---|
|
||
| GPIO | 55 | modelled |
|
||
| DMA | 59 | modelled, over the CPU's address space |
|
||
| SPI | 33 | modelled, with the flash |
|
||
| TIM | 23 | TIM2 modelled since `fdcbe80`; the rest stubbed (backlight PWM) |
|
||
| ADC | 19 | modelled; result settable since `e46cae2` |
|
||
| USART | 11 | modelled both directions |
|
||
| RTC, IWDG, WWDG, I2C, USB, CRC, EXTI, PWR | 0 | stub, and the firmware never uses them |
|
||
|
||
Plus, outside the SoC: the keypad, the BK4819 register interface, and the audio enable
|
||
line.
|
||
|
||
**A stub accepts writes and returns the last value.** That is enough not to hang and
|
||
nothing more. The distinction matters because it is invisible from above: the ADC was
|
||
*modelled*, and still returned a hardcoded 2200 forever, so `gBatteryDisplayLevel`,
|
||
`gLowBattery` and the low-battery popup were unreachable. Answering reads is not the
|
||
same as being reproduced.
|
||
|
||
The honest summary is that **the digital side the firmware depends on is reproduced, and
|
||
the analogue side is not and cannot be**. Frequency, flash, keypad, serial, register
|
||
programming, battery — all real. Audio samples and RF behaviour — no data exists to
|
||
model, in the MCU's address space or in any public datasheet.
|
||
|
||
`millis()`/TIM2 and the settable ADC closed the two gaps that mattered. What is left,
|
||
and why:
|
||
|
||
**Backlight PWM — deliberately not modelled.** `backlight.c` drives intermediate
|
||
brightness with TIM7 triggering DMA channel 7 to rewrite GPIOA `BSRR` from a 32-entry
|
||
duty-cycle table, at `PWM_FREQ * DUTY_CYCLE_LEVELS` = 128 kHz. Modelling it means
|
||
128,000 GPIO writes and DMA transfers per emulated second, and **nothing observable
|
||
changes**: backlight is physical LED brightness and does not touch the framebuffer, so
|
||
`frame.png` is byte-identical either way. The two endpoints that do have observable
|
||
behaviour — brightness 0 and full — bypass the timer entirely and call
|
||
`GPIO_TurnOffBacklight`/`TurnOnBacklight`, which already work. Cost is high, benefit is
|
||
zero.
|
||
|
||
**EXTI** — zero call sites today. Any interrupt-driven rework would need it first.
|
||
|
||
### Audio: there is nothing to model, and that is the finding
|
||
|
||
"Add a speaker and a microphone, then grant the browser audio permission" is the
|
||
obvious request, and it cannot be done — not for lack of effort but because neither
|
||
device is on the MCU. Receive audio is demodulated inside the BK4819 and leaves as
|
||
analogue on its AF pin; transmit audio goes from the microphone into the chip's own ADC.
|
||
The firmware touches only:
|
||
|
||
PA8 amplifier enable (GPIO_EnableAudioPath, driver/gpio.h:34)
|
||
REG_47 which AF source the chip routes
|
||
REG_64 a level it displays
|
||
|
||
**No audio samples exist anywhere in the MCU's address space.** There is nothing to
|
||
capture, nothing to play, and nothing for a browser permission to carry. Generating
|
||
sound would be inventing data the firmware never produced — the same line as the
|
||
analogue RF limit.
|
||
|
||
What is real is the *intent*. `TYPE_UVK5_AUDIO` watches PA8 and exposes read-only
|
||
`speaker-on`; the UI shows a speaker glyph and `/api/status` reports `speaker`.
|
||
Read-only on purpose: a writable one would only let a test lie to itself. A unit test
|
||
also asserts the page never asks for audio permission — no `getUserMedia`, no
|
||
`AudioContext`, no `<audio>` — because prompting the user to approve something that
|
||
cannot happen is worse than not offering it.
|
||
|
||
### A stub that is more forgiving than the real client is worse than no stub
|
||
|
||
`QmpClient.command` returns the **unwrapped** value and raises on error. The test stub
|
||
returned `{"return": ...}`. So `webui.py` was written to unwrap a second time, all 88
|
||
tests passed, and the live UI returned 500 with
|
||
|
||
TypeError: argument of type 'bool' is not iterable
|
||
|
||
Two lessons, both of which cost time here. The stub is now pinned to the real contract
|
||
by an explicit test. And the failure was originally swallowed by a bare
|
||
`except: return None`, which made a broken call indistinguishable from a radio that was
|
||
simply silent — and sent me hunting a stale process that did not exist. Log the reason.
|
||
|
||
### PTT, and the transmit level bar
|
||
|
||
PTT is not a matrix key. `GPIO_IsPttPressed` reads PB10 directly
|
||
(`driver/gpio.h:31`, active low), so the model gives it its own GPIO line rather than a
|
||
column/row intersection, exposed as a boolean `ptt` property on the keypad device.
|
||
|
||
That is what makes the transmit level bar reachable. `app/app.c:1700` draws it only
|
||
while `gCurrentFunction == FUNCTION_TRANSMIT` and `gSetting_mic_bar` is set — the
|
||
latter is `Data[7]` bit 4 at flash `0xA0A8` (`settings.c:423`), and blank flash reads
|
||
`0xFF`, so it is already on. The level itself comes from `REG_64` via
|
||
`BK4819_GetVoiceAmplitudeOut`.
|
||
|
||
**Treat the release as the important half.** A stuck PTT leaves the emulated radio
|
||
keyed, and every later test then runs against a transmitting radio. The web UI releases
|
||
on `pointerleave`, `pointercancel` and `pagehide`; `/api/release-all` clears PTT
|
||
explicitly, because an empty `press` does not touch it; and the endpoint rejects
|
||
non-boolean bodies so `{"held": "false"}` cannot key the transmitter by truthiness.
|
||
`tools/test_ptt.py` asserts the release, not just the press.
|
||
|
||
One trap worth knowing if you add another non-key button: the browser wired handlers
|
||
over `.key`, which matched the PTT button as well, and it has no `data-key` — so it
|
||
would have sent the key `"undefined"`. Use `.key[data-key]`.
|
||
|
||
### Reads were shifted one bit, and it hid everything else
|
||
|
||
Fixed in `ad88ee1`, but worth reading because of how long it stayed invisible.
|
||
|
||
Register reads arrived shifted one place left: seed `REG_0C` with `0x1248` and the
|
||
firmware received `0x2490`. Each firmware bit is read/raise/lower, so the eighth
|
||
command bit is followed by a falling edge before the data phase — and the model was
|
||
treating that edge as a data clock, shifting bit 15 away before the guest sampled it.
|
||
|
||
Why nobody noticed: **writes were always fine**, 52 registers held exactly what the
|
||
firmware wrote, and the register the firmware polls hardest was legitimately `0`.
|
||
Reading zero and getting zero looks like success. Verifying a read path requires a
|
||
register with a known *non-zero* value — `REG_3F` is `0x0C0C`, `REG_78` is `0x2F5B`.
|
||
|
||
`tools/test_bk4819_readback.sh` guards it now: seeds `REG_0C` (read ~1700 times per
|
||
30 s, so a sample is guaranteed) with a value carrying bits in both halves, and names
|
||
the shift direction on failure. Bit 0 is left clear deliberately — with it set the
|
||
firmware enters an untimed acknowledge loop, and that test is about alignment only.
|
||
|
||
This also invalidated four earlier diagnoses. Attempts at the squelch interrupt had
|
||
the model raising `REG_0C` bit 0 while the firmware received bit 1, so
|
||
|
||
while (BK4819_ReadRegister(BK4819_REG_0C) & 1u)
|
||
|
||
was never true and 1719 polls saw a flag the guest could not act on. Every one of
|
||
those rounds was blamed on timing or gating. **When several independent attempts fail
|
||
the same way, suspect the shared transport, not the logic on top of it.**
|
||
|
||
### The squelch interrupt and the S-meter: five attempts, then it worked
|
||
|
||
**This works now** (`e6cebed`) — skip to the end for the conclusion. The four failed
|
||
attempts are kept because each produced a confident wrong diagnosis, and the pattern
|
||
of how they failed is the useful part.
|
||
|
||
Scanning worked early on: long-press `*` and the frequency really does step, 6 distinct
|
||
frames over 7 seconds. The S-meter did not, because `ui/main.c:2370` only draws it when
|
||
`FUNCTION_IsRx()`, and that needs `gCurrentFunction` in a receiving state — which takes
|
||
the chip reporting a squelch opening, not just a healthy RSSI.
|
||
|
||
The mechanism looked clear: `REG_0C` bit 0 says an interrupt is pending, the firmware
|
||
writes `REG_02` to acknowledge and reads it back for the flags, and `sqlFound` is bit 3
|
||
(the bitfield is at `app/app.c:915`). Both the bit choice and that reading of the
|
||
mechanism turned out to be wrong.
|
||
|
||
I implemented it — raise `sqlFound` once when the firmware enables interrupts — and
|
||
**backed it out**. The guest kept running, but `REG_0C` bit 0 was still set afterwards:
|
||
the firmware had not collected the interrupt. That is a latent hang, because
|
||
`app/app.c:910` and `:1417` spin on that bit with no timeout, so any path that reaches
|
||
them with the bit stuck never returns. Shipping a model that leaves a hang armed is
|
||
worse than shipping one without an S-meter.
|
||
|
||
**Second attempt, and the actual reason.** Tried again, this time evaluating squelch
|
||
when the firmware *polls* `REG_0C` rather than when it configures the chip — which
|
||
fixed the original mistake, since the startup sequence writes `REG_3F` as `0x0000`
|
||
then `0x0C0C` three times over, so a flag raised on the enabling write was disabled
|
||
again before anyone read it. Also corrected the threshold field: the RSSI open level
|
||
is `REG_78` bits 15:8 at 0.5 dB/step against `REG_67`'s 0.25 dB/step, not anything in
|
||
`REG_4E` (those low bits are the *glitch* threshold, and using them meant squelch
|
||
never opened at all).
|
||
|
||
With that right, everything on the chip side lines up — measured `en=0x0C0C`,
|
||
`rssi=0x01E0`, threshold 94, and `REG_0C` correctly returning 1. The firmware still
|
||
never acknowledged. The reason is not on the chip side at all:
|
||
|
||
gCurrentFunction=5 (FUNCTION_POWER_SAVE), gRxIdleMode=1
|
||
|
||
and the gate is `app/app.c:1697`:
|
||
|
||
if (gCurrentFunction != FUNCTION_POWER_SAVE || !gRxIdleMode)
|
||
CheckRadioInterrupts();
|
||
|
||
Both halves are false in that state, which looked like the answer: no
|
||
`CheckRadioInterrupts`, so nothing to collect the flag.
|
||
|
||
**That explanation is wrong, and the test that disproves it is worth keeping.**
|
||
`app/app.c:1374` refuses power save outright when `BATTERY_SAVE == 0`, and the byte
|
||
lives at flash `0xA00B` (blank flash reads 0xFF, which `settings.c` clamps to 4 — the
|
||
deepest setting, which is why the emulator idles there). Patch that byte to 0 and:
|
||
|
||
BATTERY_SAVE=4: fn=5 idle=1 polls=2161 acks=0
|
||
BATTERY_SAVE=0: fn=0 idle=0 polls=2161 acks=0
|
||
|
||
The gate now passes and the acknowledge count is still zero. A gdb backtrace on
|
||
`BK4819_ReadRegister` confirms the loop really is running —
|
||
`CheckRadioInterrupts` is inlined into `APP_TimeSlice10ms`, and that is the caller:
|
||
|
||
#0 BK4819_ReadRegister
|
||
#1 APP_TimeSlice10ms
|
||
#2 Main
|
||
|
||
So the firmware reads `REG_0C`, gets 1, and does not write `REG_02`. Whatever
|
||
suppresses that is inside the inlined loop, past the gate. Gating the model on
|
||
`REG_30` (zeroed by `BK4819_Sleep`) does not help either — the chip is awake when the
|
||
model is asked while the firmware still reports `gRxIdleMode=1`.
|
||
|
||
**Resolved in `e6cebed`.** The meter reads: `-53` dBm, `+40` over S9, nine of thirteen
|
||
segments, `MONI`, and a running receive timer. The numbers agree — S9 is −93 dBm on
|
||
UHF, so −53 really is S9+40.
|
||
|
||
Three things had to be right, and the order they were found in was the difficult part.
|
||
|
||
*The flag is `SQUELCH_LOST`, bit 2.* Per `app/app.c:1027`, "squelch lost" is what sets
|
||
`g_SquelchLost = true`, meaning a signal is present. `SQUELCH_FOUND` reads like "found
|
||
a signal" and means the opposite. Bit definitions are in
|
||
`App/driver/bk4819-regs.h:290`.
|
||
|
||
*Announcing has to be rate-limited* — here every 64th poll. Announce once and the
|
||
firmware collects it during startup, before the flag leads anywhere. Announce on every
|
||
poll and the request bit is re-armed inside the firmware's own collection loop, which
|
||
uses `REG_0C` as its condition and has no timeout, so it never exits. Periodic
|
||
satisfies both: the loop always drains, and the news repeats until it matters.
|
||
|
||
*The way in is not the interrupt at all.* The radio idles in power save and does not
|
||
act on squelch there — which is why a breakpoint on `BK4819_GetRSSI` never fired.
|
||
`ACTION_Monitor` skips squelch entirely: `app/app.c:482` picks `FUNCTION_MONITOR` over
|
||
`FUNCTION_RECEIVE` whenever `gMonitor` is set, and `settings.c:263` defaults an
|
||
out-of-range stored action to `ACTION_OPT_MONITOR` — which blank flash (`0xFF`) is. So
|
||
**SIDE1 short-press engages monitor on a pristine image**:
|
||
|
||
before: fn=5 idle=1 monitor=0 (FUNCTION_POWER_SAVE)
|
||
after: fn=2 idle=0 monitor=1
|
||
|
||
Gate on `RX_DSP` (`REG_30` bit 0) rather than the whole register being zero: TX and
|
||
tone paths leave other bits set with `RX_DSP` clear and would otherwise look like a
|
||
live receiver.
|
||
|
||
`tools/test_smeter.py` covers the path end to end and compares lit-pixel counts rather
|
||
than matching pixels, so an unrelated UI change cannot produce a mysterious failure.
|
||
|
||
Four measurement mistakes made this take far longer than the code involved. All four
|
||
produced a confident, wrong conclusion:
|
||
|
||
- **Sampling PC at the `REG_0C` read** lands in `BK4819_WriteU8`, the bit-banging
|
||
helper, not the caller. Sampling LR is no better: `BK4819_ReadRegister` calls
|
||
`BK4819_ReadU16`, so LR points back inside the reader. Use a breakpoint and a
|
||
backtrace.
|
||
- **A probe printing `shift_out` before the assignment** reported `0000` for a value
|
||
about to be sent as `0001`. Nearly became "the model sends the wrong value".
|
||
- **`BK4819_ReadRegister` returning 0x0 for REG_0C** looked like a broken read path,
|
||
and I changed the bit timing on the strength of it. But REG_0C legitimately holds 0
|
||
in the committed build — there is nothing to raise it. A register read returning the
|
||
register's actual contents is not evidence of anything. Check against a register the
|
||
firmware demonstrably wrote (`REG_3F` is `0x0C0C`, `REG_78` is `0x2F5B`).
|
||
- **`nexti` after a breakpoint** landed somewhere unrelated and reported `r0 = 0`,
|
||
which fed the same wrong conclusion. `finish` gives the real return value.
|
||
|
||
Also note `gdb` cannot call guest functions on this target (`print
|
||
BK4819_ReadRegister(0x3f)` errors out), and there is no `gCurrentRSSI` global to read
|
||
— RSSI is used and discarded. Breakpoint plus `finish` is the only way to see what the
|
||
firmware actually received.
|
||
|
||
**Where it stops.** This models the register interface, not the radio. It reproduces
|
||
what the firmware *commanded* — frequency, power step, carrier keying in time — never
|
||
the analogue result: keying envelopes, spurious emissions, sensitivity.
|
||
|
||
That is not a gap to close later. The chip has no public datasheet, so its driver is
|
||
the only specification available, and a driver tells you which registers were
|
||
written, never what left the antenna. Those questions need a real radio and a
|
||
spectrum analyser. Do not let anyone conclude otherwise from a passing emulator test,
|
||
including the one added here.
|
||
|
||
Timing is also deliberately wrong — see the SysTick section in README.md. Fine
|
||
for menus and control flow; useless for signal timing.
|
||
|
||
## Serial, both directions
|
||
|
||
Works, and `tools/test_serial_rx.py` proves it by speaking the real protocol:
|
||
`0x0514` hello gets a `0x0515` ack, and `0x051B` returns the requested EEPROM bytes.
|
||
Attach with `-serial unix:/path/to.sock` or any other chardev; it defaults to
|
||
`serial0`.
|
||
|
||
Three things had to line up, and each failed silently on its own:
|
||
|
||
- **USART1 needs a chardev.** It is otherwise a register stub with nowhere for
|
||
incoming bytes to come from.
|
||
- **DMA has to service USART, decrementing `CNDTR`.** `driver/uart.c` never reads
|
||
DR. It receives over a circular channel and locates new data with
|
||
`sizeof(UART_DMA_Buffer) - LL_DMA_GetDataLength(...)`, so a count that never moves
|
||
means a buffer that always looks empty, no matter how many bytes arrived. The
|
||
service runs on a `CNDTR` read, which is exactly where the driver looks — no timer
|
||
needed, and nothing can be delivered before the guest asks for it.
|
||
- **DR writes must also reach the chardev.** They used to go only to stderr. A host
|
||
tool would send a command, the firmware would answer, and the answer went
|
||
somewhere the tool could not see. That is indistinguishable from being ignored,
|
||
and it cost a debugging round: the first run of the new test reported "no reply at
|
||
all" alongside *zero* bytes of boot output, which looked like broken receive when
|
||
in fact transmit was fine and simply invisible.
|
||
|
||
Channels also record the length they were programmed with, because `CNDTR` counts
|
||
down and the write offset has to come from the difference.
|
||
|
||
## If you add a peripheral
|
||
|
||
1. Read the register layout from the CMSIS header
|
||
2. Model only what the firmware actually touches; the logging catch-all
|
||
(`py32-stub`) shows you what that is
|
||
3. Watch for spin loops: any flag the firmware polls must be able to change, and
|
||
write-1-to-start bits (like `ADC_CR2_CAL`) must never be stored set
|
||
4. Rebuild, run, and check with `tools/where.sh` that the firmware moved past
|
||
where it used to stop
|
||
5. When you add a stub to `py32_stubs[]`, **bump `PY32_NUM_STUB`**. Forgetting used
|
||
to be silent: the device was never realized, the address stayed unmapped, and the
|
||
only symptom was that nothing changed. A `QEMU_BUILD_BUG_ON(ARRAY_SIZE(...) !=
|
||
PY32_NUM_STUB)` next to the table makes it a build error now. Two holes were found
|
||
that way, both fatal to the multi-system release (see the portability section):
|
||
`0x40007400` = `DAC1_BASE` and `0x1FFF3000` = `UID_BASE`, neither of which any
|
||
firmware-visible list mentioned. That is why the whole APB/AHB peripheral space now
|
||
has a **low-priority catch-all** behind the named devices: an unnamed register
|
||
answers and logs instead of aborting, and a data abort on real hardware that
|
||
answers is a model bug, not a discovery.
|
||
|
||
## Finding the display buffers in a new firmware
|
||
|
||
`gFrameBuffer` and `gStatusLine` move between builds and **neither is 128-byte
|
||
aligned**, so an aligned guess renders a picture that is wrong in a way that looks
|
||
like a font or a font-loading problem: 0x3E bytes off and every row becomes "tail of
|
||
the previous row + head of this one", which splits glyphs at a fixed column and hides
|
||
the status line behind frame content. Do not eyeball it -- the firmware source says
|
||
exactly where they are.
|
||
|
||
1. Dump SRAM (QMP `memsave`, or `python work/qmp.py dump 0x20000000 0x4000 out.bin`).
|
||
2. Pick bitmaps whose contents *and* placement are both known from the source
|
||
(`App/bitmaps.c` with `App/ui/status.c` and `App/driver/st7565.c`):
|
||
`gFontPowerSave` is copied to status +0, `gFontDWR` to +18, `gFontPttClassic` to
|
||
+54, `BITMAP_BatteryLevel1` to +111 (`LCD_WIDTH - 17`); `BITMAP_VFO_Default` is
|
||
`memcpy`'d to offset 0 of a **frame** line.
|
||
3. Search SRAM for those byte strings. Only one base makes all four status offsets
|
||
agree at once, and the VFO arrow's address *is* the frame buffer. They must then
|
||
differ by exactly `FRAME_LINES * LCD_WIDTH` = 896, which is what says the search
|
||
converged. For the 5.9.0.CN build: frame `0x200012BE`, status `0x2000163E`.
|
||
|
||
Self-check once you have them: frame line 3 is the middle separator the UI memsets, so
|
||
it should be entirely zero; and with both VFOs on one frequency, frame lines 0/1 equal
|
||
lines 4/5 while lines 2 and 6 differ, because only the active VFO's info line has
|
||
content.
|
||
|
||
## Portability: what Windows actually broke
|
||
|
||
The machine and the tools are portable C and Python; the *packaging* was Linux-only.
|
||
Four failures, each invisible until something depended on it:
|
||
|
||
* **`rename()` does not replace an existing file on Windows.** The flash write-back
|
||
writes a temp file and renames it over the image, so every settings save failed with
|
||
`cannot replace`, settings never reached disk, and the stderr storm held the main
|
||
loop long enough that QMP never sent its greeting -- which surfaced only as "power
|
||
on failed: timed out". `g_rename()` (needs `<glib/gstdio.h>`) gives the POSIX
|
||
behaviour on both platforms.
|
||
* **A Windows QEMU cannot create a unix socket**, so QMP has to travel as
|
||
`tcp:host:port`; `uvk5_qmp.py`, `key.py` and the supervisor's launcher accept both
|
||
forms now.
|
||
* **`qemu/py32f071.c` does not compile against a stock QEMU 7.2** without
|
||
`#include "qapi/visitor.h"` for `visit_type_uint64`; `qom/object.h` does not pull it
|
||
in transitively.
|
||
* **`-kernel foo.bin` loads in the wrong place.** `armv7m_load_kernel()` puts a raw
|
||
binary at the base it is handed, which on this machine is the flash *alias*, so the
|
||
image lands 0x2800 bytes high and the first fetch faults. `tools/bin2elf.py` wraps
|
||
the release `.bin` in an ELF32/ARM header with the right program header.
|
||
|
||
**The external flash is partitioned, and the main firmware reads it.** Only
|
||
`0x00A0xx` showed up in a 26 s capture once, which looked like "the firmware does
|
||
not use the flash at all" -- wrong twice over: the first run was defeated by a
|
||
PowerShell UTF-16 redirect, the second by capping the probe at 80 reads. With the cap
|
||
lifted (4000) and a menu opened so Chinese text is drawn, one boot produces 3168
|
||
reads: the settings block, individual glyphs in the user font packs at `0x0A0000`
|
||
and `0x0E0000`, and a **1024-step walk of a 32 KB font table at `0x1E0000`**, 32
|
||
bytes per step. The layout, derived from the tooling at
|
||
`gitee.com/oldlicn/betula-multi-system-tool` rather than from its partition-map
|
||
image:
|
||
|
||
| offset | size | contents |
|
||
| --- | --- | --- |
|
||
| 0x000000 | 128 KB | bootloader + settings (`0x00A0xx`) + calibration (`0x010000`) |
|
||
| 0x020000 | 4 x 128 KB | firmware slots (the tool ships "clear 0x20000-0x40000" through "0x80000-0xA0000") |
|
||
| 0x0A0000 | 256 KB | user font pack, 16x16 |
|
||
| 0x0E0000 | 64 KB | user font pack, 8x8 |
|
||
| 0x100000 | 1 MB | factory resource block, including the 32 KB table at `0x1E0000` |
|
||
|
||
Sixteen official 128 KB restore files reassemble into a real 2 MB image. Adding its
|
||
`0x100000-0x200000` region to `assets/flash.img` **changes what the firmware
|
||
renders**, so that data is live, not decoration. Which source supplies which text is
|
||
still open: the 16-pixel glyphs on screen match neither the pack at `0xA0000` (2 of
|
||
24 cells) nor the table at `0x1E0000` (0 of 8) byte for byte.
|
||
|
||
Panel settings are a fifth, different case: contrast and inversion are not in the
|
||
framebuffer at all, so nothing that renders `gFrameBuffer` can show them.
|
||
`TYPE_ST7565` models the controller's own registers and `tools/uvk5_lcd.py` applies
|
||
the inversion to the picture; see README.md.
|