mkinitramfs.sh, mkimage.sh and run.sh all read $OUT, and ui-drive.sh left it at the shared default, so two concurrent runs built and booted the same qemu/out/disk.img and wrote their userdata into it: a VM seeded with role=1 read back client because the unseeded run next to it had rebuilt the image (#20). Each run now builds and boots its own image under $TMPDIR (real disk; /tmp is a tmpfs on the dev box and the run refuses to start with under 1 GB free there), keeps the pinned busybox shared and read-only through BUSYBOX, and removes the image on exit. Verified: a seeded router-mode flow, the unseeded client-mode flow and a third flow booted at once, 25/25, 25/25 and 10/10, each reading its own role. Co-Authored-By: Claude Fable 5.1 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01N3G6m9Aw5RyVY4ZowtKzEj
The Device Simulator
A QEMU virtual machine that boots the real forward-ported kernel and real
userspace: the 86 Panel (init, daemons, networking, OTA, watchdog, display)
developed and tested with no board attached. The third simulator in the stack
(three-way split: root README), deliberately not named "sim": it runs the
whole machine above the kernel entry point on real binaries: bring your own,
or drop prebuilt payloads in payload/. Decision record: ADR-0006.
The Boundary
There is no RV1106 machine model in QEMU and everything below the kernel is
closed rkbin blobs plus mask ROM, so the VM enters at -kernel zImage on
-M virt,highmem=off (single Cortex-A7, 256M: the RV1106G3's shape).
| Emulated / substituted | Not emulated (stays bench / sim/ territory) |
|---|---|
| Kernel boot, init ordering, switch_root | BootROM, idblock/DDR-init, SPL, U-Boot |
A/B outcome (warden.slot= cmdline) |
Real BCB A/B selection, bootcount auto-revert |
Storage: virtio-blk with the device's exact blkdevparts= layout + /dev/block/by-name/ contract |
eMMC controller itself |
| Network: virtio-net (slirp, hostfwd 22/80/28443) | GMAC, AIC8800 wifi, usb0 gadget |
| Display: virtio-gpu 720x720 via fbdev emulation | VOP/RGB666 pipeline, CH32V003 panel init, RGA blits |
Touch: virtio-tablet (QMP input-send-event) |
GT911 on I2C3 |
Watchdog: i6300esb (PCI), -action watchdog=reset |
DW watchdog @0xff5a0000, HPMCU supervisor |
RS485: pci-serial chardev bridged to sim/'s ModbusSlave |
Real UART4 timing/electrical behavior |
RTC: PL031 (--rtc reproduces the no-RTC 2021-clock incident class) |
The unpopulated backup-cell reality |
"Boots/works under emulation" is never evidence of "works on silicon." The VM narrows which claims need a panel; on-device claims still need on-device evidence. Conversely, the VM is the first environment that runs production binaries on a non-RV1106 memory map: it found flare-edge #106 (fatal SIGBUS in flared's HPMCU probe) and #107 (Y2038 time_t truncation) on its first two boots of real userspace.
Documented guest deviations from production, set by stage-2 init:
WARDEN_FLARE_INSECURE=1 (the desk mock portal is plain HTTP) and
WARDEN_HPMCU=0 (no mailbox SRAM on virt; flared >= flare-edge#106 fix
required, or the daemon dies of SIGBUS).
The VM's kernel is ahead of the panels' in one way that shows in the UI.
It is built from build/warden_defconfig plus configs/virt.fragment, so it
has CONFIG_BRIDGE; the vendor 5.10 kernel most panels still run does not.
A Client-mode access point is bridged to the wired uplink and needs that, so
the Wi-Fi page offers it in the VM and says "Needs Router mode: this kernel
cannot bridge" on a 5.10 panel. Both are correct for the kernel underneath.
The difference disappears as panels move to the 6.18 build, but until then a
screenshot from here is not evidence about a 5.10 panel's Wi-Fi page.
Quick Start
# 1. kernel: canonical build boots the VM as-is; the fragment variant adds
# the scenario devices (PCI serial, watchdog, WireGuard, virtio-gpu/input)
WORK=$HOME/kbuild-out CROSS_COMPILE=arm-linux-gnueabihf- \
WARDEN_KCONFIG_FRAGMENT=qemu/configs/virt.fragment bash build/build-kernel.sh
# 2. initramfs (sha256-pinned static busybox + qemu/rootfs/) and A/B disk
bash qemu/mkinitramfs.sh
bash qemu/mkimage.sh # options: --portal-url --state K=V --fw-version
# 3. run (see run.sh header for all flags)
bash qemu/run.sh --kernel $HOME/kbuild-out/linux-6.18.46/arch/arm/boot/zImage --shell
Payload: drop static musl armv7 binaries into qemu/payload/ (see its
README). Stage-2 init starts every panel daemon it finds, in the panel's own
S-number order (warden-ai, warden-automation, warden-modbus,
warden-mikrotik, warden-asic, warden-starlink, warden-stratum,
warden-flared), then warden-ui (the LVGL fbdev+evdev build from
flare-edge tools/build-ui-vm.sh). The quickest faithful payload is the
daemons a bench panel already runs: flare-edge tools/rig-pull-daemons.sh --host <panel> copies them in. The RS485 UART is always present (a null
chardev without --rs485), so warden-modbus polls a port with nothing on
it, as on a panel with an empty header, and never the control channel.
The VT cursor is kept off (vt.global_cursor_default=0): fbcon shares the
virtio-gpu framebuffer with warden-ui and its blinking cursor would otherwise
show up in screendumps at random (issue #18).
Scenarios
All take the virt-fragment <zImage>; FLARE_EDGE=<checkout> where noted.
| Scenario | Needs | Proves |
|---|---|---|
boot-smoke.sh |
- | sentinel-asserting boot; runs in CI inside kernel-build |
portal-scenario.sh |
FLARE_EDGE |
real flared against the desk mock portal: authenticated check-in, desired-state pull, signed tier-1 .wfw download; verify/stage/APPLYING as a dry run (no WARDEN_FW_ALLOW_APPLY) |
ota-apply.sh |
FLARE_EDGE |
the FULL apply: the .wfw's bootable rootfs payload is written to rootfs_b (run.sh --allow-apply gates it per boot), the AvbABData in misc flips, and slot _b boots the applied version |
ui-shot.sh |
- | display+touch, headless: QMP-screendumps the 720x720 UI, taps the Metrics tab via input-send-event, asserts the frame changed (qmp.py is the QMP client) |
ui-drive.sh <script> |
- | the same rig for a SEQUENCE: boots once, runs a qmp.py drive script of taps/swipes/screenshots in panel pixels, and FAILS if warden-ui died on the way (stage-2 init announces the exit on the console). tests/scripts/nav-stress.txt is the navigation regression: it reproduces the s_row_left overflow that segfaulted the UI on returning to Settings > Apps |
real-image-boot.sh |
matched rootfs.img + oem.img |
an ACTUAL flare-edge build (placed by mkimage.sh --rootfs-image/--oem-image) boots its own init chain to getty; binaries predating known fixes reproduce their bugs faithfully, a time machine for field issues |
watchdog (run.sh --watchdog) |
- | arm /dev/watchdog, don't pet: the VM resets ~30 s later (verified) |
Scenario fine print:
- OTA: the BCB slot CHOICE and the physical reset stay emulated by the
harness (ADR-0006 boundary); the VM exports
WARDEN_HARD_RESET=0so flared's post-apply reset surfaces as a reported error, not a /dev/mem fault. - Touch injection holds 200 ms: an instantaneous press+release lands inside one LVGL poll and never clicks.
- Watchdog + a flared payload don't mix: flared pets only while the UI heartbeat is fresh.
Gotchas
- AF_UNIX socket paths cap at ~108 chars; keep
--rs485/--qmppaths short. - A serial port that is closed discards incoming bytes: hold ONE fd open across write and read when scripting the guest side of the RS485 bridge.
highmem=offand-global virtio-mmio.force-legacy=falseare required (32-bit ECAM reach; virtio-1-only gpu/input); both live ONLY in run.sh, which every script (boot smoke included) delegates to.- Never pass
earlyprintk: DEBUG_UART_PHYS is the RV1106's 0xff4c0000.
Requirements
qemu-system-arm (Debian 13 ships QEMU 10), curl, cpio, mkfs.ext4,
gcc-arm-linux-gnueabihf (kernel build), python3 (+cryptography for the
portal scenario's .wfw signing). CI: the hosted qemu-tools job builds the
tooling; the boot smoke runs inside the (also hosted, dispatch-only)
kernel-build job, which apt-installs its own toolchain and qemu (ADR-0007).