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bfe-core1106-sdk/docs/architecture.md
T
BFE EngineeringandClaude Opus 4.8 840085bd18 sim: CRU reset-ladder model on MemBus (CruSim)
Models the RV1106 reset ladder + boot-mode register on the MemBus seam, so
flared's devmem::hard_reset ladder and the boot-mode -> MaskRom recovery
maneuver are testable entirely on the host. Bakes in the two hardware facts
that cost real bench time as regression tests:
  - the CRU global-reset register is 0xff3b0c08/0xfdb9; the magic at the wrong
    offset 0xff3a0614 (from other Rockchip SoCs) is a SILENT NO-OP here;
  - the boot-mode register 0xff020200 survives a warm reset (the mechanism that
    makes "set MaskRom, then reset" drop the SoC into BootROM download), and a
    power-on reset clears it.

6 tests (both rungs, pet, the wrong-offset no-op, MaskRom-survives-warm-reset,
POR-clears-request); the sim crate is 14/14 green.

Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_017wB8KB3MMQztRDXCMCkPrf
2026-08-24 17:49:44 -06:00

7.9 KiB

warden-sdk architecture

How the SDK makes WardenOS buildable, testable, and hardenable without a panel in the loop. Grounded in a full survey of the current flare-edge firmware (the seam inventory below is from that survey, not aspiration).

1. The problem the seams solve

The firmware touches RV1106 hardware through a grab-bag of mechanisms, each tested (or not) differently. Today:

Block Where Access Test seam today Fails on host by
Registers / SRAM (CRU reset, HPMCU mailbox) flared/src/devmem.rs, hpmcu.rs /dev/mem mmap peek/poke32 none — zero tests (would fault; not exercised)
HPMCU / RISC-V coproc flared/src/hpmcu.rs via devmem + firmware blob load WARDEN_HPMCU_FW redirects the blob path only env gate disables it
NPU load ui-src/.../sysmon.c read /proc/rknpu/load none — literal path file absent → "NPU absent"
RGA (2D blit) ui-src/.../warden_rga.c librga improcess + dma-heap ioctl compile-time #if WARDEN_USE_RGA #if off → LVGL software path
RS485 daemon warden-modbus/modbus_engine.c open("/dev/ttyS4") recompile -DRS485_PORT=<pty> (recompiled for a pty)
RS485 panel client ui-src/.../modbus.c AF_UNIX socket WARDEN_MODBUS_SOCK env override socket absent → "unavailable"
Relays / GPIO ui-src/.../relays.c /sys/class/gpio sysfs none — literal paths path absent → "unavailable"
Slot metadata flared/src/slotctl.rs misc partition + /proc/cmdline WARDEN_MISC_DEV, WARDEN_CMDLINE_FILE env overrides (redirected to scratch files)

Three patterns coexist: compile-time #if (RGA), env-override (modbus socket, misc dev, cmdline, hpmcu fw), and fails-soft-because-the-path-is-absent (NPU, relays, devmem-would-fault). The last is not a test seam — you cannot inject "relay 1 is ON" or "NPU at 80%", only "absent". The SDK's job is to turn all of these into one deliberate seam per block with a real backend and a sim backend.

2. The seam taxonomy

Two seam kinds cover everything above:

  • Register/SRAM seam → a trait. MemBus (sim/src/membus.rs): peek32/poke32 at a physical address. Real backend = flared devmem.rs mmap; sim backend = SimBus (in-memory word map, Clone so two "cores" alias shared memory). The HPMCU watchdog and the CRU reset ladder both ride this. Built.
  • Resource-path seam → env-override + injection. For file/socket/sysfs paths (/proc/rknpu/load, /sys/class/gpio/*, /dev/ttyS4, misc), generalize the existing WARDEN_MISC_DEV/WARDEN_MODBUS_SOCK pattern into one rule: every device/proc/sys path a driver opens is resolved through a single indirection (warden_hw_path("npu.load") in C, an env-overridable const in Rust), so a test points it at a fake file/fifo the sim writes. No LD_PRELOAD, no fake mounts.

RGA stays compile-time — its #if WARDEN_USE_RGA already cleanly isolates the librga/dma-heap calls behind the always-compiled LVGL draw-unit glue; the sim backend is "a fake improcess that records the blits it was asked to do", swapped behind the same #if, so the offload dispatch logic gets tested even though the blit itself is modelled.

3. The simulator (sim/)

A host Rust library modelling the hardware the vendor SDK cannot, so driver and supervisor logic runs in CI with no panel.

  • membus — register/SRAM bus. Done. MemBus trait + SimBus.
  • hpmcu — the RISC-V watchdog coprocessor. Done. Faithful port of hpmcu/watchdog/main.c's state machine (boot-grace, heartbeat-timeout, disarm, fire) against a SimBus mailbox, virtual clock, 8 tests including the arm-within-grace no-boot-loop safety property. This is the model that would have let the boot-loaded-watchdog logic be validated before the flash that bricked a bench unit (though the layout fault — a load address in unreserved kernel RAM — is a target-config check, §5, not a sim property).
  • cru — reset ladder. Done. CruSim on MemBus (so flared::devmem::hard_reset's ladder is host-tested against the known glb_srst_fst / DW-watchdog registers); an NPU load model behind the path seam; a GPIO/relay sysfs model; a modbus device model unifying the existing mbsim.py corpus into the same framework; an RGA recording fake.

Integration with flare-edge: flared implements MemBus for /dev/mem and gains #[cfg(test)] tests driving its real arm/beat logic against HpmcuSim. This needs warden-sdk reachable as a Cargo dependency in CI — i.e. a remote for this repo, which is a [maintainer]-go-ahead item (credential/remote creation). Until then the firmware-side seam and a local test double land in flare-edge, unified with sim/ once the dependency exists. No duplication of logic — only the tiny trait.

4. Driver hardening (the "port + harden to MC/DC" goal)

"100% MC/DC on 100% of drivers" is infeasible literally: ~97% of driver LOC is vendor blobs (AIC8800 wifi = 88.5K lines). Tiered target:

  • Tier 1 — our own hardware code → real MC/DC. modbus master (modbus_engine.c), relays (relays.c), the RGA wrapper's dispatch, the HPMCU supervisor (hpmcu.rs), the devmem reset ladder. Method: the proven tests/uboot-ab pattern — extract the unit, mock its world, build -fcondition-coverage, enforce with enforce-mcdc.sh (gcc-14 gcov --conditions). Gap the survey found: there is no C-side coverage in CI at all today — only flared line-coverage and the one uboot-ab MC/DC file. Standing up an MC/DC harness for the first C driver (relays.c — small, safety-relevant) is the first driver-hardening deliverable.
  • Tier 2 — near-mainline small drivers → branch coverage + fault injection.
  • Tier 3 — vendor blobs (AIC8800, MPP/ISP/RGA libs) → fault-injection hardening behind the seam, not MC/DC. The AIC8800 SDIO-wedge Tier-1 fix + the designed reset-on-ETIMEDOUT recovery are this tier: test the recovery path against an injected wedge on the MemBus/SDIO seam, since the blob itself is untestable.

Every seam gets a fault-injection mode (a wedged SDIO link, a stalled MCU heartbeat, an RGA timeout, a GPIO write EIO) so recovery code is tested against failure, not just the happy path.

5. Target-config checks (a class the sim cannot cover)

The brick was a memory-map fault: the boot-loaded MCU's load address (0x40000) is a reserved carve-out on Thunder-Boot boards but plain kernel RAM on ours. No behavioural sim catches that — it needs a static check against the target DT: "every address the MCU/coprocessor code loads to is inside a reserved-memory node." warden-sdk owns these config-lint checks (idblock loader .ini vs DT reservations, partition table vs image sizes, vermagic vs kernel) as CI gates, so a mistake is caught before a flash rather than on the bench.

6. Kernel forward-port (separate, bounded phase)

Move to plan44's OpenWrt RV1106 fork — Linux 6.6 (152 RV1106 patches + our exact board DT), not mainline (no DT/clk/display/RGA/NPU/flash-boot merged). It is a diff-and-borrow forward-port onto our Buildroot/uClibc base, not a swap-in (plan44 drops Buildroot for OpenWrt/musl and ships no AIC8800 kmod). The dominant risk is the struct-ABI break (the VLAN saga) — mitigated by shipping any kernel move as one matched boot+oem image, never a partial reflash. This phase starts after the sim + driver-hardening foundation, since those are how we'll regression the port.

7. Order of work

  1. Simulator coremembus + hpmcu (done); reset-ladder + path-seam scaffolding next.
  2. First C-driver MC/DC harnessrelays.c, establishing the C coverage gate.
  3. flared devmem/hpmcu seam + tests (firmware-side trait; unify with sim/ when the repo has a remote).
  4. Config-lint CI gates (§5) — the brick-class of bug.
  5. Hermetic image build wrapper moves in.
  6. Kernel 6.6 forward-port (§6).