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The step backend now lives in github.com/ScottW514/grblHAL-glowforge (grblHAL driver convention: core submodule, driver.c HAL, board header). Add build-glowforge.sh, update the BRINGUP runbook (no -t throttle, EEPROM path, kill-before-scp, producer stats line, reset/disconnect semantics), and teach bench_m2.py to parse the F: status field (no spindle registered = no FS: field). Settings-write crash fix is upstream as grblHAL/core PR 999.
169 lines
9.8 KiB
Markdown
169 lines
9.8 KiB
Markdown
# ForgeFIRM bring-up status & cold-start runbook
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Last updated: **2026-08-02** — milestone 2 (factory-true motion tuning)
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bench-verified, and the controller promoted to a canonical grblHAL driver
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repo (**grblHAL-glowforge**) with bench parity re-proven on hardware.
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Read together with `AUDIT_ACTION_PLAN.md` in the project root (sibling of
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this repo; per-finding status of the 2026-07-03 audit) and
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`kernel-module-glowforge/UAPI.md` (the pulse-stream feeder contract).
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## Where the project stands
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**Audit phases 0–5: complete and hardware-verified.** Both motion blockers
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fixed (cnc probe / 40v-supply; SDMA script relocated to `<26 0xF00>` with a
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pre-run integrity guard); the end-of-data protocol reworked and bench-proven
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(underrun is a first-class `underrun` state behind the `streaming` attr;
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16/16 protocol bench); laser PWM verified at 39.98 kHz (register level);
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`CONFIG_PREEMPT=y`; uEnv/u-boot/ulfius build integrity restored; legacy
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cloud mode repaired (nvmem identity → hostname XXX-XXX verified on fuses;
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deadman/safety loop; camera error paths).
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**Phase 6 spike: achieved.**
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- grblHAL (unmodified core) runs on the board, speaking Grbl
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1.1f over **TCP port 23** (LightBurn-confirmed).
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- Underrun proof: 100 kHz × 120 s under full load, 150 ms queue, 0.2 ms
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worst write latency, zero underruns. Measured SDMA script ceiling:
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**~165 kHz effective** (~6 µs/byte).
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- **The step backend works**: the driver resamples grblHAL's step
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events into pulse bytes and live-feeds `/dev/glowforge`. X and Y jogs
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from TCP G-code move the real gantry; grblHAL and kernel position
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counters agree step-for-step. Motion-only: the laser latch is forced
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locked, byte bit 4 is never emitted.
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**Milestone 2 (motion quality): bench-verified 2026-08-02.** The factory
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motion constants were extracted from the `_RESOURCES` pulse files
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(`scripts/bench/puls_profile.py`) and applied end-to-end:
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- grblHAL defaults now factory-true: 12000 mm/min max rate (X/Y),
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700/590 mm/s² accel (X/Y). Machine tick default 28160 Hz (the factory's
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own travel-move tick; 10 kHz caps an axis at 187.5 mm/s).
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- The sink now applies the whole analog machine config itself at init
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(modes, decay, motor_lock, PIC currents) and switches PIC currents
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run↔hold around motion like the factory did (135/22 running, 33/5 idle,
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drop deferred until the kernel queue has drained).
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- Bench (`scripts/bench/bench_m2.py`, all green): sustained 200 mm/s on a
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120 mm jog, exact round-trip positioning, feed-hold parks and resumes
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cleanly, current switching observed live, zero underruns at 28160 Hz.
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- NOTE: stored $-settings beat freshly baked defaults — after changing
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`GLOWFORGE_DEFAULTS` values, run `$RST=$` once on the board (the sim
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persists settings in its eeprom file in /data).
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## The bench
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- **Board**: SSH `root@172.16.1.97` (fixed DHCP lease since 2026-08-02;
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was .130), empty password
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(`ssh -o PreferredAuthentications=none` logs straight in). Dev image
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(`forgefirm-image-dev`) on SD; BusyBox userland + python3 + gdb/strace.
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Serial console on ttymxc0 available at the bench.
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- **Deploying kernels**: re-burn the SD with the freshly built
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`forgefirm-image-dev-glowforge.rootfs.wic.gz` (deploy dir below). Where
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the boot flow loads the kernel from was never fully traced (the wic has
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no boot partition; the eMMC env area reads empty) — re-burning works and
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is the procedure. **Module-only changes hot-swap**: scp `glowforge.ko`
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over `/lib/modules/<kver>/extras/`, then `rmmod glowforge && modprobe
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glowforge`. NOTE: a module reload turns off the lid LED (relight via
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`/sys/class/leds/lid_led*/target`) and resets analog config (below).
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- **Build host**: WSL2 distro `forge-yocto`, tree at
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`~/dev/openglow-forgefirm`. `~/src-sync.sh` rsyncs the Windows repos in
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(includes `python3-gfhardware` and `grblHAL-glowforge`). Build:
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`cd ~/dev/openglow-forgefirm/forgefirm && kas shell
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kas/forgefirm-glowforge.yml -c 'bitbake forgefirm-image
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forgefirm-image-dev'`. Artifacts:
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`forgefirm/build/tmp/deploy/images/glowforge/`.
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- **Shell gotchas** (cost real time): PowerShell mangles embedded double
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quotes in git-commit here-strings (avoid `"` in messages); `wsl -- bash
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-c '...'` eats `$VAR` expansions (use script files run via PowerShell,
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not Git Bash, which MSYS-mangles `/mnt/c` paths).
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## Running the controller (grblHAL-glowforge on the board)
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Source: `C:\dev\openglow-forgefirm\grblHAL-glowforge` — the **canonical
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grblHAL driver repo** (github.com/ScottW514/grblHAL-glowforge, branch
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`main`): core as a submodule at `src/grbl` (→ ScottW514/core fork, branch
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`forgefirm`, carrying the settings-write crash fix, PR'd upstream as
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grblHAL/core#999), `driver.c` implementing the HAL, machine constants in
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`src/boards/glowforge.h`. Architecture: a wall-paced producer thread runs
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the core stepper ISR against a virtual step clock (1000× machine tick)
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and maps step events to pulse bytes; a SCHED_FIFO shipper feeds
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`/dev/glowforge` with the bounded queue; a recursive core mutex stands in
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for interrupt masking. `GFSINK` unset = null-sink mode (full engine, no
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hardware I/O — host testing).
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1. Build: `wsl -d forge-yocto -- bash <repo>/forgefirm/scripts/bench/build-glowforge.sh`
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(from PowerShell). Produces `build-arm/grblHAL_glowforge` in the WSL
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tree (`-O1 -g`; machine constants live in `src/boards/glowforge.h`,
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force-included into the core: 53.333 µsteps/mm XY @ ×8, 2.832
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half-steps/mm Z, 0.417" Z travel, 12000 mm/min max, 700/590 mm/s²
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accel — factory-derived, see `puls_profile.py`).
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2. Deploy to `/usr/bin/grblHAL_glowforge` on the board (kill the running
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instance first — the binary can't be overwritten while executing).
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3. Start: `cd /data && GFSINK=/dev/glowforge grblHAL_glowforge -p 23 -e
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/data/EEPROM-glowforge.DAT` (no `-t` — real-time pacing is intrinsic
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now). Env knobs: `GFSINK_RATE` (machine tick, default 28160 Hz =
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factory travel tick), `GFSINK_DEPTH_MS` (queue depth = feed-hold
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latency, default 200). The driver applies the full analog machine
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config itself at init (×8 modes, decay 1, motor_lock 8, laser latched,
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PIC hold currents) and swaps PIC run/hold currents around motion. If
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the baked $-defaults changed since the last run, `$RST=$` once (stored
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settings win). Each motion run logs a producer-stats line to stderr
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(callbacks, µs/call, max-behind, clamped) — clamped should stay 0.
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4. Connect LightBurn/UGS to `172.16.1.97:23`, or jog raw:
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`$J=G91X40F1200`. `^X` mid-motion aborts via kernel `cnc/stop`
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(controlled decel) and raises an alarm; TCP disconnects never kill the
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process (the deadman fd stays held).
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## Hardware facts bank (measured)
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- SDMA pulse engine: ring free = 128 MiB − 32 KiB gap; script effective
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ceiling ~165 kHz; position counters (`sdma_context` sc0/1/2 = X/Y/Z
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steps, sc3 = bytes) match grblHAL exactly.
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- Byte layout & rules: see the UAPI.md feeder contract (authoritative).
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- Z: bit 6 SET = lens UP = +Z (hardware-verified; pulsedata.py was the
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inverted party, fixed). Home = hall trigger at TOP; usable travel ≈ 30
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half-steps ≈ 10.6 mm ≈ 0.417"; 0.3534 mm/half-step. Never blind-drive Z
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— hall-supervised only.
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- XY: 0.15 mm per full step; DIR bit set = −X / +Y (Y1/Y2 complementary).
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- Factory motion profile (measured from `_RESOURCES` pulse streams with
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`puls_profile.py`): accel ≈ 700 mm/s² X / 590 mm/s² Y on v2.6.0
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firmware (2018 firmware used ≈1000); header HAxr=132/HAyr=112/HAar=133
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⇒ ≈5.3 mm/s² per HA unit. Travel moves peak 202 mm/s vector
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(≈ 8 in/s) at STfr=28160 Hz; prints/hunts run STfr=10000. Cut feed in
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the sample print: 145 mm/s. Z cadence ≈ 61–115 ms per half-step
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(≈ 5.7 mm/s max).
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- Factory analog config (constant across all captured jobs, 2018→2026):
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PIC currents X 135 run / 33 hold, Y 22 run / 5 hold (axis DAC scales
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differ by design); x/y_decay=1; ×8 microstepping; run currents applied
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only while motion plays, hold otherwise.
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- Laser PWM: 39.98 kHz register-verified (divider 13 × 127 counts).
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- Switches: truthy = closed/OK; SW_INTERLOCK reads False on units without
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the rear plug — must NOT gate motion (beam is hardware-gated).
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- Machine identity from OCOTP nvmem: serial 00000000 → hostname XXX-XXX
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(matches the factory label).
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## Next work (in rough order)
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1. **Backend milestone 2 — motion quality: DONE 2026-08-02** (see status
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section above). Remaining human check: listen/watch a jog session for
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noise and smoothness vs the pre-tuning state (all electrical/protocol
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checks are green; loudness was likely the 150/150 currents + unset
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decay mode, both now factory-true).
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2. **Laser mapping** (gated on the scope session): spindle → power bytes
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(bit 7) + bit 4 laser-enable, M3/M4/$32 semantics, PWM-reset rule per
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the contract. **No live fire before the standing scope gates**: LASER_PWM
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waveform vs factory capture + ≤1-tick laser drop at underrun.
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3. **Homing**: X/Y home switch GPIOs exist in the cnc pin map (unused so
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far); wire as grblHAL limits or keep StallGuard-less factory scheme;
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Z homes against the hall sensor (top).
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4. **6.5 safety mapping**: door/estop evdev → feed-hold/halt in the
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backend; underrun → grblHAL alarm; interlock-trip recovery check.
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5. **6.6 camera service**: persistent MJPEG (ulfius, forgectrl) — also the
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natural time for the deferred 5.6 emulator smoke (homing images).
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6. **Housekeeping**: ~~pick the controller's remote home~~ **DONE
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2026-08-02** — the controller is now the canonical driver repo
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`github.com/ScottW514/grblHAL-glowforge` (+ `ScottW514/core` fork;
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the settings-write crash fix is upstream PR grblHAL/core#999; repoint
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the submodule to upstream when it merges). Remaining: a Yocto recipe
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for grblHAL-glowforge in meta-forgefirm (pin SRCREV; fills the
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`forgectrl` slot per kas/README.md), Phase 7 doc sweep (CLAUDE.md
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charter refresh, README roadmap), kas flip + first GitHub release per
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kas/README.md once ready to publish.
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