Basic/Plus share the passive closed-loop cooling and the 60-75 F
window per Glowforge's tech specs and owners-forum consensus; the
Pro's solid-state TEC buys 60-81 F. Spec-level only - tec_present
stays a user setting regardless, since tec_on has no readback.
Low side: factory floors (CM* window minimums ~1-4 C, the ~16 C
'warming up' operating floor) and the planned cool_temp_min /
cool_temp_start keys with a heater-driven warm-up phase. TEC:
presence is undetectable (tec_on is write-only, Pro-only hardware on
a common board) so tec_present becomes a user setting, with
hysteresis control toward the factory ~18 C setpoints when enabled.
-l inventories every bootable partition (SD, eMMC slots 1/2, legacy
p4) as machine-parsable key=value lines: firmware type
(forgefirm/factory), version, kernel presence, booted/next markers,
plus the saved-env selection - the shared probe for the installer and
the forgectrl update manager.
Boot switching now writes all four selection variables (mmcdev,
mmchwpart, mmcpart, mmcroot) in one fw_setenv -s transaction and
read-back verifies, falling back from the libubootenv script format
to the classic u-boot-tools format to per-variable writes - the same
script works on factory firmware and ForgeFIRM. mmchwpart was
previously never set and a mixed env could survive a mid-flip power
cut. Switch targets must pass a content probe (rootfs mounts, kernel
present) unless -f. -e picks the newest factory slot by probing,
excluding slots occupied by ForgeFIRM.
The new ffboot recipe installs it as /usr/sbin/ffboot with
/etc/fw_env.config (factory-identical redundant env layout at eMMC
0x80000/0x82000) - previously the image shipped fw_setenv with no
config. Added to forgefirm-image.
Slot-agnostic boot proven on the bench: the same release ext4 boots
from SD and from eMMC p4 steered by the saved env alone. fwup
cross-version compatibility proven; slot-sized rootfs, size gate,
ext4 artifact and mkfw.sh in place. Found for Phase 1: the image
ships no /etc/fw_env.config.
The release image now targets the 200 MiB factory eMMC slot: content
plus 40 MiB working space, hard build failure past the slot size. The
raw ext4 is deployed alongside the wic; scripts/mkfw.sh packs it into
a signed .fw with factory-pattern upgrade.a/upgrade.b tasks. fwup
1.16.0 recipe (applies ForgeFIRM and Glowforge-signed archives on
device) is installed in both images. Dev images stay SD-sized with a
256 MiB working margin and no ceiling.
Verified on the 20260808153331 build: release ext4 180.8 MiB; signed
.fw applies byte-exact with fwup 1.16.0 and with the factory's 0.14.2
(raw-format pubkey), and 0.14.2 -V verifies the signature.
flow_confirm_drill.py walks the driver's suspicion/confirmation state
machine through every verdict with real pump-off transients in one M8
session; flow_escalate_drill.py exercises the starved-re-check
escalation against a short GFCOOL_CONFIRM_MAX_S. BRINGUP records the
triage resolution (the 2026-08-03 faults were a real transient
stagnation, probable pump airlock - the check was right), the slug/
circulation measurements, and the new check semantics.
Every image writes /etc/forgefirm-version and echoes "ForgeFIRM
<version>" on the serial-console login prompt (/etc/issue, beneath the
OpenGlow banner) and at SSH login (motd). Release images carry
v${FORGEFIRM_RELEASE}; the dev image stamps the build timestamp - the
same DATETIME as the artifact name - tagged (dev) so a bench machine
is never mistaken for a release.
The init script consults controller_mode in /data/forgefirm.conf:
'cloud' (once that mode exists, with its own service reading the same
key) keeps grblHAL down; grbl, unset, or a missing config starts it.
Board-verified both ways: cloud in the conf leaves the controller
stopped with a clear message, grbl starts and serves normally.
forgectrl ad0b441: OpenGlow branding, operational /status dashboard.
grblHAL-glowforge c472a13: position anchor at homing for the status
readers. Runbook updated.
Non-empty gf_serial / gf_password / gf_hostname in /data/forgefirm.conf
(set from the forgectrl GF Cloud tab) are applied with set_cfg before
Machine() is built, so they beat the OCOTP fuse identity - Machine sets
its fuse values with keep_value. The --timeout default comes from
GFHOME_TIMEOUT_S when the controller provides it, so one GUI setting
governs the whole session. Docs: control-panel runbook notes.
The runner's Machine subclass fetches lid/head images from the
forgectrl snapshot endpoint - forgectrl owns the imx-media pipeline
whenever a stream client (LightBurn) is connected, so direct V4L2
grabs fail busy. Head captures request lamp=0 (the cloud's focus
analysis needs torch-off images); the HCil measure-laser LED is still
driven directly. Direct capture remains the fallback when the daemon
is unreachable.
The sample config gains the factory-board settings: the estop motion
gate stays off (the board's estop sense reads low during any motion),
and the forgectrl URL is configurable.
New recipe installing /usr/sbin/gfhome.py and /etc/gfhome.conf.sample
(copied to /data/etc/gfhome.conf on first run). The runner signs the
machine in with its fused identity, opens the WSS control channel with
a held client reference (a clean disconnect is impossible through
ws_connect), and drives the GFUIService dispatch table itself - minus
print - so the service's camera homing sequence (settings -> hunt ->
lid image -> corner move -> lid image) runs against the real hardware
Machine. The service ends the sequence silently, so completion is a
hunt plus at least one motion followed by a configurable quiet window;
the lens is then re-referenced against the hall sensor for a
deterministic Z. Lid/e-stop are checked before the session, print
actions are refused, and exit codes distinguish configuration and
connection failures from an incomplete homing.
Installed in both images; invoked by the grblHAL controller for $H
when homing_mode = gfcloud in /data/forgefirm.conf.
gitsm-pinned build of the controller with a sysvinit script (defaults 92, after forgectrl), installed in both images. Reboot-verified on the bench: controller and forgectrl come up unattended and Grbl answers on TCP:23.
The head lis2hh12 (i2c-3 0x1e, direct-I2C at ~530 Hz - st_accel sysfs one-shots are ~6 Hz and the kernel has no IIO triggers) sees rail contact as a 20-40x jolt over the creep baseline within ~4 ms. bump_seek.py: 3/3 detected hits, zero false positives over ~180 mm of creep, jog-cancel stop and back-off. BRINGUP carries the full record and the driver integration design.
Sources live at github.com/ScottW514/forgectrl (history extracted, layout src/ + init/); the recipe pins SRCREV and installs the init script from the repo. Adds the build-forgectrl.sh bench cross-compile script.
NEON kernel for the YUV420 superpixel convert (vld2q deinterleave, rounding-halving greens, mlal/rshrn luma, pairwise-add chroma block sums), bit-identical to the scalar path and proven so on a live frame via the FORGECTRL_NEON_CHECK one-shot memcmp. Convert 75 to 18 ms; the stream now runs at the OV5648 frame rate. Motion coexistence re-proven at 15 fps (clamped 0).
Demosaic the superpixels straight to planar YUV420 and encode on the CODA960 (mainline coda V4L2 mem2mem, node found by personality); libjpeg stays as the automatic fallback and the snapshot path. All camera paths now demosaic from a cached bounce copy of the frame: the V4L2 MMAP capture buffers are uncached, and reading them in-place costs ~340 ms/frame vs 43 ms memcpy + 75 ms cached convert. Per-frame stats logged every 100 frames; /cam/status reports the encoder.