kdump + rasdaemon on every node, per docs/kdump-rasdaemon-design.md with the approved decisions: hang capture ON (a wedged kiosk dumps and reboots itself instead of sitting dead), crashkernel=256M, backfill ships with this release, phase-2 UI surfacing deferred. Host fixups (docs/system-level-ota-design.md) are the general answer to 'deliver system-level updates OTA': curated OS packages, sysctl drop-ins, service enablement and the GRUB crashkernel line, carried by the signed binary and applied idempotently at startup — non-fatal by construction (offline/locked-dpkg nodes converge on a later boot), skipped on dev boxes and non-Debian hosts. This formalizes the polkit/audio repair precedents into a channel with a stated policy: pinned packages and parameter intent only, never dist-upgrade automation; the ISO bakes the identical end state into fresh installs (next commit). The one runtime limitation is honest: crashkernel memory can only be reserved at boot, so the fixup writes GRUB, runs update-grub, and logs that it takes effect on the next reboot. tests/lifecycle/os-audit.sh gains section D — a graded baseline check: FAIL if capture never landed, WARN if written but awaiting reboot, PASS when reserved, policy live and rasdaemon recording. Section D runs independently of RPC health: a wedged backend must not mask that the node also stopped capturing evidence. Verification: host_fixups unit tests 4/4; cargo fmt clean; full suite runs in the release gate (create-release) and the archi-dev-box lifecycle gate before the tag.
6.5 KiB
kdump + rasdaemon — post-mortem and hardware-error capture (#144)
Status: IMPLEMENTED (phase 1) — decisions approved 2026-08-30: hang capture ON,
crashkernel=256M, ship the backfill with this release, phase-2 UI deferred.
Delivery: image-recipe (Dockerfile.rootfs, auto-install.sh cmdline) +
core/archipelago/src/host_fixups.rs (existing nodes, see
docs/system-level-ota-design.md) + tests/lifecycle/os-audit.sh section D.
Owner: node image (image-recipe) + lifecycle gate
Issue: #144 — "Configure kdump and rasdaemon for troubleshooting"
The problem
When a fleet node hard-locks or a memory stick starts failing, today we get nothing: a frozen kiosk is power-cycled and the evidence is gone; a DIMM throwing correctable ECC errors for weeks is invisible until it starts corrupting things. Two standard kernel mechanisms capture this evidence:
- kdump — reserves a small crash kernel at boot; on a kernel panic (or, configured so, a hang) the running kernel hands the machine over to the crash kernel, which writes a compressed dump of memory to disk and reboots. The node comes back by itself and leaves a post-mortem.
- rasdaemon — a userspace daemon that records hardware error events (correctable/uncorrectable ECC per DIMM, PCIe AER) from EDAC/sysfs into a sqlite database: persistent evidence of degrading hardware with no crash required.
Facts the design rests on
- Installed-disk layout (auto-install.sh): BIOS boot 1MiB · EFI 512MiB · root ext4 30GiB, unencrypted · data (rest, LUKS).
- The data partition is LUKS and unlocked late by the node itself — the crash kernel must never be asked to handle key material.
- The installed system's kernel command line is written by
auto-install.sh:1810 (
GRUB_CMDLINE_LINUX_DEFAULT="quiet splash …"). - Packages land via
Dockerfile.rootfs(trixie) withsystemctl enablein the same RUN block (nginx/tor/avahi pattern). - Kernel cmdline cannot be changed by OTA — it lives in GRUB. Existing nodes need a backfill step (bootstrap) plus a deliberate reboot.
Design
kdump
- Packages:
kdump-tools kexec-toolsadded to Dockerfile.rootfs. - Command line: append
crashkernel=256MtoGRUB_CMDLINE_LINUX_DEFAULTin auto-install.sh. 256M covers the capture kernel plus makedumpfile on the fleet's 16–64GB amd64 machines (~1–2% of RAM reserved, permanently). The arm image (RPi, config.txt boot) is out of scope for phase 1. - Dump target:
local filesystem /var/crash— on the unencrypted 30GiB root, deliberately not the encrypted data partition. No key handling in the crash initramfs, no dependency on the node's own unlock logic. - Core collector:
makedumpfile -l --message-level 1 -d 31(compressed, zero/free pages excluded) — a dump lands at roughly 5–15% of RAM, i.e. ~1–2 GiB on a 16 GiB machine. - Retention: keep the 2 newest dumps only. A small systemd timer
(or kdump-tools'
KDUMP_POST_SCRIPT) prunes older vmcores; a full root partition is already caught by disk_monitor's usage tracking. Two dumps ≈ 4 GiB worst case on 30 GiB root — safe. - When to dump — the deliberate trade-off (decision needed):
- Baseline: dump on real panics (
kernel.panicpath) — no behavioral change to a wedged node. - Recommended for this fleet: also enable hang capture
(
kernel.hung_task_panic=1, hardlockup via NMI watchdog). A kiosk that hard-locks is useless until power-cycled anyway; converting the hang into "dump + automatic reboot" turns every freeze into evidence and self-heals the node. Cost: a genuinely-busy-but-alive machine that trips the watchdog reboots — the threshold is kernel-default conservative (40s), so this should be rare.
- Baseline: dump on real panics (
rasdaemon
- Packages:
rasdaemon;systemctl enable rasdaemonin the Dockerfile.rootfs enable block (same pattern as nginx). - Storage: its default sqlite DB at
/var/lib/rasdaemon/ras-mc_event.dbon the unencrypted root. - Human access today:
ras-mc-ctl --summary/--errorsover SSH. No UI in phase 1.
Surfacing (phase 2 — separate follow-up, not in this cut)
A small read-only system.diagnostics surface: last-crash timestamp and
vmcore sizes from /var/crash, plus ECC error totals per DIMM from the
rasdaemon DB — shown in Settings → System. Deliberately deferred: capture
first, UI once there is something to show and a node in the fleet has
actually produced a dump.
Existing nodes (phase 1.5 backfill)
The OTA cannot change the bootloader. Bootstrap (which already delivers
fixes to existing nodes) appends crashkernel=256M (and the chosen
panic/hang params) to /etc/default/grub on machines that don't have it,
and enables rasdaemon via the node's package install path. Takes
effect on the next reboot — the operator reboots nodes when applying the
release; no special ceremony needed beyond that.
Testing
- Image: the new packages appear in the ISO; QEMU boot smoke (build-iso-release.sh stage 5) still green.
- Lifecycle gate additions (bats, archi-dev-box first):
kdump-config showreports a loaded crash kernel reservation;systemctl is-active rasdaemon;/etc/default/grubcarriescrashkernel=. - Live drill (once, on archi-dev-box, not in the gate): trigger
sysrq c→ vmcore appears in/var/crash, node reboots itself, second boot is clean. Keep this manual — it reboots the box.
Implementation touchpoints
image-recipe/build/auto-installer/Dockerfile.rootfs— packages +systemctl enable rasdaemon.image-recipe/build/auto-installer/installer-iso/archipelago/auto-install.sh:1810— appendcrashkernel=256M(+ hang params if approved) toGRUB_CMDLINE_LINUX_DEFAULT.kdump-toolsconfig:/etc/default/kdump-tools(dump target/var/crash, core_collector line,KDUMP_POST_SCRIPTor timer for retention).- Bootstrap backfill for existing nodes.
tests/lifecycle— presence assertions (crash kernel reserved, rasdaemon active).
Decisions needed before implementation
- Hang capture on or off? Recommended ON (
hung_task_panic=1+ NMI watchdog): every hard lockup becomes a dump + self-reboot. OFF means dumps only on true panics; wedged nodes still need the button. - crashkernel=256M vs 320M — 256M is the common default for 16–64GB machines; 320M if we expect large io-heavy kernels.
- Backfill now or new-installs-only? Recommended: ship the backfill with the next release so the whole fleet gains capture on reboot.
- Phase-2 UI surfacing scope — confirm "later" so phase 1 stays small.