The long-lived bee-web process (writing PSU/kmsg watchdog records ~every
60s) and each short-lived "bee bee-worker" SAT-task subprocess each held
an independent in-memory copy of component-status.json. Whichever saved
last won outright, silently erasing whatever the other had just written —
e.g. a GPU SAT task's pcie:gpu:nvidia result vanishing the next time the
PSU watchdog ticked. ComponentStatusDB.Record now reloads on-disk state
(keyed by newer LastCheckedAt) before merging its own update.
Also stops re-logging identical repeat observations to History: the
ingest contract defines status_history as a transition log ("История
переходов статусов"), not a per-poll journal, but Record appended one
entry per call regardless — a continuously-polled PSU grew an unbounded
run of identical "still OK" entries. Now only appends when a source's
last recorded status for a key actually changes.
The PSU watchdog itself now backs off (60s -> doubling, capped at 30min)
while steady and resets to 60s the moment any PSU's status changes, cutting
ipmitool shellouts and file writes for a fleet that's been stable for a
while.
Also adds the missing "raid" case to the component-detail API (was
returning 404 for any RAID card's detail click on /topo).
Co-Authored-By: Claude Sonnet 5 <noreply@anthropic.com>
115 lines
3.2 KiB
Go
115 lines
3.2 KiB
Go
package webui
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import (
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"bytes"
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"context"
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"log/slog"
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"os/exec"
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"time"
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"bee/audit/internal/app"
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"bee/audit/internal/collector"
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)
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const (
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healthPollIntervalMin = 60 * time.Second
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// healthPollIntervalMax caps the backoff below: a PSU that has been
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// steady for a while is polled at most this rarely, so a real failure
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// is still caught within a bounded window even after a long quiet
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// stretch.
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healthPollIntervalMax = 30 * time.Minute
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psuIPMITimeout = 15 * time.Second
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)
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// healthPoller runs periodic health checks for hardware components that do not
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// emit kernel log events (e.g. PSU). Results are written to ComponentStatusDB.
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//
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// The poll interval backs off (doubling, capped at healthPollIntervalMax)
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// each tick where no PSU's status changed, and resets to
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// healthPollIntervalMin the moment any PSU does change — a steady-state PSU
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// bank doesn't need re-checking every 60s forever (each poll is a
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// component-status.json write and an ipmitool shellout), while a PSU that
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// just started flapping gets caught quickly again.
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type healthPoller struct {
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statusDB *app.ComponentStatusDB
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interval time.Duration
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}
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func newHealthPoller(statusDB *app.ComponentStatusDB) *healthPoller {
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return &healthPoller{statusDB: statusDB, interval: healthPollIntervalMin}
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}
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func (p *healthPoller) start() {
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goRecoverLoop("health poller", 5*time.Second, p.run)
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}
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func (p *healthPoller) run() {
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timer := time.NewTimer(p.interval)
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defer timer.Stop()
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for range timer.C {
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p.interval = nextHealthPollInterval(p.interval, p.pollPSU())
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timer.Reset(p.interval)
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}
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}
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// nextHealthPollInterval computes the next poll interval given whether the
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// last poll observed any status change: reset to the fast floor on change,
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// otherwise double (capped) toward the slow ceiling.
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func nextHealthPollInterval(current time.Duration, changed bool) time.Duration {
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if changed {
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return healthPollIntervalMin
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}
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next := current * 2
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if next > healthPollIntervalMax {
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next = healthPollIntervalMax
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}
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return next
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}
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// pollPSU polls PSU status via ipmitool and records it to statusDB. Returns
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// true if any PSU's status differs from what statusDB currently has for it,
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// which run uses to reset the backoff.
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func (p *healthPoller) pollPSU() bool {
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if p.statusDB == nil {
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return false
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}
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ctx, cancel := context.WithTimeout(context.Background(), psuIPMITimeout)
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defer cancel()
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cmd := exec.CommandContext(ctx, "ipmitool", "sdr")
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var out bytes.Buffer
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cmd.Stdout = &out
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if err := cmd.Run(); err != nil {
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// IPMI not available or not a server — skip silently.
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slog.Debug("health poller: ipmitool sdr unavailable", "err", err)
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return false
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}
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slots := collector.PSUSlotsFromSDR(out.String())
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if len(slots) == 0 {
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return false
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}
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const source = "watchdog:psu"
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changed := false
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for slot, psu := range slots {
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key := "psu:" + slot
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status := psu.Status
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if status == "" {
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status = "Unknown"
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}
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if prev, ok := p.statusDB.Get(key); !ok || prev.Status != status {
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changed = true
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}
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detail := ""
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switch status {
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case "Critical":
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detail = "PSU sensor reported non-OK state"
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case "Warning":
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detail = "PSU sensor in warning state"
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}
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p.statusDB.Record(key, source, status, detail)
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}
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return changed
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}
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