23c689aa5b
Ships all five phases of the deep-profile overhaul together. Runs now carry a profile (quick/deep/soak); every profile walks the same 11-stage order — Inventory → Firmware → SpecValidate → SMART → CPUStress → Storage → Network → Burn → GPU → PSU → Reporting — with only per-stage durations and concurrency scaled. Phase 1: profiles.ProfileRegistry loaded from vetting.yaml; runs.profile column + CreateWithProfile; threshold table + evaluator seeded per-run from the shared vetting.thresholds block; breach flips result at /sensor + /result. Phase 2: upgraded CPUStress (stress-ng --cpu-method=all --verify + EDAC/MCE poll), Storage (fio --verify=md5 + SMART start/end delta), Network (sustained iperf + /proc/net/dev deltas) with per-profile knobs from Deps. Phase 3: Burn super-stage with goroutine fan-out for CPU + memory + fio + iperf, PSU rails sampled across the Burn window, SensorMux (2 s flush, 500-sample cap) to absorb backpressure. Phase 4: Firmware stage + firmware_snapshots table; probes dmidecode (BIOS), ipmitool (BMC), ethtool -i (NIC), nvme (sysfs + id-ctrl), lspci (HBA), /proc/cpuinfo (microcode). spec.DiffFirmware folds into SpecValidate with pin-by-identifier and fan-out-across-component matching; mismatches park the run in FailedHolding. Phase 5: profile radio on the host start form, profile chip on the run header, Firmware section in the HTML report, coverage artifact uploaded from CI, agent/tests/fakes/ scaffold with Deps.LookPath seam + stress_ng and dmidecode example fakes. Co-Authored-By: Claude Opus 4.7 <noreply@anthropic.com>
365 lines
11 KiB
Go
365 lines
11 KiB
Go
package tests
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import (
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"bufio"
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"context"
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"encoding/json"
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"fmt"
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"io"
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"os"
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"os/exec"
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"runtime"
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"strconv"
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"strings"
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"sync"
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"time"
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"vetting/agent/probes"
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)
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// CPUStress runs stress-ng as two serial passes. The previous shape
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// (--cpu N AND --vm N --vm-bytes 90% concurrently) OOM-killed the
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// agent itself on small hosts: 4 workers × 90% of an 8GiB box is 360%
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// overcommit, and the kernel killed stress-ng / agent / whatever the
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// OOM scorer picked. We flip it serial so only one stressor is live
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// at a time and the RAM cap is computed from MemAvailable with a
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// 1.5GiB headroom reserve, keeping the kernel + agent + log buffers
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// alive.
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//
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// Other stages were audited at the same time (SMART, Storage,
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// Network, GPU, PSU, Inventory, SpecValidate, Reporting) — none had
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// the CPUStress pattern of unbounded concurrency, so they're
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// unchanged.
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//
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// Pass 1 — CPU only, all methods, 3min. --verify re-runs the ALU
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// work and diffs against known-good outputs so a silent miscomputation
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// (rowhammered register, flaky bus) still fails the stage.
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//
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// Pass 2 — RAM only, single worker, 3min. --vm-bytes is
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// MemAvailable − 1.5GiB, floor 256MiB. --vm-keep reuses the same
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// mapping across iterations so we hit every page repeatedly within the
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// window.
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//
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// Each pass also asserts elapsed ≥ (target − 2s). A premature clean
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// exit (stress-ng killed by a signal, workload bailed quietly) now
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// counts as a failure instead of falsely passing on exit-0.
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func CPUStress(ctx context.Context, d Deps) Outcome {
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if _, err := exec.LookPath("stress-ng"); err != nil {
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d.Error("CPUStress: stress-ng not found in PATH — live image is missing required tool")
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return Outcome{
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Passed: false,
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Message: "stress-ng binary missing from live image",
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Summary: "failed (stress-ng missing)",
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Extras: map[string]any{"reason": "stress_ng_missing"},
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}
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}
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cores := runtime.NumCPU()
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extras := map[string]any{"cores": cores}
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var subs []SubStepReport
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// EDAC sidecar runs for the lifetime of the stage; cancelled on
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// return. It polls /sys/devices/system/edac/mc/*/{ce,ue}_count and
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// posts the current counters so the server-side threshold evaluator
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// can gate edac_ue > 0 → fail the run. Zero-valued poll falls back
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// to 10s — the same cadence rasdaemon uses by default.
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sideCtx, sideCancel := context.WithCancel(ctx)
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defer sideCancel()
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var sideWG sync.WaitGroup
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sideWG.Add(1)
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go runEDACSidecar(sideCtx, &sideWG, d)
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// Per-profile durations come from Deps; zero values (missing knobs
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// or legacy orchestrator) fall back to the package default so the
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// stage always has a defined budget.
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cpuDur := nonzeroDur(d.CPUStressKnobs.CPUPass, cpuPassDuration)
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memDur := nonzeroDur(d.CPUStressKnobs.MemPass, memPassDuration)
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// Pass 1: CPU
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cpu := runStressPass(ctx, d, "CPU", cpuDur, []string{
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"--cpu", strconv.Itoa(cores),
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"--cpu-method", "all",
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"--timeout", durationSeconds(cpuDur),
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"--metrics-brief",
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"--verify",
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})
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extras["cpu_pass"] = cpu
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subs = append(subs, subStepFromPass("CPU pass", cpu))
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if !cpu.Passed {
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return Outcome{
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Passed: false,
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Message: "CPU pass failed: " + cpu.Err,
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Summary: fmt.Sprintf("CPU pass failed after %ds", cpu.ElapsedSecs),
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Extras: extras,
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SubSteps: subs,
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}
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}
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// Pass 2: memory — only after CPU has demonstrated the box is
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// sane. Cap derived from /proc/meminfo so we never overcommit.
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avail, err := memAvailableBytes()
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if err != nil {
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d.Error("CPUStress: read MemAvailable: " + err.Error())
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return Outcome{
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Passed: false,
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Message: "read MemAvailable: " + err.Error(),
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Summary: "failed (meminfo unreadable)",
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Extras: extras,
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SubSteps: subs,
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}
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}
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cap := avail - memHeadroomBytes
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extras["mem_available_bytes"] = avail
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extras["mem_bytes_cap"] = cap
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extras["mem_headroom_bytes"] = int64(memHeadroomBytes)
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if cap < memFloorBytes {
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msg := fmt.Sprintf("MemAvailable=%d, below %d floor after %d headroom — refusing to run memory pass",
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avail, memFloorBytes, memHeadroomBytes)
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d.Error("CPUStress: " + msg)
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return Outcome{
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Passed: false,
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Message: msg,
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Summary: "failed (insufficient free RAM for memory pass)",
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Extras: extras,
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SubSteps: subs,
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}
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}
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mem := runStressPass(ctx, d, "memory", memDur, []string{
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"--vm", "1",
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"--vm-bytes", strconv.FormatInt(cap, 10),
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"--vm-keep",
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"--timeout", durationSeconds(memDur),
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"--metrics-brief",
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"--verify",
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})
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extras["mem_pass"] = mem
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subs = append(subs, subStepFromPass(fmt.Sprintf("Memory pass (cap %s)", humanBytes(cap)), mem))
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if !mem.Passed {
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return Outcome{
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Passed: false,
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Message: "memory pass failed: " + mem.Err,
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Summary: fmt.Sprintf("memory pass failed after %ds", mem.ElapsedSecs),
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Extras: extras,
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SubSteps: subs,
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}
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}
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return Outcome{
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Passed: true,
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Summary: fmt.Sprintf("CPU+RAM PASSED (%d cores, %s cap)",
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cores, humanBytes(cap)),
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Extras: extras,
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SubSteps: subs,
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}
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}
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// runEDACSidecar polls /sys EDAC counters on d.CPUStressKnobs.EDACPoll
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// cadence (or 10s fallback) for the lifetime of the stage ctx, emitting
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// one sample per (memory-controller × {ce,ue}) pair on each tick. A
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// single failing read is tolerated: the next tick picks up the counter.
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//
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// This is where the critical edac_ue threshold becomes a hard-fail: as
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// soon as a UE counter advances past 0, the server-side evaluator trips
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// and flips the run into FailedHolding. The sidecar emits whether or
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// not stress-ng is still running; that keeps the signal live during
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// inter-pass gaps.
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//
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// MCE counts are intentionally not sampled here — they require
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// rasdaemon or mcelog and vary by live-image packaging. The threshold
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// rule for mce stays seeded (so the DB shape is stable) but only fires
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// once a matching kind lands, which is a follow-up.
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func runEDACSidecar(ctx context.Context, wg *sync.WaitGroup, d Deps) {
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defer wg.Done()
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if d.Sensor == nil {
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return
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}
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poll := d.CPUStressKnobs.EDACPoll
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if poll <= 0 {
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poll = 10 * time.Second
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}
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t := time.NewTicker(poll)
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defer t.Stop()
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for {
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select {
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case <-ctx.Done():
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return
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case <-t.C:
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edac := probes.EDAC()
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if len(edac) == 0 {
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continue
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}
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batch := make([]Sample, 0, len(edac))
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for _, s := range edac {
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batch = append(batch, Sample{Kind: s.Kind, Key: s.Key, Value: s.Value, Unit: s.Unit})
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}
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sendCtx, cancel := context.WithTimeout(ctx, 5*time.Second)
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if err := d.Sensor(sendCtx, batch); err != nil {
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d.Warn("CPUStress: edac sample post: " + err.Error())
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}
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cancel()
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}
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}
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}
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// nonzeroDur picks override over fallback, but only when override is
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// strictly positive. Lets callers pass a zero-value duration to mean
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// "no override; use fallback" without a separate ok return.
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func nonzeroDur(override, fallback time.Duration) time.Duration {
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if override > 0 {
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return override
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}
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return fallback
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}
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// subStepFromPass projects a stressPass into a SubStepReport — shared by
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// both passes and by the mid-stage early-return paths so the UI always
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// sees exactly one row per pass, even on failure.
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func subStepFromPass(name string, p stressPass) SubStepReport {
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summary, _ := json.Marshal(map[string]any{
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"elapsed_secs": p.ElapsedSecs,
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"target_secs": p.TargetSecs,
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"err": p.Err,
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})
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return SubStepReport{
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Name: name,
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Passed: p.Passed,
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StartedAt: p.StartedAt,
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CompletedAt: p.CompletedAt,
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SummaryJSON: summary,
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}
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}
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const (
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cpuPassDuration = 3 * time.Minute
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memPassDuration = 3 * time.Minute
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// memHeadroomBytes = 1.5 GiB reserved for kernel, agent, log
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// buffers, and whatever page cache is still live when the stage
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// starts. Conservative but keeps us off the OOM scorer.
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memHeadroomBytes int64 = 1610612736
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// memFloorBytes — if MemAvailable − headroom drops below this,
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// we refuse to run the memory pass rather than stressing a tiny
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// window that tells us nothing.
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memFloorBytes int64 = 268435456
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passSlack = 2 * time.Second
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)
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// stressPass is the per-pass result embedded in CPUStress's Extras.
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// Passed==true and Elapsed close to target is the only happy path.
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// StartedAt/CompletedAt are not serialized (the summary already has
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// ElapsedSecs) but are used by the caller to emit SubStepReport rows.
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type stressPass struct {
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Passed bool `json:"passed"`
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Err string `json:"err,omitempty"`
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ElapsedSecs int `json:"elapsed_secs"`
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TargetSecs int `json:"target_secs"`
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OutputTail string `json:"output_tail,omitempty"`
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StartedAt time.Time `json:"-"`
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CompletedAt time.Time `json:"-"`
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}
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// runStressPass invokes stress-ng and validates both exit code and
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// elapsed time. Target is the intended --timeout; we require
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// elapsed ≥ target − passSlack so a premature-but-clean exit still
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// counts as failure.
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func runStressPass(ctx context.Context, d Deps, label string, target time.Duration, args []string) stressPass {
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d.Info(fmt.Sprintf("CPUStress: %s pass starting — stress-ng %s", label, strings.Join(args, " ")))
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runCtx, cancel := context.WithTimeout(ctx, target+30*time.Second)
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defer cancel()
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cmd := exec.CommandContext(runCtx, "stress-ng", args...)
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start := time.Now()
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out, err := cmd.CombinedOutput()
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end := time.Now()
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elapsed := end.Sub(start)
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res := stressPass{
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ElapsedSecs: int(elapsed.Round(time.Second).Seconds()),
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TargetSecs: int(target.Round(time.Second).Seconds()),
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OutputTail: tailLines(string(out), 20),
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StartedAt: start,
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CompletedAt: end,
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}
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if err != nil {
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res.Err = err.Error()
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d.Error(fmt.Sprintf("CPUStress: %s pass failed after %s: %s",
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label, elapsed.Round(time.Second), err.Error()))
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return res
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}
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if elapsed < target-passSlack {
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res.Err = fmt.Sprintf("stress-ng exited cleanly after %s; expected ≥ %s (premature exit — signal or broken workload)",
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elapsed.Round(time.Second), target-passSlack)
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d.Error("CPUStress: " + label + " pass " + res.Err)
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return res
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}
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res.Passed = true
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d.Info(fmt.Sprintf("CPUStress: %s pass PASSED in %s", label, elapsed.Round(time.Second)))
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return res
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}
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// memAvailableBytes reads /proc/meminfo and returns MemAvailable in
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// bytes. Split from parseMemAvailable so the parse step is testable
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// without touching the real filesystem.
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func memAvailableBytes() (int64, error) {
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f, err := os.Open("/proc/meminfo")
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if err != nil {
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return 0, err
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}
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defer func() { _ = f.Close() }()
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return parseMemAvailable(f)
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}
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func parseMemAvailable(r io.Reader) (int64, error) {
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sc := bufio.NewScanner(r)
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for sc.Scan() {
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line := sc.Text()
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if !strings.HasPrefix(line, "MemAvailable:") {
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continue
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}
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fields := strings.Fields(line)
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if len(fields) < 2 {
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return 0, fmt.Errorf("malformed MemAvailable line: %q", line)
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}
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kb, err := strconv.ParseInt(fields[1], 10, 64)
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if err != nil {
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return 0, fmt.Errorf("parse MemAvailable: %w", err)
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}
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return kb * 1024, nil
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}
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if err := sc.Err(); err != nil {
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return 0, err
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}
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return 0, fmt.Errorf("MemAvailable not found in /proc/meminfo")
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}
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func durationSeconds(d time.Duration) string {
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s := int(d.Seconds())
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if s < 1 {
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s = 1
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}
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return strconv.Itoa(s) + "s"
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}
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// tailLines returns the last n non-empty lines of s, for the summary.
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func tailLines(s string, n int) string {
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lines := strings.Split(strings.TrimRight(s, "\n"), "\n")
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if len(lines) > n {
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lines = lines[len(lines)-n:]
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}
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return strings.Join(lines, "\n")
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}
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func humanBytes(b int64) string {
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const (
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kib = 1024
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mib = 1024 * kib
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gib = 1024 * mib
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)
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switch {
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case b >= gib:
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return fmt.Sprintf("%.1f GiB", float64(b)/float64(gib))
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case b >= mib:
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return fmt.Sprintf("%d MiB", b/mib)
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default:
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return fmt.Sprintf("%d B", b)
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}
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}
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