Files
felhom-agent/internal/storage/observe.go
T
admin 21b0164fad R-116 (v0.116.0): give the backup-target flag and the gate's key the same row
The absent-drive alarm was generic while its recovery was specific -- a pair an
operator cannot match. Mechanism now measured, not reasoned (felhom.eu
audits/DIAG-r116-disks-payload-2026-07-30.md): with the device gone /disks returns
4 rows, not 3. The drive appears TWICE and the two facts the controller needs are
on different rows -- the Observe row has backup_target:true but mount_path:"" and
guest_path:"" (so driveTargetByPath registers NO key from it), while the registry
row owns /mnt/felhom-drives/<name>, the key the gate looks up, with BackupTarget
absent from its struct literal => false.

WHY v0.115.0 WAS INERT: its fallback computed StablePathForRaw(t.MountPath), and in
the absent state MountPath is ALSO "" -- emptied by the same exactMount failure
that empties BackingDevice. It assigned nothing. Its test passed because the fixture
supplied a MountPath production never supplies, and the harness left DriveTargets
nil so the union loop never ran. Both corrected here; red-proof 1 replays v0.115.0's
exact code against the real shape and it fails.

THE JOIN, which was the hard part: with the device gone the two records share no
runtime field -- no mount, no backing device, and the Observe row's DurableID has
degraded off the fs-UUID. They share CONFIGURATION: storage.cfg's path on one side,
the .mount unit's Where on the other, both yielding the same stable guest path. New
hub.StorageTarget.ConfigPath (json:"-" -- that struct is a cross-repo contract
pinned by the golden + contract_test key-set comparison, and nothing off-box needs
the value), set from s.Path in observe.go, consulted in disks.go only after MountPath
so the present-state path is byte-identical, plus a guest-path arm on the union dedup
so exactly one row carries the drive.

WHY NEITHER OBVIOUS OPTION WAS TAKEN -- both regress R-114, which shipped yesterday.
backup_target_offer.go:79 reads (BackupTarget && MountPath != "") as "a real
drive with its own mountpoint -- healthy" and returns before its TargetAbsent
branch. Back-filling MountPath onto the Observe row (the smallest change, and the
spec's lean) and teaching the registry row the flag (its MountPath is non-empty, read
from the stale unit file) BOTH manufacture that row while the drive is missing, which
would have told the customer the backup target is fine while its drive is gone.
R-114's correctness rests on the absent-state rows not combining the flag with a
mount path; that coupling was invisible until the payload existed. Pinned by
TestAbsentTargetKeepsR114DegradedSignal.

Role unchanged, BoundUnderParent conjunction not widened, no wire field changed.
Suppressing the registry row in the absent state also removes its false
state:"attached" and its root-filesystem-derived total_bytes -- R-118's symptom
goes incidentally; R-118 is NOT fixed and stays open.

Tests 845 -> 849, suite rc=0 read separately from this commit. Four red-proofs, each
mutation asserted to have landed first.

NOT live-validated at this commit: publish+vouch, C5, discrimination, over-correction.
2026-07-30 08:48:31 +02:00

488 lines
17 KiB
Go

package storage
import (
"context"
"fmt"
"log/slog"
"regexp"
"strings"
"gitea.dooplex.hu/admin/felhom-agent/internal/hub"
"gitea.dooplex.hu/admin/felhom-agent/internal/proxmox"
)
// thinPoolWarnFraction is the lvmthin DATA-fill level above which the observer logs a
// prominent warning. A full thin-pool corrupts EVERY guest on it (the storage analog of a
// single-node OOM), so it must be visible early — well before slice-10 policy exists.
const thinPoolWarnFraction = 0.85
// StorageAPI is the read-only Proxmox surface the observer needs. *proxmox.Client
// satisfies it. ListStorage (cluster) carries the type-specific config (server/export/
// vgname/thinpool/fingerprint) that NodeStorage may omit; NodeStorage carries live usage
// + the per-node active flag. The observer joins them by storage name.
type StorageAPI interface {
Node() string
ListStorage(ctx context.Context) ([]proxmox.Storage, error)
NodeStorage(ctx context.Context) ([]proxmox.Storage, error)
}
// Observer builds the observed storage view from Proxmox + non-privileged host reads.
// In Phase B it also (optionally) enriches the reported view with the privileged reads —
// SMART + thin-pool metadata — via HostOps; a nil ops keeps the Phase-A behaviour
// (SMART UNKNOWN, metadata null).
type Observer struct {
api StorageAPI
host HostReader
ops HostOps
logger *slog.Logger
}
// NewObserver builds an Observer. host defaults to a ProcHostReader; logger to the
// default. ops is the privileged surface for SMART/lvs — nil disables those (Phase-A
// behaviour). A nil api makes Observe/Known return an error (misconfiguration), never panic.
func NewObserver(api StorageAPI, host HostReader, ops HostOps, logger *slog.Logger) *Observer {
if host == nil {
host = NewProcHostReader()
}
if logger == nil {
logger = slog.Default()
}
return &Observer{api: api, host: host, ops: ops, logger: logger}
}
// observed is the rich internal view of one target, from which both the reported
// hub.StorageTarget and the watchdog's KnownTarget are projected. src/cat are kept for
// Observe-time privileged enrichment (NOT used by the watchdog's Known path).
type observed struct {
target hub.StorageTarget
known KnownTarget
src proxmox.Storage
cat storageCategory
// smartHint (v0.95.0) is a SMART-ONLY whole-disk device for a dir-storage whose own backing is
// empty (the builtin `local` on the shared LVM root). Never assigned to BackingDevice/durable_id.
smartHint string
}
// Observe builds the reported []hub.StorageTarget. A non-nil error means the Proxmox read
// failed (the collector then omits storage from this cycle's report but still sends the
// rest). The returned slice is always non-nil so it marshals as [] when empty.
func (o *Observer) Observe(ctx context.Context) ([]hub.StorageTarget, error) {
snap, err := o.snapshot(ctx)
if err != nil {
return nil, err
}
out := make([]hub.StorageTarget, 0, len(snap))
for _, s := range snap {
out = append(out, o.enrich(ctx, s))
}
return out, nil
}
// enrich adds the PRIVILEGED reads (SMART, thin-pool metadata) on top of the base target.
// Only Observe calls this (the watchdog's Known path skips it — these are the slow,
// root-shelling reads). A nil ops or a per-target failure degrades gracefully: SMART stays
// UNKNOWN, metadata stays null.
func (o *Observer) enrich(ctx context.Context, ob observed) hub.StorageTarget {
t := ob.target
if o.ops == nil {
return t
}
// SMART: for dir-backed targets. The device is the target's own backing (a USB/local-dir exact
// mount) OR, for a dir on a shared filesystem whose backing is deliberately empty (the builtin
// `local` on the LVM root — removable-safety guard in build), the SMART-only hint build() resolved
// from the containing filesystem. smartDeviceFor then resolves dm/LVM/partition to the whole disk.
if ob.cat == catDir {
smartDev := t.BackingDevice
if smartDev == "" {
smartDev = ob.smartHint
}
if smartDev != "" {
if dev, ok := smartDeviceFor(smartDev); ok {
if sm, err := o.ops.SMART(ctx, dev); err != nil {
o.logger.Warn("storage: SMART read failed; health UNKNOWN", "device", dev, "err", err)
} else {
t.Smart = sm
}
}
}
}
// Thin-pool metadata fill (the value Phase A left null): lvs on the vg/pool.
if t.Type == hub.StorageTypeLVMThin && t.ThinPool != nil && ob.src.VGName != "" && ob.src.ThinPool != "" {
if frac, ok := o.ops.ThinPoolMetadata(ctx, ob.src.VGName, ob.src.ThinPool); ok {
t.ThinPool.MetadataUsedFraction = &frac
if frac >= thinPoolWarnFraction {
o.logger.Warn("storage: lvmthin pool METADATA fill is high (exhaustion corrupts the pool like data exhaustion)",
"storage", t.Name, "metadata_used_fraction", frac)
}
}
}
return t
}
// Known projects the snapshot to the watchdog's lightweight KnownTarget set. Same Proxmox
// + host reads as Observe — callers that poll it fast should wrap it in a cache (the
// watchdog uses CachingKnownTargets).
func (o *Observer) Known(ctx context.Context) ([]KnownTarget, error) {
snap, err := o.snapshot(ctx)
if err != nil {
return nil, err
}
out := make([]KnownTarget, 0, len(snap))
for _, s := range snap {
out = append(out, s.known)
}
return out, nil
}
// snapshot does the full build: join cluster config + node usage, then derive each
// target's identity, state, class hint, and (for lvmthin) thin-pool fill from host reads.
func (o *Observer) snapshot(ctx context.Context) ([]observed, error) {
if o.api == nil {
return nil, fmt.Errorf("storage: no proxmox api configured")
}
cluster, err := o.api.ListStorage(ctx)
if err != nil {
return nil, fmt.Errorf("storage: ListStorage: %w", err)
}
cfgByName := make(map[string]proxmox.Storage, len(cluster))
for _, c := range cluster {
cfgByName[c.Storage] = c
}
nodeStores, err := o.api.NodeStorage(ctx)
if err != nil {
return nil, fmt.Errorf("storage: NodeStorage: %w", err)
}
mounts, err := o.host.Mounts()
if err != nil {
// Host mount read failed: degrade rather than fail the whole report — Proxmox
// usage/active is still meaningful; we just lose mount-derived fields.
o.logger.Warn("storage: reading mounts failed; mount/device fields degraded", "err", err)
mounts = nil
}
out := make([]observed, 0, len(nodeStores))
for _, ns := range nodeStores {
// Overlay the cluster config (server/export/vgname/...) onto the node entry.
s := mergeConfig(ns, cfgByName[ns.Storage])
out = append(out, o.build(s, mounts))
}
return out, nil
}
// build derives one observed target from a merged Storage entry + the mount table.
func (o *Observer) build(s proxmox.Storage, mounts []Mount) observed {
category := categorize(s.Type)
// Resolve the backing device + mount path for dir-like targets — ONLY from the
// target's OWN mountpoint. We deliberately do NOT fall through to the containing
// filesystem (e.g. root): an unmounted removable dir-storage's mountpoint reverts to a
// bare directory on root, and resolving its UUID/durable_id to ROOT's UUID would be a
// catastrophic DR mis-id (the hub would re-attach the wrong disk). When the target is
// not its own mount, we leave the device/UUID unknown and the durable_id falls back to a
// stable store id (never another fs's UUID). The authoritative UUID for re-attach comes
// from a prior attached observation (watchdog memory) or the hub manifest (slice 10).
var backingDevice, mountPath string
var exactMount bool
if category == catDir {
if dev, mp, ok := exactMountDevice(mounts, s.Path); ok {
backingDevice, mountPath, exactMount = dev, mp, true
}
}
// Type: distinguish builtin local / removable USB / fixed local-dir within "dir".
removable, removableKnown := false, false
if category == catDir && backingDevice != "" {
removable, removableKnown = o.host.Removable(backingDevice)
}
typ := reportType(s, category, removable, removableKnown)
// durable_id (DR-load-bearing).
var uuid string
if category == catDir && backingDevice != "" {
uuid, _ = o.host.ResolveUUID(backingDevice)
}
durableID := deriveDurableID(typ, s, backingDevice, uuid)
// Reachability + state.
reachable := o.reachable(typ, category, s, backingDevice, exactMount)
state := hub.StorageStateAttached
if !reachable {
state = hub.StorageStateDisconnected
}
// Class hint (rotational; local block-backed only — a HINT, never authoritative).
classHint := ""
if category == catDir && backingDevice != "" {
if rot, ok := o.host.Rotational(backingDevice); ok {
if rot {
classHint = "slow"
} else {
classHint = "fast"
}
}
}
tgt := hub.StorageTarget{
Name: s.Storage,
Type: typ,
DurableID: durableID,
State: state,
Reachable: reachable,
TotalBytes: s.Total,
UsedBytes: s.Used,
AvailBytes: s.Avail,
UsedFraction: usedFraction(s),
Content: s.Content,
MountPath: mountPath,
BackingDevice: backingDevice,
// R-116: the CONFIGURED path, carried verbatim and never resolved. This is emphatically NOT the
// fallthrough the comment above forbids — that prohibition is about resolving a device or a UUID
// from the CONTAINING filesystem when the target is not its own mount, which would hand back
// root's identity and mis-target a DR re-attach. `s.Path` is the storage's own declaration of
// where it lives; it identifies nothing but itself, and it is not used for device or UUID
// resolution anywhere. MountPath stays empty when the mount is gone, which is the truth.
ConfigPath: s.Path,
ClassHint: classHint,
Role: "", // hub-owned; not derivable from a Proxmox def (slice 10)
Smart: hub.SmartSummary{Health: hub.SmartUnknown},
}
// Thin-pool DATA fill: surfaced prominently for lvmthin (metadata fill is Phase B/lvs).
if typ == hub.StorageTypeLVMThin {
frac := usedFraction(s)
tgt.ThinPool = &hub.ThinPoolFill{DataUsedFraction: frac}
if frac >= thinPoolWarnFraction {
o.logger.Warn("storage: lvmthin pool data fill is high (a full pool corrupts every guest on it)",
"storage", s.Storage, "data_used_fraction", frac)
}
}
// SMART-only device hint (v0.95.0): a dir-storage that lives INSIDE a shared filesystem (the
// builtin `local` on the LVM root) has empty backing by design, yet we can still read the PHYSICAL
// disk's SMART by resolving its containing filesystem. Gated to catDir + no own backing + reachable,
// so an UNPLUGGED removable (disconnected) never reads root's SMART, and a mounted removable uses
// its own backing instead.
smartHint := ""
if category == catDir && backingDevice == "" && reachable {
if dev, ok := containingMountDevice(mounts, s.Path); ok {
smartHint = dev
}
}
return observed{
target: tgt,
src: s,
cat: category,
smartHint: smartHint,
known: KnownTarget{
Name: s.Storage,
Type: typ,
DurableID: durableID,
UUID: uuid,
Network: category == catNetwork,
MountBacked: typ == hub.StorageTypeUSB || typ == hub.StorageTypeLocalDir,
BackingDevice: backingDevice,
MountPath: s.Path,
ReachEndpoint: reachEndpoint(typ, s),
},
}
}
// smartDeviceFor maps a backing device (possibly a partition) to its whole-disk path for
// smartctl (which targets the disk, not the partition). Returns ok=false when the result
// isn't a recognized raw disk (e.g. device-mapper / LVM), so SMART is simply skipped.
func smartDeviceFor(device string) (string, bool) {
// Device-mapper / LVM (Fix A, v0.95.0): resolve to the single backing whole disk via sysfs
// slaves. This is what finally covers the system SSD under `pve-root`. The sysfs resolution IS
// the existence check, so we do NOT re-run ValidateSMARTDevice on its result.
if strings.HasPrefix(device, "/dev/dm-") || strings.HasPrefix(device, "/dev/mapper/") {
return dmWholeDisk(device)
}
dev := device
if m := reNVMePart.FindStringSubmatch(device); m != nil {
dev = m[1] // /dev/nvme0n1p2 -> /dev/nvme0n1
} else if m := reSDPart.FindStringSubmatch(device); m != nil {
dev = m[1] // /dev/sdb1 -> /dev/sdb
}
if ValidateSMARTDevice(dev) != nil {
return "", false
}
return dev, true
}
var (
reNVMePart = regexp.MustCompile(`^(/dev/nvme[0-9]+n[0-9]+)p[0-9]+$`)
reSDPart = regexp.MustCompile(`^(/dev/(?:sd|hd|vd)[a-z]+)[0-9]+$`)
)
// reachable decides whether the target is currently usable.
// - usb / local-dir: a Felhom extra/removable dir storage is realized as its OWN
// mountpoint, so reachable = it is currently an exact mount AND its device node exists.
// Not-its-own-mount = unplugged/unmounted = disconnected. This is the fast USB-drop
// signal — we deliberately do NOT fall through to PVE's active flag, because the
// mountpoint directory still exists on the root fs when the device is gone, so active
// can read stale-attached.
// - local (builtin PVE "local"): lives within the root fs by design, so trust active.
// - network (nfs/cifs/pbs) and block-pool (lvmthin/lvm): trust PVE's active flag — PVE
// actively probes these and flips active=0 when down.
func (o *Observer) reachable(typ string, category storageCategory, s proxmox.Storage, backingDevice string, exactMount bool) bool {
switch typ {
case hub.StorageTypeUSB, hub.StorageTypeLocalDir:
return exactMount && (backingDevice == "" || o.host.DeviceExists(backingDevice))
default:
// local, lvmthin, lvm, nfs, cifs, pbs.
_ = category
return s.Active == 1
}
}
// usedFraction prefers Proxmox's reported used_fraction, falling back to used/total.
func usedFraction(s proxmox.Storage) float64 {
if s.UsedFraction > 0 {
return s.UsedFraction
}
if s.Total > 0 {
return float64(s.Used) / float64(s.Total)
}
return 0
}
// storageCategory groups Proxmox storage types by how state/identity are derived.
type storageCategory int
const (
catDir storageCategory = iota // dir-backed (local/usb/local-dir)
catNetwork // nfs/cifs/pbs
catBlock // lvmthin/lvm
catOther
)
func categorize(pxType string) storageCategory {
switch pxType {
case "dir":
return catDir
case "nfs", "cifs", "smb", "pbs":
return catNetwork
case "lvmthin", "lvm":
return catBlock
default:
return catOther
}
}
// reportType maps a Proxmox storage type to the reported vocabulary, splitting "dir" into
// builtin local / removable usb / fixed local-dir.
func reportType(s proxmox.Storage, category storageCategory, removable, removableKnown bool) string {
switch category {
case catDir:
if s.Storage == "local" {
return hub.StorageTypeLocal
}
if removableKnown && removable {
return hub.StorageTypeUSB
}
return hub.StorageTypeLocalDir
case catNetwork:
switch s.Type {
case "nfs":
return hub.StorageTypeNFS
case "cifs", "smb":
return hub.StorageTypeCIFS
case "pbs":
return hub.StorageTypePBS
}
case catBlock:
if s.Type == "lvmthin" {
return hub.StorageTypeLVMThin
}
return s.Type // "lvm" (thick) passes through
}
return s.Type
}
// reachEndpoint builds the host:port the watchdog dials for a network target's
// reachability check (default ports per protocol). "" for non-network targets.
func reachEndpoint(typ string, s proxmox.Storage) string {
if s.Server == "" {
return ""
}
switch typ {
case hub.StorageTypeNFS:
return netJoin(s.Server, "2049")
case hub.StorageTypeCIFS:
return netJoin(s.Server, "445")
case hub.StorageTypePBS:
return netJoin(s.Server, "8007")
}
return ""
}
func netJoin(host, port string) string {
if strings.Contains(host, ":") && !strings.HasPrefix(host, "[") {
host = "[" + host + "]" // IPv6 literal
}
return host + ":" + port
}
// exactMountDevice finds the mount whose mountpoint EXACTLY equals path (the target is its
// own mount — the meaningful state for a USB/extra disk).
func exactMountDevice(mounts []Mount, path string) (device, mountPoint string, ok bool) {
if path == "" {
return "", "", false
}
clean := cleanMountPath(path)
for _, m := range mounts {
if cleanMountPath(m.MountPoint) == clean {
return m.Device, m.MountPoint, true
}
}
return "", "", false
}
func cleanMountPath(p string) string {
p = strings.TrimRight(p, "/")
if p == "" {
return "/"
}
return p
}
// mergeConfig overlays the cluster-def config fields (which the per-node entry may omit)
// onto a node-storage entry, keeping the node's live usage/active values.
func mergeConfig(node, cluster proxmox.Storage) proxmox.Storage {
if cluster.Storage == "" {
return node
}
if node.Type == "" {
node.Type = cluster.Type
}
if node.Server == "" {
node.Server = cluster.Server
}
if node.Export == "" {
node.Export = cluster.Export
}
if node.Share == "" {
node.Share = cluster.Share
}
if node.Datastore == "" {
node.Datastore = cluster.Datastore
}
if node.Fingerprint == "" {
node.Fingerprint = cluster.Fingerprint
}
if node.VGName == "" {
node.VGName = cluster.VGName
}
if node.ThinPool == "" {
node.ThinPool = cluster.ThinPool
}
if node.Path == "" {
node.Path = cluster.Path
}
if node.Content == "" {
node.Content = cluster.Content
}
return node
}