feat(parser): lenovo xcc vroc volume parsing - v1.2
Parse inventory_volume.log: Intel VROC (VMD) RAID volumes including RAID level, capacity (GiB/TiB support added), status and member drives. Add Drives []string to StorageVolume model. Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com>
This commit is contained in:
+108
@@ -2,6 +2,7 @@ package lenovo_xcc
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import (
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"testing"
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"time"
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"git.mchus.pro/mchus/logpile/internal/models"
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"git.mchus.pro/mchus/logpile/internal/parser"
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@@ -224,6 +225,75 @@ func TestParse_LenovoXCCMiniLog_Firmware(t *testing.T) {
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}
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}
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func TestParse_LenovoXCCMiniLog_VROCVolumes(t *testing.T) {
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files, err := parser.ExtractArchive(exampleArchive)
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if err != nil {
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t.Skipf("example archive not available: %v", err)
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}
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p := &Parser{}
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result, _ := p.Parse(files)
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if result == nil || result.Hardware == nil {
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t.Fatal("Parse returned nil")
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}
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if len(result.Hardware.Volumes) == 0 {
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t.Error("expected at least one VROC volume, got none")
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}
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for i, v := range result.Hardware.Volumes {
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t.Logf("Volume[%d]: id=%s controller=%q raid=%s size=%dGB status=%s drives=%v",
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i, v.ID, v.Controller, v.RAIDLevel, v.SizeGB, v.Status, v.Drives)
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if v.RAIDLevel == "" {
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t.Errorf("Volume[%d]: RAIDLevel is empty", i)
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}
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if v.Status == "" {
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t.Errorf("Volume[%d]: Status is empty", i)
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}
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}
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}
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func TestParseVolumes_IntelVROC(t *testing.T) {
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content := []byte(`{
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"identifier": "storage.id",
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"items": [{
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"volumes": [{
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"id": 1,
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"name": "",
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"drives": "M.2 Drive 0, M.2 Drive 1",
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"rdlvlstr": "RAID 1",
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"capacityStr": "893.750 GiB",
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"status": 3,
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"statusStr": "Optimal"
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}],
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"totalCapacityStr": "893.750 GiB"
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}]
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}`)
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vols := parseVolumes(content)
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if len(vols) != 1 {
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t.Fatalf("expected 1 volume, got %d", len(vols))
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}
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v := vols[0]
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if v.ID != "1" {
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t.Errorf("expected ID=1, got %q", v.ID)
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}
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if v.RAIDLevel != "RAID 1" {
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t.Errorf("expected RAIDLevel=RAID 1, got %q", v.RAIDLevel)
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}
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if v.Status != "Optimal" {
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t.Errorf("expected Status=Optimal, got %q", v.Status)
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}
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if v.Controller != "Intel VROC" {
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t.Errorf("expected Controller=Intel VROC, got %q", v.Controller)
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}
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if len(v.Drives) != 2 {
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t.Errorf("expected 2 drives, got %d: %v", len(v.Drives), v.Drives)
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}
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if v.SizeGB < 900 || v.SizeGB > 1000 {
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t.Errorf("expected SizeGB ~960, got %d", v.SizeGB)
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}
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}
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func TestParseDIMMs_UnqualifiedDIMMAddsWarningEvent(t *testing.T) {
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content := []byte(`{
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"items": [{
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@@ -256,3 +326,41 @@ func TestSeverity_UnqualifiedDIMMMessageBecomesWarning(t *testing.T) {
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t.Fatalf("expected warning severity, got %q", got)
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}
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}
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func TestApplyDIMMWarningsFromEvents_UpdatesDIMMStatusForExport(t *testing.T) {
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result := &models.AnalysisResult{
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Events: []models.Event{
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{
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Timestamp: time.Date(2026, 4, 13, 11, 37, 38, 0, time.UTC),
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Severity: models.SeverityWarning,
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Description: "Unqualified DIMM 3 has been detected, the DIMM serial number is 80CE042328460C5D88-V20.",
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},
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},
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Hardware: &models.HardwareConfig{
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Memory: []models.MemoryDIMM{
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{
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Slot: "DIMM 3",
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Present: true,
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SerialNumber: "80CE042328460C5D88",
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Status: "Normal",
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},
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},
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},
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}
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applyDIMMWarningsFromEvents(result)
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dimm := result.Hardware.Memory[0]
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if dimm.Status != "Warning" {
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t.Fatalf("expected DIMM status Warning, got %q", dimm.Status)
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}
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if dimm.ErrorDescription == "" || dimm.ErrorDescription != result.Events[0].Description {
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t.Fatalf("expected DIMM error description to be populated, got %q", dimm.ErrorDescription)
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}
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if dimm.StatusChangedAt == nil || !dimm.StatusChangedAt.Equal(result.Events[0].Timestamp) {
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t.Fatalf("expected status_changed_at from event timestamp, got %#v", dimm.StatusChangedAt)
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}
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if len(dimm.StatusHistory) != 1 || dimm.StatusHistory[0].Status != "Warning" {
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t.Fatalf("expected warning status history entry, got %#v", dimm.StatusHistory)
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}
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}
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