Major improvements: - Add CSV SEL event parser for Kaytus firmware format - Add PCIe device parser with link speed/width detection - Add GPU temperature and PCIe link monitoring - Add disk backplane parser for storage bay information - Fix memory module detection (only show installed DIMMs) Parser enhancements: - Parse RESTful PCIe Device info (max/current link width/speed) - Parse GPU sensor data (core and memory temperatures) - Parse diskbackplane info (slot count, installed drives) - Parse SEL events from CSV format (selelist.csv) - Fix memory Present status logic (check mem_mod_status) Web interface improvements: - Add PCIe link degradation highlighting (red when current < max) - Add storage table with Present status and location - Update memory specification to show only installed modules with frequency - Sort events from newest to oldest - Filter out N/A serial numbers from display Co-Authored-By: Claude Sonnet 4.5 <noreply@anthropic.com>
239 lines
6.8 KiB
Go
239 lines
6.8 KiB
Go
// Package inspur provides parser for Inspur/Kaytus BMC diagnostic archives
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// Tested with: Inspur NF5468M7 / Kaytus KR4268X2 (onekeylog format)
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//
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// IMPORTANT: Increment parserVersion when modifying parser logic!
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// This helps track which version was used to parse specific logs.
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package inspur
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import (
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"fmt"
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"strings"
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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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)
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// parserVersion - version of this parser module
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// IMPORTANT: Increment this version when making changes to parser logic!
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const parserVersion = "1.0.0"
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func init() {
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parser.Register(&Parser{})
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}
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// Parser implements VendorParser for Inspur/Kaytus servers
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type Parser struct{}
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// Name returns human-readable parser name
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func (p *Parser) Name() string {
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return "Inspur/Kaytus BMC Parser"
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}
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// Vendor returns vendor identifier
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func (p *Parser) Vendor() string {
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return "inspur"
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}
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// Version returns parser version
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// IMPORTANT: Update parserVersion constant when modifying parser logic!
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func (p *Parser) Version() string {
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return parserVersion
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}
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// Detect checks if archive matches Inspur/Kaytus format
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// Returns confidence 0-100
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func (p *Parser) Detect(files []parser.ExtractedFile) int {
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confidence := 0
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for _, f := range files {
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path := strings.ToLower(f.Path)
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// Strong indicators for Inspur/Kaytus onekeylog format
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if strings.Contains(path, "onekeylog/") {
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confidence += 30
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}
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if strings.Contains(path, "devicefrusdr.log") {
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confidence += 25
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}
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if strings.Contains(path, "component/component.log") {
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confidence += 15
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}
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// Check for asset.json with Inspur-specific structure
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if strings.HasSuffix(path, "asset.json") {
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if containsInspurMarkers(f.Content) {
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confidence += 20
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}
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}
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// Cap at 100
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if confidence >= 100 {
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return 100
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}
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}
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return confidence
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}
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// containsInspurMarkers checks if content has Inspur-specific markers
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func containsInspurMarkers(content []byte) bool {
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s := string(content)
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// Check for typical Inspur asset.json structure
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return strings.Contains(s, "VersionInfo") &&
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strings.Contains(s, "CpuInfo") &&
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strings.Contains(s, "MemInfo")
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}
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// Parse parses Inspur/Kaytus archive
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func (p *Parser) Parse(files []parser.ExtractedFile) (*models.AnalysisResult, error) {
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result := &models.AnalysisResult{
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Events: make([]models.Event, 0),
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FRU: make([]models.FRUInfo, 0),
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Sensors: make([]models.SensorReading, 0),
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}
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// Parse asset.json first (base hardware info)
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if f := parser.FindFileByName(files, "asset.json"); f != nil {
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if hw, err := ParseAssetJSON(f.Content); err == nil {
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result.Hardware = hw
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}
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}
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// Extract BoardInfo from FRU data
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if result.Hardware == nil {
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result.Hardware = &models.HardwareConfig{}
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}
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// Parse devicefrusdr.log (contains SDR, FRU, PCIe and additional data)
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if f := parser.FindFileByName(files, "devicefrusdr.log"); f != nil {
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p.parseDeviceFruSDR(f.Content, result)
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}
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extractBoardInfo(result.FRU, result.Hardware)
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// Extract PlatformId (server model) from ThermalConfig
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if f := parser.FindFileByName(files, "ThermalConfig_Cur.conf"); f != nil {
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extractPlatformId(f.Content, result.Hardware)
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}
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// Parse component.log for additional data (PSU, etc.)
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if f := parser.FindFileByName(files, "component.log"); f != nil {
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ParseComponentLog(f.Content, result.Hardware)
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// Extract events from component.log (memory errors, etc.)
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componentEvents := ParseComponentLogEvents(f.Content)
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result.Events = append(result.Events, componentEvents...)
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}
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// Parse IDL log (BMC alarms/diagnose events)
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if f := parser.FindFileByName(files, "idl.log"); f != nil {
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idlEvents := ParseIDLLog(f.Content)
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result.Events = append(result.Events, idlEvents...)
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}
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// Parse SEL list (selelist.csv)
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if f := parser.FindFileByName(files, "selelist.csv"); f != nil {
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selEvents := ParseSELList(f.Content)
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result.Events = append(result.Events, selEvents...)
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}
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// Parse syslog files
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syslogFiles := parser.FindFileByPattern(files, "syslog/alert", "syslog/warning", "syslog/notice", "syslog/info")
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for _, f := range syslogFiles {
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events := ParseSyslog(f.Content, f.Path)
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result.Events = append(result.Events, events...)
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}
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return result, nil
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}
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func (p *Parser) parseDeviceFruSDR(content []byte, result *models.AnalysisResult) {
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lines := string(content)
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// Find SDR section
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sdrStart := strings.Index(lines, "BMC sdr Info:")
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fruStart := strings.Index(lines, "BMC fru Info:")
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if sdrStart != -1 {
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var sdrContent string
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if fruStart != -1 && fruStart > sdrStart {
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sdrContent = lines[sdrStart:fruStart]
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} else {
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sdrContent = lines[sdrStart:]
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}
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result.Sensors = ParseSDR([]byte(sdrContent))
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}
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// Find FRU section
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if fruStart != -1 {
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fruContent := lines[fruStart:]
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result.FRU = ParseFRU([]byte(fruContent))
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}
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// Parse PCIe devices from RESTful PCIE Device info
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// This supplements data from asset.json with serial numbers, firmware, etc.
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pcieDevicesFromREST := ParsePCIeDevices(content)
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// Merge PCIe data: keep asset.json data but add RESTful data if available
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if result.Hardware != nil {
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// If asset.json didn't have PCIe devices, use RESTful data
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if len(result.Hardware.PCIeDevices) == 0 && len(pcieDevicesFromREST) > 0 {
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result.Hardware.PCIeDevices = pcieDevicesFromREST
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}
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// If we have both, merge them (RESTful data takes precedence for detailed info)
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// For now, we keep asset.json data which has more details
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}
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// Parse GPU devices and add temperature data from sensors
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if len(result.Sensors) > 0 && result.Hardware != nil {
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// Use existing GPU data from asset.json and enrich with sensor data
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for i := range result.Hardware.GPUs {
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gpu := &result.Hardware.GPUs[i]
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// Extract GPU number from slot name
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slotNum := extractSlotNumberFromGPU(gpu.Slot)
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// Find temperature sensors for this GPU
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for _, sensor := range result.Sensors {
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sensorName := strings.ToUpper(sensor.Name)
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// Match GPU temperature sensor
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if strings.Contains(sensorName, fmt.Sprintf("GPU%d_TEMP", slotNum)) && !strings.Contains(sensorName, "MEM") {
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if sensor.RawValue != "" {
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fmt.Sscanf(sensor.RawValue, "%d", &gpu.Temperature)
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}
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}
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// Match GPU memory temperature
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if strings.Contains(sensorName, fmt.Sprintf("GPU%d_MEM_TEMP", slotNum)) {
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if sensor.RawValue != "" {
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fmt.Sscanf(sensor.RawValue, "%d", &gpu.MemTemperature)
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}
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}
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// Match PCIe slot temperature as fallback
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if strings.Contains(sensorName, fmt.Sprintf("PCIE%d_GPU_TLM_T", slotNum)) && gpu.Temperature == 0 {
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if sensor.RawValue != "" {
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fmt.Sscanf(sensor.RawValue, "%d", &gpu.Temperature)
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}
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}
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}
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}
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}
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}
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// extractSlotNumberFromGPU extracts slot number from GPU slot string
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func extractSlotNumberFromGPU(slot string) int {
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parts := strings.Split(slot, "_")
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for _, part := range parts {
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if strings.HasPrefix(part, "PCIE") {
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var num int
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fmt.Sscanf(part, "PCIE%d", &num)
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if num > 0 {
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return num
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}
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}
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}
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return 0
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}
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