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Question No: 1
MultipleChoice
Your company is decommissioning a PowerEdge 16G server to a 17G server. All the disks in the 16G server are SEDs. Your security team requires that the server is securely retired. Which feature can be used to comply with the security requirement?
Options
Answer AExplanation
Retiring enterprise infrastructure assets safely requires applying reliable data sanitation routines across all persistent storage devices to prevent the unauthorized leak of sensitive corporate information. When decommissioning a Dell PowerEdge 16G server featuring Self-Encrypting Drives (SEDs), administrators can leverage the integrated Instant Secure Erase (ISE) capability built directly into the Lifecycle Controller interface. The ISE feature communicates directly with the security microchip on the SEDs, triggering an instantaneous, cryptographic erasure of the internal media encryption keys. Once these internal cryptographic keys are scrubbed and destroyed, all data blocks previously written to the storage media are rendered permanently unreadable and completely unrecoverable, returning the drives to an uninitialized factory clean state within seconds. This process provides a highly audited data sanitization workflow that achieves complete compliance with strict institutional security protocols and international data center decommissioning standards. It completes this erasure significantly faster and with less mechanical wear than traditional multi-pass overwriting cycles or destructive physical processing methods.
Study Guide References: System Administration; Secure Component Retirement; Lifecycle Controller Cryptographic Erasure and ISE.
Question No: 2
MultipleChoice
On a Dell PowerEdge server equipped with NVIDIA GPUs, one of the installed GPUs shows a continuous Increase in ECC Correctable Errors whenever the system is under load. Running dcgmi diag -r 3 returns PASS for all diagnostic tests, and a full GPU memory BIST detects no memory cell faults. The IDRAC System Event Log repeatedly reports: ' Correctable Memory Warning increased'' for the same GPU. The system appears healthy, and no PCIe or XID fatal errors are recorded. What action should be taken first?
Options
Answer DExplanation
When a high-performance NVIDIA GPU accelerator inside a Dell PowerEdge server registers a continuous increase in single-bit Error-Correcting Code (ECC) correctable errors exclusively under operational compute load, but consistently clears standalone diagnostic validation layers (such as advanced DCGM Level 3 diagnostics and full hardware-level memory Built-In Self-Tests), the issue points to a thermal-dependent signaling issue rather than a permanent physical silicon cell failure. Under intensive processing workloads, localized heat retention within the GPU's dense High Bandwidth Memory (HBM) layout can induce marginal timing variations that force internal ECC engines to work continuously to preserve data accuracy, generating frequent correctable alerts within the iDRAC System Event Log. Because permanent hardware memory cell defects are ruled out by the comprehensive BIST pass execution rating, the first practical troubleshooting step requires inspecting the internal airflow path, cooling fan profiles, and specific thermal conditions surrounding the designated PCIe slot. Ensuring proper air baffling, clearing cable blockages, and validating slot-specific cooling optimization allows the accelerator to remain within nominal operating temperature ranges, completely stabilizing signal integrity under stress. Study Guide References: Troubleshooting; GPU Accelerator Thermal Profiling; Hardware Telemetry and ECC Error Isolation.
Question No: 3
MultipleChoice
A Dell PowerEdge server reports intermittent hardware alerts and occasional system instability. An administrator needs to Identify and resolve the underlying hardware Issue with minimal disruption to services. Which action should the administrator take first to troubleshoot the hardware problem?
Options
Answer AExplanation
When a production platform exhibits intermittent hardware faults and system instability, the primary troubleshooting standard dictates capturing low-level system telemetry through non-disruptive, out-of-band management vectors before attempting intrusive physical actions. The administrator must utilize the Integrated Dell Remote Access Controller (iDRAC) interface to review the holistic hardware health status panel and parse the persistent System Event Log (SEL). Because the iDRAC runs on an independent processor with dedicated power rails, it continuously monitors internal sensors---such as voltage regulators, thermal monitors, and memory error-correcting code counters---completely separate from the host operating system state. Reviewing the SEL allows an engineer to construct an accurate timeline of the faults, mapping specific component warnings to the exact moments of instability. This targeted isolation technique eliminates guesswork and prevents unnecessary server downtime or configuration corruption caused by hasty operating system reinstallations or simultaneous multi-component replacement strategies, establishing an accurate, data-driven remediation path.
Study Guide References: Troubleshooting; System Event Log (SEL) Analysis; Out-of-Band Diagnostics and Telemetry.