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March 29, 2026Electronics0 citationsOpen Access

SDGR-Net: A Spatiotemporally Decoupled Gated Residual Network for Robust Multi-State HDD Health Prediction

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ZWZehong WuJQJinghui QinYLYang Lü

Key Points

  • The aim is to develop a robust model for predicting hard disk drive health states amidst interference from noise and attribute entanglement.
  • Proposed SDGR-Net with spatiotemporally decoupled dual-branch encoder.
  • Utilized dual-view temporal extraction for capturing early anomalies.
  • Implemented a cross-branch dynamic gated residual fusion module to enhance feature identification.
  • Achieved a peak fault detection rate of 0.9898.
  • Demonstrated a 69.6% reduction in false alarm rate under high-reliability conditions.
  • Outperformed six state-of-the-art health prediction models in extensive experiments.

Abstract

Accurate prediction of hard disk drive (HDD) health states is critical for enabling proactive data maintenance and ensuring data reliability in large-scale data centers. However, conventional models often suffer from semantic entanglement among heterogeneous SMART attributes and from the masking of incipient failure signatures by stochastic noise. To address these challenges, we propose SDGR-Net, a spatiotemporally decoupled learning framework designed to model the complex degradation dynamics of HDDs. SDGR-Net introduces three synergistic innovations: (1) a spatiotemporally decoupled dual-branch encoder that disentangles longitudinal temporal evolution from cross-variable correlations via parameter-isolated branches, thereby reducing representational interference; (2) a parsimonious dual-view temporal extraction mechanism that captures early-stage anomalies through forward–reverse sequence concatenation, enabling high-fidelity preservation of non-stationary pre-failure patterns; and (3) a cross-branch dynamic gated residual fusion module that functions as an adaptive information bottleneck to emphasize failure-critical features while suppressing redundant noise. Extensive experiments conducted on three heterogeneous HDD datasets, ST4000DM000, HUH721212ALN604, and MG07ACA14TA, demonstrate that SDGR-Net consistently outperforms six state-of-the-art baselines. In particular, SDGR-Net achieves a peak fault detection rate (FDR) of 0.9898 and a 69.6% relative reduction in false alarm rate (FAR) under high-reliability operating conditions. These results, corroborated by comprehensive ablation studies, indicate that SDGR-Net effectively balances detection sensitivity and operational robustness, offering a practical solution for intelligent HDD health monitoring.

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Cite This Study

Wu et al. (2026) studied this question.

synapsesocial.com/papers/69c8c30dde0f0f753b39da0ehttps://doi.org/10.3390/electronics15071399
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