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A Fault Detection Method for Hard Disk Drives Based on Mixture of Gaussians and Nonparametric Statistics

机译:基于高斯和非参数统计混合的硬盘驱动器故障检测方法

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Hard Disk Drives (HDD) failure prediction is a challenging topic that has attracted much attention in recent years. Predicting failures in HDD may avoid losing data thus improving data reliability. Previous works on failure prediction are based on parametric approaches that model healthy drives with a Gaussian distribution. Although they achieved good results, the Gaussianity assumption may not hold true. The following work proposes a method for fault detection in HDD based on a Gaussian Mixture Model. A self-monitoring, analysis, and reporting technology dataset is used to evaluate the proposed method. Results show that the method outperforms previous works in both fault detection and time before failure.
机译:硬盘驱动器(HDD)故障预测是一个具有挑战性的话题,近年来引起了很多关注。预测HDD中的故障可以避免丢失数据,从而提高数据可靠性。以前的故障预测工作是基于参数化方法,该方法对具有高斯分布的健康驱动器进行建模。尽管他们取得了良好的结果,但高斯假设可能不成立。以下工作提出了一种基于高斯混合模型的硬盘故障检测方法。使用自我监测,分析和报告技术数据集来评估所提出的方法。结果表明,该方法在故障检测和故障发生前的时间上均优于以前的工作。

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