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The Failure Prediction of Cluster Systems Based on System Logs

机译:基于系统日志的集群系统故障预测

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The failure prediction of cluster systems is an effective approach to improve the reliability of the cluster systems, which is becoming a new research hotspot of high performance computing, especially with the growth of cluster systems and applications both in scale and complexity. A classification sequential rule model is proposed to predict cluster system failures. The system logs of BlueGene/L, Red Storm, and Spirit are used as experimental datasets to predict cluster system failures. The results show that sequential rule approach outperforms SVM and HSMM in terms of precision and F-measure in 5hr prediction window, and in 1hr or 12hr prediction window, sequential rules, SVM and HSMM have their own strengths and weaknesses respectively.
机译:集群系统的故障预测是提高集群系统的可靠性的有效方法,这成为高性能计算的新研究热点,特别是随着集群系统和应用的增长,既规模和复杂。提出了一种分类顺序规则模型来预测集群系统故障。蓝色/ L,红风暴和精神的系统日志用作实验数据集以预测集群系统故障。结果表明,在5HR预测窗口中的精确度和F测量方面,顺序规则方法优于SVM和HSMM,并且在1HR或12HR预测窗口中,顺序规则,SVM和HSMM分别具有它们自己的优势和劣势。

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