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Machine learning for failure event identification and prediction

机译:机器学习失败事件识别和预测

摘要

Techniques for failure prediction are provided. A plurality of event indications is received, where each respective event indication corresponds to a respective failure in a computing system. A plurality of machine learning (ML) models is trained based on combinations of event indications in the plurality of event indications, and the ML models are evaluated to generate a respective quality score for each respective ML model. An ensemble of ML models is defined from the plurality of ML models, based on identifying ML models of the plurality of ML models with corresponding quality scores exceeding a predefined threshold. Current data logs from the computing system are processed using the ensemble of ML models, and upon determining that any ML model of the ensemble of ML models predicted a failure based on the current data logs, an alert is generated.
机译:提供了故障预测的技术。 接收多个事件指示,其中每个相应的事件指示对应于计算系统中的各个故障。 基于多个事件指示中的事件指示的组合培训多个机器学习(ML)模型,并且评估ML模型以为每个相应ML模型产生相应的质量分数。 基于多个ML模型的识别ML模型,从多个ML模型定义ML模型的集合。 来自计算系统的当前数据日志使用ML模型的集合处理,并且在确定ML模型的集合的任何ML模型时,基于当前数据日志预测失败,则生成警报。

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