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Robust training technique to facilitate prognostic pattern recognition for enterprise computer systems

机译:强大的培训技术可促进企业计算机系统的预后模式识别

摘要

The disclosed embodiments relate to a technique for training a prognostic pattern-recognition system to detect incipient anomalies that arise during execution of a computer system. During operation, the system gathers and stores telemetry data obtained from n sensors in the computer system during operation of the computer system. Next, the system uses the telemetry data gathered from the n sensors to train a baseline model for the prognostic pattern-recognition system. The prognostic pattern-recognition system then uses the baseline model in a surveillance mode to detect incipient anomalies that arise during execution of the computer system. The system also uses the stored telemetry data to train a set of additional models, wherein each additional model is trained to operate with one or more missing sensors. Finally, the system stores the additional models to be used in place of the baseline model when one or more sensors fail in the computer system.
机译:所公开的实施例涉及用于训练预后模式识别系统以检测在计算机系统的执行期间出现的初期异常的技术。在运行期间,系统在计算机系统运行期间收集并存储从计算机系统中的n个传感器获得的遥测数据。接下来,系统使用从n个传感器收集的遥测数据来训练用于预测模式识别系统的基线模型。然后,预后模式识别系统在监视模式下使用基线模型来检测在计算机系统执行期间出现的初期异常。该系统还使用存储的遥测数据来训练一组附加模型,其中,每个附加模型被训练为与一个或多个缺少的传感器一起操作。最后,当一个或多个传感器在计算机系统中发生故障时,系统将存储要使用的其他模型来代替基线模型。

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