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Characterizing and mitigating spillover false alarms in inferential models for machine-learning prognostics

机译:机器学习预测推理模型中溢出假警报的特征和缓解

摘要

The disclosed embodiments relate to a system that determines whether an inferential model is susceptible to spillover false alarms. During operation, the system receives a set of time-series signals from sensors in a monitored system. The system then trains the inferential model using the set of time-series signals. Next, the system tests the inferential model for susceptibility to spillover false alarms by performing the following operations for one signal at a time in the set of time-series signals. First, the system adds degradation to the signal to produce a degraded signal. The system then uses the inferential model to perform prognostic-surveillance operations on the time-series signals with the degraded signal. Finally, the system detects spillover false alarms based on results of the prognostic-surveillance operations.
机译:所公开的实施例涉及确定推理模型是否易受溢出假警报影响的系统。在操作过程中,系统从受监控系统中的传感器接收一组时间序列信号。然后,系统使用时间序列信号集训练推理模型。接下来,系统通过在时间序列信号集中一次对一个信号执行以下操作,测试推断模型对溢出假警报的敏感性。首先,系统向信号添加降级以产生降级信号。然后,系统使用推理模型对信号退化的时间序列信号执行预测监视操作。最后,系统根据预测监测操作的结果检测溢出假警报。

著录项

  • 公开/公告号US11295012B2

    专利类型

  • 公开/公告日2022-04-05

    原文格式PDF

  • 申请/专利权人 ORACLE INTERNATIONAL CORPORATION;

    申请/专利号US201916244006

  • 发明设计人 KENNY C. GROSS;ASHIN GEORGE;

    申请日2019-01-09

  • 分类号G06F21/55;G06N7;G06N20;G08B29/18;

  • 国家 US

  • 入库时间 2022-08-25 00:20:31

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