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POPULATION-BASED LEARNING WITH DEEP BELIEF NETWORKS

机译:基于人口的学习与深度信仰网络

摘要

A plant asset failure prediction system and associated method. The method includes receiving user input identifying a first target set of equipment including a first plurality of units of equipment. A set of time series waveforms from sensors associated with the first plurality of units of equipment are received, the time series waveforms including sensor data values. A processor is configured to process the time series waveforms to generate a plurality of derived inputs wherein the derived inputs and the sensor data values collectively comprise sensor data. The method further includes determining whether a first machine learning agent may be configured to discriminate between first normal baseline data for the first target set of equipment and first failure signature information for the first target set of equipment. The first normal baseline data of the first target set of equipment may be derived from a first portion of the sensor data associated with operation of the first plurality of units of equipment in a first normal mode and the first failure signature information may be derived from a second portion of the sensor data associated with operation of the first plurality of units of equipment in a first failure mode. Monitored sensor signals produced by the one or more monitoring sensors are received. The first machine learning agent is then and activated, based upon the determining, to monitor data included within the monitored sensor signals.
机译:植物资产失效预测系统及相关方法。该方法包括接收识别包括第一目标设备集的用户输入,包括第一多个设备单元。接收来自与第一多个设备相关联的传感器的一组时间序列波形,该时间序列波形包括传感器数据值。处理器被配置为处理时间序列波形以生成多个导出的输入,其中导出的输入和传感器数据值共同包括传感器数据。该方法还包括确定第一机器学习代理人是否可以被配置为区分第一目标设备集的第一普通基线数据和第一目标设备集的第一故障签名信息。第一目标设备集的第一正常基线数据可以从与第一正常模式中的第一多个设备的操作的操作相关联的传感器数据的第一部分导出,并且第一故障签名信息可以源自a传感器数据的第二部分与第一故障模式中的第一多个设备的操作相关联。接收由一个或多个监视传感器产生的监控传感器信号。然后,基于确定,第一机器学习代理并激活,以监视所包括在监视的传感器信号内的数据。

著录项

  • 公开/公告号EP3183622B1

    专利类型

  • 公开/公告日2021-09-22

    原文格式PDF

  • 申请/专利权人 MTELLIGENCE CORPORATION;

    申请/专利号EP20150835656

  • 申请日2015-08-26

  • 分类号G05B23/02;G05B19/418;G06F11/07;H04L12/24;G05B17/02;

  • 国家 EP

  • 入库时间 2022-08-24 21:11:50

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