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Combining Augmented Intelligence and Edge Analytics for Improved Artificial Lift Systems Performance

机译:结合增强智能和边缘分析,提高人工升力系统性能

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With the advent of IIoT enabled Edge Analytics,and its ability to run Machine Learning based inference at the extremities of a production network,it has become essential to enable Operators and Subject Matter Experts to transfer their knowledge to Edge Computing Devices.This paper discusses the application of Edge Analytics enabled Augmented Intelligence for wells operated by Electric Submersible Pumps,where Machine Learning and Pattern Recognition Models help detect anomalous events in multivariate time-series data.These Models runs on Edge Computing Devices where identify newly discovered and well known ESP performance patterns that can be labelled by a Subject Matter Expert.Once these patterns are identified and tagged,the Models are retrained and pushed back to the Edge Computing Device,where they continue to detect and predict patterns in real-time.
机译:随着IIOT的前沿分析的出现,其能够在生产网络的极端运行基于机器学习的推断,使运营商和主题专家能够将他们的知识转移到边缘计算设备。本文讨论了 Edge Analytics的应用启用了电动潜水泵运行的井的增强智能,其中机器学习和模式识别模型有助于检测多变量时间序列数据中的异常事件。这些模型在边缘计算设备上运行,其中识别新发现和众所周知的ESP性能模式 可以由主题专家标记。识别并标记这些模式,初始化模型并将其推回到边缘计算设备,在那里它们继续实时检测和预测模式。

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