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A Distributed Fault Detection System Based on IWSN for Machine Condition Monitoring

机译:基于IWSN的机器状态监测分布式故障检测系统。

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摘要

This paper introduces a novel framework for industrial wireless sensor networks (IWSNs) used for machine condition monitoring (MCM). Our approach enables the use of state-of-the-art computationally intensive classifiers in computationally weak sensor network nodes. The key idea is to split data acquisition, classifier building and training, and the operation phase, between different units. Computationally demanding processing is carried out in the central unit, while other tasks are distributed to the sensor nodes using over-the-air programming. The system is autonomously trained on the healthy state of a machine and then monitors a change in behavior which indicates a faulty state. Thanks to one-class classification, there is no need to introduce the faulty state of the machine in the training phase. We extend the diagnostic capability of the system using dynamic changes in the data acquisition and classification parts of the program in the sensor nodes. This enables the system to react to ambiguous machine states by temporarily changing the diagnostic focus. Compressing the information in the individual sensor nodes provided by in-node classification allows us to transmit only the classification result, instead of full signal waveforms. This enables the MCM system to be deployed with a large number of nodes, even with high sampling rates. The proposed concept was evaluated in IRIS IWSN by means of a rotary machine simulator.
机译:本文介绍了一种用于机器状态监测(MCM)的工业无线传感器网络(IWSN)的新颖框架。我们的方法支持在计算能力较弱的传感器网络节点中使用最新的计算密集型分类器。关键思想是在不同部门之间划分数据获取,分类器构建和训练以及操作阶段。在中央单元中执行对计算要求很高的处理,而其他任务则使用无线编程分配给传感器节点。在机器的健康状态下对系统进行自主训练,然后监视指示故障状态的行为变化。由于采用了一类分类,因此在训练阶段无需引入机器的故障状态。我们使用传感器节点中程序的数据采集和分类部分中的动态更改来扩展系统的诊断能力。这使系统可以通过临时更改诊断焦点来对机器的歧义状态做出反应。压缩节点内分类所提供的各个传感器节点中的信息,使我们仅发送分类结果,而不发送完整的信号波形。这使MCM系统即使具有高采样率也可以部署有大量节点。通过旋转机器模拟器在IRIS IWSN中对提出的概念进行了评估。

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