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Condition monitoring scheme via one-class support vector machine and multivariate control charts

机译:通过单级支持向量机和多变量控制图表的状态监测方案

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摘要

A condition-based maintenance (CBM) has been widely employed to reduce maintenance cost by predicting the health status of many complex systems in prognostics and health management (PHM) framework. Recently, multivariate control charts used in statistical process control (SPC) have been actively introduced as monitoring technology. In this paper, we propose a condition monitoring scheme to monitor the health status of the system of interest. In our condition monitoring scheme, we first define reference data set using one-class support vector machine (OC-SVM) to construct the control limit of multivariate control charts in phase I. Then, parametric control chart or non-parametric control chart is selected according to the results from multivariate normality tests. The proposed condition monitoring scheme is applied to sensor data of two anemometers to evaluate the performance of fault detection power.
机译:基于条件的维护(CBM)已被广泛用于通过预测预测预测和健康管理(PHM)框架中许多复杂系统的健康状况来降低维护成本。 最近,已经积极引入用于统计过程控制(SPC)的多变量控制图作为监控技术。 在本文中,我们提出了一种情况监测计划,以监测利益系统的健康状况。 在我们的状态监控方案中,我们首先使用单级支持向量机(OC-SVM)定义参考数据集,以构建相位I中的多变量控制图表的控制限制。然后,选择参数控制图或非参数控制图 根据多变量正常测试的结果。 所提出的情况监测方案应用于两个风速计的传感器数据,以评估故障检测功率的性能。

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