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A new fault tolerant control approach for the three-tank system using data mining

机译:基于数据挖掘的三缸系统容错控制新方法

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In this study, we propose a knowledge-based approach for detection and isolation of sensor faults in fault tolerant control (FTC) of the three-tank system. Farthest first traversal algorithm (FFTA) of data mining is used first-time for the classification of faults in an FTC system. The sliding window is used to detect signal changes, which contain possible transients due to faults. The variance-changing ratio is calculated to extract the features of the sensor signal in each window. Then, FFTA is utilized for the isolation of sensor faults. In order to demonstrate the efficiency of the proposed method, seven types of artificial faults were applied to closed-loop fault tolerant control system in certain periods. All faults were detected and isolated immediately after they occurred. Moreover, fault isolation was achieved when multiple faults occurred simultaneously.
机译:在这项研究中,我们提出了一种基于知识的方法来检测和隔离三缸系统的容错控制(FTC)中的传感器故障。首次使用数据挖掘的最远第一次遍历算法(FFTA)对FTC系统中的故障进行分类。滑动窗口用于检测信号变化,其中可能包含由于故障引起的瞬变。计算方差变化率以提取每个窗口中传感器信号的特征。然后,利用FFTA隔离传感器故障。为了证明所提方法的有效性,在一定时期内将七类人工故障应用于闭环容错控制系统。发生所有故障后,立即对其进行检测并隔离。此外,当多个故障同时发生时,可以实现故障隔离。

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