Fault detection performances analysis for stochastic systems based on adaptive threshold

Marwa Houiji, R. Hamdaoui, M. Aoun
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引用次数: 1

Abstract

This paper investigates the problem of fault detection for discrete linear systems subjected to unknown disturbances, actuator and sensor faults. A bank of Augmented Robust Three stage Kalman filters is adapted to estimate both the state and the fault as well as to generate the residuals. Besides, this paper presents the evaluation of the residuals with Bayes test of binary hypothesis test for fault detection to adaptive threshold compared with fixed threshold. This test allow the detection of low magnitude faults as fast as possible with a minimum risk of errors, the increase of detection probability and the reduction of false alarm probability.
基于自适应阈值的随机系统故障检测性能分析
研究了受未知扰动、执行器和传感器故障影响的离散线性系统的故障检测问题。采用一组增强鲁棒三级卡尔曼滤波器对状态和故障进行估计,并产生残差。此外,本文还介绍了自适应阈值与固定阈值相比较,用二值假设检验的贝叶斯检验对故障检测残差的评价。该测试可以在最小的错误风险下,以最快的速度检测出低震级的故障,增加了检测概率,降低了误报概率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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