使用一致性技术进行不确定性处理的鲁棒故障检测

E. Gelso, S. M. Castillo, J. Armengol
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引用次数: 5

摘要

分析冗余在故障检测和诊断中的实际性能往往受到系统模型和测量中普遍存在的不确定性的影响。本文将故障检测问题描述为具有大量变量和约束的连续域上的约束满足问题。这个问题可以通过模态区间分析和一致性技术来解决。一致性技术随后被证明是特别有效的检查分析冗余关系(arr)的一致性,处理不确定的测量和参数。通过本文的研究,可以看出一致性技术可以用来提高基于区间算法的鲁棒故障检测工具的性能。以液压系统的非线性动力学模型为例说明了该方法的有效性。
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Robust fault detection using consistency techniques for uncertainty handling
Often practical performance of analytical redundancy for fault detection and diagnosis is decreased by uncertainties prevailing not only in the system model, but also in the measurements. In this paper, the problem of fault detection is stated as a constraint satisfaction problem over continuous domains with a big number of variables and constraints. This problem can be solved using modal interval analysis and consistency techniques. Consistency techniques are then shown to be particularly efficient to check the consistency of the analytical redundancy relations (ARRs), dealing with uncertain measurements and parameters. Through the work presented in this paper, it can be observed that consistency techniques can be used to increase the performance of a robust fault detection tool, which is based on interval arithmetic. The proposed method is illustrated using a nonlinear dynamic model of a hydraulic system.
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