首页> 外文会议>International Workshop on Golbal Optimization and Constraint Satisfaction(COCOS 2003); 20031118-21; Lausanne(CH) >Benchmarking on Approaches to Interval Observation Applied to Robust Fault Detection
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Benchmarking on Approaches to Interval Observation Applied to Robust Fault Detection

机译:鲁棒故障检测中间隔观测方法的基准测试

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Model-based fault detection is based on generating a difference, known as a residual, between the predicted output value from the system model and the real output value measured by the sensors. If this residual is bigger than a threshold, then it is determined that there is a fault in the system. Otherwise, it is considered that the system is working properly. However, it is very important to analyse how the effect of model uncertainty is taken into account when determining the optimal threshold to be used in residual evaluation. In case that uncertainty is located in parameters (interval model), an interval observer has been shown to be a suitable strategy to generate such threshold. However, interval observers can present several problems that in order to be solved, existing approaches require computational demanding algorithms. The aim of this paper is to study the viability of using region based approaches coming from the interval analysis community to solve the interval observation problem. Region based approaches are appealing because of its low computational complexity but they suffer from the wrapping effect. On the other hand, trajectory based approaches are immune to this problem but their computational complexity is higher. In this paper, these two interval observation philosophies will be presented, analysed and compared using in two examples.
机译:基于模型的故障检测基于生成系统模型的预测输出值与传感器测量的实际输出值之间的差异(称为残差)。如果该残差大于阈值,则确定系统中存在故障。否则,认为系统运行正常。但是,在确定要用于残差评估的最佳阈值时,分析如何考虑模型不确定性的影响非常重要。如果不确定性位于参数(间隔模型)中,则已证明间隔观察器是生成此类阈值的合适策略。但是,间隔观察者可能会提出一些问题,为了解决这些问题,现有方法需要计算量大的算法。本文的目的是研究使用来自区间分析社区的基于区域的方法来解决区间观测问题的可行性。基于区域的方法因其计算复杂度低而吸引人,但它们具有包装效果。另一方面,基于轨迹的方法可以解决此问题,但是其计算复杂度更高。在本文中,将通过两个示例介绍,分析和比较这两种间隔观察方法。

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