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Multiple-Model Based Fault-Diagnosis: An Approach to Heterogeneous State Spaces

机译:基于多模型的故障诊断:一种异构状态空间的方法

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In the context of diagnosing technical systems, in addition to pure fault detection, it is also important to determine the fault location and the fault size (also known as fault identification). In many cases, model-based diagnostic methods are used for fault-localization and - identification, which are based on the simultaneous use of several mathematical models, so fault-localization and - identification can be performed in the sense of a multiple model estimation. Known approaches to multiple model estimation, such as generalized pseudo-Bayesian approaches or the Interacting Multiple Model approach, use a stochastic filter for each of the models, with the results of the individual stochastic filters being suitably aggregated. However, it has to be taken into account that the individual mathematical models have different dimensions and/or physically heterogeneous state spaces. Consequently, the aggregation, i.e. the weighted combination of the estimates can not be done without appropriate modification. Using a hydraulic cylinder, possible modification approaches for the interaction of filters applied to heterogeneous state spaces are explained.
机译:在诊断技术系统的过程中,除了纯粹的故障检测之外,确定故障位置和故障大小(也称为故障识别)也很重要。在许多情况下,基于模型的诊断方法用于故障定位和-识别,这是基于同时使用几个数学模型,因此可以在多模型估计的意义上执行故障定位和-识别。诸如通用伪贝叶斯方法或交互多模型方法之类的已知的用于多模型估计的方法对每个模型使用随机滤波器,并且适当地聚合了各个随机滤波器的结果。但是,必须考虑到各个数学模型具有不同的维度和/或物理上异构的状态空间。因此,如果不进行适当的修改,就无法完成汇总,即估算的加权组合。使用液压缸,解释了适用于异构状态空间的过滤器相互作用的可能修改方法。

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