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Fault Diagnosis of Satellite Power System Using Variable Precision Fuzzy Neighborhood Rough Set

机译:使用可变精密模糊邻域粗糙集卫星电力系统故障诊断

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摘要

Data-driven fault diagnosis, known to be simple and convenient, is more suitable for diagnosing the complicated systems of satellite. Nevertheless, there are two main bottlenecks of data-driven fault diagnosis methods: rule acquisition and decision making. Although the rough set theory can solve above issues well, the obtained rules seem to be more crisp and the diagnosis decisions are not enough credible. Therefore, we propose a diagnosis approach based on variable precision fuzzy neighborhood rough set (VPFNRS) model, which could extract fuzzy rules from hybrid data with noises and make fuzzy diagnosis results based on the extracted fuzzy rule model and the weights of condition attributes. Firstly, we present a VPFNRS model based on neighborhood rough set, and then the theories of fuzzy rule acquisition and decision making are raised. Finally, the successful applications in satellite power system verify the feasibility and correctness of the proposed approach.
机译:数据驱动的故障诊断,已知是简单且方便的,更适合诊断复杂的卫星系统。尽管如此,有两个主要瓶颈的数据驱动故障诊断方法:规则获取和决策。虽然粗糙集理论可以很好地解决上述问题,但获得的规则似乎更清晰,诊断决策是不够可信的。因此,我们提出了一种基于可变精密模糊邻域粗糙集(VPFNR)模型的诊断方法,可以通过噪声从混合数据提取模糊规则,并基于提取的模糊规则模型和条件属性权重进行模糊诊断结果。首先,我们介绍了一个基于邻域粗糙集的VPFNR模型,然后提出了模糊规则采集和决策的理论。最后,卫星电力系统中的成功应用验证了所提出的方法的可行性和正确性。

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