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An artificial intelligence approach towards fault diagnosis of an air-handling unit

机译:一种空气处理单元故障诊断的人工智能方法

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This paper presents a new method for fault diagnosis of an air-handling unit (AHU). The method determines performance indices using dynamic fuzzy neural networks (DFNN). The DFNN has two outstanding characteristics. Firstly, the learning speed is very fast and fuzzy rules can be generated quickly because no iterative learning is employed. Secondly, by using the pruning technology, significant nodes can be self-adaptive according to their contributions to the system performance. Consequently, the proposed method can achieve high performance with a parsimonious structure. Comprehensive comparisons with other existing approaches of fault diagnosis for the AHU demonstrate that the proposed method is superior in training speed and diagnosis speed and has high diagnosis rate.
机译:本文提出了一种用于空气处理单元(AHU)的故障诊断方法。该方法使用动态模糊神经网络(DFNN)确定性能指标。 DFNN具有两个出色的特征。首先,学习速度是非常快速的,可以快速生成模糊规则,因为没有采用迭代学习。其次,通过使用修剪技术,显着的节点可以根据其对系统性能的贡献来自适应。因此,所提出的方法可以用帕提莫利的结构来实现高性能。综合比较AHU的其他故障诊断方法表明,该方法的训练速度和诊断速度优异,诊断率高。

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