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Analog circuits fault diagnosis using multi-valued Fisher's fuzzy decision tree (MFFDT)

机译:使用多值Fisher模糊决策树(MFFDT)的模拟电路故障诊断

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摘要

Fault diagnosis of analog circuits is more challenging compared with digital circuits as a result of the parametric deviation and the difficulty in signal discretization. There still lacks effective approaches to realize reliable fault detection and isolation for a comprehensive diagnosis. A new fault diagnosis technique called multi-valued Fisher's fuzzy decision tree (MFFDT) is proposed in this paper to solve the problem. This technique uses the decision tree as the diagnosis model and incorporates the Fisher's linear discriminant principles. The fuzzification mechanism is devised to discretize the input monitoring data. The proposed MFFDT method is composed of two aspects: decision tree training and real fault diagnosis processes. The former uses the benchmark data to train a decision tree, while the latter sends the monitoring data into the decision tree to generate diagnosis results. The proposed method is validated using simulated data and the real-time data for an active filter circuit and an audio amplifying circuit. The comparative analysis is also presented to evaluate diagnosis performances. Copyright (C) 2015 John Wiley & Sons, Ltd.
机译:由于参数偏差和信号离散化的困难,与数字电路相比,模拟电路的故障诊断更具挑战性。仍然缺乏有效的方法来实现可靠的故障检测和隔离以进行综合诊断。为了解决该问题,本文提出了一种新的故障诊断技术,称为多值Fisher模糊决策树(MFFDT)。该技术使用决策树作为诊断模型,并结合了Fisher线性判别原理。设计了模糊化机制以离散化输入的监视数据。提出的MFFDT方法包括两个方面:决策树训练和实际故障诊断过程。前者使用基准数据来训练决策树,而后者则将监视数据发送到决策树中以生成诊断结果。利用仿真数据和实时数据对有源滤波器电路和音频放大电路进行了验证。还提供了比较分析以评估诊断性能。版权所有(C)2015 John Wiley&Sons,Ltd.

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