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Fusing neural networks, genetic algorithms and fuzzy logic for diagnosis of cracks in shafts

机译:融合神经网络,遗传算法和模糊逻辑,用于诊断轴裂缝

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During the last decades, the engineering community has extensively studied crack identification in rotating machine elements. Although the proposed analytical models may be capable of identifying cracks on the basis of modal analysis, response measurements or other techniques, the required time for performing the underlying computations is restrictive in real-time diagnosis applications. This paper introduces a framework for implementing soft-computing techniques, namely artificial neural networks (ANN), fuzzy logic (FL) and genetic algorithms (GA), for identifying cracks in rotating shafts while diminishing the required computational time. In the context of the current approach the cracks are considered to lie on arbitrary angular positions around the longitudinal axis of the shaft at any distance from the clamped end and characterized by three measures: position, depth and relative angle. The reduction in computational time is achieved by approximating the analytical model with a neural network and by replacing the exhaustive search of the solution space with a genetic algorithm whose objective function relies on a fuzzy logic representation. Results concerning the efficiency of the proposed framework in terms of accuracy and computational time are also presented.
机译:在过去的几十年中,工程界在旋转机器元件中广泛地研究了裂缝识别。尽管所提出的分析模型可以基于模态分析,响应测量或其他技术来识别裂缝,但是执行底层计算的所需时间在实时诊断应用中是限制性的。本文介绍了一种用于实现软计算技术的框架,即人工神经网络(ANN),模糊逻辑(FL)和遗传算法(GA),用于识别旋转轴的裂缝,同时减少所需的计算时间。在电流方法的上下文中,裂缝被认为是在轴的任何距离围绕轴的纵向轴线周围的任意角度位置处,并且其特征在于三个措施:位置,深度和相对角度。通过用神经网络近似分析模型以及用遗传算法替换解决方案空间的详尽搜索来实现计算时间来实现计算时间来实现,其目标函数依赖于模糊逻辑表示。还提出了关于提出框架在准确性和计算时间方面的效率的结果。

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