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Comparative analysis on the application of neuro-fuzzy models for complex engineered systems: Case study from a landfill and a boiler

机译:神经模糊模型在复杂工程系统中的应用比较分析:以垃圾填埋场和锅炉为例

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摘要

This work aims at developing an explicit neuro-fuzzy (NF) model to characterize complex engineered systems associated with high nonlinearity, uncertainties, and multivariable couplings. The NF model synergistically exploits the advantages of fuzzy belongingness of each input variable to all output variables and learning ability of neural networks. Owing to the inherent complexities associated with 2 complex engineered systems, a landfill and a boiler were selected to develop models that provide intelligent decisions for optimizing the operational parameters. Data compiled from field-scale investigation/real plant operation involving various operating scenarios were used to develop the models. Predicting capability of the developed models was evaluated through the correlation coefficient and mean absolute percentage error values. Superiority of the proposed NF model to other similar models has been justified and demonstrated.
机译:这项工作旨在开发一个显式的神经模糊(NF)模型,以表征与高非线性,不确定性和多变量耦合相关的复杂工程系统。 NF模型协同利用了每个输入变量对所有输出变量的模糊归属性和神经网络学习能力的优势。由于与2个复杂工程系统相关的固有复杂性,选择了一个垃圾填埋场和一个锅炉来开发模型,这些模型可提供智能决策来优化运行参数。从现场规模调查/实际工厂操作(涉及各种操作场景)收集的数据用于开发模型。通过相关系数和平均绝对百分比误差值评估了开发模型的预测能力。所提出的NF模型相对于其他类似模型的优越性已得到证明和证明。

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