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A Hybrid Cascade Neuro–Fuzzy Network with Pools of Extended Neo–Fuzzy Neurons and its Deep Learning

机译:一种混合级联神经模糊网络,具有扩展新模糊神经元的池及其深度学习

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This research contribution instantiates a framework of a hybrid cascade neural network based on the application of a specific sort of neo-fuzzy elements and a new peculiar adaptive training rule. The main trait of the offered system is its competence to continue intensifying its cascades until the required accuracy is gained. A distinctive rapid training procedure is also covered for this case that offers the possibility to operate with non-stationary data streams in an attempt to provide online training of multiple parametric variables. A new training criterion is examined for handling non-stationary objects. Additionally, there is always an occasion to set up (increase) the inference order and the number of membership relations inside the extended neo-fuzzy neuron.
机译:该研究贡献本基于应用特定新模糊元素和新的特殊自适应培训规则的应用,实例化了混合级联神经网络的框架。提供的系统的主要特征是其能力,以便在获得所需的准确性之前继续加剧其级联。对于这种情况,还涵盖了一种独特的快速培训程序,可以在尝试提供对多个参数变量的在线培训的尝试使用非静止数据流进行操作。检查新培训标准以处理非静止物体。此外,总是有一次建立(增加)推断顺序和扩展新模糊神经元内的隶属关系数量。

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