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Fuzzy neural networks with reference neurons as pattern classifiers

机译:以参考神经元为模式分类器的模糊神经网络

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摘要

A heterogeneous neural network consisting of logic neurons and realizing mappings in (0, 1) hypercubes is presented. The two kinds of neurons studied are utilized to perform matching functions (equality or reference neurons) and aggregation operations (aggregation neurons). All computations are driven by logic operations widely used in fuzzy set theory. The network is heterogeneous in its nature and includes two types of neurons organized into a structure detecting individual regions of patterns (using reference neurons) and combining them to yield a final classification decision.
机译:提出了一个由逻辑神经元和(0,1)超立方体中的实现映射组成的异构神经网络。研究的两种神经元用于执行匹配功能(相等或参考神经元)和聚合操作(聚合神经元)。所有计算均由模糊集理论中广泛使用的逻辑运算驱动。该网络本质上是异构的,包括两种类型的神经元,它们被组织成一个结构,用于检测模式的各个区域(使用参考神经元)并将其组合以产生最终的分类决策。

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