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A knowledge-base generating hierarchical fuzzy-neural controller

机译:知识库生成的分层模糊神经控制器

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摘要

We present an innovative fuzzy-neural architecture that is able to automatically generate a knowledge base, in an extractable form, for use in hierarchical knowledge-based controllers. The knowledge base is in the form of a linguistic rule base appropriate for a fuzzy inference system. First, we modify Berenji and Khedkar's (1992) GARIC architecture to enable it to automatically generate a knowledge base; a pseudosupervised learning scheme using reinforcement learning and error backpropagation is employed. Next, we further extend this architecture to a hierarchical controller that is able to generate its own knowledge base. Example applications are provided to underscore its viability.
机译:我们提出了一种创新的模糊神经体系结构,该体系结构能够自动提取可提取形式的知识库,以供基于分层知识的控制器使用。知识库采用适用于模糊推理系统的语言规则库的形式。首先,我们修改Berenji和Khedkar(1992)的GARIC体系结构,使其能够自动生成知识库。采用了使用强化学习和错误反向传播的伪监督学习方案。接下来,我们进一步将该体系结构扩展到能够生成自己的知识库的分层控制器。提供示例应用程序以强调其可行性。

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