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The Genetic Development of Uninorm-Based Neurons

机译:基于Uninorm的神经元的遗传发展。

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摘要

In this study, we are concerned with a new category of logic connectives and logic neurons based on the concept of uninorms. Uninorms are a generalization of t-norms and t-conorms used for composing fuzzy sets. We discuss the development of such constructs by using genetic algorithms. In this way we optimize a suite of parameters encountered in uninorms, especially their identity element. In the sequel, we introduce a class of logic neurons based on uninorms (which will be refereed to as unineurons). The learning issues of the neurons are presented and some experimental results obtained for synthetic and benchmark data are reported.
机译:在这项研究中,我们关注基于单项概念的一类新的逻辑连接词和逻辑神经元。单范数是用于构成模糊集的t范数和t范数的一般化。我们讨论了使用遗传算法开发此类构建体的方法。通过这种方式,我们优化了单一单元中遇到的一组参数,尤其是它们的标识元素。在续篇中,我们介绍了一类基于单神经元的逻辑神经元(将其称为单神经元)。介绍了神经元的学习问题,并报告了一些合成和基准数据的实验结果。

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