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Genetic granular cognitive fuzzy neural networks and human brains for pattern recognition

机译:遗传颗粒认知模糊神经网络和人脑用于模式识别

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Biological neural networks in the human brain can recognize different patterns with noise by the unknown biologically cognitive pattern recognition method. Since the human brain consists of biological neural networks that are the major components performing pattern recognition, it is very interesting and very important to investigate how the biological neural networks and the artificial neural networks recognize different patterns. A new genetic granular cognitive fuzzy neural network based on granular computing, soft computing and cognitive science is used in a pattern recognition problem to compare human brains with the biological neural networks. The hybrid genetic forward-wave-backward-wave learning algorithm is used to enhance learning quality. Both pattern recognition results generated by human persons and the genetic granular cognitive fuzzy neural network are analyzed in terms of computer science and cognitive science.
机译:通过未知的生物学认知模式识别方法,人脑中的生物神经网络可以识别带有噪声的不同模式。由于人脑由生物神经网络组成,而生物神经网络是执行模式识别的主要组成部分,因此研究生物神经网络和人工神经网络如何识别不同模式非常重要且非常重要。一种新的基于颗粒计算,软计算和认知科学的遗传颗粒认知模糊神经网络被用于模式识别问题,以将人脑与生物神经网络进行比较。混合遗传正向波-反向波学习算法被用来提高学习质量。从计算机科学和认知科学的角度分析了人类产生的模式识别结果和遗传颗粒认知模糊神经网络。

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