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A Development of Granular Logic Neural Networks

机译:粒状逻辑神经网络的发展

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This paper proposes a way to develop a special type of fuzzy logic network-a granular logic network which generalizes the conventional fuzzy logic network by means of expanding the weights (and biases). Information granularity provides some flexibility on the determination of weights of a network. Five protocols are discussed here to realize the granular weights. The optimization of levels of granularities for different weights is done by an effective tool-particle swarm optimization. An illustrative simple example is given to show the study process of our approach.
机译:本文提出了一种开发特殊类型的模糊逻辑网络 - 一种粒度逻辑网络,其通过扩展权重(和偏差)来推广传统的模糊逻辑网络。信息粒度在确定网络权重方面提供了一些灵活性。这里讨论了五种协议来实现粒度。通过有效的工具粒子群优化进行不同重量的优化粒度水平。给出了一个说明的简单示例来显示我们方法的研究过程。

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