Special neural network architectures for easy electronic implementations

B. Wilamowski
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引用次数: 11

Abstract

An overview of various neural network architectures is presented. Depending on applications some of these architectures are capable to perform very complex operations with limited number of neurons, while other architectures, which use more neurons, are easy to train. There are neural network architectures which have very limited requirements for training or no training is required. The importance of the proper learning algorithm was emphasized because with advanced learning algorithm we can train these networks, which cannot be trained with simple algorithms. When simple training algorithms, such as EBP are used, neural networks with larger number of neurons must be used to fulfill the task.
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易于电子实现的特殊神经网络架构
概述了各种神经网络架构。根据应用的不同,其中一些架构能够在有限的神经元数量下执行非常复杂的操作,而其他架构使用更多的神经元,很容易训练。有些神经网络架构对训练的要求非常有限,或者不需要训练。适当的学习算法的重要性被强调了,因为使用先进的学习算法我们可以训练这些网络,而简单的算法无法训练这些网络。当使用简单的训练算法(如EBP)时,必须使用神经元数量较大的神经网络来完成任务。
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