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Implementation of pulse-coupled neural networks in a CNAPS environment

机译:CNAPS环境中脉冲耦合神经网络的实现

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摘要

Pulse coupled neural networks (PCNN) are biologically inspired algorithms very well suited for image/signal preprocessing. While several analog implementations are proposed we suggest a digital implementation in an existing environment, the connected network of adapted processors system (CNAPS). The reason for this is two fold. First, CNAPS is a commercially available chip which has been used for several neural-network implementations. Second, the PCNN is, in almost all applications, a very efficient component of a system requiring subsequent and additional processing. This may include gating, Fourier transforms, neural classifiers, data mining, etc, with or without feedback to the PCNN.
机译:脉冲耦合神经网络(PCNN)是受生物学启发的算法,非常适合图像/信号预处理。虽然提出了几种模拟实现方式,但我们建议在现有环境中使用数字化实现方式,即适配处理器系统(CNAPS)的连接网络。其原因有两个。首先,CNAPS是一种可商购的芯片,已用于多种神经网络实现。其次,在几乎所有应用程序中,PCNN都是系统中非常高效的组件,需要后续和额外的处理。这可以包括门控,傅立叶变换,神经分类器,数据挖掘等,带有或不带有对PCNN的反馈。

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