Weighted Spiking Neural P Systems with Structural Plasticity Working in Maximum Spiking Strategy

Mingming Sun, Jianhua Qu
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引用次数: 2

Abstract

Spiking neural P systems(in short, SNP systems) are parallel and distributed computing devices inspired by the function and structure of spiking neurons. Recently, a new variant of SNP systems, called SNP systems with structural plasticity(in short, SNPSP systems) was introduced. In SNPSP systems, neuron can use plasticity rules to create and delete synapses. In this work, we consider many restrictions sequentiality on SNPSP systems:(i)we use the weighted synapses,(ii)neuron with the maximum number of spikes is chosen to fire. Specifically, We investigate the computational power of weighted SNPSP systems working in maximum spiking strategy(in short, WSNPSPM systems) and we proved that such SNPSP systems are universal as generating devices and accepting devices.
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具有结构可塑性的最大峰值策略加权峰值神经系统
脉冲神经P系统(简称SNP系统)是受脉冲神经元功能和结构启发的并行和分布式计算设备。最近,一种新的SNP系统被引入,称为具有结构可塑性的SNP系统(简称SNPSP系统)。在SNPSP系统中,神经元可以使用可塑性规则来创建和删除突触。在这项工作中,我们考虑了SNPSP系统的许多限制顺序:(i)我们使用加权突触,(ii)选择具有最大尖峰数的神经元来激发。具体来说,我们研究了在最大尖峰策略下工作的加权SNPSP系统(简称WSNPSPM系统)的计算能力,并证明了这种SNPSP系统作为产生设备和接收设备是通用的。
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