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1.
Front Neurosci ; 9: 409, 2015.
Artigo em Inglês | MEDLINE | ID: mdl-26578867

RESUMO

This study firstly presents (i) a novel general cellular mapping scheme for two dimensional neuromorphic dynamical systems such as bio-inspired neuron models, and (ii) an efficient mixed analog-digital circuit, which can be conveniently implemented on a hybrid memristor-crossbar/CMOS platform, for hardware implementation of the scheme. This approach employs 4n memristors and no switch for implementing an n-cell system in comparison with 2n (2) memristors and 2n switches of a Cellular Memristive Dynamical System (CMDS). Moreover, this approach allows for dynamical variables with both analog and one-hot digital values opening a wide range of choices for interconnections and networking schemes. Dynamical response analyses show that this circuit exhibits various responses based on the underlying bifurcation scenarios which determine the main characteristics of the neuromorphic dynamical systems. Due to high programmability of the circuit, it can be applied to a variety of learning systems, real-time applications, and analytically indescribable dynamical systems. We simulate the FitzHugh-Nagumo (FHN), Adaptive Exponential (AdEx) integrate and fire, and Izhikevich neuron models on our platform, and investigate the dynamical behaviors of these circuits as case studies. Moreover, error analysis shows that our approach is suitably accurate. We also develop a simple hardware prototype for experimental demonstration of our approach.

2.
IEEE Trans Neural Netw Learn Syst ; 26(1): 127-39, 2015 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-25532161

RESUMO

This paper presents a modified astrocyte model that allows a convenient digital implementation. This model is aimed at reproducing relevant biological astrocyte behaviors, which provide appropriate feedback control in regulating neuronal activities in the central nervous system. Accordingly, we investigate the feasibility of a digital implementation for a single astrocyte and a biological neuronal network model constructed by connecting two limit-cycle Hopf oscillators to an implementation of the proposed astrocyte model using oscillator-astrocyte interactions with weak coupling. Hardware synthesis, physical implementation on field-programmable gate array, and theoretical analysis confirm that the proposed astrocyte model, with considerably low hardware overhead, can mimic biological astrocyte model behaviors, resulting in desynchronization of the two coupled limit-cycle oscillators.


Assuntos
Astrócitos/fisiologia , Modelos Biológicos , Processamento de Sinais Assistido por Computador , Animais , Relógios Biológicos , Comunicação Celular , Simulação por Computador , Computadores , Eletrônica/instrumentação , Eletrônica/métodos , Rede Nervosa/fisiologia , Redes Neurais de Computação , Neurônios/fisiologia , Processamento de Sinais Assistido por Computador/instrumentação
3.
Neural Netw ; 51: 26-38, 2014 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-24365534

RESUMO

This paper presents a set of reconfigurable analog implementations of piecewise linear spiking neuron models using second generation current conveyor (CCII) building blocks. With the same topology and circuit elements, without W/L modification which is impossible after circuit fabrication, these circuits can produce different behaviors, similar to the biological neurons, both for a single neuron as well as a network of neurons just by tuning reference current and voltage sources. The models are investigated, in terms of analog implementation feasibility and costs, targeting large scale hardware implementations. Results show that, in order to gain the best performance, area and accuracy; these models can be compromised. Simulation results are presented for different neuron behaviors with CMOS 350 nm technology.


Assuntos
Computadores Analógicos , Modelos Lineares , Modelos Neurológicos , Redes Neurais de Computação , Potenciais de Ação , Simulação por Computador , Computadores , Custos e Análise de Custo , Estudos de Viabilidade , Método de Monte Carlo , Neurônios/fisiologia , Fatores de Tempo
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