基于具有约瑟夫森结的尖峰神经元的磁通量传感器

Timur I. Karimov, Valerii Ostrovskii, V. Rybin, O. Druzhina, Georgii Y. Kolev, D. Butusov
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引用次数: 0

摘要

约瑟夫森结(JJ)是一种基于超导体的器件,用于制造高灵敏度的磁通量传感器,称为超导量子干涉器件(SQUID)。这些传感器的设计各不相同,有射频(RF)SQUID、直流(DC)SQUID 和混合型,如 D-SQUID。此外,最近发现 JJ 的许多应用都是在神经元的尖峰模型中,表现出近乎生物学的行为。在本研究中,我们提出并研究了一种基于直流 SQUID 作为电路一部分的新感觉神经元电路模型。研究证明了所设计模型的动态特性与外部磁通量的关系。文中给出了电路设计以及描述系统动态的相应微分方程的推导。数值模拟用于实验评估。实验结果证实了所提出的磁通量敏感神经元概念的适用性和良好性能:所考虑的装置能够以神经元动态的线性部分形式对磁通量进行编码。此外,在模型中还发现了一些复杂行为,即间歇性混沌尖峰和高原猝发。所提出的设计可以有效地应用于开发电路和尖峰神经网络之间的接口。不过,应该注意的是,所提出的神经元设计与所有基于超导体的技术一样,都有一个主要的局限性,即需要一个低温和屏蔽系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Magnetic Flux Sensor Based on Spiking Neurons with Josephson Junctions
Josephson junctions (JJs) are superconductor-based devices used to build highly sensitive magnetic flux sensors called superconducting quantum interference devices (SQUIDs). These sensors may vary in design, being the radio frequency (RF) SQUID, direct current (DC) SQUID, and hybrid, such as D-SQUID. In addition, recently many of JJ’s applications were found in spiking models of neurons exhibiting nearly biological behavior. In this study, we propose and investigate a new circuit model of a sensory neuron based on DC SQUID as part of the circuit. The dependence of the dynamics of the designed model on the external magnetic flux is demonstrated. The design of the circuit and derivation of the corresponding differential equations that describe the dynamics of the system are given. Numerical simulation is used for experimental evaluation. The experimental results confirm the applicability and good performance of the proposed magnetic-flux-sensitive neuron concept: the considered device can encode the magnetic flux in the form of neuronal dynamics with the linear section. Furthermore, some complex behavior was discovered in the model, namely the intermittent chaotic spiking and plateau bursting. The proposed design can be efficiently applied to developing the interfaces between circuitry and spiking neural networks. However, it should be noted that the proposed neuron design shares the main limitation of all the superconductor-based technologies, i.e., the need for a cryogenic and shielding system.
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