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Global multistability and analog circuit implementation of an adapting synapse-based neuron model

机译:全局多工和基于适应突触的神经元模型的模拟电路实现

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Generally, neural networks involve the change with time of the neuron activities and that in strength of the synapses between neurons. This paper investigates the global multistability and analog circuit implementation of a two-dimensional adapting synapse-based neuron model in depth. The neuron model is non-autonomous and possesses periodically switchable equilibrium states associated with the externally imposed input closely. In every full periodic cycle of the input, the equilibrium stability has complex dynamical transitions between stable and unstable points via Hopf/fold bifurcations, resulting in the emergence of the global multistability that was not yet reported previously. Complex dynamics of the global coexisting multiple firing activities are demonstrated by multiple numerical measures, such as bifurcation plot, dynamical map, phase plane plot, and basin of attraction. Furthermore, an off-the-shelf discrete component-based circuit design is optimized to implement the neuron model and the outputs agree with the numerical results well.
机译:通常,神经网络涉及随着神经元活性的时间而变化,并且在神经元之间的突触的强度。本文调查了深度基于三维适应突触的神经元模型的全局多工和模拟电路实现。神经元模型是非自主的,并且具有与外部施加的输入相关的定期可切换的平衡状态。在输入的每个完整的周期周期中,通过HOPF /折叠分叉的稳定和不稳定点之间的平衡稳定性具有复杂的动态转变,从而产生了以前尚未报道的全局多重性的出现。通过多种数值措施,例如分叉绘图,动态地图,相平面图和吸引力盆地等多种数值措施来证明全局共存多次射击活动的复杂动态。此外,优化了基于离散的基于分量的基于分量的电路设计,以实现神经元模型,并且输出与数值结果相加。

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