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Real-Time Spiking Neural Network: An Adaptive Cerebellar Model

机译:实时尖峰神经网络:自适应小脑模型

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A spiking neural network modeling the cerebellum is presented. The model, consisting of more than 2000 conductance-based neurons and more than 50 000 synapses, runs in real-time on a dual-processor computer. The model is implemented on an event-driven spiking neural network simulator with table-based conductance and voltage computations. The cerebellar model interacts every millisecond with a time-driven simulation of a simple environment in which adaptation experiments are setup. Learning is achieved in real-time using spike time dependent plasticity rules, which drive synaptic weight changes depending on the neurons activity and the timing in the spiking representation of an error signal. The cerebellar model is tested on learning to continuously predict a target position moving along periodical trajectories. This setup reproduces experiments with primates learning the smooth pursuit of visual targets on a screen. The model learns effectively and concurrently different target trajectories. This is true even though the spiking rate of the error representation is very low, reproducing physiological conditions. Hence, we present a complete physiologically relevant spiking cerebellar model that runs and learns in real-time in realistic conditions reproducing psychophysical experiments. This work was funded in part by the EC SpikeFORCE project (IST-2001-35271, www.spikeforce.org).
机译:提出了一个小脑的尖刺神经网络模型。该模型由2000多个基于电导的神经元和50000多个突触组成,可在双处理器计算机上实时运行。该模型在事件驱动的尖峰神经网络模拟器上实现,该模拟器具有基于表的电导和电压计算。小脑模型每毫秒与一个简单环境的时间驱动模拟进行交互,在该环境中设置了适应性实验。使用依赖于尖峰时间的可塑性规则实时实现学习,可塑性规则根据神经元活动和错误信号的尖峰表示中的时间来驱动突触重量变化。在学习以连续预测沿着周期性轨迹移动的目标位置的过程中,对小脑模型进行了测试。此设置可重现灵长类动物的实验,从而学习他们在屏幕上对视觉目标的平稳追求。该模型可以有效并同时学习不同的目标轨迹。即使错误表示的尖峰率非常低,也会重现生理条件,这是正确的。因此,我们提出了一个完整的生理相关的尖峰小脑模型,该模型可以在现实条件下实时运行和学习,从而再现心理生理实验。这项工作部分由EC SpikeFORCE项目(IST-2001-35271,www.spikeforce.org)资助。

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