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A Temporal Signal-Processing Circuit Based on Spiking Neuron and Synaptic Learning

机译:基于尖峰神经元和突触学习的时间信号处理电路

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摘要

Time is a continuous, homogeneous, one-way, and independent signal that cannot be modified by human will. The mechanism of how the brain processes temporal information remains elusive. According to previous work, time-keeping in medial premotor cortex (MPC) is governed by four kinds of ramp cell populations (Merchant et al., ). We believe that these cell populations participate in temporal information processing in MPC. Hence, in this the present study, we present a model that uses spiking neuron, including these cell populations, to construct a complete circuit for temporal processing. By combining the time-adaptive drift-diffusion model (TDDM) with the transmission of impulse information between neurons, this new model is able to successfully reproduce the result of synchronization-continuation tapping task (SCT). We also discovered that the neurons that we used exhibited some of the firing properties of time-related neurons detected by electrophysiological experiments in other studies. Therefore, we believe that our model reflects many of the physiological of neural circuits in the biological brain and can explain some of the phenomena in the temporal-perception process.
机译:时间是一种连续的,同质的,单向的,独立的信号,无法被人类的意志所改变。大脑如何处理时间信息的机制仍然难以捉摸。根据以前的工作,内侧前运动皮层(MPC)中的时间保持由四种斜坡细胞群体控制(Merchant等,)。我们相信这些细胞群体参与MPC中的时间信息处理。因此,在本研究中,我们提出了一个使用尖峰神经元(包括这些细胞群体)的模型来构建用于时态处理的完整电路。通过将时间自适应漂移扩散模型(TDDM)与神经元之间的冲动信息的传输相结合,该新模型能够成功重现同步-持续攻丝任务(SCT)的结果。我们还发现,我们使用的神经元表现出了在其他研究中通过电生理实验检测到的与时间相关的神经元的放电特性。因此,我们认为我们的模型反映了生物大脑中神经回路的许多生理特性,并且可以解释时态感知过程中的某些现象。

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