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Efficient Implementation of Cerebellar Purkinje Cell With the CORDIC Algorithm on LaCSNN

机译:LaCSNN上用CORDIC算法有效实现小脑Purkinje细胞

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摘要

Purkinje cell is an important neuron for the cerebellar information processing. In this work, we present an efficient implementation of a cerebellar Purkinje model using the Coordinate Rotation Digital Computer (CORDIC) algorithm and implement it on a Large-Scale Conductance-Based Spiking Neural Networks (LaCSNN) system with cost-efficient multiplier-less methods, which are more suitable for large-scale neural networks. The CORDIC-based Purkinje model has been compared with the original model in terms of the voltage activities, dynamic mechanisms, precision, and hardware resource utilization. The results show that the CORDIC-based Purkinje model can reproduce the same biological activities and dynamical mechanisms as the original model with slight deviation. In the aspect of the hardware implementation, it can use only logic resources, so it provides an efficient way for maximizing the FPGA resource utilization, thereby expanding the scale of neural networks that can be implemented on FPGAs.
机译:浦肯野细胞是小脑信息处理的重要神经元。在这项工作中,我们提出了使用坐标旋转数字计算机(CORDIC)算法有效实现小脑Purkinje模型的方法,并通过具有成本效益的无乘子方法在大规模基于电导的尖峰神经网络(LaCSNN)系统上实现该模型,更适合于大型神经网络。基于CORDIC的Purkinje模型已在电压活动,动态机制,精度和硬件资源利用率方面与原始模型进行了比较。结果表明,基于CORDIC的Purkinje模型可以再现与原始模型相同的生物活性和动力学机制,但有少许偏差。在硬件实现方面,它只能使用逻辑资源,因此它提供了一种最大化FPGA资源利用率的有效方法,从而扩展了可以在FPGA上实现的神经网络的规模。

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