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基于 FPGA 的大规模 STN-GPe 网络实时仿真平台。

FPGA-Based Real-Time Simulation Platform for Large-Scale STN-GPe Network.

出版信息

IEEE Trans Neural Syst Rehabil Eng. 2020 Nov;28(11):2537-2547. doi: 10.1109/TNSRE.2020.3027546. Epub 2020 Nov 6.

Abstract

The real-time simulation of large-scale subthalamic nucleus (STN)-external globus pallidus (GPe) network model is of great significance for the mechanism analysis and performance improvement of deep brain stimulation (DBS) for Parkinson's states. This paper implements the real-time simulation of a large-scale STN-GPe network containing 512 single-compartment Hodgkin-Huxley type neurons on the Altera Stratix IV field programmable gate array (FPGA) hardware platform. At the single neuron level, some resource optimization schemes such as multiplier substitution, fixed-point operation, nonlinear function approximation and function recombination are adopted, which consists the foundation of the large-scale network realization. At the network level, the simulation scale of network is expanded using module reuse method at the cost of simulation time. The correlation coefficient between the neuron firing waveform of the FPGA platform and the MATLAB software simulation waveform is 0.9756. Under the same physiological time, the simulation speed of FPGA platform is 75 times faster than the Intel Core i7-8700K 3.70 GHz CPU 32GB RAM computer simulation speed. In addition, the established platform is used to analyze the effects of temporal pattern DBS on network firing activities. The proposed large-scale STN-GPe network meets the need of real time simulation, which would be rather helpful in designing closed-loop DBS improvement strategies.

摘要

大规模丘脑底核(STN)-外苍白球(GPe)网络模型的实时仿真对于分析深部脑刺激(DBS)治疗帕金森状态的机制和提高其性能具有重要意义。本文在 Altera Stratix IV 现场可编程门阵列(FPGA)硬件平台上实现了包含 512 个单室 Hodgkin-Huxley 型神经元的大规模 STN-GPe 网络的实时仿真。在单神经元水平上,采用乘法器替换、定点运算、非线性函数逼近和函数组合等资源优化方案,为大规模网络的实现奠定了基础。在网络水平上,通过模块复用方法扩展了网络的仿真规模,以牺牲仿真时间为代价。FPGA 平台上神经元放电波形与 MATLAB 软件仿真波形的相关系数为 0.9756。在相同的生理时间内,FPGA 平台的仿真速度比 Intel Core i7-8700K 3.70GHz CPU 32GB RAM 计算机的仿真速度快 75 倍。此外,该平台还用于分析时变模式 DBS 对网络放电活动的影响。所提出的大规模 STN-GPe 网络满足实时仿真的需要,这对于设计闭环 DBS 改进策略非常有帮助。

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