A GPU-based computational framework that bridges neuron simulation and artificial intelligence

Author:

Zhang YichenORCID,He GanORCID,Ma LeiORCID,Liu Xiaofei,Hjorth J. J. Johannes,Kozlov Alexander,He Yutao,Zhang Shenjian,Kotaleski Jeanette HellgrenORCID,Tian YonghongORCID,Grillner StenORCID,Du KaiORCID,Huang TiejunORCID

Abstract

AbstractBiophysically detailed multi-compartment models are powerful tools to explore computational principles of the brain and also serve as a theoretical framework to generate algorithms for artificial intelligence (AI) systems. However, the expensive computational cost severely limits the applications in both the neuroscience and AI fields. The major bottleneck during simulating detailed compartment models is the ability of a simulator to solve large systems of linear equations. Here, we present a novel Dendritic Hierarchical Scheduling (DHS) method to markedly accelerate such a process. We theoretically prove that the DHS implementation is computationally optimal and accurate. This GPU-based method performs with 2-3 orders of magnitude higher speed than that of the classic serial Hines method in the conventional CPU platform. We build a DeepDendrite framework, which integrates the DHS method and the GPU computing engine of the NEURON simulator and demonstrate applications of DeepDendrite in neuroscience tasks. We investigate how spatial patterns of spine inputs affect neuronal excitability in a detailed human pyramidal neuron model with 25,000 spines. Furthermore, we provide a brief discussion on the potential of DeepDendrite for AI, specifically highlighting its ability to enable the efficient training of biophysically detailed models in typical image classification tasks.

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. DendroTweaks: An interactive approach for unraveling dendritic dynamics;2024-09-10

2. Towards human-leveled vision systems;Science China Technological Sciences;2024-07-30

3. Brain-Inspired Computing: A Systematic Survey and Future Trends;Proceedings of the IEEE;2024-06

4. Research on General-Purpose Brain-Inspired Computing Systems;Journal of Computer Science and Technology;2024-01-30

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