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AstroByte: Multi-FPGA Architecture for Accelerated Simulations of Spiking Astrocyte Neural Networks

机译:AstroByte:用于加速星形胶质细胞神经网络仿真的多FPGA体系结构

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Spiking astrocyte neural networks (SANN) are a new computational paradigm that exhibit enhanced self-adapting and reliability properties. The inclusion of astrocyte behaviour increases the computational load and critically the number of connections, where each astrocyte typically communicates with up to 9 neurons (and their associated synapses) with feedback pathways from each neuron to the astrocyte. Each astrocyte cell also communicates with its neighbouring cell resulting in a significant interconnect density. The substantial level of parallelisms in SANNs lends itself to acceleration in hardware, however, the challenge in accelerating simulations of SANNs firmly resides in scalable interconnect and the ability to inject and retrieve data from the hardware. This paper presents a novel multi-FPGA acceleration architecture, AstroByte, for the speedup of SANNs. AstroByte explores Networks-on-Chip (NoC) routing mechanisms to address the challenge of communicating both spike event (neuron data) and numeric (astrocyte data) across significant interconnect pathways between astrocytes and neurons. AstroByte also exploits the NoC interconnect to inject data and retrieve runtime data from the accelerated SANN simulations. Results show that AstroByte can simulate SANN applications with speedup factors of between xl62 -xl88 over Matlab equivalent simulations.
机译:尖刺星形胶质细胞神经网络(SANN)是一种新型的计算范例,具有增强的自适应性和可靠性。包含星形胶质细胞的行为会增加计算量,并严重增加连接的数量,其中每个星形胶质细胞通常与多达9个神经元(及其相关的突触)进行通讯,并具有从每个神经元到星形胶质细胞的反馈路径。每个星形胶质细胞还与其相邻细胞通讯,从而导致显着的互连密度。 SANN中大量的并行性有助于硬件的加速,但是,加速SANN仿真的挑战坚定地在于可扩展的互连以及从硬件中插入和检索数据的能力。本文提出了一种新颖的多FPGA加速架构AstroByte,以提高SANN的速度。 AstroByte探索了片上网络(NoC)路由机制,以解决在星形胶质细胞与神经元之间的重要互连通路之间传递尖峰事件(神经元数据)和数字(星形细胞数据)的挑战。 AstroByte还利用NoC互连从加速的SANN仿真中注入数据并检索运行时数据。结果表明,与Matlab等效模拟相比,AstroByte可以以xl62 -xl88之间的加速因子来模拟SANN应用程序。

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