Towards real-time neuronal connectivity assessment: A scalable pipelined parallel generalized partial directed coherence engine

G. Georgis, Georgios Menoutis, D. Reisis, K. Tsakalis, A. B. Shafique
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引用次数: 1

Abstract

The current paper introduces a real-time architecture for the computation of the Generalized Partial Directed Coherence (GPDC) of multiple signals. The motivating application is the localization and control of epileptic seizures where hitherto published results shown the effectiveness of exploiting Generalized Partial Directed Coherence to quantify and analyse connectivity and interaction of brain structures. To speed up GPDC computations we develop first, a parallelizing strategy leading to the high performance scalable architecture and second, a low-complexity fixed-point reciprocal square root module. We show that a real-time computation is feasible at a speed of 0.027ms for 16 channels and 1.637ms for 128 channels. Furthermore, the implementation results on Xilinx 7A35T, KC705, VC707, KU115 show that the power requirements are quite modest and allow for the embedded application of the engine.
迈向实时神经元连通性评估:一个可扩展的流水线并行广义部分定向相干引擎
本文介绍了一种用于多信号广义部分定向相干(GPDC)计算的实时体系结构。激励应用是癫痫发作的定位和控制,迄今为止发表的结果表明,利用广义部分定向相干性来量化和分析大脑结构的连通性和相互作用是有效的。为了加快GPDC的计算速度,我们首先开发了一种并行化策略,从而实现高性能的可扩展架构,其次开发了一种低复杂度的定点倒数平方根模块。我们表明,实时计算是可行的,速度为0.027ms 16通道和1.637ms 128通道。此外,在Xilinx 7A35T、KC705、VC707、KU115上的实现结果表明,该引擎的功率要求相当适中,可以实现嵌入式应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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