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Rapid geodesic mapping of brain functional connectivity: Implementation of a dedicated co-processor in a field-programmable gate array (FPGA) and application to resting state functional MRI

机译:大脑功能连通性的快速测地图:在现场可编程门阵列(FPGA)中实现专用协处理器,并将其应用于静止状态功能MRI

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Graph theory-based analyses of brain network topology can be used to model the spatiotemporal correlations in neural activity detected through fMRI, and such approaches have wide-ranging potential, from detection of alterations in preclinical Alzheimer's disease through to command identification in brain-machine interfaces. However, due to prohibitive computational costs, graph-based analyses to date have principally focused on measuring connection density rather than mapping the topological architecture in full by exhaustive shortest-path determination. This paper outlines a solution to this problem through parallel implementation of Dijkstra's algorithm in programmable logic. The processor design is optimized for large, sparse graphs and provided in full as synthesizable VHDL code. An acceleration factor between 15 and 18 is obtained on a representative resting-state fMRI dataset, and maps of Euclidean path length reveal the anticipated heterogeneous cortical involvement in long-range integrative processing. These results enable high-resolution geodesic connectivity mapping for resting-state fMRI in patient populations and real-time geodesic mapping to support identification of imagined actions for fMRI-based brain-machine interfaces.
机译:基于图论的大脑网络拓扑分析可用于对通过功能磁共振成像检测到的神经活动的时空相关性进行建模,并且这种方法具有广泛的潜力,从临床前阿尔茨海默氏病的变化检测到脑机界面的命令识别。但是,由于计算成本高昂,迄今为止,基于图的分析主要集中在测量连接密度上,而不是通过详尽的最短路径确定来完整地绘制拓扑结构。本文概述了通过在可编程逻辑中并行实现Dijkstra算法的解决方案。处理器设计针对大型稀疏图进行了优化,并以可综合的VHDL代码的形式完整提供。在代表性的静止状态fMRI数据集上获得了介于15和18之间的加速因子,并且欧几里德路径长度图揭示了预期的异质皮层参与远程整合处理。这些结果为患者群体中的静止状态功能磁共振成像提供了高分辨率的测地线连通性映射,并为基于功能磁共振成像的脑机接口的实时想象测绘提供了实时测地线映射。

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