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GPU Accelerated Browser for Neuroimaging Genomics

机译:GPU加速浏览器的神经影像学基因组学

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Neuroimaging genomics is an emerging field that provides exciting opportunities to understand the genetic basis of brain structure and function. The unprecedented scale and complexity of the imaging and genomics data, however, have presented critical computational bottlenecks. In this work we present our initial efforts towards building an interactive visual exploratory system for mining big data in neuroimaging genomics. A GPU accelerated browsing tool for neuroimaging genomics is created that implements the ANOVA algorithm for single nucleotide polymorphism (SNP) based analysis and the VEGAS algorithm for gene-based analysis, and executes them at interactive rates. The ANOVA algorithm is 110 times faster than the 4-core OpenMP version, while the VEGAS algorithm is 375 times faster than its 4-core OpenMP counter part. This approach lays a solid foundation for researchers to address the challenges of mining large-scale imaging genomics datasets via interactive visual exploration.
机译:神经影像学基因组学是一种新兴领域,提供了理解脑结构和功能的遗传基础的令人兴奋的机会。 然而,成像和基因组学数据的前所未有的规模和复杂性呈现了关键的计算瓶颈。 在这项工作中,我们展示了建立在神经影像学基因组学中挖掘大数据的交互式视觉探索系统的最初努力。 产生用于神经影像学基因组学的GPU加速浏览工具,其实现了基于单核苷酸多态性(SNP)的分析和基于基因分析的VEGAS算法的ANOVA算法,并以交互式速率执行它们。 ANOVA算法比4核OpenMP版本快110倍,而Vegas算法比其4核OpenMP计数器部分快375倍。 这种方法为研究人员奠定了坚实的基础,通过交互式视觉探索解决了挖掘大型成像基因组学数据集的挑战。

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