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Parallelization of an Algorithm for Automatic Classification of Medical Data

机译:医学数据自动分类算法的并行化

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In this paper, we present the optimization and parallelization of a state-of-the-art algorithm for automatic classification, in order to perform realtime classification of clinical data. The parallelization has been carried out so that the algorithm can be used in real time in standard computers, or in high performance computing servers. The fastest versions have been obtained carrying out most of the computations in Graphics Processing Units (GPUs). The algorithms obtained have been tested in a case of automatic classification of electroencephalographic signals from patients.
机译:在本文中,我们提出了一种用于自动分类的最新算法的优化和并行化,以执行临床数据的实时分类。已经执行了并行化,以便可以在标准计算机或高性能计算服务器中实时使用该算法。已经获得最快的版本,可以在图形处理单元(GPU)中执行大多数计算。在对患者的脑电图信号进行自动分类的情况下,对所获得的算法进行了测试。

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