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Sparse representation of MER signals for localizing the Subthalamic Nucleus in Parkinson's disease surgery

机译:帕金森氏病手术中MER信号稀疏表示丘脑下丘脑核

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Deep brain stimulation (DBS) of Subthalamic Nucleus (STN) is the best method for treating advanced Parkinson's disease (PD), leading to striking improvements in motor function and quality of life of PD patients. During DBS, online analysis of microelectrode recording (MER) signals is a powerful tool to locate the STN. Therapeutic outcomes depend of a precise positioning of a stimulator device in the target area. In this paper, we show how a sparse representation of MER signals allows to extract discriminant features, improving the accuracy in identification of STN. We apply three techniques for over-complete representation of signals: Method of Frames (MOF), Best Orthogonal Basis (BOB) and Basis Pursuit (BP). All the techniques are compared to classical methods for signal processing like Wavelet Transform (WT), and a more sophisticated method known as adaptive Wavelet with lifting schemes (AW-LS). We apply each processing method in two real databases and we evaluate its performance with simple supervised classifiers. Classification outcomes for MOF, BOB and BP clearly outperform WT and AW-LF in all classifiers for both databases, reaching accuracy values over 98%.
机译:丘脑底核(STN)的深部脑刺激(DBS)是治疗晚期帕金森氏病(PD)的最佳方法,可显着改善PD患者的运动功能和生活质量。在DBS期间,在线分析微电极记录(MER)信号是定位STN的强大工具。治疗结果取决于刺激装置在目标区域的精确定位。在本文中,我们展示了MER信号的稀疏表示如何允许提取判别特征,从而提高了STN识别的准确性。我们将三种技术用于信号的完全表示:帧方法(MOF),最佳正交基础(BOB)和基础追求(BP)。将所有技术与经典的信号处理方法(如小波变换(WT))和更复杂的方法(带有提升方案的自适应小波(AW-LS))进行了比较。我们将每种处理方法应用于两个真实的数据库中,并使用简单的监督分类器评估其性能。在两个数据库的所有分类器中,MOF,BOB和BP的分类结果均明显优于WT和AW-LF,其准确度值超过98%。

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