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Selection of entropy based features for the analysis of the Archimedes' spiral applied to essential tremor

机译:基于熵的特征选择,用于分析阿基米德螺旋线在基本震颤中的作用

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Biomedical systems are regulated by interacting mechanisms that operate across multiple spatial and temporal scales and produce biosignals with linear and non-linear information inside. In this sense entropy could provide a useful measure about disorder in the system, lack of information in time-series and/or irregularity of the signals. Essential tremor (ET) is the most common movement disorder, being 20 times more common than Parkinson's disease, and 50-70% of this disease cases are estimated to be genetic in origin. Archimedes spiral drawing is one of the most used standard tests for clinical diagnosis. This work, on selection of nonlinear biomarkers from drawings and handwriting, is part of a wide-ranging cross study for the diagnosis of essential tremor in BioDonostia Health Institute. Several entropy algorithms are used to generate nonlinear feayures. The automatic analysis system consists of several Machine Learning paradigms.
机译:生物医学系统由相互作用的机制调节,这些机制在多个时空尺度上运行,并在内部产生具有线性和非线性信息的生物信号。从这个意义上讲,熵可以提供有关系统混乱,时间序列信息不足和/或信号不规则性的有用度量。原发性震颤(ET)是最常见的运动障碍,是帕金森氏病的20倍,据估计有50-70%的这种病是遗传性的。阿基米德螺旋绘图是临床诊断中最常用的标准测试之一。这项工作涉及从图纸和笔迹中选择非线性生物标志物,是BioDonostia卫生研究所诊断原发性震颤的广泛交叉研究的一部分。几种熵算法用于生成非线性特征。自动分析系统由几种机器学习范例组成。

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