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Modeling and characterization of signals recorded in basal ganglia of Parkinson's disease patients

机译:帕金森氏病患者基底神经节中记录的信号的建模和表征

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摘要

This paper shows the results of the analysis, characterization and modeling of basal ganglia intracerebral signals recorded during surgical intervention of patients with Parkinson's disease (PD). Statistical tests are used, both graphical and numerical analysis of normality and stationarity of signals sampled at varying time windows (0.5 s, 1 s, 2 s, 3 s, 4 s and 5 s). Subsequently characterization is performed in the frequency domain, obtaining values of local coherence for different windows, thereby allowing identifying of a suitable temporal window to perform parametric modeling through both linear and nonlinear approaches. Linear and nonlinear parametric models have been tested with lower orders than 20, finding that AR (13) model satisfies Akaike Information Criterion (AIC) and minimum computational work.
机译:本文显示了对帕金森病(PD)病人进行手术干预期间记录的基底神经节脑内信号的分析,表征和建模结果。使用统计测试,对在不同时间窗口(0.5 s,1 s,2 s,3 s,4 s和5 s)采样的信号的正态性和平稳性进行图形和数值分析。随后在频域中进行表征,获得不同窗口的局部相干值,从而允许确定合适的时间窗口以通过线性和非线性方法进行参数化建模。已对线性和非线性参数模型进行了低于20的测试,发现AR(13)模型满足Akaike信息准则(AIC)和最少的计算工作。

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