论帕金森静息震颤信号的多尺度化及其分类

Q3 Neuroscience Advances in neurobiology Pub Date : 2024-01-01 DOI:10.1007/978-3-031-47606-8_30
Lorenzo Livi
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引用次数: 0

摘要

自相似随机过程和广泛的概率分布在自然界和许多人造系统中无处不在。大脑是(自然)复杂系统中一个特别有趣的例子,在这个系统中,这些特征发挥着举足轻重的作用。事实上,解释大脑功能的 "临界假说 "备受争议,但却得到了实验验证,这意味着相关性存在缩放规律。最近,我们对帕金森病患者记录的静止震颤速度信号进行了分析,目的是确定并利用缩放规律的存在。我们的研究结果表明,要描述此类信号的动态变化,需要多种缩放规律,这强调了潜在产生机制的复杂性。我们利用多分形去趋势波动分析程序连续提取数字特征。我们发现,这些特征可以有效区分在不同实验条件下记录的信号类别。值得注意的是,我们发现药物(L-DOPA)的使用可以被高精度识别。
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On Multiscaling of Parkinsonian Rest Tremor Signals and Their Classification.

Self-similar stochastic processes and broad probability distributions are ubiquitous in nature and in many man-made systems. The brain is a particularly interesting example of (natural) complex system where those features play a pivotal role. In fact, the controversial yet experimentally validated "criticality hypothesis" explaining the functioning of the brain implies the presence of scaling laws for correlations. Recently, we have analyzed a collection of rest tremor velocity signals recorded from patients affected by Parkinson's disease, with the aim of determining and hence exploiting the presence of scaling laws. Our results show that multiple scaling laws are required in order to describe the dynamics of such signals, stressing the complexity of the underlying generating mechanism. We successively extracted numeric features by using the multifractal detrended fluctuation analysis procedure. We found that such features can be effective for discriminating classes of signals recorded in different experimental conditions. Notably, we show that the use of medication (L-DOPA) can be recognized with high accuracy.

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来源期刊
Advances in neurobiology
Advances in neurobiology Neuroscience-Neurology
CiteScore
2.80
自引率
0.00%
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0
期刊最新文献
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