Tremor Identification Using Machine Learning in Parkinson's Disease

Angana Saikia, Vinayak Majhi, Masaraf Hussain, S. Paul, A. Datta
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引用次数: 4

Abstract

Tremor is an involuntary quivering movement or shake. Characteristically occurring at rest, the classic slow, rhythmic tremor of Parkinson's disease (PD) typically starts in one hand, foot, or leg and can eventually affect both sides of the body. The resting tremor of PD can also occur in the jaw, chin, mouth, or tongue. Loss of dopamine leads to the symptoms of Parkinson's disease and may include a tremor. For some people, a tremor might be the first symptom of PD. Various studies have proposed measurable technologies and the analysis of the characteristics of Parkinsonian tremors using different techniques. Various machine-learning algorithms such as a support vector machine (SVM) with three kernels, a discriminant analysis, a random forest, and a kNN algorithm are also used to classify and identify various kinds of tremors. This chapter focuses on an in-depth review on identification and classification of various Parkinsonian tremors using machine learning algorithms.
机器学习在帕金森病中的震颤识别
震颤是一种不自觉的颤抖或摇动。帕金森氏症(PD)的典型症状是在休息时发生的缓慢、有节奏的震颤,通常从一只手、一只脚或一条腿开始,最终会影响身体两侧。PD的静息性震颤也可发生在下颚、下巴、口腔或舌头。多巴胺的缺失会导致帕金森病的症状,可能包括震颤。对一些人来说,震颤可能是帕金森病的第一个症状。各种研究提出了可测量的技术,并使用不同的技术分析帕金森震颤的特征。各种机器学习算法,如三核支持向量机(SVM)、判别分析、随机森林和kNN算法也被用于分类和识别各种类型的地震。本章着重于利用机器学习算法对各种帕金森震颤的识别和分类进行深入的回顾。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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