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实施用于通过机器学习确定特发性震颤深部脑刺激治疗效果的智能手机无线加速度计平台。

Implementation of a smartphone wireless accelerometer platform for establishing deep brain stimulation treatment efficacy of essential tremor with machine learning.

作者信息

LeMoyne Robert, Tomycz Nestor, Mastroianni Timothy, McCandless Cyrus, Cozza Michael, Peduto David

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2015;2015:6772-5. doi: 10.1109/EMBC.2015.7319948.

Abstract

Essential tremor (ET) is a highly prevalent movement disorder. Patients with ET exhibit a complex progressive and disabling tremor, and medical management often fails. Deep brain stimulation (DBS) has been successfully applied to this disorder, however there has been no quantifiable way to measure tremor severity or treatment efficacy in this patient population. The quantified amelioration of kinetic tremor via DBS is herein demonstrated through the application of a smartphone (iPhone) as a wireless accelerometer platform. The recorded acceleration signal can be obtained at a setting of the subject's convenience and conveyed by wireless transmission through the Internet for post-processing anywhere in the world. Further post-processing of the acceleration signal can be classified through a machine learning application, such as the support vector machine. Preliminary application of deep brain stimulation with a smartphone for acquisition of a feature set and machine learning for classification has been successfully applied. The support vector machine achieved 100% classification between deep brain stimulation in on' and off' mode based on the recording of an accelerometer signal through a smartphone as a wireless accelerometer platform.

摘要

特发性震颤(ET)是一种高度常见的运动障碍。ET患者表现出复杂的进行性致残性震颤,药物治疗往往无效。深部脑刺激(DBS)已成功应用于该疾病,然而,尚无量化方法来测量该患者群体的震颤严重程度或治疗效果。本文通过将智能手机(iPhone)用作无线加速度计平台,展示了通过DBS对运动性震颤进行量化改善的方法。记录的加速度信号可以在受试者方便的环境下获取,并通过无线传输经互联网传送到世界任何地方进行后期处理。加速度信号的进一步后期处理可通过机器学习应用程序(如支持向量机)进行分类。利用智能手机进行深部脑刺激以获取特征集并通过机器学习进行分类的初步应用已获成功。基于通过智能手机作为无线加速度计平台记录的加速度计信号,支持向量机在深部脑刺激的“开启”和“关闭”模式之间实现了100%的分类。

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