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Evaluation of Parkinson’s Disease at Home: Predicting Tremor from Wearable Sensors

机译:评估家庭帕金森病:预测可穿戴传感器的震颤

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The continuous monitoring of Parkinsons’s disease (PD) symptoms would allow to automatically adjust medication or deep brain stimulation parameters to a patient’s momentary condition. Wearable sensors have been proposed to monitor PD symptoms and have been validated in a number of lab and hospital settings. However, taking these sensors into the daily life of patients introduces a number of difficulties, most notably the absence of an observable ground truth of what the user is currently doing.In this pilot study, we investigate PD symptoms by combining wearable sensors on both wrist and the chest with a questionnaire based evaluation of PD symptoms, in the form of experience sampling method. For a tremor dominant patient, we show that experienced tremor severity can be predicted from the sensor data with correlations of up to r = 0.43. We evaluated different window lengths to calculate the features in and see better results for longer window lengths. Our results show that continuous monitoring of PD symptoms in daily life is feasible using wearable sensors.
机译:帕金森病(PD)症状的不断监测允许自动将药物或深脑刺激参数自动调整为患者的瞬间状态。已经提出了可穿戴传感器来监测PD症状,并已在许多实验室和医院设置中验证。然而,将这些传感器带入患者的日常生活引入了许多困难,最值得注意的是用户目前正在做什么的可观察结果。在该试点研究中,我们通过在两名手腕上组合可穿戴传感器来调查PD症状和胸部有基于问卷的PD症状评估,以体验采样方法的形式。对于震颤的主导患者,我们表明,可以从传感器数据预测经验丰富的震颤严重性,其相关性达到r = 0.43。我们评估了不同的窗口长度,以计算更好的窗口长度的功能,并看到更好的窗口长度。我们的研究结果表明,使用可穿戴传感器的日常生活中Pd症状的连续监测是可行的。

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