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Classification of Essential Tremor and Parkinson’s Tremor Based on a Low-Power Wearable Device

机译:基于低功耗可穿戴设备的基本震颤和帕金森的分类

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摘要

Among movement disorders, essential tremor is by far the most common, as much as eight times more prevalent than Parkinson’s disease. Although these two conditions differ in their presentation and course, clinicians do not always recognize them, leading to common misdiagnoses. Proper and early diagnosis is important for receiving the right treatment and support. In this paper, the development of a portable and reliable tremor classification system based on a wearable device, enabling clinicians to differentiate between essential tremor and Parkinson’s disease-associated one, is reported. Inertial data were collected from subjects with a well-established diagnosis of tremor, and analyzed to extract different sets of relevant spectral features. Supervised learning methods were then applied to build several classification models, among which the best ones achieved an average accuracy above 90%. Results encourage the use of wearable technology as effective and affordable tools to support clinicians.
机译:其中运动障碍,特发性震颤是目前最常见的,高达八倍帕金森氏病更普遍。虽然这两个条件在他们的表现和病程不同,临床医生并不总是认出来,从而导致误诊常见。正确和早期诊断是接受正确的治疗和支持非常重要。在本文中,基于可穿戴设备上的便携和可靠的震颤分类系统,使临床医师原发性震颤和帕金森氏症相关的一个区分的发展报告。惯性数据是从受试者收集与震颤的行之有效的诊断,并进行分析,以提取不同组的相关的光谱特征。然后监督学习方法应用于多建几个分类模型,其中以最好的达到90%以上的平均精度。结果鼓励使用可穿戴技术的有效和负担得起的工具来支持临床医生。

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