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使用可穿戴传感器检测和预测帕金森病患者的冻结步态。

Detection and prediction of freezing of gait with wearable sensors in Parkinson's disease.

机构信息

Department of Neurology, Suining County People's Hospital, Xuzhou, 221200, Jiangsu, China.

Department of Neurology, Neurobiology and Geriatrics, Beijing Institute of Geriatrics, Xuanwu Hospital of Capital Medical University, Beijing, 100053, China.

出版信息

Neurol Sci. 2024 Feb;45(2):431-453. doi: 10.1007/s10072-023-07017-y. Epub 2023 Oct 16.

Abstract

Freezing of gait (FoG) is one of the most distressing symptoms of Parkinson's Disease (PD), commonly occurring in patients at middle and late stages of the disease. Automatic and accurate FoG detection and prediction have emerged as a promising tool for long-term monitoring of PD and implementation of gait assistance systems. This paper reviews the recent development of FoG detection and prediction using wearable sensors, with attention on identifying knowledge gaps that need to be filled in future research. This review searched the PubMed and Web of Science databases to collect studies that detect or predict FoG with wearable sensors. After screening, 89 of 270 articles were included. The data description, extracted features, detection/prediction methods, and classification performance were extracted from the articles. As the number of papers of this area is increasing, the performance has been steadily improved. However, small datasets and inconsistent evaluation processes still hinder the application of FoG detection and prediction with wearable sensors in clinical practice.

摘要

冻结步态(Freezing of gait,FoG)是帕金森病(Parkinson's Disease,PD)最令人痛苦的症状之一,常见于疾病中晚期患者。自动且准确的 FoG 检测和预测已成为 PD 长期监测和步态辅助系统实施的有前途的工具。本文综述了使用可穿戴传感器进行 FoG 检测和预测的最新进展,重点关注确定未来研究中需要填补的知识空白。本综述在 PubMed 和 Web of Science 数据库中搜索了使用可穿戴传感器检测或预测 FoG 的研究。经过筛选,270 篇文章中有 89 篇被纳入。从文章中提取了数据描述、提取的特征、检测/预测方法和分类性能。由于该领域的论文数量不断增加,性能也在稳步提高。然而,小数据集和不一致的评估过程仍然阻碍了可穿戴传感器在临床实践中进行 FoG 检测和预测的应用。

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