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步态监测与分析:一种数学方法。

Gait Monitoring and Analysis: A Mathematical Approach.

作者信息

Canonico Massimo, Desimoni Francesco, Ferrero Alberto, Grassi Pietro Antonio, Irwin Christopher, Campani Daiana, Dal Molin Alberto, Panella Massimiliano, Magistrelli Luca

机构信息

Department of Sciences and Technological Innovation, University of Piemonte Orientale, 15121 Alessandria, Italy.

Department of Translational Medicine, Università del Piemonte Orientale, 28100 Novara, Italy.

出版信息

Sensors (Basel). 2023 Sep 7;23(18):7743. doi: 10.3390/s23187743.

Abstract

Gait abnormalities are common in the elderly and individuals diagnosed with Parkinson's, often leading to reduced mobility and increased fall risk. Monitoring and assessing gait patterns in these populations play a crucial role in understanding disease progression, early detection of motor impairments, and developing personalized rehabilitation strategies. In particular, by identifying gait irregularities at an early stage, healthcare professionals can implement timely interventions and personalized therapeutic approaches, potentially delaying the onset of severe motor symptoms and improving overall patient outcomes. In this paper, we studied older adults affected by chronic diseases and/or Parkinson's disease by monitoring their gait due to wearable devices that can accurately detect a person's movements. In our study, about 50 people were involved in the trial (20 with Parkinson's disease and 30 people with chronic diseases) who have worn our device for at least 6 months. During the experimentation, each device collected 25 samples from the accelerometer sensor for each second. By analyzing those data, we propose a metric for the "gait quality" based on the measure of entropy obtained by applying the Fourier transform.

摘要

步态异常在老年人和被诊断患有帕金森病的个体中很常见,常常导致行动能力下降和跌倒风险增加。在这些人群中监测和评估步态模式对于理解疾病进展、早期发现运动障碍以及制定个性化康复策略起着至关重要的作用。特别是,通过在早期阶段识别步态异常,医疗保健专业人员可以实施及时的干预措施和个性化治疗方法,有可能延迟严重运动症状的发作并改善患者的总体预后。在本文中,我们通过可准确检测人体运动的可穿戴设备监测受慢性疾病和/或帕金森病影响的老年人的步态。在我们的研究中,约50人参与了试验(20名帕金森病患者和30名慢性病患者),他们佩戴我们的设备至少6个月。在实验过程中,每个设备每秒从加速度计传感器收集25个样本。通过分析这些数据,我们基于应用傅里叶变换获得的熵度量提出了一种“步态质量”指标。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e501/10536663/357ff85b8e2b/sensors-23-07743-g001.jpg

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