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利用可穿戴技术检测步态循环中的时间协同作用。

Temporal Synergies Detection in Gait Cyclograms Using Wearable Technology.

机构信息

School of Electrical Engineering, University of Belgrade, Bulevar kralja Aleksandra 73, 11000 Belgrade, Serbia.

出版信息

Sensors (Basel). 2022 Apr 2;22(7):2728. doi: 10.3390/s22072728.

Abstract

The human gait can be described as the synergistic activity of all individual components of the sensory-motor system. The central nervous system (CNS) develops synergies to execute endpoint motion by coordinating muscle activity to reflect the global goals of the endpoint trajectory. This paper proposes a new method for assessing temporal dynamic synergies. Principal component analysis (PCA) has been applied on the signals acquired by wearable sensors (inertial measurement units, IMU and ground reaction force sensors, GRF mounted on feet) to detect temporal synergies in the space of two-dimensional PCA cyclograms. The temporal synergy results for different gait speeds in healthy subjects and stroke patients before and after the therapy were compared. The hypothesis of invariant temporal synergies at different gait velocities was statistically confirmed, without the need to record and analyze muscle activity. A significant difference in temporal synergies was noticed in hemiplegic gait compared to healthy gait. Finally, the proposed PCA-based cyclogram method provided the therapy follow-up information about paretic leg gait in stroke patients that was not available by observing conventional parameters, such as temporal and symmetry gait measures.

摘要

人类步态可以被描述为感觉运动系统所有个体成分的协同活动。中枢神经系统 (CNS) 通过协调肌肉活动来执行端点运动,以反映端点轨迹的全局目标,从而形成协同作用。本文提出了一种新的评估时间动态协同作用的方法。主成分分析 (PCA) 已应用于可穿戴传感器(惯性测量单元 (IMU) 和安装在脚部的地面反力传感器 (GRF))获取的信号,以在二维 PCA 循环图空间中检测时间协同作用。比较了健康受试者和治疗前后中风患者在不同步态速度下的时间协同作用结果。统计上证实了不同步态速度下时间协同作用不变的假设,而无需记录和分析肌肉活动。与健康步态相比,偏瘫步态的时间协同作用存在显著差异。最后,所提出的基于 PCA 的循环图方法为中风患者的患侧下肢步态提供了治疗随访信息,而通过观察常规参数(如时间和对称性步态测量)则无法获得这些信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bf82/9002595/451458bc6c47/sensors-22-02728-g001.jpg

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