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首页> 外文期刊>Computer methods in biomechanics and biomedical engineering >Estimation of temporal gait parameters using Bayesian models on acceleration signals
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Estimation of temporal gait parameters using Bayesian models on acceleration signals

机译:使用贝叶斯模型对加速度信号进行时间步态参数估计

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The purpose of this study is to develop a system capable of performing calculation of temporal gait parameters using two low-cost wireless accelerometers and artificial intelligence-based techniques as part of a larger research project for conducting human gait analysis. Ten healthy subjects of different ages participated in this study and performed controlled walking tests. Two wireless accelerometers were placed on their ankles. Raw acceleration signals were processed in order to obtain gait patterns from characteristic peaks related to steps. A Bayesian model was implemented to classify the characteristic peaks into steps or nonsteps. The acceleration signals were segmented based on gait events, such as heel strike and toe-off, of actual steps. Temporal gait parameters, such as cadence, ambulation time, step time, gait cycle time, stance and swing phase time, simple and double support time, were estimated from segmented acceleration signals. Gait data-sets were divided into two groups of ages to test Bayesian models in order to classify the characteristic peaks. The mean error obtained from calculating the temporal gait parameters was 4.6%. Bayesian models are useful techniques that can be applied to classification of gait data of subjects at different ages with promising results
机译:这项研究的目的是开发一种系统,该系统能够使用两个低成本无线加速度计和基于人工智能的技术来执行时间步态参数的计算,这是进行人类步态分析的大型研究项目的一部分。十名不同年龄的健康受试者参加了这项研究,并进行了受控步行测试。两个无线加速度计放在脚踝上。处理原始加速度信号以便从与步有关的特征峰获得步态图。实施贝叶斯模型以将特征峰分为阶梯或非阶梯。加速度信号根据步态事件进行细分,例如实际步伐的脚跟撞击和脚趾离地。从分段的加速度信号中估计了时间步态参数,例如步频,走步时间,步长时间,步态周期时间,姿态和摆动阶段时间,简单和双重支撑时间。步态数据集分为两组年龄以测试贝叶斯模型,以对特征峰进行分类。通过计算时间步态参数获得的平均误差为4.6%。贝叶斯模型是有用的技术,可用于对不同年龄的受试者的步态数据进行分类,并获得可喜的结果

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