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Temporal pattern recognition for gait analysis applications using an 'intelligent carpet' system

机译:使用“智能地毯”系统进行步态分析应用的时间模式识别

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We report on the demonstration of a novel floor sensor system for gait analysis in the time domain. The ability of the system to detect changes in gait was evaluated using pattern recognition techniques. The selected machine learning models successfully classified 10 different walking manners performed on the floor sensor system. Their range was defined in terms of the amplitude, frequency and type of the temporal signal. Between three and five consecutive footsteps were captured per gait experiment. For the data analysis five machine learning time series features were engineered for assessment of 12 machine learning models. The tested machine learning models includes linear, non-linear and ensemble methods. The top F-score performance obtained was 88% using a finely tuned Random Forest model. We conclude that pattern recognition in gait activities monitored by the floor sensor system is suitable for gait analysis applications, ranging from biometrics to healthcare.
机译:我们报告了在时域的步态分析的新型地板传感器系统的演示。使用模式识别技术评估系统检测步态变化的能力。所选机器学习模型成功分类了在地板传感器系统上执行的10种不同的行走方式。它们的范围是在时间信号的幅度,频率和类型方面定义的。每个步态实验捕获了三到五个连续的脚步。对于数据分析,五种机器学习时间序列功能被设计用于评估12台机器学习模型。测试的机器学习模型包括线性,非线性和集合方法。使用精细调整的随机林模型获得的最高F评分性能为88%。我们得出结论,地板传感器系统监测的步态活动中的模式识别适用于步态分析应用,从生物识别到医疗保健。

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