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A Symbol-Based Approach to Gait Analysis From Acceleration Signals : Identification and Detection of Gait Events and a New Measure of Gait Symmetry

机译:基于符号的加速度信号步态分析方法:步态事件的识别和检测以及步态对称性的新度量

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摘要

Gait analysis can convey important information about one’s physical and cognitive condition. Wearable inertial sensor systems can be used to continuously and unobtrusively assess gait during everyday activities in uncontrolled environments. An important step in the development of such systems is the processing and  analysis of the sensor data. This paper presents a symbol-based method used to detect the phases of gait and convey important dynamic information from accelerometer signals. The addition of expert knowledge substitutes the need for supervised learning techniques, rendering the system easy to interpret and easy to improve incrementally. The proposed method is compared to an approach based on peak-detection. A new symbol-based symmetry index is created and compared to a traditional temporal symmetry index and a symmetry measure based on cross-correlation. The symbol-based symmetry index exemplifies how the proposed method can extract more information from the acceleration signal than previous approaches
机译:步态分析可以传达有关身体和认知状况的重要信息。可穿戴的惯性传感器系统可用于在不受控制的环境下的日常活动中连续且不显眼地评估步态。开发此类系统的重要一步是传感器数据的处理和分析。本文提出了一种基于符号的方法,用于检测步态相位并从加速度计信号中传达重要的动态信息。专家知识的补充替代了对有监督的学习技术的需求,使系统易于解释且易于逐步改进。将该方法与基于峰值检测的方法进行了比较。创建一个新的基于符号的对称性索引,并将其与传统的时间对称性索引和基于互相关的对称性度量进行比较。基于符号的对称性指数说明了与以前的方法相比,所提方法可以从加速度信号中提取更多信息

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