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A Device-Orientation Independent Method for Activity Recognition

机译:与设备方向无关的活动识别方法

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This paper describes an orientation-independent method for detecting activities of daily living based on reference coordinate transformation. With the proposed method, a classification model can be trained using data acquired during a specific sensor orientation and applied to other input signals regardless of the orientation of the device. The technique is validated using activity recognition experiments with four different orientations of a single tri-axial accelerometer placed on the waist of 13 subjects performing a sub-class of activities of daily living. A high subject-independent accuracy of 90.42% has been achieved, reflecting a significant improvement of 11.74% and 16.58%, compared with classification without input transformation and classification with orientation-specific models, respectively.
机译:本文介绍了一种基于参考坐标变换的独立于方向的检测日常生活活动的方法。利用所提出的方法,可以使用在特定传感器方向期间获取的数据来训练分类模型,并将其应用于其他输入信号,而与设备的方向无关。该技术使用活动识别实验进行了验证,该实验具有四个不同方向的单个三轴加速度计,该加速度计放置在执行日常生活活动子类的13位受试者的腰部上。与没有输入转换的分类和使用定向特定模型的分类相比,已实现了90.42%的高独立于对象的准确性,分别显着提高了11.74%和16.58%。

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