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Recognizing User Context Using Mobile Handsets with Acceleration Sensors

机译:使用带加速度传感器的移动手机识别用户上下文

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User context recognition is one of the important technologies for realizing context aware services. Conventional multi sensor based approach has advantages in that it can generate variety of contexts with less computation resources by using many different sensors. However, such systems tend to be complex and cumbersome and, thus, do not fit in well with mobile environment. In this sense, a single sensor based approach is suitable for mobile environments. In this paper, we show a context inference scheme that realizes a user posture inference with only one acceleration sensor embedded in a mobile handset. Our system automatically detects the sensor position on the user's body and selects the most relevant inference method dynamically. Our experimental results show that the system can infer a user's posture (sitting, standing, walking, and running) with an accuracy of more than 96%.
机译:用户上下文识别是实现上下文感知服务的重要技术之一。传统的基于传感器的方法具有优势,因为它可以通过使用许多不同的传感器来产生具有较少计算资源的各种上下文。然而,这种系统往往是复杂的并且繁琐,因此,与移动环境不合适。从这个意义上讲,基于传感器的方法适用于移动环境。在本文中,我们示出了一种上下文推理方案,其实现了用户姿势推断,只有一个嵌入在移动手机中的一个加速度传感器。我们的系统会自动检测用户身体上的传感器位置,并动态选择最相关的推理方法。我们的实验结果表明,该系统可以推断用户姿势(坐姿,站立,走路和运行),精度超过96%。

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