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User-friendly activity recognition using SVM classifier and informative features

机译:使用SVM分类器和信息功能的用户友好型活动识别

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For accurate indoor positioning, a moving activity recognition (AR) method has been developed that is based on a smartphone's sensor data. Prior methods can only recognize moving activities if the smartphone is held in a predefined place. We propose a method that works in various holding places to increase the usability. An SVM classifier is chosen because of its strength in utilizing features. New features are added such as percentiles of acceleration, air pressure, and acceleration magnitude. We have achieved 94.3% overall accuracy in various holding places: in users' hands, belt pouches, pant back pockets, and pant side pockets.
机译:为了精确地进行室内定位,已经开发了基于智能手机的传感器数据的运动活动识别(AR)方法。如果将智能手机放在预先定义的位置,则先前的方法只能识别移动的活动。我们提出一种可在各种存放场所工作的方法,以提高可用性。选择SVM分类器是因为它在利用功能方面的优势。添加了新功能,例如加速度百分比,气压和加速度幅度。我们在各种握持位置上的总体准确度均达到94.3%:在用户的手中,皮带袋,气喘吁吁的后袋和气喘吁吁的侧袋中。

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