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Floor Identification Using Magnetic Field Data with Smartphone Sensors

机译:使用智能手机传感器的磁场数据识别地板

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摘要

Floor identification plays a key role in multi-story indoor positioning and localization systems. Current floor identification systems rely primarily on Wi-Fi signals and barometric pressure data. Barometric systems require installation of additional standalone sensors to perform floor identification. Wi-Fi systems, on the other hand, are vulnerable to the dynamic environment and adverse effects of path loss, shadowing, and multipath fading. In this paper, we take advantage of a pervasive magnetic field to compensate for the limitations of these systems. We employ smartphone sensors to make the proposed scheme infrastructure free and cost-effective. We use smartphone magnetic sensors to identify the floors in a multi-story building with improved accuracy. Floor identification is performed with user activities of normal walking, call listening, and phone swinging. Various machine learning techniques are leveraged to identify user activities. Extensive experiments are performed to evaluate the proposed magnetic-data-based floor identification scheme. Additionally, the impact of device heterogeneity on floor identification is investigated using Samsung Galaxy S8, LG G6, and LG G7 smartphones. Research results demonstrate that the magnetic floor identification outperforms barometric and Wi-Fi-enabled floor detection techniques. A floor change module is incorporated to further enhance the accuracy of floor identification.
机译:楼层识别在多层室内定位和定位系统中起着关键作用。当前的楼层识别系统主要依靠Wi-Fi信号和大气压力数据。气压系统需要安装其他独立传感器以执行楼层识别。另一方面,Wi-Fi系统易受动态环境和路径损耗,阴影和多径衰落的不利影响。在本文中,我们利用普适磁场来补偿这些系统的局限性。我们使用智能手机传感器使拟议的计划基础架构免费且具有成本效益。我们使用智能手机的磁传感器来识别多层建筑物中的楼层,从而提高了准确性。楼层识别是通过用户正常行走,通话监听和电话摇摆的活动来执行的。利用各种机器学习技术来识别用户活动。进行了广泛的实验,以评估提出的基于磁数据的地板识别方案。此外,还使用三星Galaxy S8,LG G6和LG G7智能手机研究了设备异构性对楼层识别的影响。研究结果表明,磁性地板识别的性能优于气压和支持Wi-Fi的地板检测技术。结合了地板更换模块,以进一步提高地板识别的准确性。

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