基于粒子滤波和低成本MEMS传感器的无线局域网行人跟踪

Hui Wang, H. Lenz, A. Szabo, J. Bamberger, U. Hanebeck
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引用次数: 204

摘要

基于无线局域网(WLAN)的室内定位系统正受到学术界和工业界的广泛研究。同时,新兴的低成本MEMS传感器也可以作为另一种独立的定位源。本文提出了一种基于粒子滤波的行人跟踪框架,该框架通过集成低成本MEMS加速度计和地图信息,扩展了典型的基于wlan的室内定位系统。我们的仿真和实际实验表明,使用该融合框架可以显著提高性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
WLAN-Based Pedestrian Tracking Using Particle Filters and Low-Cost MEMS Sensors
Indoor positioning systems based on wireless LAN (WLAN) are being widely investigated in academia and industry. Meanwhile, the emerging low-cost MEMS sensors can also be used as another independent positioning source. In this paper, we propose a pedestrian tracking framework based on particle filters, which extends the typical WLAN-based indoor positioning systems by integrating low-cost MEMS accelerometer and map information. Our simulation and real world experiments indicate a remarkable performance improvement by using this fusion framework.
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