HIPS:一种使用异构传感器的无需校准的混合室内定位系统

V. Zheng, Junhui Zhao, Yongcai Wang, Qiang Yang
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引用次数: 10

摘要

定位是普适计算中的一项重要任务,其目的是估计用户的位置,从而提供基于位置的服务。在本文中,我们研究了一个有趣的问题:当我们希望在办公环境中获得混合定位粒度时,如何结合异构传感器来构建一个室内定位系统,从而减少人工校准的工作量?我们提出了一种无需校准的解决方案,将超声波传感器与射频传感器结合在一起。在我们的解决方案中,我们使用这两种不同类型的传感器来满足不同粒度的要求;同时,我们使用超声波传感器来帮助校准射频传感器进行定位,这样我们就可以最小化,甚至消除射频定位的标签工作。最后,我们开发了一个具有真实传感器网络的系统原型,并验证了我们提出的解决方案的可行性和有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
HIPS: A calibration-less hybrid indoor positioning system using heterogeneous sensors
Positioning is a crucial task in pervasive computing, aimed at estimating the user's positions to provide location-based services. In this paper, we study an interesting problem: when we wish to obtain hybrid positioning granularities in an office environment, how can we incorporate heterogeneous sensors to build an indoor positioning system with minimal human calibration effort? We propose a calibration-less solution by incorporating the ultrasound sensors with the radio-frequency sensors. In our solution, we use these two different types of sensors to satisfy the different granularities requirement; and meanwhile, we use the ultrasound sensors to help calibrate the radio-frequency sensors for positioning, so that we can minimize, or even eliminate the labeling effort for the radio-frequency positioning. Finally, we develop a system prototype with real-world sensor networks, and verify the feasibility and effectiveness of our proposed solution.
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