基于射频的动态环境中的多目标定位

Xiaonan Guo, Dian Zhang, L. Ni
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引用次数: 8

摘要

基于射频(RF)技术扮演着重要的角色在室内定位,因为无线电信号强度(RSS)很容易通过各种无线设备没有额外的成本。其中,基于无线电地图的技术(也称为指纹识别技术)很有吸引力。它们能够在不引入许多参考节点的情况下精确定位目标。因此,硬件成本低。然而,这项技术有两个致命的限制。首先,当目标在不同的可能位置时,无线电地图必须收集所有的RSS信息,因此很难对多个目标进行定位。但由于多径现象的存在,不同位置的不同数量的目标节点往往会产生不同的多径信号。因此,当目标物体数量未知时,构建多个物体的无线电地图几乎是不可能的。其次,环境变化会产生不同的多径信号,严重干扰RSS测量,使再训练变得不可避免。在本文中,我们提出了一种新的方法,称为视距(LOS)地图匹配。它利用无线节点的频率分集来消除多路径行为,使RSS比以前更可靠。这些可靠的RSS信号能够构建无线映射,而无线映射只在节点间保留LOS信号。我们称之为LOS无线电地图。对象的数量和环境的变化不会影响目标节点和参考节点之间的LOS信号。如果仔细地重新部署参考节点,这种映射可以很容易地构建并且不需要训练。我们的基本思想是利用每个无线节点的频率分集在不同的频谱信道中传输数据。然后解决了LOS信号的优化问题。TelosB我们的实验是基于传感器传感器平台有三个参考节点。结果表明,在动态环境下对多个目标进行定位时,定位精度不会降低。它比传统方法的性能高出约60%。更重要的是,在这种环境下不需要校准。此外,我们的方法提出了有吸引力的灵活性,使它更适合一般RF-based本地化研究基于地图的定位不仅仅是收音机。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Localizing Multiple Objects in an RF-based Dynamic Environment
Radio Frequency (RF) based technologies play an important role in indoor localization, since Radio Signal Strength (RSS) is easily achieved by various wireless devices without additional cost. Among these, radio map based technologies (also referred as fingerprinting technologies) are attractive. They are able to accurately localize the targets without introducing many reference nodes. Therefore, their hardware cost is low. However, this technology has two fatal limitations. First, it is hard to localize multiple objects, since radio map has to collect all the RSS information when targets are at different possible positions. But due to the multipath phenomenon, different number of target nodes at different positions often generates different multipath signals. So when the target object number is unknown, constructing a radio map of multiple objects is almost impossible. Second, environment changes will generate different multipath signals and severely disturb the RSS measurement, making laborious retraining inevitable. In this paper, we propose a novel method, called Line-Of-Sight (LOS) map matching. It leverages frequency diversity of wireless nodes to eliminate the multipath behavior, making RSS more reliable than before. These reliable RSS signals are able to construct the radio map, which only reserves the LOS signal among nodes. We call it LOS radio map. The number of objects and environment changes will not affect the LOS signal between the targets and reference nodes. Such map is able to be constructed easily and require no training if reference nodes are carefully redeployed. Our basic idea is to utilize the frequency diversity of each wireless node to transmit data in different spectrum channel. Then it solves the optimization problem to get the LOS signal. Our experiments are based on TelosB sensor platform with three reference nodes. It shows that the accuracy will not decrease when localizing multiple targets in a dynamic environment. It outperforms the traditional methods by about60%. More importantly, no calibration is required in such environment. Furthermore, our approach presents attractive flexibility, making it more appropriate for general RF-based localization studies than just the radio map based localization.
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