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Node-density independent localization

机译:节点密度独立定位

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摘要

This paper presents an enhanced version of a novel radio interferometric positioning technique for node localization in wireless sensor networks that provides both high accuracy and long range simultaneously. The ranging method utilizes two transmitters emitting radio signals at almost the same frequencies. The relative location is estimated by measuring the relative phase offset of the generated interference signal at two receivers. Here, we analyze how the selection of carrier frequencies affects the precision and maximum range. Furthermore, we describe how the interplay of RF multi-path and ground reflections degrades the ranging accuracy. To address these problems, we introduce a technique that continuously refines the range estimates as it converges to the localization solution. Finally, we present the results of a field experiment where our prototype achieved 4 cm average localization accuracy for a quasi-random deployment of 16 COTS motes covering the area of two football fields. The maximum range measured was 170 m, four times the observed communication range. Consequently, node deployment density is no longer constrained by the localization technique, but rather by the communication range.
机译:本文提出了一种用于无线传感器网络中节点定位的新型无线电干涉定位技术的增强版本,该技术可同时提供高精度和长距离。测距方法利用两个发射器以几乎相同的频率发射无线电信号。通过测量在两个接收器处产生的干扰信号的相对相位偏移来估计相对位置。在这里,我们分析载波频率的选择如何影响精度和最大范围。此外,我们描述了射频多径与地面反射的相互作用如何降低测距精度。为了解决这些问题,我们引入了一种技术,该技术在收敛到本地化解决方案时会不断完善范围估计。最后,我们介绍了一个野外实验的结果,其中我们的原型在覆盖两个足球场的区域内准随机部署了16个COTS微粒,实现了4 cm的平均定位精度。测得的最大范围为170 m,是观察到的通讯范围的四倍。因此,节点部署密度不再受定位技术的限制,而是受通信范围的限制。

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