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A Propagation-Centric Transmitter Localization Method for Deriving the Spatial Structure of Opportunistic Wireless Networks

机译:一种以传播为中心的发射机定位方法,用于导出机会主义无线网络的空间结构

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The design of emerging multi-tier dense wireless networks, which integrate opportunistically deployed devices into legacy infrastructure networks, will hugely benefit from a thorough understanding of the spatial structure of existing large-scale unplanned deployments. However, detailed and precise datasets which would enable acquiring such knowledge are unavailable and non-trivial to generate. In this paper we develop a new localization method that focuses on the derivation of transmitter distributions over large areas, such as those of opportunistic Wi-Fi networks. While prior work has emphasized single-node localization through geometrical inference on points of visibility and involved only rudimentary radio propagation modelling, we combine these two approaches in a hybrid technique to improve localization accuracy. Through exploitation of location information for a subset of known transmitters, we derive the parameters of a statistical propagation model that reduces the error induced by shadowing in realistic environments. After deriving theoretical bounds on propagation estimation from measurements, we compare our method to centroid-based localization approaches via simulation. We further assess our algorithm using data from a real Wi-Fi measurement campaign we have carried out in a suburban environment. Our results indicate a significant improvement in localization accuracy using our hybrid approach compared to conventional geometry-focused techniques.
机译:新兴多层密集无线网络的设计,将机会部署的设备集成到传统基础设施网络中,从彻底了解现有的大规模计划外部部署的空间结构中,从而效益。然而,将能够获取此类知识的详细和精确数据集是不可用的,并且无法生成。在本文中,我们开发了一种新的本地化方法,专注于大面积的发射机分布的推导,例如机会主义Wi-Fi网络。虽然事先工作通过几何推理来强调单节点本地化,但是仅涉及基本的无线电传播建模,但我们将这两种方法与混合技术相结合以提高本地化精度。通过利用已知发射器的子集的位置信息,我们得出了统计传播模型的参数,该模型减少了通过在现实环境中的阴影引起的错误。在从测量中导出传播估计的理论界面之后,我们将我们的方法与基于质心的定位方法进行了比较。我们进一步使用我们在郊区环境中执行的真实Wi-Fi测量活动的数据进行评估。我们的结果表明,与传统的聚焦技术相比,使用我们的混合方法对本地化精度的显着提高。

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