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A Novel Wi-Fi AP Localization Method Using Monte Carlo Path-loss Model Fitting Simulation

机译:一种新的Wi-Fi AP定位方法,使用蒙特卡罗路径损耗模型拟合模拟

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摘要

Wi-Fi-based localization is one of the most promising technologies for indoor location-based services. However, it is still a difficult task to construct a positioning database to provide high accuracy and vast coverage, especially in probabilistic-based algorithms such as fingerprint-based localization. On the other hand, positioning methods that use the location database of the positioning infrastructure, such as the weighted centroid method, can support terminal-based localization due to lower computational complexity and small database size. Terminal-based positioning has the advantages not only of protecting personal location information, but also of maintaining the network topology among the terminals. The only weak point for positioning database-based methods is that the accurate location of the infrastructure should be known in advance. In this paper, we propose a novel algorithm to estimate the location of infrastructure, especially for Wi-Fi access points. We developed and employed a smartphone application to collect Wi-Fi signals by just walking around the test area. Then, the locations of Wi-Fi access points are estimated efficiently and accurately by selection of the maximum likelihood position that has the most similar path-loss model corresponding to the signal acquisition points. The estimated locations are processed as infrastructure database to support terminal-based positioning. The simulation and experiment result validate the feasibility of the proposed algorithm. The estimated location of access points is within 10 m accuracy in most cases and also the terminal-based positioning results achieve competitive performance comparing with other positioning methods.
机译:基于Wi-Fi的本地化是基于室内位置的最有前途的技术之一。然而,构建定位数据库仍然是一个困难的任务,以提供高精度和巨大覆盖,尤其是基于概率的算法,例如基于指纹的本地化。另一方面,使用定位基础设施的位置数据库的定位方法,例如加权质心方法,可以支持由于较低的计算复杂度和小数据库尺寸而导致的基于终端的定位。基于终端的定位不仅具有保护个人位置信息的优点,还具有维护终端之间的网络拓扑。用于定位基于数据库的方法的唯一弱点是基础设施的准确位置应该提前知道。在本文中,我们提出了一种新颖算法来估计基础设施的位置,特别是对于Wi-Fi接入点。我们开发并雇用了智能手机应用程序,通过沿着测试区行走来收集Wi-Fi信号。然后,通过选择具有与信号采集点对应的最相似的路径损耗模型的最大似然位置来估计Wi-Fi接入点的位置。估计的位置被处理为基础架构数据库,以支持基于终端的定位。仿真和实验结果验证了所提出的算法的可行性。在大多数情况下,接入点的估计位置在10米内,并且基于终端的定位结果也实现了与其他定位方法比较的竞争性能。

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