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Estimation Of Spatial Fields Of Nlos/Los Conditions For Improved Localization In Indoor Environments

机译:室内环境中改善定位的Nlos / Los条件空间场的估计

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A major challenge in indoor localization is the presence or absence of line-of-sight (LOS). The absence of LOS, denoted as non-line-of-sight (NLOS), directly affects the accuracy of any localization algorithm because of the induced bias in ranging. The estimation of the spatial distribution of NLOS-induced ranging bias in indoor environments remains a major challenge. In this paper, we propose a novel crowd-based Bayesian learning approach to the estimation of bias fields caused by LOS/NLOS conditions. The proposed method is based on the concept of Gaussian processes and exploits numerous measurements. The performance of the method is demonstrated with extensive experiments.
机译:室内定位的主要挑战是视线(LOS)的存在与否。 LOS的缺失(表示为非视线(NLOS))会直接影响任何定位算法的精度,因为会引起测距偏差。在室内环境中,NLOS引起的测距偏差的空间分布估计仍然是一个重大挑战。在本文中,我们提出了一种新颖的基于人群的贝叶斯学习方法来估计由LOS / NLOS条件引起的偏差场。所提出的方法基于高斯过程的概念,并利用了许多测量方法。通过大量实验证明了该方法的性能。

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