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A novel radio map construction method with reduced human efforts for Wi-Fi localisation system

机译:一种新型无线电映射施工方法,减少人工努力的Wi-Fi定位系统

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摘要

Fingerprint based Wi-Fi localisation system often takes a lot of human efforts to measure the received signal strength (RSS) of dense grid in an indoor environment. In this paper, we propose a novel fingerprint database construction method with reduced human effort to obtain optimal length of RSS time series and grid division. We verify the chaotic characteristics of RSS time series, and use phase space reconstruction algorithm to calculate the optimal length of RSS data to be collected at each reference point. Then Gaussian process regression (GPR) for fingerprinting based indoor localisation is used to construct the database with information of limited reference points. The hyper-parameters of GPR is calculated by conjugate gradient descent algorithm. The performance of the proposed radio map construction framework is validated in real indoor environment, and with using Bayesian positioning method, the localisation error mean can be 1.5 m while the construction time of radio map is greatly reduced with ensuring accuracy.
机译:基于指纹的Wi-Fi定位系统通常需要很多人类努力来测量室内环境中的密集电网的接收信号强度(RSS)。在本文中,我们提出了一种新颖的指纹数据库施工方法,减少了人类努力,以获得RSS时间序列和网格划分的最佳长度。我们验证了RSS时间序列的混沌特性,并使用相位空间重建算法来计算在每个参考点处收集的RSS数据的最佳长度。然后,基于指纹的室内定位的高斯进程回归(GPR)用于构造数据库,其中包含有限参考点的信息。 GPR的超参数由共轭梯度下降算法计算。所提出的无线电映射施工框架的性能在真正的室内环境中验证,并且使用贝叶斯定位方法,本地化误差意味着可以是1.5米,而无线电地图的施工时间大大减少,确保精度大大降低。

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