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A Novel RSS model and Power-bias Mitigation Algorithm in fingerprinting-based Indoor Localization in Wireless Local Area Networks

机译:无线局域网中基于指纹的室内定位中的一种新的RSS模型和功率偏置缓解算法

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With the proliferation of location based services (LBS), various indoor localization systems have been proposed based on received signal strength (RSS). An acceptable localization performance is achieved by using fingerprinting-based methods. However, its performance is restricted by RSS deviation. This deviation is not well modelled and studied in past. With this motivation, we propose a novel RSS model to define this deviation based on orthogonal frequency dimensional multiplexing (OFDM). Unlike conventional random RSS fluctuation, this deviation cannot be eliminated by merely using sample average. Hence, we also propose a power-bias mitigation algorithm to improve the performance through eliminating part of the deviation. Simulation and experimental results demonstrate good performance gains are achieved by using the power-bias mitigation algorithm under various scenarios.
机译:随着基于位置的服务(LBS)的激增,已经基于接收信号强度(RSS)提出了各种室内定位系统。通过使用基于指纹的方法,可以获得可接受的定位性能。但是,其性能受RSS偏差的限制。过去没有很好地建模和研究这种偏差。出于这种动机,我们提出了一种新颖的RSS模型,用于基于正交频率维多路复用(OFDM)定义此偏差。与传统的随机RSS波动不同,仅通过使用样本平均值就无法消除此偏差。因此,我们还提出了一种减少功率偏差的算法,以通过消除部分偏差来改善性能。仿真和实验结果表明,通过在各种情况下使用功率偏置缓解算法,可以获得良好的性能提升。

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