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Data fusion methods for accuracy improvement in wireless location systems

机译:数据融合方法,用于提高无线定位系统的准确性

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Wireless location methods in wireless communications networks have received significant attention in recent years. Among the network-based approaches, time of arrival (TOA) and time difference of arrival (TDOA) are two major time-based techniques used for location estimation. It is known that the accuracy of location estimation may suffer from poor geometric dilution of precision (GDOP) situation and non-line of sight (NLOS) propagation effect. To improve the accuracy of time-based location techniques in wireless communications networks, data fusion methods using fuzzy logic and Bayes rules are presented. Based on the statistical properties of the raw location estimates, data fusion methods integrate the data obtained from the TOA and TDOA techniques. Computer simulations are conducted to investigate the wireless location problem affected by GDOP and NLOS. Simulation results show that the overall accuracy of location estimation in wireless location systems can be significantly improved when the LOS reconstruction and the data fusion methods are used.
机译:近年来,无线通信网络中的无线定位方法受到了极大的关注。在基于网络的方法中,到达时间(TOA)和到达时间差(TDOA)是用于位置估计的两种主要的基于时间的技术。众所周知,位置估计的精度可能会受到精度(GDOP)情况和不良视线(NLOS)传播效应的不良几何稀释的影响。为了提高无线通信网络中基于时间的定位技术的准确性,提出了使用模糊逻辑和贝叶斯规则的数据融合方法。基于原始位置估计的统计属性,数据融合方法整合了从TOA和TDOA技术获得的数据。进行计算机模拟以调查受GDOP和NLOS影响的无线定位问题。仿真结果表明,使用LOS重建和数据融合方法可以显着提高无线定位系统中位置估计的总体准确性。

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