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A Data Fusion Approach to Mobile Location Estimation based on Ellipse Propagation Model within a Cellular Radio Network

机译:基于蜂窝无线电网络内椭圆传播模型的移动位置估计数据融合方法

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Mobile Location Estimation is drawing considerable attention in the field of wireless communications. In this paper, we present a new estimator which considers all the information to reduce the effect of signal fluctuation and fading the Statistical Estimation. The Statistical Estimation is derived from the information of the Received Signal Strengths (RSSs) and the locations of their corresponding Base Stations (BSs) and then estimates the location of the Mobile Station (MS). The Statistical Estimation uses all the information to provide the estimation of the location of the MS, which can provide an accurate estimation and reduce the effect of signal fluctuation and fading. It is a data fusion method to handle the signal fluctuation and fading problem. We test our approach with real data collected from Hong Kong. Experimental results show that our approach outperforms other existing location estimation algorithms among different kinds of terrains. The improvements based on the Geometric Algorithm with EPM and the Iterative Algorithm with EPM are 18.87% and 4.46%, respectively.
机译:移动位置估计在无线通信领域借鉴了相当大的关注。在本文中,我们展示了一个新的估算器,他们考虑了所有信息,以降低信号波动和衰落统计估计的影响。统计估计来自接收信号强度(RSS)的信息和相应的基站(BSS)的位置,然后估计移动台(MS)的位置。统计估计使用所有信息来提供MS的位置的估计,这可以提供准确的估计并降低信号波动和衰落的效果。它是一种处理信号波动和衰落问题的数据融合方法。我们用从香港收集的真实数据测试我们的方法。实验结果表明,我们的方法在不同种类的地形中表现出其他现有的位置估计算法。基于EPM的几何算法和EPM迭代算法的改进分别为18.87%和4.46%。

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