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An efficient grid-based RF fingerprint positioning algorithm for user location estimation in heterogeneous small cell networks

机译:一种高效的基于网格的射频指纹定位算法,用于异构小小区网络中的用户位置估计

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This paper proposes a novel technique to enhance the performance of grid-based Radio Frequency (RF) fingerprint position estimation framework. First enhancement is an introduction of two overlapping grids of training signatures. As the second enhancement, the location of the testing signature is estimated to be a weighted geometric center of a set of nearest grid units whereas in a traditional grid-based RF fingerprinting only the center point of the nearest grid unit is used for determining the user location. By using the weighting-based location estimation, the accuracy of the location estimation can be improved. The performance evaluation of the enhanced RF fingerprinting algorithm was conducted by analyzing the positioning accuracy of the RF fingerprint signatures obtained from a dynamic system simulation in a heterogeneous LTE small cell environment. The performance evaluation indicates that if the interpolation is based on two nearest grid units, then a maximum of 18.8% improvement in positioning accuracy can be achieved over the conventional approach.
机译:本文提出了一种新技术,以增强基于网格的射频(RF)指纹位置估计框架的性能。第一个增强功能是引入两个重叠的训练签名网格。作为第二增强,估计测试签名的位置是一组最近的网格单元的加权几何中心,而在传统的基于网格的RF指纹识别中,仅使用最近的网格单元的中心点来确定用户地点。通过使用基于加权的位置估计,可以提高位置估计的准确性。通过分析从异构LTE小小区环境中的动态系统仿真获得的RF指纹签名的定位精度,进行了增强型RF指纹算法的性能评估。性能评估表明,如果插值基于两个最近的网格单元,则与传统方法相比,可以最大程度地提高18.8%的定位精度。

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