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Geometry and motion-based positioning algorithms for mobile tracking in NLOS environments

机译:NLOS环境中用于移动跟踪的基于几何和基于运动的定位算法

摘要

This paper presents positioning algorithms for cellular network-based vehicle tracking in severe non-line-of-sight (NLOS) propagation scenarios. The aim of the algorithms is to enhance positional accuracy of network-based positioning systems when the GPS receiver does not perform well due to the complex propagation environment. A one-step position estimation method and another two-step method are proposed and developed. Constrained optimization is utilized to minimize the cost function which takes account of the NLOS error so that the NLOS effect is significantly reduced. Vehicle velocity and heading direction measurements are exploited in the algorithm development, which may be obtained using a speedometer and a heading sensor, respectively. The developed algorithms are practical so that they are suitable for implementation in practice for vehicle applications. It is observed through simulation that in severe NLOS propagation scenarios, the proposed positioning methods outperform the existing cellular network-based positioning algorithms significantly. Further, when the distance measurement error is modeled as the sum of an exponential bias variable and a Gaussian noise variable, the exact expressions of the CRLB are derived to benchmark the performance of the positioning algorithms. The correction to this article appeared in the IEEE Transactions on Mobile Computing, vol. 11, no. 4, pp.704, and may be found at http://dx.doi.org/10.1109/TMC.2012.35
机译:本文提出了在严重的非视距(NLOS)传播场景下基于蜂窝网络的车辆跟踪的定位算法。该算法的目的是在GPS接收器由于复杂的传播环境而无法正常工作时,提高基于网络的定位系统的定位精度。提出并开发了一种单步位置估计方法和另一种两步方法。利用约束优化来最小化考虑了NLOS误差的成本函数,从而显着降低了NLOS效应。在算法开发中利用了车辆速度和航向方向测量,可以分别使用速度计和航向传感器获得。所开发的算法是实用的,因此它们适合在实践中用于车辆应用。通过仿真发现,在严重的NLOS传播情况下,所提出的定位方法明显优于现有的基于蜂窝网络的定位算法。此外,当将距离测量误差建模为指数偏差变量和高斯噪声变量的总和时,可以得出CRLB的精确表达式,以对定位算法的性能进行基准测试。对本文的更正出现在《 IEEE Transactions on Mobile Computing》(第一卷)上。 11号4,第704页,请访问http://dx.doi.org/10.1109/TMC.2012.35

著录项

  • 作者

    Yu Kegen; Dutkiewicz Eryk;

  • 作者单位
  • 年度 2012
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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