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RSS-Based Ranging by Leveraging Frequency Diversity to Distinguish the Multiple Radio Paths

机译:通过利用频率分集来区分多个无线电路径的基于RSS的测距

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摘要

Among various ranging techniques, Radio Signal Strength (RSS) based approaches attract intensive research interests because of its low cost and wide applicability. RSS-based ranging is prone to be affected by the multipath phenomenon which allows the radio signals to reach the destination through multiple propagation paths. To address this issue, previous works try to profile the environment and refer this profile during run-time. In a practical dynamic environment, however, the profile frequently changes and the painful retraining is needed. Rather than such static ways of profiling the environments, in this paper, we try to accommodate the environmental dynamics automatically in real-time. The key observation is that given a pair of nodes, the RSS at different spectrum channels will be different. This difference carries the valuable phase information of the radio signals. By analyzing these RSS values, we are able to identify the amplitude of signals solely from the Line-of-Sight (LOS) path. This LOS amplitude is a simple function of the path length (the physical distance). We find that the analysis is a typical non-linear curvature fitting problem that has no general routing algorithms. We prove that, this problem format is ill-conditioned which has no stable and trustable solutions. To deal with this issue, we further explore the practical considerations for the problem and modify it to a greatly improved conditioning shape. We solve the problem by numerical iterations and implement these ideas in a real-time indoor tracking system called MuD. MuD employs only three TelosB nodes as anchors. The experiment results show that in a dynamic environment where five people move around, the averaged localization error is about 1 meter. Compared with the traditional RSS-based approaches in dynamic environments, the accuracy improves up to 10 times.
机译:在各种测距技术中,基于无线电信号强度(RSS)的方法因其低成本和广泛适用性而吸引了广泛的研究兴趣。基于RSS的测距容易受到多路径现象的影响,该现象使无线电信号可以通过多个传播路径到达目的地。为了解决此问题,以前的工作尝试对环境进行概要分析,并在运行时引用该概要文件。但是,在实际的动态环境中,轮廓经常变化,需要进行痛苦的重新训练。在本文中,我们尝试使用自动实时地适应环境动态的方法,而不是使用静态方法来描述环境。关键观察结果是,给定一对节点,不同频谱信道上的RSS将会不同。这种差异携带了无线电信号的有价值的相位信息。通过分析这些RSS值,我们能够仅从视线(LOS)路径识别信号的幅度。此LOS振幅是路径长度(物理距离)的简单函数。我们发现分析是一个典型的非线性曲率拟合问题,没有通用的路由算法。我们证明,这种问题格式是病态的,没有稳定和可信赖的解决方案。为了解决这个问题,我们进一步探讨了该问题的实际考虑,并将其修改为大大改善的调节形状。我们通过数值迭代解决问题,并在称为MuD的实时室内跟踪系统中实现这些想法。 MuD仅使用三个TelosB节点作为锚点。实验结果表明,在五个人四处走动的动态环境中,平均定位误差约为1米。与动态环境中基于RSS的传统方法相比,该方法的准确性提高了10倍。

著录项

  • 来源
    《IEEE transactions on mobile computing 》 |2017年第4期| 1121-1135| 共15页
  • 作者单位

    Third Research Institute of Ministry of Public Security, Shanghai, P.R. China;

    Guangdong Province Key Laboratory of Popular High Performance Computers, College of Computer Science and Software Engineering, Shenzhen University, Shenzhen, Guangdong, P.R. China;

    Department of Computer Science and Engineering, Hong Kong University of Science and Technology, Kowloon, Hong Kong;

    Department of Computer Science and Engineering, Hong Kong University of Science and Technology, Kowloon, Hong Kong;

    Guangdong Province Key Laboratory of Popular High Performance Computers, College of Computer Science and Software Engineering, Shenzhen University, Shenzhen, Guangdong, P.R. China;

    Faculty of Information Technology, Macau University of Science and Technology, Taipa, Macau, China;

    Faculty of Department of Computer and Information Science, University of Macau, Taipa, Macau, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Distance measurement; Receivers; Radio propagation; Radio transmitters; Frequency diversity; Hardware; Mobile computing;

    机译:距离测量;接收机;无线电传播;无线电发射机;频率分集;硬件;移动计算;

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