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Comparison of Phase-Based 3D Near-Field Source Localization Techniques for UHF RFID

机译:UHF RFID的基于相位的3D近场源定位技术的比较

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摘要

In this paper, we present multiple techniques for phase-based narrowband backscatter tag localization in three-dimensional space with planar antenna arrays or synthetic apertures. Beamformer and MUSIC localization algorithms, known from near-field source localization and direction-of-arrival estimation, are applied to the 3D backscatter scenario and their performance in terms of localization accuracy is evaluated. We discuss the impact of different transceiver modes known from the literature, which evaluate different send and receive antenna path combinations for a single localization, as in multiple input multiple output (MIMO) systems. Furthermore, we propose a new Singledimensional-MIMO (S-MIMO) transceiver mode, which is especially suited for use with mobile robot systems. Monte-Carlo simulations based on a realistic multipath error model ensure spatial correlation of the simulated signals, and serve to critically appraise the accuracies of the different localization approaches. A synthetic uniform rectangular array created by a robotic arm is used to evaluate selected localization techniques. We use an Ultra High Frequency (UHF) Radiofrequency Identification (RFID) setup to compare measurements with the theory and simulation. The results show how a mean localization accuracy of less than 30 cm can be reached in an indoor environment. Further simulations demonstrate how the distance between aperture and tag affects the localization accuracy and how the size and grid spacing of the rectangular array need to be adapted to improve the localization accuracy down to orders of magnitude in the centimeter range, and to maximize array efficiency in terms of localization accuracy per number of elements.
机译:在本文中,我们提出了利用平面天线阵列或合成孔径在三维空间中基于相位的窄带反向散射标签定位的多种技术。从近场源定位和到达方向估计中获知的Beamformer和MUSIC定位算法被应用于3D反向散射场景,并根据定位精度评估了它们的性能。我们讨论了文献中已知的不同收发器模式的影响,这些模式评估了单个定位的不同发送和接收天线路径组合,例如在多输入多输出(MIMO)系统中。此外,我们提出了一种新的SingleDimension-MIMO(S-MIMO)收发器模式,该模式特别适合与移动机器人系统一起使用。基于现实的多径误差模型的蒙特卡洛模拟可确保模拟信号的空间相关性,并有助于严格评估不同定位方法的准确性。由机械臂创建的合成均匀矩形阵列用于评估选定的定位技术。我们使用超高频(UHF)射频识别(RFID)设置将测量结果与理论和仿真进行比较。结果表明,在室内环境中如何实现平均定位精度低于30 cm。进一步的仿真表明,孔和标签之间的距离如何影响定位精度,以及如何需要调整矩形阵列的大小和网格间距,以将定位精度提高到厘米级的数量级,并最大程度地提高阵列效率。每元素数量的定位精度术语。

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