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Accuracy Bounds for Array-Based Positioning in Dense Multipath Channels

机译:密集多径通道中基于阵列的定位的精度范围

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摘要

The accuracy of radio-based positioning systems will be limited by multipath interference in realistic application scenarios. This paper derives closed-form expressions for the Cramér–Rao lower bound (CRLB) on the achievable time-of-arrival (ToA) and angle-of-arrival (AoA) estimation-error variances, considering the presence of multipath radio channels, and extends these results to position estimation. The derivations are based on channel models comprising deterministic, specular multipath components as well as stochastic, diffuse/dense multipath. The derived CRLBs thus allow an evaluation of the influence of channel parameters, the geometric configuration of the environment, and system parameters such as signal bandwidth and array geometry. Our results quantify how the ToA and AoA accuracies decrease when the signal bandwidth is reduced, because more multipath will then interfere with the useful LoS component. Antenna arrays can (partly) compensate this performance loss, exploiting diversity among the multipath interference. For example, the AoA accuracy with a 16-element linear array at 1MHz bandwidth is similar to a two-element array at 1GHz, in the magnitude order of one degree. The ToA accuracy, on the other hand, still scales by a factor of 100 from the cm-regime to the m-regime because of the dominating influence of the signal bandwidth. The position error bound shows the relationship between the range and angle information under realistic indoor channel conditions and their different scaling behaviors as a function of the anchor–agent placement. Specular multipath components have a maximum detrimental influence near the walls. It is shown for an L-shaped room that a fairly even distribution of the position error bound can be achieved throughout the environment, using two anchors equipped with 2×2-array antennas. The accuracy limit due to multipath increases from the 1–10-cm-range at 1GHz bandwidth to the 0.5–1-m-range at 100MHz.
机译:在实际应用场景中,基于无线电的定位系统的准确性将受到多径干扰的限制。考虑到多径无线电信道的存在,本文得出了可到达的到达时间(ToA)和到达角(AoA)估计误差方差的Cramér-Rao下界(CRLB)的闭式表达式,并将这些结果扩展到位置估计。推导基于信道模型,该信道模型包括确定性镜面反射多径分量以及随机,扩散/密集多径分量。因此,导出的CRLB可以评估通道参数,环境的几何配置以及系统参数(例如信号带宽和阵列几何形状)的影响。我们的结果量化了当信号带宽减少时ToA和AoA精度如何降低,因为更多的多径路径将干扰有用的LoS分量。天线阵列可以利用多径干扰之间的多样性来(部分)补偿这种性能损失。例如,在 1 MHz 带宽类似于 1 < / mn> GHz ,幅度为1度。另一方面,由于信号带宽的主要影响,ToA精度从cm区域到m区域仍然按100的比例缩放。位置误差范围显示了在实际室内通道条件下范围和角度信息之间的关系,以及它们作为锚定剂位置的函数的不同缩放行为。镜面多径分量在壁附近具有最大的有害影响。对于一个L形的房间,使用两个配备 2 × 2 < / mrow> -阵列天线。在 1 GHz 带宽在 < mn> 100 MHz

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