论文标题

具有异步收发器的感知移动网络中的上行链路传感

Uplink Sensing in Perceptive Mobile Networks with Asynchronous Transceivers

论文作者

Ni, Zhitong, Zhang, J. Andrew, Huang, Xiaojing, Yang, Kai, Yuan, Jinhong

论文摘要

感知移动网络(PMN)是一个最近提出的下一代网络,将雷达传感整合到通信中。实现PMN感知的一个主要挑战是如何处理空间分离的异步收发器。感应接收器和发射器之间的异步将导致定时偏移(TOS)和载波频率偏移(CFO),并导致射程和速度测量的感应精度降低。在本文中,我们为具有异步收发器的PMN提出了一种上行链路传感方案,以解决感应歧义并提高感应精度。我们首先采用互式互相关(CACC)操作来消除与TOS和CFO相关的感应歧义。没有感知歧义,可以使用CACC输出获得多个目标的实际传播延迟和实际多普勒频率。为了利用CACC输出的冗余并降低复杂性,我们然后提出了一种新颖的镜像音乐算法,该算法将要估计的未知参数的数量减半,以获得延迟和多普勒频率的实际值。最后,我们提出了一个高分辨率的到达角度(AOAS)估计算法,该算法共同处理了从空间,时间和频域中处理所有测量。所提出的AOAS估计算法可以比仅使用空间域中的样品获得更高的估计精度。我们还得出了所提出的算法的理论均方错误。提供数值结果并验证提出的方案的有效性。

Perceptive mobile network (PMN) is a recently proposed next-generation network that integrates radar sensing into communication. One major challenge for realizing sensing in PMNs is how to deal with spatially-separated asynchronous transceivers. The asynchrony between sensing receiver and transmitter will cause both timing offsets (TOs) and carrier frequency offsets (CFOs) and lead to degraded sensing accuracy in both ranging and velocity measurements. In this paper, we propose an uplink sensing scheme for PMNs with asynchronous transceivers, targeting at resolving the sensing ambiguity and improving the sensing accuracy. We first adopt a cross-antenna cross-correlation (CACC) operation to remove the sensing ambiguity associated with both TOs and CFOs. Without sensing ambiguity, both actual propagation delay and actual Doppler frequency of multiple targets can be obtained using CACC outputs. To exploit the redundancy of the CACC outputs and reduce the complexity, we then propose a novel mirrored-MUSIC algorithm, which halves the number of unknown parameters to be estimated, for obtaining actual values of delays and Doppler frequencies. Finally, we propose a high-resolution angles-of-arrival (AoAs) estimation algorithm, which jointly processes all measurements from spatial, temporal, and frequency domains. The proposed AoAs estimation algorithm can achieve significantly higher estimation accuracy than that of using samples from the spatial domain only. We also derive the theoretical mean-square-error of the proposed algorithms. Numerical results are provided and validate the effectiveness of the proposed scheme.

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