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User Location Tracking in Massive MIMO Systems via Dynamic Variational Bayesian Inference

机译:通过动态变分贝叶斯推理跟踪大规模MIMO系统中的用户位置

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Accurate user location tracking is the key to enable location-based services and assist communications in 5G networks. The massive multiple-input multiple-output (MIMO) technology employed in 5 G networks could potentially provide accurate user localization due to increased spectral efficiency and high directivity. In this paper, we propose an efficient user location tracking algorithm in massive MIMO systems. Firstly, we propose a temporal Markov group-sparse (TMGS) model based on a grid reference to capture the probabilistic temporal correlation and group sparsity of the massive MIMO channels jointly. Then we propose a dynamic variational Bayesian inference (D-VBI) algorithm to handle the TMGS priors under ill-conditioned measurement matrix in the location tracking problem. The proposed D-VBI can jointly recover the user's coarse location in the grid reference and refine the off-grid points to automatically learn the user's exact location to high accuracy. Moreover, the TMGS-based D-VBI algorithm can provide prior information about the user's next location and the possible arriving directions of the future channels to the consecutive time slot to improve the location tracking accuracy. Finally, we verify the superior performance of the proposed location tracking algorithm by extensive simulations.
机译:准确的用户位置跟踪是启用基于位置的服务并协助5G网络中通信的关键。 5G网络中采用的大规模多输入多输出(MIMO)技术可能会由于频谱效率提高和方向性高而提供准确的用户定位。在本文中,我们提出了一种在大规模MIMO系统中的有效用户位置跟踪算法。首先,我们提出了一种基于网格参考的时域马尔可夫群稀疏(TMGS)模型,以共同捕获大规模MIMO信道的概率时间相关性和群稀疏性。然后我们提出了一种动态变分贝叶斯推理(D-VBI)算法来处理位置跟踪问题中病态测量矩阵下的TMGS先验。提出的D-VBI可以共同恢复用户在网格参考中的粗略位置,并细化离网点,以自动准确地了解用户的准确位置。此外,基于TMGS的D-VBI算法可以提供有关用户下一个位置的先验信息以及未来频道到连续时隙的可能到达方向,以提高位置跟踪的准确性。最后,我们通过广泛的仿真验证了所提出的位置跟踪算法的优越性能。

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