基于毫米波超大规模MIMO的室内海量物联网接入

Li Qiao, Anwen Liao, Zhen Gao, Hua Wang
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引用次数: 1

摘要

毫米波(mmWave)超大规模多输入多输出(XL-MIMO)是在即将到来的第六代通信网络中实现高数据速率的一种很有前途的技术。本文考虑了毫米波xml - mimo服务的室内大规模物联网(IoT)接入场景,其中无线信道表现出空间非平常性和远场和近场通信共存。通过分析和利用这种毫米波xml - mimo信道,我们提出了一种基于联合主动用户检测(AUD)和信道估计(CE)的低延迟免授权大规模物联网接入方案。具体而言,通过利用不同导频子载波的共同用户活动和角域xml - mimo信道的块稀疏性,我们提出了一种低复杂度的广义多测量向量联合AUD和CE算法,用于高效的室内海量接入。仿真结果验证了所提出的解决方案在AUD和CE性能方面优于最先进的基于贪婪压缩感知的方案。
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Indoor Massive IoT Access Relying on Millimeter-Wave Extra-Large-Scale MIMO
Millimeter-wave (mmWave) extra-large scale multiple-input-multiple-output (XL-MIMO) is a promising technique for achieving high data rates in the upcoming sixth-generation communication networks. This paper considers an indoor massive Internet-of-Things (IoT) access scenario served by mmWave XL-MIMO, where the wireless channels exhibit spatial non-stationarity and the coexistence of far-field and near-field communication. By analyzing and exploiting such mmWave XL-MIMO channels, we propose a low-latency grant-free massive IoT access scheme based on joint active user detection (AUD) and channel estimation (CE). Specifically, by exploiting the common user activity in different pilot subcarriers and the block sparsity of the angular-domain XL-MIMO channels, we propose a low-complexity generalized multiple measurement vector-joint AUD and CE algorithm for efficient indoor massive access. Simulation results verify that the proposed solutions outperform the state-of-the-art greedy compressive sensing-based schemes in terms of AUD and CE performance.
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