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Tensor-based low-complexity channel estimation for mmWave massive MIMO-OTFS systems

机译:MMWAVE大型MIMO-OTFS系统的张量基低复杂性信道估计

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摘要

Orthogonal time frequency space (OTFS) modulation, collaborated with millimeter-wave (mmWave) massive multiple-input-multiple-output (MIMO), is a promising technology for next generation wireless communications in high mobility scenarios. However, one of the main challenges for mmWave massive MIMO-OTFS systems is the enormous computational complexity of channel estimation incurred by the huge OTFS symbol size and the large number of antennas. To address this issue, in this paper, a tensor-based orthogonal matching pursuit (OMP) channel estimation algorithm is proposed by exploiting the channel sparsity in the delay-Doppler-angle domain. In particular, we firstly propose a novel pilot design for the OTFS symbol structure in the frequency-time domain. Then, based on the proposed pilot structure, we formulate the channel estimation as a sparse signal recovery problem, and the tensor decomposition and parallel support detection are introduced into the tensor-based OMP algorithm to reduce the signal processing dimension significantly. Numerical simulations are performed to verify the superiority and the robustness of the proposed tensor-based OMP algorithm.
机译:用毫米波(MMWAVE)的正交时间频率空间(OTF)调制大规模的多输入多输出(MIMO)是在高移动性方案中的下一代无线通信的有希望的技术。然而,MMWave大规模MIMO-OTFS系统的主要挑战之一是巨大的OTFS符号大小和大量天线产生的信道估计的巨大计算复杂性。为了解决这个问题,本文通过利用延迟多普勒角域中的沟道稀疏性提出了一种基于张力的正交匹配追踪(OMP)信道估计算法。特别是,我们首先提出了频率时域中的OTFS符号结构的新型导频设计。然后,基于所提出的导频结构,我们将信道估计作为稀疏信号恢复问题标注,并将张量分解和并联支持检测引入到基于卷的OMP算法中,以显着降低信号处理维度。执行数值模拟以验证所提出的基于卷的OMP算法的优越性和鲁棒性。

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