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Modified CS-based downlink channel estimation with temporal correlation in FDD massive MIMO systems

机译:FDD大规模MIMO系统中具有时间相关性的基于CS的改进的下行链路信道估计

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In order to fully utilize the spatial multiplexing gains and array gains of massive multiple-input multiple-output (MIMO), it is essential to obtain accurate channel state information at the transmitter (CSIT). However, conventional CSIT estimation approaches are not suitable for frequency-division duplexing (FDD) massive MIMO systems due to the prohibitively large training and feedback overhead. Recently, the compressive sensing (CS) technique is proposed to reduce the overhead for CSIT acquisition. In this paper, we consider CS-based channel estimation schemes with temporal correlation. First, we discuss the existing modified subspace pursuit (M-SP) algorithm which can exploit the prior channel support information to enhance the current CSIT estimation performance. To tolerate model mismatch, the conservative M-SP algorithm is further discussed. Moreover, we propose a new adaptive M-SP algorithm which not only exploits the temporal correlation of the massive MIMO channels, but also has the built-in learning capability to adapt to the appropriate prior channel support quality parameter. The proposed adaptive M-SP algorithm can obtain the successful CSIT recovery in the case of model mismatch. Simulation results show that the proposed algorithm has substantial performance gain over conventional algorithms and is very robust to model mismatch.
机译:为了充分利用大规模多输入多输出(MIMO)的空间复用增益和阵列增益,必须在发射机(CSIT)上获得准确的信道状态信息。但是,由于过大的训练和反馈开销,常规的CSIT估计方法不适用于频分双工(FDD)大规模MIMO系统。近来,提出了压缩感测(CS)技术以减少用于CSIT获取的开销。在本文中,我们考虑具有时间相关性的基于CS的信道估计方案。首先,我们讨论了现有的改进子空间追踪(M-SP)算法,该算法可以利用先前的信道支持信息来增强当前CSIT估计性能。为了容忍模型不匹配,将进一步讨论保守的M-SP算法。此外,我们提出了一种新的自适应M-SP算法,该算法不仅利用海量MIMO信道的时间相关性,而且还具有内置的学习能力,以适应适当的先前信道支持质量参数。在模型不匹配的情况下,提出的自适应M-SP算法可以获得成功的CSIT恢复。仿真结果表明,与常规算法相比,所提算法具有显着的性能提升,对失配建模具有很好的鲁棒性。

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