Large-scale multiuser SM-MIMO versus massive MIMO

T. L. Narasimhan, P. Raviteja, A. Chockalingam
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引用次数: 81

Abstract

Spatial modulation (SM) is attractive for multi-antenna wireless communications. SM uses multiple transmit antenna elements but only one transmit radio frequency (RF) chain. In SM, in addition to the information bits conveyed through conventional modulation symbols (e.g., QAM), the index of the active transmit antenna also conveys information bits. In this paper, we establish that SM has significant signal-to-noise (SNR) advantage over conventional modulation in large-scale multiuser (multiple-input multiple-output) MIMO systems. Our new contribution in this paper addresses the key issue of large-dimension signal processing at the base station (BS) receiver (e.g., signal detection) in large-scale multiuser SM-MIMO systems, where each user is equipped with multiple transmit antennas (e.g., 2 or 4 antennas) but only one transmit RF chain, and the BS is equipped with tens to hundreds of (e.g., 128) receive antennas. Specifically, we propose two novel algorithms for detection of large-scale SM-MIMO signals at the BS; one is based on message passing and the other is based on local search. The proposed algorithms achieve very good performance and scale well. For the same spectral efficiency, multiuser SM-MIMO outperforms conventional multiuser MIMO (recently being referred to as massive MIMO) by several dBs. The SNR advantage of SM-MIMO over massive MIMO can be attributed to: (i) because of the spatial index bits, SM-MIMO can use a lower-order QAM alphabet compared to that in massive MIMO to achieve the same spectral efficiency, and (ii) for the same spectral efficiency and QAM size, massive MIMO will need more spatial streams per user which leads to increased spatial interference.
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大规模多用户SM-MIMO与大规模MIMO
空间调制技术在多天线无线通信中具有广泛的应用前景。SM使用多个发射天线单元,但只有一个发射射频(RF)链。在SM中,除了通过常规调制符号(如QAM)传递的信息位外,主动发射天线的索引也传递信息位。在本文中,我们建立了SM在大规模多用户(多输入多输出)MIMO系统中比传统调制具有显著的信噪比(SNR)优势。我们在本文中的新贡献解决了大规模多用户SM-MIMO系统中基站(BS)接收器(例如,信号检测)的大维度信号处理的关键问题,其中每个用户配备多个发射天线(例如,2或4个天线),但只有一个发射RF链,而BS配备了数十到数百个(例如,128)接收天线。具体来说,我们提出了两种新的算法来检测大规模的SM-MIMO信号在BS;一种是基于消息传递,另一种是基于本地搜索。该算法具有良好的性能和扩展性。对于相同的频谱效率,多用户SM-MIMO比传统的多用户MIMO(最近被称为大规模MIMO)要好几个db。与大规模MIMO相比,SM-MIMO的信噪比优势可归因于:(i)由于空间索引位,与大规模MIMO相比,SM-MIMO可以使用低阶QAM字母表来实现相同的频谱效率;(ii)对于相同的频谱效率和QAM大小,大规模MIMO将需要每个用户更多的空间流,从而导致空间干扰增加。
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