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Combating Transmit Antenna and Channel Correlations in Spatial Modulation Using Signature Constellations

机译:使用签名星座在空间调制中对抗发射天线和信道相关性

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Spatial modulation (SM) has a strong sensitivity to transmit antenna and channel correlations, because some of the information bits are assigned to active antenna selection, and the correlation limits the detection reliability of these bits. Recent approaches for the solution of this problem rely on either unequal error protection (UEP) of antenna and symbol bits with the addition of a channel encoder/decoder pair to the transceiver or precoding in the form of antenna-dependent rotation (or joint rotation and amplitude scaling) of the signal constellation. The UEP approaches have been shown to offer only limited efficiency in compensating for the adverse channel effects while increasing the latency and complexity due to the addition of the encoder/decoder. The precoding based approaches achieve good results for BPSK and QPSK signals, but the performance quickly degrades for higher-level QAM signal constellations. Also, the complexity of the precoder optimization problem increases with the number of transmit antennas and the modulation order, making this approach not very practical to use for large spectral efficiencies. This paper introduces a novel approach to this problem whose performance is independent of the modulation order. The key idea is to use signature constellations for different transmit antennas with an inter-constellation minimum Euclidean distance that is independent of the modulation order. The theoretical analysis and the simulation results show that compared to previous methods the new approach gives significant performance improvements in terms of robustness to transmit antenna correlation, particularly for Rician fading channels.
机译:空间调制(SM)对发射天线和信道相关性具有很强的敏感性,因为某些信息位分配给了有源天线选择,并且相关性限制了这些位的检测可靠性。解决该问题的最新方法依赖于天线和符号位的不均等错误保护(UEP),并在收发器中添加了信道编码器/解码器对,或者以天线相关旋转(或联合旋转和幅度缩放)。已经显示出,UEP方法在补偿不利的信道影响时仅提供有限的效率,同时由于增加了编码器/解码器而增加了等待时间和复杂性。基于预编码的方法对于BPSK和QPSK信号可获得良好的结果,但是对于更高级别的QAM信号星座图,性能会迅速下降。而且,预编码器优化问题的复杂性随着发射天线的数量和调制阶数而增加,使得该方法对于大频谱效率而言不是很实用。本文针对此问题介绍了一种新颖的方法,其性能与调制阶数无关。关键思想是对星座图最小欧几里德距离(与调制阶数无关)的不同发射天线使用签名星座。理论分析和仿真结果表明,与以前的方法相比,该新方法在发送天线相关性的鲁棒性方面,特别是对于Rician衰落信道,在性能方面有了显着提高。

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