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Coherent and Differential Space-Time Shift Keying: A Dispersion Matrix Approach

机译:相干和差分空时移键控:色散矩阵方法

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摘要

Motivated by the recent concept of Spatial Modulation (SM), we propose a novel Space-Time Shift Keying (STSK) modulation scheme for Multiple-Input Multiple-Output (MIMO) communication systems, where the concept of SM is extended to include both the space and time dimensions, in order to provide a general shift-keying framework. More specifically, in the proposed STSK scheme one out of Q dispersion matrices is activated during each transmitted block, which enables us to strike a flexible diversity and multiplexing tradeoff. This is achieved by optimizing both the space-time block duration as well as the number of the dispersion matrices in addition to the number of transmit and receive antennas. We will demonstrate that the resultant equivalent system model does not impose any Inter-Channel Interference (ICI), and hence the employment of single-stream Maximum Likelihood (ML) detection becomes realistic at a low-complexity. Furthermore, we propose a Differential STSK (DSTSK) scheme, assisted by the Cayley unitary transform, which does not require any Channel State Information (CSI) at the receiver. {Here, the usual error-doubling, caused by the differential decoding, gives rise to 3-dB performance penalty in comparison to Coherent STSK (CSTSK).} Additionally, we introduce an enhanced CSTSK scheme, which avoids the requirement of Inter-Antenna Synchronization (IAS) between the RF chains associated with the transmit {Antenna Elements (AEs)} by imposing a certain constraint on the dispersion matrix design{, where each column of the dispersion matrices includes only a single non-zero component}. Moreover, according to the turbo-coding principle, the proposed CSTSK and DSTSK schemes are combined with multiple serially concatenated codes and an iterative bit-to-symbol soft-demapper{. More specifically,} the associated STSK parameters are optimized with the aid of EXtrinsic Information Transfer (EXIT) charts{, for the sake of achieving a near-capacity performance}.
机译:受近期空间调制(SM)概念的启发,我们为多输入多输出(MIMO)通信系统提出了一种新颖的空时移键控(STSK)调制方案,其中SM的概念被扩展为包括空间和时间维度,以便提供一个通用的shift键框架。更具体地,在所提出的STSK方案中,在每个发射块期间激活Q个色散矩阵之一,这使我们能够进行灵活的分集和复用折衷。这是通过优化时空块持续时间以及色散矩阵的数量以及发射和接收天线的数量来实现的。我们将证明所得的等效系统模型不施加任何通道间干扰(ICI),因此在低复杂度下采用单流最大似然(ML)检测变得现实。此外,我们建议采用Cayley transform变换的差分STSK(DSTSK)方案,该方案在接收机处不需要任何信道状态信息(CSI)。 {在这里,由差分解码引起的通常的错误加倍与相干STSK(CSTSK)相比会产生3-dB的性能损失。}此外,我们引入了一种增强的CSTSK方案,避免了天线间的需求通过对色散矩阵设计{施加一定的约束,其中色散矩阵的每一列仅包括单个非零分量},与发射{天线元素(AE)}相关联的RF链之间的同步(IAS)。此外,根据Turbo编码原理,将建议的CSTSK和DSTSK方案与多个串行级联代码和迭代的逐位软解映射器{组合在一起。更具体地说,}借助外部信息传输(EXIT)图{为实现接近容量的性能},优化了相关的STSK参数}。

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