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A Low-Complexity Maximum Likelihood Detector for the Spatially Modulated Signals: Algorithm and Hardware Implementation

机译:用于空间调制信号的低复杂度最大似然检测器:算法和硬件实现

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Aiming to increase the transmission data rate, the spatial modulation (SM) scheme maps each block of information bits to a digitally modulated symbol and additionally a transmit antenna index in a multiple transmit antenna system. In this brief, we focus on the maximum likelihood detection (MLD) scheme that detects SM signals with low computational complexity. By reformulating the MLD problem, we obtain a new mathematical expression as the MLD solution. To avoid the numerically unstable division operation, we apply the Givens rotation to realize this new expression and obtain a low-complexity MLD algorithm. We also propose a coordinate rotation digital computer-based hardware architecture to detect SM signals with 64-quaternary amplitude modulated (QAM) symbols over the correlated channel with eight transmit antennas and four receive antennas. The VLSI implementation results under the TSMC 90-nm CMOS technology reveal that our division-free architecture requires 70.5K gates and provides detection throughput 432.68 Mb/s, while operating at frequency 384.6 MHz. Our design is the first hardware architecture to achieve the exact MLD performance and is easily modified to detect SM signals with arbitrary ${M}$ -ary QAM symbols and arbitrary numbers of transmit and receive antennas.
机译:为了提高传输数据速率,空间调制(SM)方案将信息比特的每个块映射到数字调制符号,并在多发射天线系统中将发射天线索引另外映射。在本文中,我们将重点放在检测具有低计算复杂度的SM信号的最大似然检测(MLD)方案上。通过重新构造MLD问题,我们获得了新的数学表达式作为MLD解决方案。为了避免数值不稳定的除法运算,我们应用Givens旋转来实现此新表达式并获得低复杂度的MLD算法。我们还提出了一种基于坐标旋转数字计算机的硬件体系结构,以在具有八个发射天线和四个接收天线的相关信道上检测具有64个四进制调幅(QAM)符号的SM信号。在台积电90纳米CMOS技术下的VLSI实施结果表明,我们的无分割架构需要70.5K的门,并在384.6 MHz的频率下提供检测吞吐量432.68 Mb / s。我们的设计是第一个实现精确MLD性能的硬件体系结构,可以轻松修改以检测带有任意$ {M} $ -ary QAM符号以及任意数量的发射和接收天线的SM信号。

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