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Widely Linear Sphere Decoder in MIMO Systems by Exploiting the Conjugate Symmetry of Linearly Modulated Signals

机译:利用线性调制信号的共轭对称性实现MIMO系统中的宽线性球面解码器

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This paper investigates the widely linear processing (WLP) for the detection of circular signals, such as M-ary phaseshift keying (MPSK) signals and M-ary quadrature amplitude modulation (MQAM) signals. First, a unified mathematical model is derived to describe the conjugate symmetry of general MPSK/MQAM signals. In the unified model, a phase-rotation matrix (PRM) is introduced to partition the constellation of multiple-input multiple-output (MIMO) signals into subsets. Signals in a subset share the same PRM. Second, a widely linear receiver is proposed in each subset for MIMO detection. To avoid repetitive WLP in each subset, a widely linear sphere decoder (WLSD) is further proposed for MIMO systems. WLSD transforms the traditional sphere decoder (SD) searching for a true transmitted vector into a shrunk one by searching for the corresponding phase-rotation vector. Finally, the diversity order of WLSD is proven to be more than NR - NT -1/2 and less than NR, where NT (or NR) denotes the number of transmitting (or receiving) antennas. Additional performance analysis is also conducted to quantify the signal-to-noise ratio improvement. The complexity analysis reveals that the candidate phase-rotation vectors of WLSD are no more than (1/2)NT of the SD candidates. Simulation results show that the proposed WLSD can achieve quasi-optimal bit error rate performance, while the computational complexity is reduced by more than a half compared with the Schnorr-Euchner sphere decoder.
机译:本文研究了用于检测圆形信号的广泛线性处理(WLP),例如M元相移键控(MPSK)信号和M元正交幅度调制(MQAM)信号。首先,导出一个统一的数学模型来描述一般MPSK / MQAM信号的共轭对称性。在统一模型中,引入了相位旋转矩阵(PRM)以将多输入多输出(MIMO)信号的星座图划分为子集。子集中的信号共享相同的PRM。其次,在每个子集中提出了一个广泛的线性接收机用于MIMO检测。为了避免每个子集中的重复WLP,还针对MIMO系统提出了宽线性球面解码器(WLSD)。 WLSD通过搜索相应的相位旋转矢量,将搜索真正传输矢量的传统球形解码器(SD)转换为缩小的矢量。最后,事实证明,WLSD的分集阶数大于NR-NT -1/2且小于NR,其中NT(或NR)表示发射(或接收)天线的数量。还进行了其他性能分析,以量化信噪比的提高。复杂度分析表明,WLSD的候选相位旋转矢量不超过SD候选的(1/2)NT。仿真结果表明,所提出的WLSD可以实现准最佳误码率性能,并且与Schnorr-Euchner球形解码器相比,计算复杂度降低了一半以上。

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