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Block Diagonal GMD for Zero-Padded MIMO Frequency Selective Channels

机译:零填充MIMO频率选择信道的块对角GMD

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In the class of systems with linear precoder and decision feedback equalizers (DFE) for zero-padded (ZP) multiple-input multiple-output (MIMO) frequency selective channels, existing optimal transceiver designs present two drawbacks. First, the optimal systems require a large number of feedback bits from the receiver to encode the full precoding matrix. Second, the full precoding matrix leads to complex computations. These disadvantages become more severe as the bandwidth (BW) efficiency increases. In this paper, we propose using block diagonal geometric mean decomposition (BD-GMD) to design the transceiver. Two new BD-GMD transceivers are proposed: the ZF-BD-GMD system, where the receiver is a zero-forcing DFE (ZF-DFE), and the MMSE-BD-GMD system, where the receiver is a minimum- mean-square-error DFE (MMSE-DFE). The BD-GMD systems introduced here have the following four properties: a) They use the block diagonal unitary precoding technique to reduce the required number of encoding bits and simplify the computation. b) For any block size, the BD-GMD systems are optimal within the family of systems using block diagonal unitary precoders and DFEs. As block size gets larger, the BD-GMD systems produce uncoded bit error rate (BER) performance similar to the optimal systems using unitary precoders and DFEs. c) For the two ZF transceivers (ZF-Optimal and ZF-BD-GMD) and the two MMSE transceivers (MMSE-Optimal and MMSE-BD-GMD), the average BER degrades as the BW efficiency increases. d) In the case of single-input single-output (SISO) channels, the BD-GMD systems have the same performance as those of the lazy precoder transceivers. These properties make the proposed BD-GMD systems more favorable designs in practical implementation than the optimal systems.
机译:在具有线性预编码器和用于零填充(ZP)多输入多输出(MIMO)频率选择信道的判决反馈均衡器(DFE)的系统类别中,现有的最佳收发器设计存在两个缺点。首先,最佳系统需要来自接收器的大量反馈比特来对完整的预编码矩阵进行编码。其次,完整的预编码矩阵导致复杂的计算。随着带宽(BW)效率的提高,这些缺点变得更加严重。在本文中,我们建议使用块对角线几何均值分解(BD-GMD)设计收发器。提出了两个新的BD-GMD收发器:ZF-BD-GMD系统,其中接收器是强制零DFE(ZF-DFE),以及MMSE-BD-GMD系统,其中接收器是最小均值。平方误差DFE(MMSE-DFE)。此处介绍的BD-GMD系统具有以下四个属性:a)它们使用块对角线unit式预编码技术来减少所需的编码位数并简化计算。 b)对于任何块大小,在使用块对角线单一预编码器和DFE的系统系列中,BD-GMD系统都是最佳的。随着块大小变大,BD-GMD系统产生的未编码误码率(BER)性能类似于使用单一预编码器和DFE的最佳系统。 c)对于两个ZF收发器(ZF-Optimal和ZF-BD-GMD)和两个MMSE收发器(MMSE-Optimal和MMSE-BD-GMD),平均BER随着BW效率的提高而降低。 d)对于单输入单输出(SISO)通道,BD-GMD系统具有与惰性预编码器收发器相同的性能。这些特性使所提出的BD-GMD系统在实际实施中比最佳系统更有利于设计。

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