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首页> 外文期刊>IEEE Transactions on Broadcasting >Low-Complexity Demapping Algorithm for Two-Dimensional Non-Uniform Constellations
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Low-Complexity Demapping Algorithm for Two-Dimensional Non-Uniform Constellations

机译:二维非均匀星座的低复杂度解映射算法

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摘要

Non-uniform constellations (NUCs) have been recently introduced in digital broadcasting systems to close the remaining gap to the unconstrained Shannon theoretical limit. Compared to uniform quadrature amplitude modulation (QAM) constellations, NUCs provide a signal-to-noise ratio (SNR) gain (i.e., a reduction in the required SNR), especially for high-order constellations. One-dimensional NUCs (1D-NUC) have a squared shape with non-uniform distance between the constellation symbols. Since the and components remain as two independent signals, a 1D-demapper as for uniform QAM constellations is feasible. Two-dimensional NUCs (2D-NUC) provide a better performance than 1D-NUCs, since they are designed by relaxing the square shape constraint, with arbitrary shape along the complex plane. However, the main drawback of 2D-NUCs is the higher complexity at the receiver, since a 2D-demapper is needed. In this paper, we propose a demapping algorithm that reduces from 69% to 93% the number of required distances when using 2D-NUCs. The algorithm discards or replicates those constellation symbols that provide scarce information, with a performance degradation lower to 0.1 dB compared to the optimal maximum likelihood demapper.
机译:最近在数字广播系统中引入了非均匀星座(NUC),以将剩余的差距缩小到不受限制的Shannon理论极限。与统一正交幅度调制(QAM)星座相比,NUC提供信噪比(SNR)增益(即所需SNR的降低),尤其是对于高阶星座。一维NUC(1D-NUC)具有正方形形状,星座图符号之间的距离不均匀。由于和分量保持为两个独立信号,因此对于统一QAM星座图,一维解映射器是可行的。二维NUC(2D-NUC)比1D-NUC具有更好的性能,因为它们是通过放宽正方形约束而设计的,沿着复杂平面具有任意形状。但是,由于需要2D解映射器,因此2D-NUC的主要缺点是接收机处的复杂性更高。在本文中,我们提出了一种解映射算法,该算法将使用2D-NUC时所需距离的数量从69%减少到93%。该算法丢弃或复制那些提供稀缺信息的星座符号,与最佳最大似然解映射器相比,性能降低到0.1 dB。

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