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A Low-Complexity Iterative GAMP-Based Detection for Massive MIMO with Low-Resolution ADCs

机译:具有低分辨率ADC的大规模MIMO的基于低复杂度迭代的GAMP检测

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A performance-acceptable and low-complexity detection method for massive multiple-input multiple-output (MIMO) involving low-resolution analog digital converter (ADC) at each antenna is proposed. The proposed method combines the generalized approximate message passing (GAMP) detection with channel decoder and exchanges extrinsic information between them, by which the remaining information filtered by the ADCs can be recovered as accurate as possible. Contrasted to the iterative minimum mean squared error (MMSE) detection, our method circumvents large-scale matrix inverse operation and leverages the statistical properties of both quantization errors and transmitted symbols. Moreover, we analyze the computational complexity and storage occupation for both algorithms to authenticate the superiority of the proposed approach. For visualization, the numerical results reveal that 3-bit ADCs are capable of achieving the almost same performance as the full resolution ADCs and substantiate that the bit error ratio (BER) performance of the proposed method is equivalent to that of iterative MMSE but with less complexity for implementation.
机译:提出了一种在每个天线上都涉及低分辨率模拟数字转换器(ADC)的大规模多输入多输出(MIMO)的性能可接受且低复杂度的检测方法。所提出的方法将广义近似消息传递(GAMP)检测与通道解码器结合在一起,并在它们之间交换外部信息,从而可以尽可能准确地恢复ADC过滤的剩余信息。与迭代最小均方误差(MMSE)检测相反,我们的方法规避了大规模矩阵逆运算,并利用了量化误差和传输符号的统计特性。此外,我们分析了两种算法的计算复杂度和存储占用量,以验证所提出方法的优越性。为了进行可视化,数值结果表明3位ADC能够实现与全分辨率ADC几乎相同的性能,并证明了所提出方法的误码率(BER)性能与迭代MMSE相当,但具有更少的性能。实现的复杂性。

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