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Near-ML Lattice Reduction-aided Detection Scheme for Low Complexity MIMO-OFDM Systems

机译:低复杂性MIMO-OFDM系统的近mL晶格还原辅助检测方案

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In this paper, we propose a novel lattice reduction (LR) algorithm for the low-complexity multiple-input multiple-output (MIMO) detection with near-maximum-likelihood (ML) performance. The proposed LR algorithm is designed considering both the hardware complexity and the power consumption. First, a modified column traverse strategy is proposed to reduce the worst-case complexity (hardware complexity). Also, in order to reduce the average complexity (power consumption), we focus on the joint optimization by employing the early termination (ET) criterion in the context of MIMO detection, whereas the conventional approaches are based exclusively on channel characteristics. In order to make it possible for the LR-aided fixed-complexity sphere detector (FSD) to perform the partial detection, the LR process is thoroughly modified so that the ET criterion is able to be employed. Furthermore, we perform the joint optimization of these two approaches. The experimental results demonstrate that the worst-case and average complexity is reduced considerably maintaining the near-ML BER performance at the BER of 10~(-5).
机译:在本文中,我们提出了一种新的晶格还原(LR)算法,用于低复杂性多输入多输出(MIMO)检测,具有近最大可能性(mL)性能。考虑到硬件复杂性和功耗,设计了所提出的LR算法。首先,提出了一种修改的列遍历策略以降低最坏情况的复杂性(硬件复杂性)。此外,为了降低平均复杂性(功耗),我们通过在MIMO检测的背景下采用早期终止(et)标准来专注于联合优化,而传统方法仅基于信道特性。为了使LR辅助固定复杂度球体检测器(FSD)能够进行部分检测,可以彻底修改LR过程,以便能够采用ET标准。此外,我们执行这两种方法的联合优化。实验结果表明,最坏情况和平均复杂性显着降低了在10〜(-5)的BER中保持近mL BER性能。

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