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首页> 外文期刊>IEEE transactions on very large scale integration (VLSI) systems >Algorithm and Architecture of an Efficient MIMO Detector With Cross-Level Parallel Tree-Search
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Algorithm and Architecture of an Efficient MIMO Detector With Cross-Level Parallel Tree-Search

机译:跨层并行树搜索的高效MIMO检测器的算法和架构

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The metric-first-based multiple-input-multiple-output (MIMO) detection algorithm can achieve optimal performance with large stack size, which leads to huge memory consumption and extremely high-sorting complexity. This article presents the algorithm and architecture of a soft-input-soft-output metric-first MIMO detection. The proposed algorithm divides the global stack into multiple local stacks for each nonleaf of the tree. Furthermore, each level of the search tree is performed in parallel to improve the throughput and hardware efficiency. In the proposed algorithm, the hybrid enumeration strategy significantly reduces the computational complexity by avoiding the full enumeration and sorting. The simulation results show the novel algorithm can achieve good performance with lower complexity than other metric-first methods. The proposed detector has been designed for a 4 x 4 64-QAM MIMO system and implemented in SMIC 65-nm CMOS technology. The detector can operate at 333-MHz clock frequency and achieve a maximum throughput of 799.2 Mb/s at a 17.3-dB signal-to-noise ratio with area equivalent 242 kg and power consumption of 102.3 mW, and the hardware efficiency is 3.3 Mb/s/kg. Compared with other detectors based on the metric-first algorithm, this article has an obvious advantage in terms of throughput and hardware efficiency.
机译:基于度量优先的多输入多输出(MIMO)检测算法可以在较大的堆栈大小下实现最佳性能,从而导致巨大的内存消耗和极高的排序复杂性。本文介绍了软输入-软输出度量优先的MIMO检测的算法和体系结构。所提出的算法针对树的每个非叶将全局堆栈划分为多个局部堆栈。此外,并行执行搜索树的每个级别以提高吞吐量和硬件效率。在提出的算法中,混合枚举策略通过避免完整的枚举和排序而大大降低了计算复杂度。仿真结果表明,与其他度量优先方法相比,该算法能够以较低的复杂度实现良好的性能。拟议的检测器已针对4 x 4 64-QAM MIMO系统进行设计,并以SMIC 65-nm CMOS技术实现。该检测器可以在333 MHz时钟频率下工作,在17.3 dB信噪比下的最大吞吐量为799.2 Mb / s,面积等效为242 kg,功耗为102.3 mW,硬件效率为3.3 Mb / s / kg。与其他基于度量优先算法的检测器相比,本文在吞吐量和硬件效率方面具有明显的优势。

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