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Compressive Sensing-Based Multiuser Detection via Iterative Reweighed Approach in M2M Communications

机译:M2M通信中基于迭代权重方法的基于压缩感知的多用户检测

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Massive machine-to-machine (M2M) is an important application for Internet of Things in 5G. In this letter, we focus on solving the multiuser detection problem supported by low-activity code division multiple access for M2M communications. To address the user activity factor unknown issue in the optimal maximum a posterior probability and improve the signal reconstruction ability, we propose iterative reweighed and minimum mean-square-error iterative reweighed algorithms based on compressive sensing theory. The simulation results demonstrate that the proposed algorithms achieve substantial performance gain over traditional detectors.
机译:大规模机对机(M2M)是5G中物联网的重要应用。在这封信中,我们专注于解决针对M2M通信的低活动码分多址支持的多用户检测问题。为了解决最优的最大后验概率和提高信号重建能力的用户活动因素未知问题,我们提出了基于压缩感知理论的迭代重加权和最小均方误差迭代重加权算法。仿真结果表明,所提出的算法比传统的检测器具有更高的性能增益。

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