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Successive Hypothesis Testing Based Sparse Signal Recovery and Its Application to MUD in Random Access

机译:基于连续假设检验的稀疏信号恢复及其在随机接入MUD中的应用

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摘要

Based on successive hypothesis testing, we propose an approach for sparse signal recovery and apply it to random access to detect multiple block-sparse signals over frequency-selective fading channels. By introducing the sparsity variable, the proposed approach decides the presence or absence of the signal in each stage. To mitigate the error propagation, adaptive ordering is also employed as a greedy algorithm. From simulation results, it is shown that the proposed approach performs better than the block orthogonal matching pursuit algorithm, which is a well-known greedy compressive sensing algorithm for compressive random access.
机译:基于连续的假设检验,我们提出了一种稀疏信号恢复的方法,并将其应用于随机访问以检测频率选择性衰落信道上的多个块稀疏信号。通过引入稀疏变量,所提出的方法确定每个阶段中信号的存在与否。为了减轻错误传播,自适应排序也被用作贪婪算法。从仿真结果可以看出,该方法的性能优于块正交匹配追踪算法,后者是众所周知的用于压缩随机访问的贪婪压缩感知算法。

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    《IEEE signal processing letters》 |2017年第2期|166-170|共5页
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