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Block-Sparse Signal Recovery From Binary Measurements

机译:从二进制测量中恢复块稀疏信号

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We address the issue of block-sparse signal recovery from binary measurements of random projections. While a variety of recovery algorithms for sparse signals have been proposed in the context of 1-bit compressed sensing, there remains a gap in the recovery of more structured signals. We propose a convex programming approach tailored to the class of block-sparse signals, as well as an iterative method based on the binary iterative hard thresholding algorithm. We motivate the respective recovery schemes, and demonstrate their effectiveness and superior performance to previously established methods in a series of numerical experiments.
机译:我们从随机投影的二进制测量中解决了块稀疏信号恢复的问题。虽然已经在1位压缩传感的背景下提出了多种稀疏信号的恢复算法,但在恢复更多结构化信号方面仍存在差距。我们提出了一种针对块稀疏信号的类而设计的凸编程方法,以及一种基于二进制迭代硬阈值算法的迭代方法。我们激发了各自的恢复方案,并通过一系列数值实验证明了它们的有效性和优于以前建立的方法的性能。

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