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Soft Consistency Reconstruction: A robust 1-bit compressive sensing algorithm

机译:软一致性重建:强大的1位压缩感测算法

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A class of recovering algorithms for 1-bit compressive sensing (CS) named Soft Consistency Reconstructions (SCRs) are proposed. Recognizing that CS recovery is essentially an optimization problem, we endeavor to improve the characteristics of the objective function under noisy environments. With a family of re-designed consistency criteria, SCRs achieve remarkable counter-noise performance gain over the existing counterparts, thus acquiring the desired robustness in many real-world applications. The benefits of soft decisions are exemplified through structural analysis of the objective function, with intuition described for better understanding. As expected, through comparisons with existing methods in simulations, SCRs demonstrate preferable robustness against noise in low signal-to-noise ratio (SNR) regime, while maintaining comparable performance in high SNR regime.
机译:提出了一类用于1位压缩感知(CS)的恢复算法,称为软一致性重建(SCR)。认识到CS恢复本质上是一个优化问题,因此我们努力改善嘈杂环境下目标函数的特性。借助一系列重新设计的一致性标准,SCR与现有同类产品相比,获得了显着的抗噪性能提升,从而在许多实际应用中获得了所需的鲁棒性。通过对目标函数进行结构分析,可以举例说明软决策的好处,并介绍了直觉,以便更好地理解。如预期的那样,通过与仿真中的现有方法进行比较,SCR证明了在低信噪比(SNR)方案中具有较好的抗噪声鲁棒性,同时在高SNR方案中保持了可比的性能。

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