生物医学信号的分布式压缩感知

Qun Wang, Zhiwen Liu
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引用次数: 0

摘要

提出了一种基于回溯技术的分布式压缩感知(DCS)场景迭代贪心算法,用DCS- samp表示。该算法可以同时重建多个输入信号,即使测量结果被噪声污染,并且没有任何先验的稀疏性信息。它可以提供快速的运行时,同时作为最佳的基于优化的方法提供相对理论上的保证。这使它成为许多实际应用的有希望的候选者,例如远程保健或远程医疗。数值实验验证了该算法对多通道生物医学信号的有效性和高性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Distributed Compressed Sensing for biomedical signals
This paper presents a novel iterative greedy algorithm for Distributed Compressed Sensing (DCS) scenario based on backtracking technique, which is denoted by DCS-SAMP. The algorithm can reconstruct several input signals simultaneously, even when the measurements are contaminated with noise and without any prior information of their sparseness. It can provide a fast runtime while also offers comparably theoretical guarantees as the best optimization-based approach. This makes it as a promising candidate for many practical applications,such as Tele-Health or Telemedicine. Numerical experiments are performed to demonstrate the validity and high performance of the proposed DCS-SAMP algorithm for multichannel biomedical signals.
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