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Greedy Orthogonal Matching Pursuit Algorithm for Sparse Signal Recovery in Compressive Sensing

机译:贪婪正交追踪追踪追踪追踪扫描信号恢复

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The sparse signal recovery problem has been the subject of extensive research in several different communities. Tractable recovery algorithm is a crucial and fundamental theme of compressive sensing (CS), which has drawn significant interests in the last few years. In this paper, we firstly analyze the iterative residual in Orthogonal Matching Pursuit (OMP) algorithm. Secondly, a greedier algorithm is introduced, which is called Greedy OMP (GOMP) algorithm. This algorithm iteratively identifies more than one atoms using greedy atom identification, and then discards some atoms, which are of high similarity with the optimal atom. Compared with OMP algorithm, the experiments conducted on Gaussian and Zero-one sparse signal demonstrate that the proposed GOMP algorithm can provide better recovery performance. Finally, we experimentally investigate the effect of greedy constant in GOMP upon the recovery performance.
机译:稀疏的信号恢复问题是几个不同社区的广泛研究的主题。 Trocrable Recovery Algorithm是压缩感应(CS)的重要和基本主题,在过去几年中具有显着的兴趣。 在本文中,我们首先分析了正交匹配追踪(OMP)算法中的迭代残留。 其次,引入了贪婪算法,称为贪婪OMP(GOMP)算法。 该算法迭代地使用贪婪原子识别识别多于一个原子,然后丢弃一些原子,其与最佳原子具有高相似性。 与OMP算法相比,在高斯和零一个稀疏信号上进行的实验表明,所提出的GOMP算法可以提供更好的恢复性能。 最后,我们通过实验研究了贪婪常数在康复绩效上的影响。

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