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Second-order differential based matching pursuit method for compressive sensing signal recovery

机译:基于二阶差分匹配方法,用于压缩传感信号恢复

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In this paper, we propose a novel sparsity adaptive greedy algorithm, called second-order differential based adaptive matching pursuit (SDAMP) method, for sparse signal reconstruction. By applying a novel sparsity sensing technique based on the second-order differential of correlation vector Φ y, SDAMP is capable to achieve real-time recovery without K as a prior condition. Further, SDAMP innovatively incorporates a backtracking framework to extend the algorithm to an adaptive greedy strategy. Experiments demonstrate that SDAMP runs considerably faster than other sparsity adaptive algorithms while maintaining superior performance to most of its predecessors.
机译:在本文中,我们提出了一种新的稀疏自适应贪婪算法,称为二阶差分自适应匹配追踪(Sdamp)方法,用于稀疏信号重建。通过基于相关矢量φY的二阶差分施加新的稀疏感测技术,Sdamp能够实现没有K的实时恢复作为先前条件。此外,SDAMP创新地融合了回溯框架,以将算法扩展到自适应贪婪策略。实验表明,Sdamp比其他稀疏自适应算法快得多,同时对大多数前辈保持优异的性能。

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