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A new OMP technique for sparse recovery Seyrek geriçatma i̇çin yeni bir OMP yöntemi

机译:一种用于稀疏恢复的新OMP技术一种用于稀疏恢复的OMP新方法

摘要

Compressive Sensing (CS) theory details how a sparsely represented signal in a known basis can be reconstructed using less number of measurements. However in reality there is a mismatch between the assumed and the actual bases due to several reasons like discritization of the parameter space or model errors. Due to this mismatch, a sparse signal in the actual basis is definitely not sparse in the assumed basis and current sparse reconstruction algorithms suffer performance degradation. This paper presents a novel orthogonal matching pursuit algorithm that has a controlled perturbation mechanism on the basis vectors, decreasing the residual norm at each iteration. Superior performance of the proposed technique is shown in detailed simulations. © 2012 IEEE.
机译:压缩传感(CS)理论详细说明了如何使用较少数量的测量来重建已知基础上的稀疏表示信号。但是实际上,由于多种原因,例如参数空间的离散化或模型错误,假定的基准与实际的基准之间存在不匹配。由于这种失配,实际基础上的稀疏信号绝对不会在假定基础上稀疏,并且当前的稀疏重构算法会降低性能。本文提出了一种新颖的正交匹配追踪算法,该算法在基向量上具有受控的摄动机制,从而减少了每次迭代的残差范数。详细的仿真显示了所提出技术的优越性能。 ©2012 IEEE。

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