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Modified OMP Algorithm for Exponentially Decaying Signals

机译:指数衰减信号的改进OMP算法

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摘要

A group of signal reconstruction methods, referred to as compressed sensing (CS), has recently found a variety of applications in numerous branches of science and technology. However, the condition of the applicability of standard CS algorithms (e.g., orthogonal matching pursuit, OMP), i.e., the existence of the strictly sparse representation of a signal, is rarely met. Thus, dedicated algorithms for solving particular problems have to be developed. In this paper, we introduce a modification of OMP motivated by nuclear magnetic resonance (NMR) application of CS. The algorithm is based on the fact that the NMR spectrum consists of Lorentzian peaks and matches a single Lorentzian peak in each of its iterations. Thus, we propose the name Lorentzian peak matching pursuit (LPMP). We also consider certain modification of the algorithm by introducing the allowed positions of the Lorentzian peaks' centers. Our results show that the LPMP algorithm outperforms other CS algorithms when applied to exponentially decaying signals.
机译:一组称为压缩感测(CS)的信号重建方法最近在许多科学和技术领域中找到了多种应用。然而,很少满足标准CS算法(例如,正交匹配追踪,OMP)的适用性的条件,即信号的严格稀疏表示的存在。因此,必须开发用于解决特定问题的专用算法。在本文中,我们介绍了CS的核磁共振(NMR)应用激发的OMP的修改。该算法基于以下事实:NMR谱由洛伦兹峰组成,并且在每次迭代中都匹配一个洛伦兹峰。因此,我们提出了洛伦兹峰匹配追踪(LPMP)这个名称。我们还考虑通过引入洛伦兹峰中心的允许位置来对算法进行某些修改。我们的结果表明,当应用于指数衰减信号时,LPMP算法优于其他CS算法。

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