利用干扰修剪稀疏信号模型

Bob L. Sturm, J. Shynk, Dae Hong Kim
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引用次数: 2

摘要

先前关于稀疏逼近的研究表明,在使用贪婪迭代算法追求信号模型时,可以通过考虑选定原子之间的干扰来提高表示的效率。然而,在这种干扰自适应算法中,仍然经常选择原子,需要随后选择的原子进行校正。因此,从表示中去除这些原子是合乎逻辑的,这样它们就不会降低所追求的信号模型的效率。在本文中,我们提出了基于干扰程度和类型对模型进行原子修剪,并测试了其在干扰自适应正交匹配追踪算法中的有效性。
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Pruning sparse signal models using interference
Previous work on sparse approximations has shown that in the pursuit of a signal model using greedy iterative algorithms, the efficiency of the representation can be increased by considering the interference between selected atoms. However, in such interference-adaptive algorithms, atoms are still often selected that necessitate correction by subsequently chosen atoms. It is thus logical to remove these atoms from the representation so that they do not diminish the efficiency of the pursued signal model. In this paper, we propose to prune atoms from the model based on the degree and type of interference, and test its effectiveness in an interference-adaptive orthogonal matching pursuit algorithm.
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