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Matching pursuits with time-frequency dictionaries

机译:将追求与时频词典相匹配

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The authors introduce an algorithm, called matching pursuit, that decomposes any signal into a linear expansion of waveforms that are selected from a redundant dictionary of functions. These waveforms are chosen in order to best match the signal structures. Matching pursuits are general procedures to compute adaptive signal representations. With a dictionary of Gabor functions a matching pursuit defines an adaptive time-frequency transform. They derive a signal energy distribution in the time-frequency plane, which does not include interference terms, unlike Wigner and Cohen class distributions. A matching pursuit isolates the signal structures that are coherent with respect to a given dictionary. An application to pattern extraction from noisy signals is described. They compare a matching pursuit decomposition with a signal expansion over an optimized wavepacket orthonormal basis, selected with the algorithm of Coifman and Wickerhauser see (IEEE Trans. Informat. Theory, vol. 38, Mar. 1992).
机译:作者介绍了一种称为匹配追踪的算法,该算法可将任何信号分解为从冗余函数字典中选择的波形的线性扩展。选择这些波形是为了最好地匹配信号结构。匹配追踪是计算自适应信号表示的通用过程。利用Gabor函数字典,匹配追踪定义了自适应时频变换。与Wigner和Cohen类分布不同,它们在时频平面上得出信号能量分布,其中不包括干扰项。匹配追踪将隔离相对于给定字典的信号结构。描述了一种用于从噪声信号中提取模式的应用。他们将匹配的追踪分解与在优化的波包正交基础上的信号扩展进行比较,并使用Coifman和Wickerhauser的算法进行选择(参见IEEE Trans。Informat。Theory,第38卷,1992年3月)。

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