一个还是两个频率?散射变换答案

V. Lostanlen, Alice Cohen-Hadria, J. Bello
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引用次数: 4

摘要

为了构建一个生物学上合理的机器听力模型,我们研究了用小波散射网络表示多分量平稳信号。首先,我们证明了二阶节点的一阶父节点的重规格化给出了一个简单的数值准则来评估两个相邻分量是否会产生心理声学干扰。其次,我们在散射系数上运行流形学习算法(Isomap)来可视化参数加性合成的相似空间。第三,我们将“一或两分量”框架推广到三个或更多正弦波,并证明了傅里叶级数的有效散射深度与带宽成对数比例增长。
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One or Two Frequencies? The Scattering Transform Answers
With the aim of constructing a biologically plausible model of machine listening, we study the representation of a multicomponent stationary signal by a wavelet scattering network. First, we show that renormalizing second-order nodes by their first-order parents gives a simple numerical criterion to assess whether two neighboring components will interfere psychoacoustically. Secondly, we run a manifold learning algorithm (Isomap) on scattering coefficients to visualize the similarity space underlying parametric additive synthesis. Thirdly, we generalize the “one or two components” framework to three sine waves or more, and prove that the effective scattering depth of a Fourier series grows in logarithmic proportion to its bandwidth.
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