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Adaptive Diffusion as a Versatile Tool for Time-Frequency and Time-Scale Representations Processing: A Review

机译:自适应扩散作为用于时频和时标表示处理的多功能工具:综述

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Inspired by the work on image processing by Perona and Malik, diffusion-based models were first investigated by Goncalves and Payot to improve the readability of Cohen class time-frequency representations. They rely on signal-dependent partial differential equations that yield adaptive smoothed representations with sharpened time-frequency components. Here, we demonstrate the versatility and utility of this family of methods, and we propose new adaptive diffusion processes to locally control both the orientation and the strength of smoothing. Our approach is an improvement on previous works as it provides a unified framework not only for the Cohen class but for the affine class as well. The latter is of particular interest because, except for some special techniques such as the reassignment method, no signal-dependent smoothing technique exists to process bilinear time-scale distributions, nor even a transposition of the adaptive optimal-kernel method proposed by Baraniuk and Jones.
机译:受Perona和Malik的图像处理工作的启发,Goncalves和Payot首先研究了基于扩散的模型,以提高Cohen类时频表示的可读性。它们依赖于信号相关的偏微分方程,该方程产生带有锐化时频分量的自适应平滑表示。在这里,我们证明了这一系列方法的多功能性和实用性,并且我们提出了新的自适应扩散过程来局部控制平滑的方向和强度。我们的方法是对以前作品的改进,因为它不仅为Cohen类而且为仿射类提供了一个统一的框架。后者之所以特别令人关注,是因为除了重新分配方法之类的某些特殊技术外,不存在依赖信号的平滑技术来处理双线性时标分布,甚至也没有Baraniuk和Jones提出的自适应最优内核方法的转置。 。

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