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Generalized methods and solvers for noise removal from piecewise constant signals. II. New methods

机译:从分段常数信号中去除噪声的通用方法和求解器。二。新方法

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摘要

Removing noise from signals which are piecewise constant (PWC) is a challenging signal processing problem that arises in many practical scientific and engineering contexts. In the first paper (part I) of this series of two, we presented background theory building on results from the image processing community to show that the majority of these algorithms, and more proposed in the wider literature, are each associated with a special case of a generalized functional, that, when minimized, solves the PWC denoising problem. It shows how the minimizer can be obtained by a range of computational solver algorithms. In this second paper (part II), using this understanding developed in part I, we introduce several novel PWC denoising methods, which, for example, combine the global behaviour of mean shift clustering with the local smoothing of total variation diffusion, and show example solver algorithms for these new methods. Comparisons between these methods are performed on synthetic and real signals, revealing that our new methods have a useful role to play. Finally, overlaps between the generalized methods of these two papers and others such as wavelet shrinkage, hidden Markov models, and piecewise smooth filtering are touched on.
机译:从分段常数(PWC)的信号中消除噪声是一个挑战性的信号处理问题,在许多实际的科学和工程环境中都会出现。在这两个系列的第一篇论文(第一部分)中,我们基于图像处理社区的结果提出了背景理论,以表明这些算法中的大多数(在更广泛的文献中提出的更多)都与一种特殊情况相关联。泛化函数,当最小化时,可以解决PWC去噪问题。它显示了如何通过一系列计算求解器算法获得最小化器。在第二篇文章(第二部分)中,利用在第一部分中获得的理解,我们介绍了几种新颖的PWC去噪方法,例如,将均值漂移聚类的整体行为与总变化扩散的局部平滑相结合,并举例说明这些新方法的求解器算法。这些方法在合成信号和真实信号之间进行了比较,表明我们的新方法可以发挥有用的作用。最后,这两篇论文的广义方法与小波收缩,隐马尔可夫模型和分段平滑滤波等其他方法之间存在重叠。

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