用于图像去噪和压缩的足迹和边印

P. Dragotti, M. Vetterli
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引用次数: 26

摘要

小波在压缩和去噪方面的应用非常成功。为了进一步提高基于小波的算法的性能,我们最近引入了足迹的概念,它是一种包含由不连续产生的所有小波系数的数据结构。小波和足迹的结合使用导致一维分段平滑信号的压缩和去噪非常有效的算法。我们通过提出一种新的去噪算法来扩展先前的一些结果,该算法根据奇点位置自适应地选择足迹。这种新算法优于先前提出的算法。然后,我们引入了边缘印记的概念,它代表了足迹在二维情况下的自然延伸。利用边缘印迹对二维分段平滑信号进行压缩的初步实验结果是有希望的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Footprints and edgeprints for image denoising and compression
Wavelets have been quite successful in compression or denoising applications. To further improve the performance of wavelet based algorithms, we have recently introduced the notion of footprint, which is a data structure which contains all the wavelet coefficients generated by a discontinuity. The combined use of wavelets and footprints leads to very efficient algorithms for compression and denoising of 1D piecewise smooth signals. We extend some of the previous results by presenting a new denoising algorithm, where footprints are chosen adaptively according to the singularity locations. This new algorithm outperforms previously proposed ones. Then, we introduce the notion of edgeprints, which represents a natural extension of footprints to the two dimensional case. First experimental results on the compression of 2D piecewise smooth signals using edgeprints are promising.
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