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Wavelet Transforms in Image Processing

机译:小波变换在图像处理中

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摘要

This chapter is designed to be partly tutorial in nature and partly a summary of recent work by the authors in applying wavelets to various image processing problems. The tutorial part describes the filter-bank implementation of the discrete wavelet transform (DWT) and shows that most wavelets which permit perfect reconstruction are similar in shape and scale. We then discuss an important drawback of these wavelet transforms, which is that the distribution of energy between coefficients at different scales is very sensitive to shifts in the input data. We propose the Complex Wavelet Transform (CWT) as a solution to this problem and show how it may be applied in two dimensions. Finally we give brief details of applications of the CWT to motion estimation and image de-noising.
机译:本章旨在部分地本质上辅导,并部分地概述了作者在将小波应用于各种图像处理问题的情况下的最新工作。教程部分描述了离散小波变换(DWT)的滤波器组实现,并显示了允许完美重建的大多数小波在形状和尺度中类似。然后,我们讨论这些小波变换的重要缺点,即不同尺度的系数之间的能量分布对于输入数据中的偏移非常敏感。我们将复杂的小波变换(CWT)提出为解决此问题的解决方案,并展示如何以两个维度应用。最后,我们提供了CWT的应用程序的简要详细信息,以运动估计和图像去噪。

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