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Locally Adaptive DCT Filtering for Signal-Dependent Noise Removal

机译:局部自适应DCT滤波,用于消除与信号有关的噪声

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摘要

This work addresses the problem of signal-dependent noise removal in images. An adaptive nonlinear filtering approach in the orthogonal transform domain is proposed and analyzed for several typical noise environments in the DCT domain. Being applied locally, that is, within a window of small support, DCT is expected to approximate the Karhunen-Loeve decorrelating transform, which enables effective suppression of noise components. The detail preservation ability of the filter allowing not to destroy any useful content in images is especially emphasized and considered. A local adaptive DCT filtering for the two cases, when signal-dependent noise can be and cannot be mapped into additive uncorrelated noise with homomorphic transform, is formulated. Although the main issue is signal-dependent and pure multiplicative noise, the proposed filtering approach is also found to be competing with the state-of-the-art methods on pure additive noise corrupted images.
机译:这项工作解决了图像中与信号有关的噪声去除问题。提出了一种正交变换域中的自适应非线性滤波方法,并针对DCT域中的几种典型噪声环境进行了分析。在本地应用,即在小规模支持的窗口内,DCT有望近似于Karhunen-Loeve解相关变换,从而可以有效抑制噪声分量。特别强调并考虑了滤镜的细节保存能力,该功能不允许破坏图像中的任何有用内容。制定了两种情况下的局部自适应DCT滤波,即通过同态变换可以将与信号相关的噪声映射为和不能映射为加法不相关噪声的情况。尽管主要问题是信号相关和纯乘性噪声,但是在纯加性噪声损坏图像上,所提出的滤波方法也与最新技术相竞争。

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