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The Bitonic Filter: Linear Filtering in an Edge-Preserving Morphological Framework

机译:Bitonic滤波器:边缘保留形态学框架中的线性滤波

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摘要

A new filter is presented which has better edge and detail preserving properties than a median, noise reduction capability similar to a Gaussian, and is applicable to many signal and noise types. It is built on a definition of signal as bitonic, i.e., containing only one local maxima or minima within the filter range. This definition is based on data ranking rather than value; hence, the bitonic filter comprises a combination of non-linear morphological and linear operators. It has no data-level-sensitive parameters and can locally adapt to the signal and noise levels in an image, precisely preserving both smooth and discontinuous signals of any level when there is no noise, but also reducing noise in other areas without creating additional artifactual noise. Both the basis and the performance of the filter are examined in detail, and it is shown to be a significant improvement on the Gaussian and median. It is also compared over various noisy images to the image-guided filter, anisotropic diffusion, non-local means, the grain filter, and self-dual forms of leveling and rank filters. In terms of signal-to-noise, the bitonic filter outperforms all these except non-local means, and sometimes anisotropic diffusion. However, it gives good visual results in all circumstances, with characteristics which make it appropriate particularly for signals or images with varying noise, or features at varying levels. The bitonic has very few parameters, does not require optimization nor prior knowledge of noise levels, does not have any problems with stability, and is reasonably fast to implement. Despite its non-linearity, it hence represents a very practical operation with general applicability.
机译:提出了一种新滤波器,该滤波器具有比中值更好的边缘和细节保留特性,并且具有类似于高斯的降噪能力,并且适用于许多信号和噪声类型。它建立在信号定义为双调的基础上,即仅包含一个滤波器范围内的局部最大值或最小值。此定义基于数据排名而不是值;因此,双音滤波器包括非线性形态学和线性算子的组合。它没有数据级别敏感的参数,可以局部适应图像中的信号和噪声级别,在没有噪声的情况下可以精确地保留任何级别的平滑信号和不连续信号,而且还可以减少其他区域的噪声而不会产生其他虚假信号噪声。详细检查了滤波器的基础和性能,结果表明它对高斯和中值有显着改善。还可以在各种噪声图像上将其与图像引导滤镜,各向异性扩散,非局部均值,颗粒滤镜以及水平和等级滤镜的自对偶形式进行比较。就信噪比而言,除了非局部均值,有时还有各向异性扩散之外,双音滤波器的性能优于所有这些滤波器。但是,它在所有情况下都能提供良好的视觉效果,其特性使其特别适合于具有变化噪声的信号或图像,或具有变化水平的特征。该双音波具有很少的参数,不需要优化也不需要噪声水平的先验知识,在稳定性方面没有任何问题,并且实现起来相当快。尽管它是非线性的,但因此代表了非常实用的操作,具有普遍的适用性。

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