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Switching Bilateral Filter With a Texture/Noise Detector for Universal Noise Removal

机译:切换带有纹理/噪声检测器的双边滤波器以消除普遍噪声

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摘要

In this paper, we propose a switching bilateral filter (SBF) with a texture and noise detector for universal noise removal. Operation was carried out in two stages: detection followed by filtering. For detection, we propose the sorted quadrant median vector (SQMV) scheme, which includes important features such as edge or texture information. This information is utilized to allocate a reference median from SQMV, which is in turn compared with a current pixel to classify it as impulse noise, Gaussian noise, or noise-free. The SBF removes both Gaussian and impulse noise without adding another weighting function. The range filter inside the bilateral filter switches between the Gaussian and impulse modes depending upon the noise classification result. Simulation results show that our noise detector has a high noise detection rate as well as a high classification rate for salt-and-pepper, uniform impulse noise and mixed impulse noise. Unlike most other impulse noise filters, the proposed SBF achieves high peak signal-to-noise ratio and great image quality by efficiently removing both types of mixed noise, salt-and-pepper with uniform noise and salt-and-pepper with Gaussian noise. In addition, the computational complexity of SBF is significantly less than that of other mixed noise filters.
机译:在本文中,我们提出了一种带有纹理和噪声检测器的双向开关滤波器(SBF),用于通用噪声去除。操作分两个阶段进行:检测,然后过滤。为了进行检测,我们提出了排序象限中值向量(SQMV)方案,该方案包括重要特征,例如边缘或纹理信息。该信息用于从SQMV分配参考中位数,然后将其与当前像素进行比较,以将其分类为脉冲噪声,高斯噪声或无噪声。 SBF消除了高斯噪声和脉冲噪声,而没有增加其他加权功能。双边滤波器内部的范围滤波器根据噪声分类结果在高斯模式和脉冲模式之间切换。仿真结果表明,我们的噪声检测器具有较高的噪声检测率以及对椒盐的分类率,均匀的脉冲噪声和混合的脉冲噪声。与大多数其他脉冲噪声滤波器不同,所提出的SBF通过有效地去除两种类型的混合噪声,具有均匀噪声的椒盐噪声和具有高斯噪声的椒盐噪声,实现了高峰值信噪比和出色的图像质量。此外,SBF的计算复杂度明显小于其他混合噪声滤波器。

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