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Adaptive Partition-Cluster-Based Median Filter for Random-Valued Impulse Noise Removal

机译:基于自适应分区群的中值滤波器,用于随机值脉冲噪声去除

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摘要

As the most popular nonlinear denoise technique, the median filter has attracted significant attention in recent years. In this paper, a novel adaptive median filter is presented to remove random-valued impulse noise in images, named Adaptive Partition-Cluster-Based Median (APCM) Filter. Based on the partition cluster idea, the noise detector classifies pixels into different groups and identifies the noisy pixels in different regions adaptively without iterations. According to the results of noise detection, an improved adaptive decision-based filter is presented to restore the pixels which are corrupted by random-valued impulse noise. The proposed filter technique is open to any impulse noise. Extensive simulation results demonstrate that the proposed method substantially outperforms other state-of-the-arts impulse noise filter techniques both visually and in terms of objective quality measures. Furthermore, the proposed method is much friendly to the hardware parallel implementation of image processing because of its low computation complexity and simple realizable structure.
机译:作为最流行的非线性降噪技术,中值滤波器近年来引起了极大的关注。在本文中,提出了一种新颖的自适应中值滤波器,以消除图像中的随机值脉冲噪声,称为自适应分区-基于集群的中值(APCM)滤波器。基于分区聚类的思想,噪声检测器将像素分为不同的组,并自适应地识别不同区域中的噪声像素,而无需进行迭代。根据噪声检测的结果,提出了一种改进的基于自适应决策的滤波器,以恢复被随机值脉冲噪声破坏的像素。所提出的滤波器技术对任何脉冲噪声都是开放的。大量的仿真结果表明,无论是在视觉上还是在客观质量方面,该方法均优于其他最新的脉冲噪声滤波器技术。此外,由于其计算复杂度低和易于实现的结构,该方法对图像处理的硬件并行实现非常友好。

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