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Adaptive progressive filter to remove impulse noise in highly corrupted color images - Springer

机译:自适应逐行滤波器可消除高度损坏的彩色图像中的脉冲噪声-Springer

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摘要

In this paper, an adaptive progressive filtering (APF) technique with low computational complexity is proposed for removing impulse noise in highly corrupted color images. Color images that are corrupted with impulse noise are generally filtered by applying a vector-based approach. Vector-based methods tend to cluster the noise and receive a lower noise reduction performance when the noise ratio is high. To improve the performance, in the proposed technique, a new reliable estimation of impulse noise intensity and noise type is made initially, and then a progressive restoration mechanism is devised, using multi-pass non-linear operations with selected processing windows adapted to the estimation. The effect of impulse detection based on geometric characteristics and features of the corrupt pixel/pixel regions and the exact estimation of impulse noise intensity and type are used in the APF to efficiently support the progressive filtering mechanism. Through experiments conducted using a range of color images, the proposed filtering technique has demonstrated superior performance to that of well-known benchmark techniques, in terms of standard objective measurements, visual image quality, and the computational complexity.
机译:本文提出了一种计算复杂度较低的自适应渐进滤波(APF)技术,用于消除高度损坏的彩色图像中的脉冲噪声。通常,通过应用基于矢量的方法来过滤因脉冲噪声而损坏的彩色图像。当噪声比高时,基于矢量的方法往往会聚类噪声并获得较低的降噪性能。为了提高性能,在所提出的技术中,首先对脉冲噪声强度和噪声类型进行了新的可靠估计,然后设计了渐进恢复机制,使用了多通道非线性运算,并选择了适合估计的处理窗口。 。在APF中使用了基于损坏像素/像素区域的几何特征和特征的脉冲检测效果以及脉冲噪声强度和类型的精确估计,以有效地支持渐进式滤波机制。通过使用一系列彩色图像进行的实验,在标准的客观测量,视觉图像质量和计算复杂性方面,所提出的滤波技术已证明优于众所周知的基准技术。

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