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Removal of Salt and Pepper Noise in Corrupted Image Based on Multilevel Weighted Graphs and IGOWA Operator

机译:基于多级加权图和IGOWA算子在腐败图像中除去盐和辣椒噪声

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摘要

This paper proposes a novel iterative two-stage method to suppress salt and pepper noise. In the first phase, a multilevel weighted graphs model for image representation is built to characterize the gray or color difference between the pixels and their neighbouring pixels at different scales. Then the noise detection is cast into finding the node with minimum node strength in the graphs. In the second phase, we develop a method to determine the order-inducing variables and weighted vectors of the induced generalized order weighted average (IGOWA) operator to restore the detected noise candidate. In the proposed method, the two stages are not separate, but rather alternate. Simulated experiments on gray and color images demonstrate that the proposed method can remove the noise effectively and keep the image details well in comparison to other state-of-the-art methods.
机译:本文提出了一种新型迭代两阶段方法来抑制盐和胡椒噪声。在第一阶段中,建立用于图像表示的多级加权图模型,以表征在不同尺度处的像素和它们相邻像素之间的灰色或色差。然后将噪声检测投用成具有图形中最小节点强度的节点。在第二阶段,我们开发一种方法来确定诱导的广义阶权加权平均(IGOWA)运算符的令诱导变量和加权矢量来恢复检测到的噪声候选。在所提出的方法中,两个阶段并不分开,而是替代。灰色和彩色图像的模拟实验表明,与其他最先进的方法相比,所提出的方法可以有效地消除噪声并保持图像细节。

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