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Generalized fractional derivative based adaptive algorithm for image denoising

机译:基于概率的图像去噪自适应算法

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摘要

This paper presents a new image denoising algorithm based on fractional filters. The fractional filters are derived using a newly introduced fractional operator. The proposed algorithm identifies the noisy pixels based on pixel-density and upgrades them by an adaptive fractional integral mask. To maintain the correlation and recover the lost information, the noise-free pixels are also processed by an adaptive fractional differential mask. We formulate the order function for the fractional mask with the help of gradient features and variance of the image. The algorithm is applied to standard images of different characteristics. The experimental results are compared with some other existing techniques. Evaluation parameters and visual perceptions show that the proposed method performs better than most of the discussed methods. The proposed approach is applicable for image denoising due to its applicability over different types of noises and denoising performance.
机译:本文介绍了一种基于分数滤波器的新图像去噪算法。使用新引入的分数运算符来导出分数滤波器。所提出的算法基于像素密度识别噪声像素,并通过自适应分数积分掩模升级它们。为了保持相关性并恢复丢失的信息,无噪声像素也由自适应分数差分掩模处理。我们在梯度特征和图像的方差的帮助下制定分数掩模的订单功能。该算法应用于不同特征的标准图像。将实验结果与其他一些现有技术进行比较。评估参数和视觉感知表明,所提出的方法比大多数讨论的方法更好地执行。由于其对不同类型的噪声和去噪能力的适用性,所提出的方法适用于图像去噪。

著录项

  • 来源
    《Multimedia Tools and Applications》 |2020年第20期|14201-14224|共24页
  • 作者单位

    Department of Mathematical Sciences Indian Institute of Technology (BHU) Varanasi 221005 India;

    Department of Mathematical Sciences Indian Institute of Technology (BHU) Varanasi 221005 India Centre for Advanced Biomaterials and Tissue Engineering Indian Institute of Technology (BHU) Varanasi 221005 India;

    Department of Mathematical Sciences Indian Institute of Technology (BHU) Varanasi 221005 India;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Fractional calculus; Image denoising; Enhancement; Texture;

    机译:分数微积分;图像去噪;增强;质地;

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