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An image denoising iterative approach based on total variation and weighting function

机译:一种基于总变化和加权函数的图像去噪

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摘要

Image denoising is an important technology for image preprocessing. In recent years, the image denoising technology based on total variation (TV) has been rapidly developed. However, However, although it can preserve image details well, which generates obvious staircase effects. This is due to the traditional TV-based image denoising technology only applies the gradient information and ignored the local variance of the image. In order to suppress staircase effect, in this paper, a novel image denoising approach based on TV model and weighting function is proposed. First, the theory mechanism of staircase effect brought by the traditional TV model is analyzed. Second, the effects of weighting function on edge regions, flat regions, and gradation and detail regions are also analyzed. Third, based on the above analysis, an improved TV model is proposed. Finally, the image denoising approach is implemented by an iterative algorithm. The experimental results show that, compared with various state-of-the-art models denoising models, the proposed image denoising approach can effectively suppress the staircase effect of the traditional TV model in most cases, preserve the image details, and improve the image denoising performance.
机译:图像去噪是图像预处理的重要技术。近年来,基于总变化(电视)的图像去噪技术已经迅速发展。然而,虽然它可以很好地保护图像细节,但它产生明显的楼梯效果。这是由于传统的基于电视的图像去噪,只能应用梯度信息并忽略图像的局部方差。为了抑制楼梯效果,提出了一种基于电视模型和加权函数的新型图像去噪方法。首先,分析了传统电视模型带来的楼梯效应的理论机制。其次,还分析了加权功能对边缘区域,平面和灰度和细节区域的影响。第三,基于上述分析,提出了一种改进的电视模型。最后,通过迭代算法实现图像去噪方法。实验结果表明,与各种最先进的模型相比,所提出的图像去噪方法可以在大多数情况下有效地抑制传统电视模型的楼梯效果,保留图像细节,提高图像去噪表现。

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