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Optimal weighted bilateral filter with dual-range kernel for Gaussian noise removal

机译:具有双层核的最佳加权双侧过滤器,用于高斯噪声拆除

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摘要

The bilateral filter is a classical technique for edge-preserving smoothing. It has been widely used as an effective image denoising approach to remove Gaussian noise. The performance of bilateral filtering highly depends on the accuracy of its range distance estimation, which is used for pixel-neighbourhood similarity measurement. However, in the conventional bilateral filtering approach, estimating the range distance directly from noisy observation results in the degradation of denoising performance. To address this issue, the authors propose a novel bilateral filtering scheme with a dual-range kernel, which provides a more robust range of distance estimation at various noise levels compared with existing methods. To further improve the denoising performance, they employ a linear model to retrieve the remaining image details from the method noise and add them back to the denoised image by employing an optimal approach based on Stein's unbiased risk estimate. Experiments on standard test images demonstrate that the proposed method outperforms conventional bilateral filter and its major state-of-the-art variants.
机译:双侧滤波器是用于边缘保持平滑的经典技术。它已被广泛用作一种有效的图像去噪方法来消除高斯噪声。双侧滤波的性能高度取决于其范围距离估计的准确性,用于像素邻域相似度测量。然而,在传统的双侧过滤方法中,直接从嘈杂观察估计范围距离导致去噪性能的降低。为了解决这个问题,作者提出了一种具有双重范围内核的新型双侧过滤方案,其与现有方法相比,在各种噪声水平下提供更强大的距离估计范围。为了进一步提高去噪性能,它们采用线性模型来从方法噪声中检索剩余的图像细节,并通过采用基于Stein的无偏见风险估计的最佳方法将它们加回去噪图像。标准测试图像的实验表明,所提出的方法优于常规的双侧过滤器及其主要最先进的变体。

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