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Local Variance-Controlled Forward-and-Backward Diffusion for Image Enhancement and Noise Reduction

机译:局部方差控制的向前和向后扩散,以增强图像并降低噪声

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In order to improve signal-to-noise ratio (SNR) and contrast-to-noise ratio, this paper introduces a local variance-controlled forward-and-backward (LVCFAB) diffusion algorithm for edge enhancement and noise reduction. In our algorithm, an alternative FAB diffusion algorithm is proposed. The results for the alternative FAB algorithm show better algorithm behavior than other existing diffusion FAB approaches. Furthermore, two distinct discontinuity measures and the alternative FAB diffusion are incorporated into a LVCFAB diffusion algorithm, where the joint use of the two measures leads to a complementary effect for preserving edge features in digital images. This LVC mechanism adaptively modifies the degree of diffusion at any image location and is dependent on both local gradient and inhomogeneity. Qualitative experiments, based on general digital images and magnetic resonance images, show significant improvements when the LVCFAB diffusion algorithm is used versus the existing anisotropic diffusion and the previous FAB diffusion algorithms for enhancing edge features and improving image contrast. Quantitative analyses, based on peak SNR, confirm the superiority of the proposed LVCFAB diffusion algorithm.
机译:为了提高信噪比(SNR)和对比度噪声比,本文介绍了一种用于边缘增强和降噪的局部方差控制的正向和反向(LVCFAB)扩散算法。在我们的算法中,提出了一种替代的FAB扩散算法。替代FAB算法的结果显示出比其他现有扩散FAB方法更好的算法性能。此外,两个不同的不连续性度量和替代的FAB扩散被合并到LVCFAB扩散算法中,这两种措施的共同使用导致在数字图像中保留边缘特征的互补效应。该LVC机制可自适应地修改任何图像位置的扩散程度,并且取决于局部梯度和不均匀性。基于一般的数字图像和磁共振图像的定性实验表明,相对于现有的各向异性扩散和以前的FAB扩散算法,LVCFAB扩散算法用于增强边缘特征和改善图像对比度时,具有明显的改进。基于峰值SNR的定量分析证实了所提出的LVCFAB扩散算法的优越性。

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