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首页> 外文期刊>EURASIP journal on image and video processing >A convex nonlocal total variation regularization algorithm for multiplicative noise removal
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A convex nonlocal total variation regularization algorithm for multiplicative noise removal

机译:耦合耦合噪声拆除的凸非本体总变化算法

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Abstract This study proposes a nonlocal total variation restoration method to address multiplicative noise removal problems. The strictly convex, objective, nonlocal, total variation effectively utilizes prior information about the multiplicative noise and uses the maximum a posteriori estimator (MAP). An efficient iterative multivariable minimization algorithm is then designed to optimize our proposed model. Finally, we provide a rigorous convergence analysis of the alternating multivariable minimization iteration. The experimental results demonstrate that our proposed model outperforms other currently related models both in terms of evaluation indices and image visual quality.
机译:摘要本研究提出了一种非本体总变形恢复方法,以解决乘法噪声消除问题。严格凸起,目标,非竞争,总变化有效利用了关于乘法噪声的先前信息,并使用最大后验估计器(MAP)。然后设计了一种有效的迭代多变量最小化算法以优化我们提出的模型。最后,我们提供了对交替的多变量最小化迭代的严格收敛性分析。实验结果表明,我们所提出的模型在评估指标和图像视觉质量方面表现出其他相关模型。

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