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首页> 外文期刊>Circuits, systems, and signal processing >Primal-Dual Method for Hybrid Regularizers-Based Image Restoration with Impulse Noise
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Primal-Dual Method for Hybrid Regularizers-Based Image Restoration with Impulse Noise

机译:脉冲噪声的混合正则化图像原始—对偶方法

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摘要

With the aim of improving the restoration accuracy, this article introduces a hybrid regularizers approach to recovering images corrupted by impulse noise. The proposed model closely incorporates the superiorities of two recently developed methods: the total generalized variation method and the wavelet frame-based method. Numerically, a highly efficient primal-dual algorithm is constructed to solve the minimization problem, which is derived from the canonical alternating minimization method and based on the Moreau decomposition. Eventually, in comparison with several well-developed numerical methods, simulation experiments are provided to demonstrate the effective performance and advantages of our proposed strategy for image reconstruction under impulse noise, in terms of both image quality assessment and visual improvement.
机译:为了提高恢复精度,本文介绍了一种混合正则化方法来恢复被脉冲噪声破坏的图像。提出的模型紧密结合了两种最新开发的方法的优点:总广义变分方法和基于小波框架的方法。在数值上,构造了一种高效的原始对偶算法来解决最小化问题,该算法是从规范交替最小化方法派生而来,并且基于Moreau分解。最终,与几种先进的数值方法相比,提供了仿真实验,以证明我们提出的脉冲噪声下图像重建策略在图像质量评估和视觉改善方面的有效性能和优势。

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