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Two-Dimensional Sparse LMS for Image Denoising

机译:图像去噪的二维稀疏LMS

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摘要

In this paper we propose a new two-dimensional (2D) zero-attracting least-mean-square (ZA-LMS) based adaptive filter by applying the recently proposed ZA-LMS algorithm for image denoising. The proposed algorithm is applied along both horizontal and vertical directions. Two configurations of data reuse are used to compare the performance and the computational complexity of the 2D conventional LMS algorithm with the proposed one. The simulation results have shown that the proposed 2D ZA-LMS algorithm has similar results as those of the 2D LMS algorithm and it has the benefit of lower computational complexity.
机译:在本文中,我们通过应用最近提出的Za-LMS算法来提出基于自动的二维(2D)零吸引最少的平方(ZA-LMS)的自适应滤波器进行图像去噪。所提出的算法沿水平和垂直方向施加。数据重用的两种配置用于将2D传统LMS算法与所提出的配置的性能和计算复杂性进行比较。模拟结果表明,所提出的2D ZA-LMS算法与2D LMS算法的结果相似,它具有较低的计算复杂性的益处。

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