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A stochastic image denoising method based on adaptive patch-size

机译:基于自适应贴片尺寸的随机图像去噪方法

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摘要

A new stochastic nonlocal denoising method based on adaptive patch-size is presented. The quality of restored image is improved by choosing the optimal nonlocal similar patch-size for each site of image individually. The method contains two phase. The first phase is to search the similar patches base on adaptive patch-size. The second phase is to design the denoising algorithm by making use of similar image patches obtained in the first step. The multiple clusters of similar patches for each pixel point are searched by using Markov-chain Monte Carlo sampling many times. Following, we adjust the patch-size according to the consistency of multiple clusters. This processing is repeated until we obtain the optimal patch-size and corresponding optimal patch cluster. We get the estimation of noise-free patch cluster by employing modified two-directional non-local method. Furthermore, the denoised image is obtained by using the method of superposition approach. The theoretical analysis and simulation results show that the method is feasible and effective.
机译:提出了一种基于自适应贴剂尺寸的新的随机非局部去噪方法。通过单独选择每个站点的图像的最佳非识别类似补丁大小来改进恢复图像的质量。该方法包含两相。第一阶段是在自适应补丁大小上搜索类似的补丁基础。第二阶段是利用在第一步中获得的类似图像贴片来设计去噪算法。通过使用Markov-Chain Monte Carlo对许多次采样搜索每个像素点的多个类似斑块的簇。以下情况下,我们根据多个集群的一致性调整补丁大小。重复此处理,直到我们获得最佳的补丁大小和相应的最佳补丁群集。通过使用修改的双向非本地方法,我们通过采用修改的双向非本地方法来获得无噪声的补丁群集的估计。此外,通过使用叠加方法的方法获得去噪图像。理论分析和仿真结果表明,该方法是可行且有效的。

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