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Fast Edge Preserving Picture Recovery by Finite Markov Random Fields

机译:通过有限马尔可夫随机字段保持快速边缘保留图片恢复

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We investigate the properties of edge preserving smoothing in the context of Finite Markov Random Fields (FMRF). Our main result follows from the definition of discontinuity adaptive potential for FMRF which imposes to penalize linearly image gradients. This is in agreement with the Total Variation based regularization approach to image recovery and analysis. We also report a fast computational algorithm exploiting the finiteness of the field, it uses integer arithmetic and a gradient descent updating procedure. Numerical results on real images and comparisons with anisotropic diffusion and half-quadratic regularization are reported.
机译:我们调查在有限的Markov随机字段(FMRF)背景下保持边缘保持平滑的特性。我们的主要结果是从不连续的自适应潜力的定义中遵循FMRF,其强加惩罚线性图像梯度。这与基于总变化的正规化方法同意,以进行图像恢复和分析。我们还报告了一种快速计算算法利用该字段的有限度,它使用整数算术和梯度下降更新过程。报道了具有各向异性扩散和半二次正则化的实际图像和比较的数值结果。

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