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Coupled Markov random field models with phases as line field and region field

机译:相位为线场和区域场的耦合马尔可夫随机场模型

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摘要

We investigate a boundary-based and a region-based coupled Markov random field model, both of which are useful in image restorations of gray-level images. In the conventional boundary-based and the conventional region-based coupled Markov random field models, both a line field and a region field take only two discrete states, 0 and 1. In the boundary-based coupled random field model, existence and nonexistence of the edge at each nearest-neighbor pair of pixels are denoted by 1 and 0, respectively. In the region-based coupled random field model, some different regions at each pixel are labeled by discrete numbers. We propose a boundary-based coupled Markov random field model with continuous line field and a region-based coupled Markov random field model with continuous segmentation field from a standpoint of a plane rotator model in statistical mechanics. The iterative algorithms for image restoration are constructed by using a mean-field approximation. We investigate how the proposed models produce a better quality of restored images.
机译:我们研究了基于边界和基于区域的耦合马尔可夫随机场模型,两者都可用于灰度图像的图像恢复。在常规的基于边界的耦合方法和常规的基于区域的耦合马尔可夫随机场模型中,线场和区域场都仅采用两个离散状态,即0和1。在基于边界的耦合随机场模型中,存在和不存在每个最邻近像素对的边缘分别由1和0表示。在基于区域的耦合随机场模型中,每个像素处的一些不同区域用离散数字标记。从统计力学的角度出发,我们提出了基于边界的具有连续线场的耦合马尔可夫随机场模型和具有连续分割场的基于区域的耦合马尔可夫随机场模型。图像恢复的迭代算法是通过使用均值场近似构造的。我们调查提出的模型如何产生更好质量的还原图像。

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