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Bayesian multichannel image restoration using compound Gauss-Markov random fields

机译:使用复合高斯-马尔可夫随机场的贝叶斯多通道图像恢复

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We develop a multichannel image restoration algorithm using compound Gauss-Markov random fields (CGMRF) models. The line process in the CGMRF allows the channels to share important information regarding the objects present in the scene. In order to estimate the underlying multichannel image, two new iterative algorithms are presented and their convergence is established. They can be considered as extensions of the classical simulated annealing and iterative conditional methods. Experimental results with color images demonstrate the effectiveness of the proposed approaches.
机译:我们使用复合高斯-马尔可夫随机场(CGMRF)模型开发了一种多通道图像恢复算法。 CGMRF中的线路过程允许通道共享有关场景中存在的对象的重要信息。为了估计底层的多通道图像,提出了两种新的迭代算法,并建立了它们的收敛性。它们可以被认为是经典模拟退火和迭代条件方法的扩展。彩色图像的实验结果证明了所提出方法的有效性。

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