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首页> 外文期刊>Signal Processing. Image Communication: A Publication of the the European Association for Signal Processing >Space-variant blur kernel estimation and image deblurring through kernel clustering
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Space-variant blur kernel estimation and image deblurring through kernel clustering

机译:通过内核聚类的空间变量模糊内核估计和图像解擦性

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摘要

This paper presents a space-variant blur kernel estimation and image deblurring framework. For space-variant blur kernel estimation, the input image is divided into small patches, and for each patch, the blur kernel is estimated. The estimated kernels are then grouped to determine different kernel clusters in the image. During clustering, unreliable kernel estimates are eliminated. The blur kernel for each kernel cluster is finally refined using the corresponding image region, which is the union of image patches associated with the kernels in the cluster. For space-variant image deblurring, the entire image is deconvolved with each blur kernel to produce a set of deblurred images. These images are then fused to produce a blur-free image, where the fusion process selects the optimal regions from the set of deblurred images.
机译:本文介绍了空间变体模糊内核估计和图像去孔框架。 对于空间变量模糊内核估计,输入图像分为小块,并且对于每个贴片,估计模糊内核。 然后将估计的内核分组以确定图像中的不同内核群集。 在聚类期间,消除了不可靠的内核估计。 最终使用相应的图像区域来改进每个内核群集的模糊内核,该图像区域是与群集中的内核相关联的图像修补程序的结合。 对于空间变量图像去孔,通过每个模糊内核进行解码,以产生一组去掩盖图像。 然后融合这些图像以产生自由图像,其中融合过程从该组的下式图像中选择最佳区域。

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