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首页> 外文期刊>IEEE Transactions on Pattern Analysis and Machine Intelligence >Dynamic Video Deblurring Using a Locally Adaptive Blur Model
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Dynamic Video Deblurring Using a Locally Adaptive Blur Model

机译:使用局部自适应模糊模型进行动态视频去模糊

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摘要

State-of-the-art video deblurring methods cannot handle blurry videos recorded in dynamic scenes since they are built under a strong assumption that the captured scenes are static. Contrary to the existing methods, we propose a new video deblurring algorithm that can deal with general blurs inherent in dynamic scenes. To handle general and locally varying blurs caused by various sources, such as moving objects, camera shake, depth variation, and defocus, we estimate pixel-wise varying non-uniform blur kernels. We infer bidirectional optical flows to handle motion blurs, and also estimate Gaussian blur maps to remove optical blur from defocus. Therefore, we propose a single energy model that jointly estimates optical flows, defocus blur maps and latent frames. We also provide a framework and efficient solvers to minimize the proposed energy model. By optimizing the energy model, we achieve significant improvements in removing general blurs, estimating optical flows, and extending depth-of-field in blurry frames. Moreover, in this work, to evaluate the performance of non-uniform deblurring methods objectively, we have constructed a new realistic dataset with ground truths. In addition, extensive experimental results on publicly available challenging videos demonstrate that the proposed method produces qualitatively superior performance than the state-of-the-art methods which often fail in either deblurring or optical flow estimation.
机译:先进的视频去模糊方法无法处理动态场景中记录的模糊视频,因为它们是在捕获场景为静态的强烈假设下构建的。与现有方法相反,我们提出了一种新的视频去模糊算法,该算法可以处理动态场景中固有的一般模糊。为了处理由各种源(例如运动物体,相机抖动,深度变化和散焦)引起的一般性和局部变化的模糊,我们估计逐像素变化的非均匀模糊内核。我们推断双向光流以处理运动模糊,并且还估计高斯模糊图以消除散焦的光学模糊。因此,我们提出了一个单一的能量模型,该模型可以共同估算光流,散焦模糊贴图和潜在帧。我们还提供了一个框架和有效的求解器,以最小化建议的能源模型。通过优化能量模型,我们在消除一般模糊,估计光流以及扩展模糊帧中的景深方面取得了显着改善。此外,在这项工作中,为了客观地评估非均匀去模糊方法的性能,我们构建了一个具有地面真实性的新的现实数据集。此外,在公开的具有挑战性的视频上进行的大量实验结果表明,与经常无法进行去模糊或光流估计的最新方法相比,所提出的方法在质量上具有更高的性能。

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