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Efficient and Interpretable Deep Blind Image Deblurring Via Algorithm Unrolling

机译:通过算法展开的高效和可解释的深盲图像去纹理

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摘要

Blind image deblurring remains a topic of enduring interest. Learning based approaches, especially those that employ neural networks have emerged to complement traditional model based methods and in many cases achieve vastly enhanced performance. That said, neural network approaches are generally empirically designed and the underlying structures are difficult to interpret. In recent years, a promising technique called algorithm unrolling has been developed that has helped connect iterative algorithms such as those for sparse coding to neural network architectures. In this article, we propose a neural network architecture based on this idea. We first present an iterative algorithm that may be considered as a generalization of the traditional total-variation regularization method in the gradient domain. We then unroll the algorithm to construct a neural network for image deblurring which we refer to as Deep Unrolling for Blind Deblurring (DUBLID). Key algorithm parameters are learned with the help of training images. Our proposed deep network DUBLID achieves significant practical performance gains while enjoying interpretability and efficiency at the same time. Extensive experimental results show that DUBLID outperforms many state-of-the-art methods and in addition is computationally faster.
机译:盲目图像deblurring仍然是持久兴趣的主题。基于学习的方法,特别是那些采用神经网络的方法,以补充传统的基于模型的方法,并且在许多情况下实现了大大提高的性能。也就是说,神经网络方法通常是经验设计的,并且潜在的结构难以解释。近年来,已经开发了一种被称为算法展开的有希望的技术,其有助于连接迭代算法,例如稀疏编码到神经网络架构的算法。在本文中,我们提出了一种基于此想法的神经网络架构。我们首先介绍一种迭代算法,其可以被认为是梯度域中传统总变化正规化方法的概括。然后,我们展开该算法构建用于图像去纹理的神经网络,其指我们指的是盲脱模(Dublid)的深度展开。在训练图像的帮助下学习键算法参数。我们所提出的深网络无金布,同时享有显着的实际业绩,同时享受可意识性和效率。广泛的实验结果表明,Dublid优于许多最先进的方法,此外还可以更快地计算。

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