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Diffusion-steered super-resolution method based on the Papoulis–Gerchberg algorithm

机译:基于Papoulis-Gerchberg算法的扩散导向超分辨率方法

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摘要

Papoulis-Gerchberg (PG) algorithm, a technique to extrapolate signals, has attracted many researchers for its lower complexity, higher computational efficiency, and effectiveness. One field that receives these merits is super-resolution, which fuses multiple band-limited scenes to generate a high-resolution image. Most super-resolution methods based on the PG algorithm, however, underperform when input images are seriously degraded by blur, noise, and sampling. The current study addresses the challenges by embedding the PG algorithm into a super-resolution minimization problem. The proposed method is iterative and incorporates a diffusion-driven smoothness prior that updates its regularisation process according to the local image features. This well-crafted prior, which attempts to overcome the super-resolution ill-posedness, provides an automatic interplay between flat and contour regions, and ensures necessary levels of regularisations to generate sharper and detailed images. Results show that the current method outperforms some state-of-the-art super-resolution approaches including those based on total variation. Even more importantly, the authors' method contains a robust noise suppressor that treats comfortably noisy scenes.
机译:Papoulis-Gerchberg(PG)算法是一种推断信号的技术,以其较低的复杂度,较高的计算效率和有效性而吸引了许多研究人员。接收这些优点的一个领域是超分辨率,它融合了多个频带受限的场景以生成高分辨率图像。但是,大多数基于PG算法的超分辨率方法在输入图像由于模糊,噪点和采样而严重劣化时效果不佳。当前的研究通过将PG算法嵌入到超分辨率最小化问题中来解决这些挑战。所提出的方法是迭代的,并且在根据局部图像特征更新其正则化过程之前并入了扩散驱动的平滑度。这种精心设计的先验技术试图克服超分辨率不适定性,在平坦区域和轮廓区域之间提供了自动相互作用,并确保必要水平的正则化以生成更清晰,更细腻的图像。结果表明,当前方法优于某些最新的超分辨率方法,包括那些基于总变化量的方法。更为重要的是,作者的方法包含一个强大的噪声抑制器,可以轻松处理嘈杂的场景。

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