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Video super-resolution reconstruction based on correlation learning and spatio-temporal nonlocal similarity

机译:基于相关学习和时空非局部相似度的视频超分辨率重建

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摘要

A novel video super-resolution reconstruction algorithm based on correlation learning and spatio-temporal nonlocal similarity is proposed in this paper. Objective high-resolution (HR) estimates of low-resolution (LR) video frames can be obtained by learning LR-HR correlation mapping and fusing the spatio-temporal nonlocal similarity information between video frames. First, the LR-HR correlation mapping between LR and HR patches is established based on semi-coupled dictionary learning. With the aim of improving algorithm efficiency while guaranteeing super-resolution quality, LR-HR correlation mapping is performed only for the salient object region, and then an improved visual saliency-based nonlocal fuzzy registration scheme using the pseudo-Zernike moment feature and structural similarity is proposed for spatio-temporal similarity matching and fusion. Visual saliency and self-adaptive regional correlation evaluation strategies are used in spatio-temporal similarity matching to improve algorithm efficiency further. Experimental results demonstrate that the proposed algorithm achieves competitive super-resolution quality compared to other state-of-the-art algorithms in terms of both subjective and objective evaluations.
机译:提出了一种基于相关学习和时空非局部相似性的视频超分辨率重建算法。通过学习LR-HR相关映射并将视频帧之间的时空非局部相似性信息融合在一起,可以获得低分辨率(LR)视频帧的客观高分辨率(HR)估计。首先,基于半耦合字典学习,建立了LR和HR补丁之间的LR-HR相关映射。为了在保证超分辨率质量的同时提高算法效率,仅对显着目标区域执行LR-HR相关映射,然后使用伪Zernike矩特征和结构相似性改进基于视觉显着性的非局部模糊配准方案。提出了用于时空相似性匹配和融合的算法。视觉显着性和自适应区域相关性评估策略用于时空相似度匹配,以进一步提高算法效率。实验结果表明,与其他最新算法相比,该算法在主观和客观评估方面均具有竞争性的超分辨率质量。

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