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Video super-resolution reconstruction method based on deep Back projection and motion feature fusion

机译:基于深层投影和运动特征融合的视频超分辨率重建方法

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摘要

How to effectively utilize inter-frame redundancies is the key to improve the accuracy and speed of video super-resolution reconstruction methods. Previous methods usually process every frame in the whole video in the same way, and do not make full use of redundant information between frames, resulting in low accuracy or long reconstruction time. In this paper, we propose the idea of reconstructing key frames and non-key frames respectively, and give a video super-resolution reconstruction method based on deep back projection and motion feature fusion. Key-frame reconstruction subnet can obtain key frame features and reconstruction results with high accuracy. For non-key frames, key frame features can be reused by fusing them and motion features, so as to obtain accurate non-key frame features and reconstruction results quickly. Experiments on several public datasets show that the proposed method performs better than the state-of-the-art methods, and has good robustness.
机译:如何有效利用帧间冗余是提高视频超分辨率重建方法的准确性和速度的关键。 以前的方法通常以相同的方式处理整个视频中的每个帧,并且不充分利用帧之间的冗余信息,从而导致低精度或长的重建时间。 在本文中,我们提出了重建关键帧和非关键帧的思想,并基于深回投影和运动特征融合给出视频超分辨率重构方法。 键盘重建子网可以获得具有高精度的关键帧特征和重建结果。 对于非关键帧,可以通过融合它们和运动功能来重复使用关键帧特征,以便快速获得准确的非关键帧特征和重建结果。 在几个公共数据集上的实验表明,该方法的表现优于最先进的方法,具有良好的鲁棒性。

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