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TMP:用于在线视频超分辨率的时间运动传播

TMP: Temporal Motion Propagation for Online Video Super-Resolution.

作者信息

Zhang Zhengqiang, Li Ruihuang, Guo Shi, Cao Yang, Zhang Lei

出版信息

IEEE Trans Image Process. 2024;33:5014-5028. doi: 10.1109/TIP.2024.3453048. Epub 2024 Sep 17.

Abstract

Online video super-resolution (online-VSR) highly relies on an effective alignment module to aggregate temporal information, while the strict latency requirement makes accurate and efficient alignment very challenging. Though much progress has been achieved, most of the existing online-VSR methods estimate the motion fields of each frame separately to perform alignment, which is computationally redundant and ignores the fact that the motion fields of adjacent frames are correlated. In this work, we propose an efficient Temporal Motion Propagation (TMP) method, which leverages the continuity of motion field to achieve fast pixel-level alignment among consecutive frames. Specifically, we first propagate the offsets from previous frames to the current frame, and then refine them in the neighborhood, significantly reducing the matching space and speeding up the offset estimation process. Furthermore, to enhance the robustness of alignment, we perform spatial-wise weighting on the warped features, where the positions with more precise offsets are assigned higher importance. Experiments on benchmark datasets demonstrate that the proposed TMP method achieves leading online-VSR accuracy as well as inference speed. The source code of TMP can be found at https://github.com/xtudbxk/TMP.

摘要

在线视频超分辨率(online-VSR)高度依赖于有效的对齐模块来聚合时间信息,而严格的延迟要求使得准确且高效的对齐极具挑战性。尽管已经取得了很大进展,但大多数现有的在线-VSR方法分别估计每一帧的运动场以进行对齐,这在计算上是冗余的,并且忽略了相邻帧的运动场是相关的这一事实。在这项工作中,我们提出了一种高效的时间运动传播(TMP)方法,该方法利用运动场的连续性在连续帧之间实现快速的像素级对齐。具体来说,我们首先将偏移量从前一帧传播到当前帧,然后在邻域中对其进行细化,显著减少匹配空间并加快偏移量估计过程。此外,为了增强对齐的鲁棒性,我们对扭曲后的特征进行空间加权,为具有更精确偏移量的位置赋予更高的重要性。在基准数据集上的实验表明,所提出的TMP方法在在线-VSR精度以及推理速度方面均达到领先水平。TMP的源代码可在https://github.com/xtudbxk/TMP上找到。

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