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Super-resolution video reconstruction based on both local and global information

机译:基于本地和全局信息的超分辨率视频重建

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Although super-resolution (SR) methods have been successfully used to improve the resolution of video content, these methods estimate high resolution (HR) frames without explicitly use local information. Instead, they minimize the sum of difference between acquired low resolution (LR) images and observation model. On the contrary, adaptive kernel regression estimates each pixel of HR frames independently. It does not consider global optimum while estimating HR frames. In this paper, we proposed an idea of employing adaptive kernel regression on SR methods to improve the quality of super-resolved video frames. It is shown that the proposed idea can provide results with better visual quality and Peak Signal-to-Noise Ratio (PSNR).
机译:尽管超分辨率(SR)方法已成功用于改善视频内容的分辨率,但是这些方法无需明确使用本地信息即可估计高分辨率(HR)帧。取而代之的是,它们使获取的低分辨率(LR)图像与观察模型之间的差异之和最小。相反,自适应核回归独立地估计HR帧的每个像素。在估计HR帧时,它不会考虑全局最优。在本文中,我们提出了一种在SR方法上采用自适应核回归的方法,以提高超分辨视频帧的质量。结果表明,所提出的想法可以提供具有更好的视觉质量和峰值信噪比(PSNR)的结果。

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