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Efficient image super-resolution integration

delete2018-05-16
delete11
PRE
AI
K
Ke Xu
X
Xin Wang *
X
Xin Yang
S
Shengfeng He *
张
张强 (Qiang Zhang)
B
Baocai Yin
X
Xiaopeng Wei
R
Rynson W. H. Lau
DOI:10.1007/s00371-018-1554-2delete
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Abstract

Abstract

En 中文
The super-resolution (SR) problem is challenging due to the diversity of image types with little shared properties as well as the speed required by online applications, e.g., target identification. In this paper, we explore the merits and demerits of recent deep learning-based and conventional patch-based SR methods and show that they can be integrated in a complementary manner, while balancing the reconstruction quality and time cost. Motivated by this, we further propose an integration framework to take the results from FSRCNN and A+ methods as inputs and directly learn a pixel-wise mapping between the inputs and the reconstructed results using the Gaussian conditional random fields. The learned pixel-wise integration mapping is flexible to accommodate different upscaling factors. Experimental results show that the proposed framework can achieve superior SR performance compared with the state of the arts while being efficient.
Keywords:
Image super-resolution
Image processing
Gaussian conditional random fields
AI Summary

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Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

Visual Computer cover
Visual Computer
IF:
2.9
Papers:
4.6K
Citations:
6.5K

Organization

C
City University of Hong Kong
Scholars:
2.3W
Papers: 3.0W
Citations: 6.1W
D
Dalian University of Technology
Scholars:
6.0W
Papers: 4.4W
Citations: 5.5W
S
south china university of technology
Scholars:
6.8W
Papers: 5.1W
Citations: 85
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