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LMR: A Large-Scale Multi-Reference Dataset for Reference-based Super-Resolution

Lin Zhang, Xin Li, Dongliang He, Fu Li, Errui Ding, Zhaoxiang Zhang

202327 citationsDOI

Abstract

It is widely agreed that reference-based super-resolution (RefSR) achieves superior results by referring to similar high quality images, compared to single image super-resolution (SISR). Intuitively, the more references, the better performance. However, previous RefSR methods have all focused on single-reference image training, while multiple reference images are often available in testing or practical applications. The root cause of such training-testing mismatch is the absence of publicly available multi-reference SR training datasets, which greatly hinders research efforts on multi-reference super-resolution. To this end, we construct a large-scale, multi-reference super-resolution dataset, named LMR. It contains 112, 142 groups of 300×300 training images, which is 10× of the existing largest RefSR dataset. The image size is also some times larger. More importantly, each group is equipped with 5 reference images with different similarity levels. Furthermore, we propose a new baseline method for multi-reference super-resolution: MRefSR, including a Multi-Reference Attention Module (MAM) for feature fusion of an arbitrary number of reference images, and a Spatial Aware Filtering Module (SAFM) for the fused feature selection. The proposed MRefSR achieves significant improvements over state-of-the-art approaches on both quantitative and qualitative evaluations. Our code and data are available at: https://github.com/wdmwhh/MRefSR.

Topics & Concepts

Computer scienceReference dataArtificial intelligenceFeature (linguistics)Pattern recognition (psychology)Scale (ratio)Reference modelCode (set theory)Image (mathematics)Image resolutionResolution (logic)Data miningComputer visionPhilosophyPhysicsSoftware engineeringSet (abstract data type)Quantum mechanicsLinguisticsProgramming languageAdvanced Image Processing TechniquesAdvanced Vision and ImagingImage Processing Techniques and Applications
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