SOTAVerified

Super-Resolution

Super-Resolution is a task in computer vision that involves increasing the resolution of an image or video by generating missing high-frequency details from low-resolution input. The goal is to produce an output image with a higher resolution than the input image, while preserving the original content and structure.

( Credit: MemNet )

Papers

Showing 27762800 of 3874 papers

TitleStatusHype
Super-Resolving Beyond Satellite Hardware Using Realistically Degraded Images0
Super-Resolving Blurry Images with Events0
Super-Resolving Commercial Satellite Imagery Using Realistic Training Data0
Super-Resolving Cross-Domain Face Miniatures by Peeking at One-Shot Exemplar0
Super-Resolving Noisy Images0
Super-resolving sparse observations in partial differential equations: A physics-constrained convolutional neural network approach0
Super-Resolving Very Low-Resolution Face Images With Supplementary Attributes0
SuperTran: Reference Based Video Transformer for Enhancing Low Bitrate Streams in Real Time0
Supervised Deep Kriging for Single-Image Super-Resolution0
Supervised Learning Based Super-Resolution DoA Estimation Utilizing Antenna Array Extrapolation0
SupeRVol: Super-Resolution Shape and Reflectance Estimation in Inverse Volume Rendering0
Supplementary Meta-Learning: Towards a Dynamic Model for Deep Neural Networks0
Suppressing Uncertainties in Degradation Estimation for Blind Super-Resolution0
Surf2CT: Cascaded 3D Flow Matching Models for Torso 3D CT Synthesis from Skin Surface0
Surface Geometry Processing: An Efficient Normal-based Detail Representation0
SURFNet: Super-resolution of Turbulent Flows with Transfer Learning using Small Datasets0
Surveillance Face Anti-spoofing0
SwiftSRGAN -- Rethinking Super-Resolution for Efficient and Real-time Inference0
SwinFSR: Stereo Image Super-Resolution using SwinIR and Frequency Domain Knowledge0
SwinRDM: Integrate SwinRNN with Diffusion Model towards High-Resolution and High-Quality Weather Forecasting0
SynNet: Structure-Preserving Fully Convolutional Networks for Medical Image Synthesis0
Synthesis of realistic fetal MRI with conditional Generative Adversarial Networks0
Synthesizing Realistic Image Restoration Training Pairs: A Diffusion Approach0
Synthetic Low-Field MRI Super-Resolution Via Nested U-Net Architecture0
Synthetic magnetic resonance images for domain adaptation: Application to fetal brain tissue segmentation0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1super-resolutionAverage PSNR20.41Unverified