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 28512900 of 3874 papers

TitleStatusHype
Real-World Super-Resolution of Face-Images from Surveillance Cameras0
Sampling Based Scene-Space Video Processing0
Image Restoration by Deep Projected GSURE0
Fine-tuning deep learning model parameters for improved super-resolution of dynamic MRI with prior-knowledgeCode0
Parallax estimation for push-frame satellite imagery: application to super-resolution and 3D surface modeling from Skysat products0
An Interpretation of Regularization by Denoising and its Application with the Back-Projected Fidelity Term0
Back-Projection Pipeline0
Proba-V-ref: Repurposing the Proba-V challenge for reference-aware super resolutionCode0
Quality Assessment of Super-Resolved Omnidirectional Image Quality Using Tangential Views0
Circumventing the resolution-time tradeoff in Ultrasound Localization Microscopy by Velocity Filtering0
Progressive Image Super-Resolution via Neural Differential Equation0
Regularization via deep generative models: an analysis point of view0
GhostSR: Learning Ghost Features for Efficient Image Super-ResolutionCode0
SplitSR: An End-to-End Approach to Super-Resolution on Mobile Devices0
Trilevel Neural Architecture Search for Efficient Single Image Super-Resolution0
DAEs for Linear Inverse Problems: Improved Recovery with Provable Guarantees0
Fast Randomized-MUSIC for mm-Wave Massive MIMO Radars0
Single Image Super-Resolution0
More Reliable AI Solution: Breast Ultrasound Diagnosis Using Multi-AI Combination0
VHS to HDTV Video Translation using Multi-task Adversarial Learning0
Dual-Stream Fusion Network for Spatiotemporal Video Super-ResolutionCode0
Transformers in Vision: A Survey0
EvIntSR-Net: Event Guided Multiple Latent Frames Reconstruction and Super-Resolution0
Benchmarking Ultra-High-Definition Image Super-Resolution0
Event Stream Super-Resolution via Spatiotemporal Constraint Learning0
not-so-big-GAN: Generating High-Fidelity Images on Small Compute with Wavelet-based Super-Resolution0
Context Reasoning Attention Network for Image Super-Resolution0
IntraTomo: Self-Supervised Learning-Based Tomography via Sinogram Synthesis and PredictionCode0
Unsupervised Real-World Super-Resolution: A Domain Adaptation Perspective0
Inverting a Rolling Shutter Camera: Bring Rolling Shutter Images to High Framerate Global Shutter Video0
SIGNET: Efficient Neural Representation for Light Fields0
Dynamic High-Pass Filtering and Multi-Spectral Attention for Image Super-Resolution0
Super Resolve Dynamic Scene From Continuous Spike Streams0
Generative VoxelNet: Learning Energy-Based Models for 3D Shape Synthesis and Analysis0
HDR Denoising and Deblurring by Learning Spatio-temporal Distortion Models0
Frequency Consistent Adaptation for Real World Super Resolution0
Deep Learning Techniques for Super-Resolution in Video Games0
Attention-based Image Upsampling0
Projected Distribution Loss for Image EnhancementCode0
Polyblur: Removing mild blur by polynomial reblurring0
TEMImageNet Training Library and AtomSegNet Deep-Learning Models for High-Precision Atom Segmentation, Localization, Denoising, and Super-Resolution Processing of Atomic-Resolution Images0
CT Super Resolution via Zero Shot Learning0
Learning-Based Quality Assessment for Image Super-Resolution0
Geometry Enhancements from Visual Content: Going Beyond Ground Truth0
Decimated Framelet System on Graphs and Fast G-Framelet TransformsCode0
Learning Omni-frequency Region-adaptive Representations for Real Image Super-Resolution0
Detailed 3D Human Body Reconstruction from Multi-view Images Combining Voxel Super-Resolution and Learned Implicit Representation0
Super-resolution Guided Pore Detection for Fingerprint Recognition0
Artefact removal in ground truth deficient fluctuations-based nanoscopy images using deep learning0
Boosting Image Super-Resolution Via Fusion of Complementary Information Captured by Multi-Modal Sensors0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1super-resolutionAverage PSNR20.41Unverified