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 35013550 of 3874 papers

TitleStatusHype
Super-Resolution Perception for Industrial Sensor Data0
Modelling Point Spread Function in Fluorescence Microscopy with a Sparse Combination of Gaussian Mixture: Trade-off between Accuracy and Efficiency0
Optical Flow Super-Resolution Based on Image Guidence Using Convolutional Neural Network0
Unsupervised Image Super-Resolution using Cycle-in-Cycle Generative Adversarial NetworksCode0
SRFeat: Single Image Super-Resolution with Feature Discrimination0
Face Super-resolution Guided by Facial Component Heatmaps0
Multi-scale Residual Network for Image Super-ResolutionCode0
Task-Aware Image Downscaling0
Fast and Efficient Image Quality Enhancement via Desubpixel Convolutional Neural NetworksCode0
SOD-MTGAN: Small Object Detection via Multi-Task Generative Adversarial Network0
Spatio-temporal Transformer Network for Video Restoration0
Learning Sparse Low-Precision Neural Networks With Learnable Regularization0
Super-Resolution and Sparse View CT Reconstruction0
Super-Resolution for Hyperspectral and Multispectral Image Fusion Accounting for Seasonal Spectral Variability0
Deeply Supervised Depth Map Super-Resolution as Novel View Synthesis0
Wide Activation for Efficient and Accurate Image Super-ResolutionCode0
Efficient Single Image Super Resolution using Enhanced Learned Group ConvolutionsCode0
MSCE: An edge preserving robust loss function for improving super-resolution algorithms0
Improving Super-Resolution Methods via Incremental Residual LearningCode0
Medical Image Imputation from Image CollectionsCode0
CT Super-resolution GAN Constrained by the Identical, Residual, and Cycle Learning Ensemble(GAN-CIRCLE)0
Deep Learning for Single Image Super-Resolution: A Brief ReviewCode0
Deep Learning Super-Resolution Enables Rapid Simultaneous Morphological and Quantitative Magnetic Resonance Imaging0
Brain MRI Image Super Resolution using Phase Stretch Transform and Transfer LearningCode0
To learn image super-resolution, use a GAN to learn how to do image degradation firstCode0
Multi-bin Trainable Linear Unit for Fast Image Restoration Networks0
CrossNet: An End-to-end Reference-based Super Resolution Network using Cross-scale WarpingCode0
Gated Fusion Network for Joint Image Deblurring and Super-ResolutionCode0
A Tensor Factorization Method for 3D Super-Resolution with Application to Dental CTCode0
Decouple Learning for Parameterized Image OperatorsCode0
Perceptual Video Super Resolution with Enhanced Temporal Consistency0
An Attention-Based Approach for Single Image Super Resolution0
Optimal Physical Preprocessing for Example-Based Super-Resolution0
Performance Comparison of Convolutional AutoEncoders, Generative Adversarial Networks and Super-Resolution for Image Compression0
SynNet: Structure-Preserving Fully Convolutional Networks for Medical Image Synthesis0
Deep CNN Denoiser and Multi-layer Neighbor Component Embedding for Face HallucinationCode0
Multi-modal Image Processing based on Coupled Dictionary Learning0
CT-image Super Resolution Using 3D Convolutional Neural Network0
Can Deep Learning Relax Endomicroscopy Hardware Miniaturization Requirements?0
Generative Adversarial Networks and Perceptual Losses for Video Super-Resolution0
Accurate Spectral Super-resolution from Single RGB Image Using Multi-scale CNN0
Non-Local Recurrent Network for Image RestorationCode0
Super-Resolution using Convolutional Neural Networks without Any Checkerboard ArtifactsCode0
Adaptive Importance Learning for Improving Lightweight Image Super-resolution Network0
Patch-Based Image Hallucination for Super Resolution with Detail Reconstruction from Similar Sample Images0
Scale-Transferrable Object Detection0
Enhancing the Spatial Resolution of Stereo Images Using a Parallax Prior0
Deep Video Super-Resolution Network Using Dynamic Upsampling Filters Without Explicit Motion CompensationCode0
A Papier-Mâché Approach to Learning 3D Surface Generation0
Mesoscopic Facial Geometry Inference Using Deep Neural Networks0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1super-resolutionAverage PSNR20.41Unverified