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 35513600 of 3874 papers

TitleStatusHype
Proba-V-ref: Repurposing the Proba-V challenge for reference-aware super resolutionCode0
DSR-Diff: Depth Map Super-Resolution with Diffusion ModelCode0
A Regularized Conditional GAN for Posterior Sampling in Image Recovery ProblemsCode0
Progressive Face Super-Resolution via Attention to Facial LandmarkCode0
JSI-GAN: GAN-Based Joint Super-Resolution and Inverse Tone-Mapping with Pixel-Wise Task-Specific Filters for UHD HDR VideoCode0
Progressive Fusion Video Super-Resolution Network via Exploiting Non-Local Spatio-Temporal CorrelationsCode0
DPSRGAN: Dilation Patch Super-Resolution Generative Adversarial NetworksCode0
Trained Model in Supervised Deep Learning is a Conditional Risk MinimizerCode0
Deep CNN Denoiser and Multi-layer Neighbor Component Embedding for Face HallucinationCode0
Progressive Perception-Oriented Network for Single Image Super-ResolutionCode0
Joint Super-Resolution and Inverse Tone-Mapping: A Feature Decomposition Aggregation Network and A New BenchmarkCode0
Projected Distribution Loss for Image EnhancementCode0
Unsupervised domain adaptation and super resolution on drone images for autonomous dry herbage biomass estimationCode0
Super-Resolving Face Image by Facial Parsing InformationCode0
Joint Super-Resolution and Alignment of Tiny FacesCode0
Boosting Diffusion Guidance via Learning Degradation-Aware Models for Blind Super ResolutionCode0
Super-resolving Real-world Image Illumination Enhancement: A New Dataset and A Conditional Diffusion ModelCode0
Provably Convergent Plug-and-Play Quasi-Newton MethodsCode0
Provably Convergent Plug & Play Linearized ADMM, applied to Deblurring Spatially Varying KernelsCode0
Joint Reconstruction and Spatial Super-Resolution of Hyper-Spectral CTIS Images via Multi-Scale RefinementCode0
Blind Super-Resolution With Iterative Kernel CorrectionCode0
Sparse-to-Dense: Depth Prediction from Sparse Depth Samples and a Single ImageCode0
A Design Methodology for Efficient Implementation of Deconvolutional Neural Networks on an FPGACode0
Sparsity-based background removal for STORM super-resolution imagesCode0
Blind Super-Resolution Kernel Estimation using an Internal-GANCode0
Joint Maximum Purity Forest with Application to Image Super-ResolutionCode0
Joint High Dynamic Range Imaging and Super-Resolution from a Single ImageCode0
PVR: Patch-to-Volume Reconstruction for Large Area Motion Correction of Fetal MRICode0
Arbitrary Scale Super-Resolution for Brain MRI ImagesCode0
spateGAN: Spatio-Temporal Downscaling of Rainfall Fields Using a cGAN ApproachCode0
VideoOneNet: Bidirectional Convolutional Recurrent OneNet with Trainable Data Steps for Video ProcessingCode0
IterInv: Iterative Inversion for Pixel-Level T2I ModelsCode0
Domain Transfer in Latent Space (DTLS) Wins on Image Super-Resolution -- a Non-Denoising ModelCode0
Is Autoencoder Truly Applicable for 3D CT Super-Resolution?Code0
Multi Scale Identity-Preserving Image-to-Image Translation Network for Low-Resolution Face RecognitionCode0
Inverse Problems with Diffusion Models: A MAP Estimation PerspectiveCode0
DLBI: Deep learning guided Bayesian inference for structure reconstruction of super-resolution fluorescence microscopyCode0
QMRNet: Quality Metric Regression for EO Image Quality Assessment and Super-ResolutionCode0
A deep learning framework for morphologic detail beyond the diffraction limit in infrared spectroscopic imagingCode0
DeepCEL0 for 2D Single Molecule Localization in Fluorescence MicroscopyCode0
Unsupervised Image Super-Resolution using Cycle-in-Cycle Generative Adversarial NetworksCode0
IntraTomo: Self-Supervised Learning-Based Tomography via Sinogram Synthesis and PredictionCode0
DiTBN: Detail Injection-Based Two-Branch Network for Pansharpening of Remote Sensing ImagesCode0
Distortion-aware super-resolution for planetary exploration imagesCode0
Quantifying Uncertainty in Discrete-Continuous and Skewed Data with Bayesian Deep LearningCode0
Spatially-Variant Degradation Model for Dataset-free Super-resolutionCode0
QuantNAS for super resolution: searching for efficient quantization-friendly architectures against quantization noiseCode0
Feedback Refined Local-Global Network for Super-Resolution of Hyperspectral ImageryCode0
Blind Image Fusion for Hyperspectral Imaging with the Directional Total VariationCode0
Quasi-supervised Learning for Super-resolution PETCode0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1super-resolutionAverage PSNR20.41Unverified