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 28512875 of 3874 papers

TitleStatusHype
RefVSR++: Exploiting Reference Inputs for Reference-based Video Super-resolution0
Image restoration quality assessment based on regional differential information entropy0
Automated Symbolic Law Discovery: A Computer Vision Approach0
AccelIR: Task-Aware Image Compression for Accelerating Neural Restoration0
ReGuidance: A Simple Diffusion Wrapper for Boosting Sample Quality on Hard Inverse Problems0
Regularization by denoising: Bayesian model and Langevin-within-split Gibbs sampling0
Regularization by Denoising via Fixed-Point Projection (RED-PRO)0
Regularization via deep generative models: an analysis point of view0
Regularized estimation of image statistics by Score Matching0
Regularized Residual Quantization: a multi-layer sparse dictionary learning approach0
Acceleration-Based Kalman Tracking for Super-Resolution Ultrasound Imaging in vivo0
Regularizing Differentiable Architecture Search with Smooth Activation0
Unsupervised Real-World Super-Resolution: A Domain Adaptation Perspective0
Relative Pixel Prediction For Autoregressive Image Generation0
Discovering Symmetry Breaking in Physical Systems with Relaxed Group Convolution0
RELD: Regularization by Latent Diffusion Models for Image Restoration0
Reliability-based Mesh-to-Grid Image Reconstruction0
Autoencoding Low-Resolution MRI for Semantically Smooth Interpolation of Anisotropic MRI0
Accelerating GMM-based patch priors for image restoration: Three ingredients for a 100 speed-up0
Remote Sensing Image Super-resolution and Object Detection: Benchmark and State of the Art0
GlyphDiffusion: Text Generation as Image Generation0
RepNet-VSR: Reparameterizable Architecture for High-Fidelity Video Super-Resolution0
REPNP: Plug-and-Play with Deep Reinforcement Learning Prior for Robust Image Restoration0
Representing Flow Fields with Divergence-Free Kernels for Reconstruction0
Unsupervised Representation Learning for 3D MRI Super Resolution with Degradation Adaptation0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1super-resolutionAverage PSNR20.41Unverified