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 22762300 of 3874 papers

TitleStatusHype
Two-dimensional gridless super-resolution method for ISAR imaging0
A Comprehensive Survey of Transformers for Computer Vision0
SRNR: Training neural networks for Super-Resolution MRI using Noisy high-resolution Reference data0
Contrastive Learning for Climate Model Bias Correction and Super-Resolution0
RRSR:Reciprocal Reference-based Image Super-Resolution with Progressive Feature Alignment and Selection0
Nondestructive thermographic detection of internal defects using pixel-pattern based laser excitation and photothermal super resolution reconstruction0
Power Efficient Video Super-Resolution on Mobile NPUs with Deep Learning, Mobile AI & AIM 2022 challenge: Report0
Underwater Image Super-Resolution using Generative Adversarial Network-based Model0
Measurement-Consistent Networks via a Deep Implicit Layer for Solving Inverse Problems0
Rate-Distortion Optimized Post-Training Quantization for Learned Image Compression0
Mixture-Net: Low-Rank Deep Image Prior Inspired by Mixture Models for Spectral Image Recovery0
HyperSound: Generating Implicit Neural Representations of Audio Signals with Hypernetworks0
Temporal Consistency Learning of inter-frames for Video Super-ResolutionCode0
Fine-tuned Generative Adversarial Network-based Model for Medical Image Super-Resolution0
VIINTER: View Interpolation with Implicit Neural Representations of Images0
BUbble Flow Field: a Simulation Framework for Evaluating Ultrasound Localization Microscopy Algorithms0
TITAN: Bringing The Deep Image Prior to Implicit RepresentationsCode0
Physics-Informed CNNs for Super-Resolution of Sparse Observations on Dynamical SystemsCode0
Data-Driven Computational Imaging for Scientific DiscoveryCode0
Applying Physics-Informed Enhanced Super-Resolution Generative Adversarial Networks to Finite-Rate-Chemistry Flows and Predicting Lean Premixed Gas Turbine Combustors0
Applying Physics-Informed Enhanced Super-Resolution Generative Adversarial Networks to Turbulent Non-Premixed Combustion on Non-Uniform Meshes and Demonstration of an Accelerated Simulation Workflow0
Applying Physics-Informed Enhanced Super-Resolution Generative Adversarial Networks to Turbulent Premixed Combustion and Engine-like Flame Kernel Direct Numerical Simulation Data0
Conditioning and Sampling in Variational Diffusion Models for Speech Super-ResolutionCode0
Generalized Matrix-Pencil Approach to Estimation of Complex Exponentials with Gapped Data0
Three more Decades in Array Signal Processing Research: An Optimization and Structure Exploitation Perspective0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1super-resolutionAverage PSNR20.41Unverified