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 36513700 of 3874 papers

TitleStatusHype
Temporal shape super-resolution by intra-frame motion encoding using high-fps structured light0
Supplementary Meta-Learning: Towards a Dynamic Model for Deep Neural Networks0
One Network to Solve Them All -- Solving Linear Inverse Problems Using Deep Projection ModelsCode0
Wavelet-SRNet: A Wavelet-Based CNN for Multi-Scale Face Super Resolution0
Multi-View Dynamic Shape Refinement Using Local Temporal Integration0
Learning to Super-Resolve Blurry Face and Text Images0
Anchored Regression Networks Applied to Age Estimation and Super Resolution0
Image Super-Resolution Using Dense Skip ConnectionsCode0
Robust Video Super-Resolution With Learned Temporal Dynamics0
Light field super resolution through controlled micro-shifts of light field sensor0
Multimodal Image Super-resolution via Joint Sparse Representations induced by Coupled DictionariesCode0
Sparse-to-Dense: Depth Prediction from Sparse Depth Samples and a Single ImageCode0
CISRDCNN: Super-resolution of compressed images using deep convolutional neural networks0
Joint Estimation of Camera Pose, Depth, Deblurring, and Super-Resolution from a Blurred Image Sequence0
Deep Mean-Shift Priors for Image RestorationCode0
Deep multi-frame face super-resolution0
Robust Emotion Recognition from Low Quality and Low Bit Rate Video: A Deep Learning Approach0
Benchmarking Super-Resolution Algorithms on Real Data0
Weighted Low-rank Tensor Recovery for Hyperspectral Image Restoration0
Joint Maximum Purity Forest with Application to Image Super-ResolutionCode0
Simultaneously Color-Depth Super-Resolution with Conditional Generative Adversarial Network0
Sparsity-Based Super Resolution for SEM Images0
Fast single image super-resolution based on sigmoid transformation0
Structured illumination microscopy for dual-modality 3D sub-diffraction resolution fluorescence and refractive-index reconstruction0
Attention-Aware Face Hallucination via Deep Reinforcement Learning0
MemNet: A Persistent Memory Network for Image RestorationCode0
Unsupervised Video Understanding by Reconciliation of Posture Similarities0
Audio Super Resolution using Neural NetworksCode0
Real-time Deep Video DeinterlacingCode0
Depth Super-Resolution Meets Uncalibrated Photometric StereoCode0
A Framework for Super-Resolution of Scalable Video via Sparse Reconstruction of Residual Frames0
A unified method for super-resolution recovery and real exponential-sum separation0
Structure-Preserving Image Super-resolution via Contextualized Multi-task Learning0
Single Image Super-Resolution with Dilated Convolution based Multi-Scale Information Learning Inception ModuleCode0
Fast and Accurate Image Super Resolution by Deep CNN with Skip Connection and Network in NetworkCode0
High-Quality Face Image SR Using Conditional Generative Adversarial NetworksCode0
End-to-End Learning of Video Super-Resolution with Motion Compensation0
Hyperspectral Image Super-Resolution via Non-Local Sparse Tensor Factorization0
Image Super-Resolution via Deep Recursive Residual NetworkCode0
FFTLasso: Large-Scale LASSO in the Fourier Domain0
Adversarial Image Alignment and Interpolation0
Super-Resolution via Deep Learning0
Low Resolution Face Recognition Using a Two-Branch Deep Convolutional Neural Network Architecture0
Multi-frame image super-resolution with fast upscaling technique0
DOTE: Dual cOnvolutional filTer lEarning for Super-Resolution and Cross-Modality Synthesis in MRI0
A New Adaptive Video Super-Resolution Algorithm With Improved Robustness to Innovations0
Deep Learning for Isotropic Super-Resolution from Non-Isotropic 3D Electron Microscopy0
Adversarial Inverse Graphics Networks: Learning 2D-to-3D Lifting and Image-to-Image Translation from Unpaired Supervision0
Computation-Performance Optimization of Convolutional Neural Networks with Redundant Kernel RemovalCode0
LAP: a Linearize and Project Method for Solving Inverse Problems with Coupled VariablesCode0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1super-resolutionAverage PSNR20.41Unverified