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 30013025 of 3874 papers

TitleStatusHype
Single Pair Cross-Modality Super Resolution0
Weak Texture Information Map Guided Image Super-resolution with Deep Residual Networks0
WeatherGFM: Learning A Weather Generalist Foundation Model via In-context Learning0
Weighted Encoding Based Image Interpolation With Nonlocal Linear Regression Model0
Weighted Low-rank Tensor Recovery for Hyperspectral Image Restoration0
Uncovering the Over-smoothing Challenge in Image Super-Resolution: Entropy-based Quantification and Contrastive Optimization0
What makes for good morphology representations for spatial omics?0
What's Behind the Mask: Estimating Uncertainty in Image-to-Image Problems0
What You See is What You GAN: Rendering Every Pixel for High-Fidelity Geometry in 3D GANs0
When Autonomous Systems Meet Accuracy and Transferability through AI: A Survey0
When Geoscience Meets Generative AI and Large Language Models: Foundations, Trends, and Future Challenges0
When Super-Resolution Meets Camouflaged Object Detection: A Comparison Study0
When to Use Convolutional Neural Networks for Inverse Problems0
Wider Channel Attention Network for Remote Sensing Image Super-resolution0
WiSoSuper: Benchmarking Super-Resolution Methods on Wind and Solar Data0
W-Net: A Facial Feature-Guided Face Super-Resolution Network0
XAI-based gait analysis of patients walking with Knee-Ankle-Foot orthosis using video cameras0
XCAT -- Lightweight Quantized Single Image Super-Resolution using Heterogeneous Group Convolutions and Cross Concatenation0
XCycles Backprojection Acoustic Super-Resolution0
Dynamic Attention-Guided Diffusion for Image Super-Resolution0
YOLO-MST: Multiscale deep learning method for infrared small target detection based on super-resolution and YOLO0
You KAN Do It in a Single Shot: Plug-and-Play Methods with Single-Instance Priors0
You Only Align Once: Bidirectional Interaction for Spatial-Temporal Video Super-Resolution0
You Only Need One Step: Fast Super-Resolution with Stable Diffusion via Scale Distillation0
Zero-Shot Image Super-Resolution with Depth Guided Internal Degradation Learning0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1super-resolutionAverage PSNR20.41Unverified