SOTAVerified

Denoising

Denoising is a task in image processing and computer vision that aims to remove or reduce noise from an image. Noise can be introduced into an image due to various reasons, such as camera sensor limitations, lighting conditions, and compression artifacts. The goal of denoising is to recover the original image, which is considered to be noise-free, from a noisy observation.

( Image credit: Beyond a Gaussian Denoiser )

Papers

Showing 45514600 of 7282 papers

TitleStatusHype
Point Spread Function Modelling for Wide Field Small Aperture Telescopes with a Denoising Autoencoder0
Pointwise shape-adaptive DCT for high-quality deblocking of compressed color images0
Poisoning MorphNet for Clean-Label Backdoor Attack to Point Clouds0
Underwater Image Enhancement Using Pre-trained Transformer0
PFCM: Poisson flow consistency models for low-dose CT image denoising0
Poisson Image Deconvolution by a Plug-and-Play Quantum Denoising Scheme0
Poisson Image Denoising Using Best Linear Prediction: A Post-processing Framework0
Poisson Inverse Problems by the Plug-and-Play scheme0
Poisson Noise Reduction with Higher-order Natural Image Prior Model0
Poisson noise reduction with non-local PCA0
Polarimetric Normal Stereo0
Polarized Color Image Denoising0
Polarized Color Image Denoising using Pocoformer0
PolMERLIN: Self-Supervised Polarimetric Complex SAR Image Despeckling with Masked Networks0
PolyDiff: Generating 3D Polygonal Meshes with Diffusion Models0
Positive2Negative: Breaking the Information-Lossy Barrier in Self-Supervised Single Image Denoising0
PostCast: Generalizable Postprocessing for Precipitation Nowcasting via Unsupervised Blurriness Modeling0
Likelihood Annealing: Fast Calibrated Uncertainty for Regression0
Posterior-Mean Denoising Diffusion Model for Realistic PET Image Reconstruction0
Posterior Sampling with Denoising Oracles via Tilted Transport0
Posterior Temperature Optimization in Variational Inference for Inverse Problems0
Postprocessing of Compressed Images via Sequential Denoising0
Post-Training Quantization for Diffusion Transformer via Hierarchical Timestep Grouping0
Powerful Lossy Compression for Noisy Images0
Powers of layers for image-to-image translation0
A Cross Validation Framework for Signal Denoising with Applications to Trend Filtering, Dyadic CART and Beyond0
U-Nets as Belief Propagation: Efficient Classification, Denoising, and Diffusion in Generative Hierarchical Models0
Practical Knowledge Distillation: Using DNNs to Beat DNNs0
Practical Noise Simulation for RGB Images0
Learning Task-Oriented Flows to Mutually Guide Feature Alignment in Synthesized and Real Video Denoising0
PRDP: Proximal Reward Difference Prediction for Large-Scale Reward Finetuning of Diffusion Models0
Une véritable approche _0 pour l'apprentissage de dictionnaire0
Precise Phase Transition of Total Variation Minimization0
Preconditioned Plug-and-Play ADMM with Locally Adjustable Denoiser for Image Restoration0
Predicting online user behaviour using deep learning algorithms0
GeoTMI:Predicting quantum chemical property with easy-to-obtain geometry via positional denoising0
Predicting Wave Dynamics using Deep Learning with Multistep Integration Inspired Attention and Physics-Based Loss Decomposition0
Prediction of Dynamical time Series Using Kernel Based Regression and Smooth Splines0
Prediction of financial time series using LSTM and data denoising methods0
Prediction with Action: Visual Policy Learning via Joint Denoising Process0
Uni6Dv2: Noise Elimination for 6D Pose Estimation0
Predictor Combination at Test Time0
UNICAD: A Unified Approach for Attack Detection, Noise Reduction and Novel Class Identification0
Prefix-diffusion: A Lightweight Diffusion Model for Diverse Image Captioning0
Preparing fMRI Data for Statistical Analysis0
Preserving Identity with Variational Score for General-purpose 3D Editing0
PressureTransferNet: Human Attribute Guided Dynamic Ground Pressure Profile Transfer using 3D simulated Pressure Maps0
UniCorn: A Unified Contrastive Learning Approach for Multi-view Molecular Representation Learning0
Pre-Training Graph Neural Networks for Generic Structural Feature Extraction0
Pre-training Graph Neural Networks with Structural Fingerprints for Materials Discovery0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1SINDyPSNR81Unverified
2Pixel-shuffling DownsamplingPSNR38.4Unverified
3TWSCPSNR37.93Unverified
4CBDNet(Syn)PSNR37.57Unverified
5MCWNNMPSNR37.38Unverified
6Han et alPSNR35.95Unverified
7FFDNetPSNR34.4Unverified
8TNRDPSNR33.65Unverified
9CDnCNN-BPSNR32.43Unverified
10NLRNPSNR30.8Unverified
#ModelMetricClaimedVerifiedStatus
1DRUnet_Poisson_0.01Average PSNR (dB)33.92Unverified
#ModelMetricClaimedVerifiedStatus
1DRANetAverage PSNR39.64Unverified
#ModelMetricClaimedVerifiedStatus
1PCNN+RL+HMEAverage84.61Unverified