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 59015950 of 7282 papers

TitleStatusHype
Reconstruction of Sound Field through Diffusion Models0
ReconXF: Graph Reconstruction Attack via Public Feature Explanations on Privatized Node Features and Labels0
ReCoRe: Regularized Contrastive Representation Learning of World Model0
Unrolling Plug-and-Play Gradient Graph Laplacian Regularizer for Image Restoration0
Recovering implicit pitch contours from formants in whispered speech0
Recovering Loss to Followup Information Using Denoising Autoencoders0
Recovering Pulse Waves from Video Using Deep Unrolling and Deep Equilibrium Models0
Recovery of surfaces and functions in high dimensions: sampling theory and links to neural networks0
Rectified Diffusion Guidance for Conditional Generation0
Rectifier Neural Network with a Dual-Pathway Architecture for Image Denoising0
Recurrent Deep Kernel Learning of Dynamical Systems0
Recurrent Generative Adversarial Networks for Proximal Learning and Automated Compressive Image Recovery0
Discovery and Expansion of New Domains within Diffusion Models0
Windowed total variation denoising and noise variance monitoring0
Recursive Filter for Space-Variant Variance Reduction0
ReDiffDet: Rotation-equivariant Diffusion Model for Oriented Object Detection0
ReDistill: Residual Encoded Distillation for Peak Memory Reduction0
Reduced Effectiveness of Kolmogorov-Arnold Networks on Functions with Noise0
Reducing Redundancy in the Bottleneck Representation of the Autoencoders0
Reduction of Non-stationary Noise for a Robotic Living Assistant using Sparse Non-negative Matrix Factorization0
RefiDiff: Refinement-Aware Diffusion for Efficient Missing Data Imputation0
Refined Risk Bounds for Unbounded Losses via Transductive Priors0
RefineVIS: Video Instance Segmentation with Temporal Attention Refinement0
Zero-Shot Metric Depth with a Field-of-View Conditioned Diffusion Model0
ReFrame: Layer Caching for Accelerated Inference in Real-Time Rendering0
A comparison study of CNN denoisers on PRNU extraction0
Regional Priority Based Anomaly Detection using Autoencoders0
Unsupervised Abnormality Detection through Mixed Structure Regularization (MSR) in Deep Sparse Autoencoders0
Unsupervised Accelerated MRI Reconstruction via Ground-Truth-Free Flow Matching0
Regularization by denoising: Bayesian model and Langevin-within-split Gibbs sampling0
Regularization by Denoising Sub-sampled Newton Method for Spectral CT Multi-Material Decomposition0
Regularization by Denoising via Fixed-Point Projection (RED-PRO)0
Regularized estimation of image statistics by Score Matching0
Regularizing linear inverse problems with convolutional neural networks0
Zero-Shot Mono-to-Binaural Speech Synthesis0
Regularizing Trajectory Optimization with Denoising Autoencoders0
Regular Time-series Generation using SGM0
ReinFlow: Fine-tuning Flow Matching Policy with Online Reinforcement Learning0
Reinforced Label Denoising for Weakly-Supervised Audio-Visual Video Parsing0
Reinforcement-based denoising of distantly supervised NER with partial annotation0
RPT: Relational Pre-trained Transformer Is Almost All You Need towards Democratizing Data Preparation0
Relation Mention Extraction from Noisy Data with Hierarchical Reinforcement Learning0
Relationship Quantification of Image Degradations0
RELD: Regularization by Latent Diffusion Models for Image Restoration0
Reliability-based Mesh-to-Grid Image Reconstruction0
Reliable Deep Diffusion Tensor Estimation: Rethinking the Power of Data-Driven Optimization Routine0
Relightable 3D Head Portraits from a Smartphone Video0
Relightify: Relightable 3D Faces from a Single Image via Diffusion Models0
Remaining useful life prediction of rolling bearings based on refined composite multi-scale attention entropy and dispersion entropy0
Zero-Shot Noise2Noise: Efficient Image Denoising without any Data0
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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