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 50765100 of 7282 papers

TitleStatusHype
S-DCCRN: Super Wide Band DCCRN with learnable complex feature for speech enhancement0
SDDM: Score-Decomposed Diffusion Models on Manifolds for Unpaired Image-to-Image Translation0
SDDPM: Speckle Denoising Diffusion Probabilistic Models0
Accelerating Diffusion-based Combinatorial Optimization Solvers by Progressive Distillation0
Unveiling Hidden Details: A RAW Data-Enhanced Paradigm for Real-World Super-Resolution0
SDeMorph: Towards Better Facial De-morphing from Single Morph0
SD-GAN: Structural and Denoising GAN reveals facial parts under occlusion0
S-Diff: An Anisotropic Diffusion Model for Collaborative Filtering in Spectral Domain0
Unveiling the potential of diffusion model-based framework with transformer for hyperspectral image classification0
Unveiling the Power of Noise Priors: Enhancing Diffusion Models for Mobile Traffic Prediction0
URGENT Challenge: Universality, Robustness, and Generalizability For Speech Enhancement0
SeaDAG: Semi-autoregressive Diffusion for Conditional Directed Acyclic Graph Generation0
Practical Operator Sketching Framework for Accelerating Iterative Data-Driven Solutions in Inverse Problems0
SeaD: End-to-end Text-to-SQL Generation with Schema-aware Denoising0
SeaLion: Semantic Part-Aware Latent Point Diffusion Models for 3D Generation0
Accelerate High-Quality Diffusion Models with Inner Loop Feedback0
Searching Efficient Model-guided Deep Network for Image Denoising0
SE-DAE: Style-Enhanced Denoising Auto-Encoder for Unsupervised Text Style Transfer0
uSee: Unified Speech Enhancement and Editing with Conditional Diffusion Models0
Seeing and Hearing: Open-domain Visual-Audio Generation with Diffusion Latent Aligners0
Seeing Beyond Appearance - Mapping Real Images into Geometrical Domains for Unsupervised CAD-based Recognition0
Seeing Through the Noisy Dark: Towards Real-world Low-Light Image Enhancement and Denoising0
User Loss -- A Forced-Choice-Inspired Approach to Train Neural Networks directly by User Interaction0
seg2med: a bridge from artificial anatomy to multimodal medical images0
Segmentation of Retinal Low-Cost Optical Coherence Tomography Images using Deep Learning0
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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