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 36513675 of 7282 papers

TitleStatusHype
Leveraging Denoised Abstract Meaning Representation for Grammatical Error Correction0
Leveraging Diffusion Models for Parameterized Quantum Circuit Generation0
Leveraging Diffusion Models for Synthetic Data Augmentation in Protein Subcellular Localization Classification0
Leveraging Fine-Grained Information and Noise Decoupling for Remote Sensing Change Detection0
Leveraging Graph Diffusion Models for Network Refinement Tasks0
Leveraging Side Information for Ligand Conformation Generation using Diffusion-Based Approaches0
Leveraging Text Repetitions and Denoising Autoencoders in OCR Post-correction0
Leveraging the Spatial Hierarchy: Coarse-to-fine Trajectory Generation via Cascaded Hybrid Diffusion0
TouchTTS: An Embarrassingly Simple TTS Framework that Everyone Can Touch0
Zero-shot Generation of Training Data with Denoising Diffusion Probabilistic Model for Handwritten Chinese Character Recognition0
Toward Accurate Camera-based 3D Object Detection via Cascade Depth Estimation and Calibration0
LGDN: Language-Guided Denoising Network for Video-Language Modeling0
LiDAR-Aided Mobile Blockage Prediction in Real-World Millimeter Wave Systems0
LiDAR Ground Filtering Algorithm for Urban Areas Using Scan Line Based Segmentation0
Lifted Bregman Training of Neural Networks0
Wave-shape Function Model Order Estimation by Trigonometric Regression0
Light Field Denoising via Anisotropic Parallax Analysis in a CNN Framework0
Light Field Diffusion for Single-View Novel View Synthesis0
A Deep Learning Approach to Data-driven Parameterizations for Statistical Parametric Speech Synthesis0
Lightweight Language-driven Grasp Detection using Conditional Consistency Model0
Lightweight Physics-Informed Zero-Shot Ultrasound Plane Wave Denoising0
Lightweight Video Denoising Using a Classic Bayesian Backbone0
Likelihood-based Out-of-Distribution Detection with Denoising Diffusion Probabilistic Models0
LIME: Localized Image Editing via Attention Regularization in Diffusion Models0
Limited-Angle CBCT Reconstruction via Geometry-Integrated Cycle-domain Denoising Diffusion Probabilistic Models0
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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