SOTAVerified

Image Enhancement

Image Enhancement is basically improving the interpretability or perception of information in images for human viewers and providing ‘better’ input for other automated image processing techniques. The principal objective of Image Enhancement is to modify attributes of an image to make it more suitable for a given task and a specific observer.

Source: A Comprehensive Review of Image Enhancement Techniques

Papers

Showing 401–450 of 983 papers

TitleStatusHype
From Fidelity to Perceptual Quality: A Semi-Supervised Approach for Low-Light Image Enhancement—0
High-Frequency aware Perceptual Image Enhancement—0
Contrast Enhancement And Brightness Preservation Using Multi- Decomposition Histogram Equalization—0
Application of Compromising Evolution in Multi-objective Image Error Concealment—0
FreeEnhance: Tuning-Free Image Enhancement via Content-Consistent Noising-and-Denoising Process—0
Fractional Multiscale Fusion-based De-hazing—0
Fractional Calculus In Image Processing: A Review—0
Histogram Specification by Assignment of Optimal Unique Values—0
HPGN: Hybrid Priors-Guided Network for Compressed Low-Light Image Enhancement—0
HQG-Net: Unpaired Medical Image Enhancement with High-Quality Guidance—0
HUE Dataset: High-Resolution Event and Frame Sequences for Low-Light Vision—0
A framework for river connectivity classification using temporal image processing and attention based neural networks—0
A Comparative Study of Histogram Equalization Based Image Enhancement Techniques for Brightness Preservation and Contrast Enhancement—0
Learning-Based Dequantization For Image Restoration Against Extremely Poor Illumination—0
Learning Dynamic Guidance for Depth Image Enhancement—0
Forensic Video Analytic Software—0
A PDE-based log-agnostic illumination correction algorithm—0
IA2U: A Transfer Plugin with Multi-Prior for In-Air Model to Underwater—0
IDA-UIE: An Iterative Framework for Deep Network-based Degradation Aware Underwater Image Enhancement—0
Identification of chicken egg fertility using SVM classifier based on first-order statistical feature extraction—0
Identity Encoder for Personalized Diffusion—0
IEGAN: Multi-purpose Perceptual Quality Image Enhancement Using Generative Adversarial Network—0
AOSR-Net: All-in-One Sandstorm Removal Network—0
Super-Resolution Generative Adversarial Networks based Video Enhancement—0
Flexible Example-based Image Enhancement with Task Adaptive Global Feature Self-Guided Network—0
Computed Tomography Image Enhancement using 3D Convolutional Neural Network—0
Image-Conditional Diffusion Transformer for Underwater Image Enhancement—0
Image contrast enhancement using fuzzy logic—0
Complex Mixer for MedMNIST Classification Decathlon—0
Image Edge Restoring Filter—0
A Comparative Study of Filtering Approaches Applied to Color Archival Document Images—0
Image Enhancement and Object Recognition for Night Vision Surveillance—0
AgentPolyp: Accurate Polyp Segmentation via Image Enhancement Agent—0
Image Enhancement by Recurrently-trained Super-resolution Network—0
Fingerprint Extraction Using Smartphone Camera—0
FGF-GAN: A Lightweight Generative Adversarial Network for Pansharpening via Fast Guided Filter—0
When No-Reference Image Quality Models Meet MAP Estimation in Diffusion Latents—0
Image Enhancement Network Trained by Using HDR images—0
Image Enhancement Using a Generalization of Homographic Function—0
Image enhancement using fusion by wavelet transform and laplacian pyramid—0
Image Enhancement using Fuzzy Intensity Measure and Adaptive Clipping Histogram Equalization—0
Image enhancement using the mean dynamic range maximization with logarithmic operations—0
Image Enhancement via Bilateral Learning—0
Image Inpainting by Adaptive Fusion of Variable Spline Interpolations—0
3D Conditional Generative Adversarial Networks to enable large-scale seismic image enhancement—0
Image Restoration in Non-Linear Filtering Domain using MDB approach—0
Feedback Graph Attention Convolutional Network for Medical Image Enhancement—0
Comparative Analysis of Image Enhancement Techniques for Brain Tumor Segmentation: Contrast, Histogram, and Hybrid Approaches—0
Feature Enhancer Segmentation Network (FES-Net) for Vessel Segmentation—0
Feature Attention Network (FA-Net): A Deep-Learning Based Approach for Underwater Single Image Enhancement—0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1HG-MTFEPSNR on proRGB25.69—Unverified
2PQDynamicISPPSNR on proRGB25.53—Unverified
3RSFNet-mapPSNR on proRGB25.49—Unverified
4AdaIntPSNR on proRGB25.49—Unverified
5SepLUTPSNR on proRGB25.47—Unverified
6MTFEPSNR on proRGB25.46—Unverified
73D LUTPSNR on proRGB25.21—Unverified
8RetinexformerPSNR on sRGB24.94—Unverified
94D LUTPSNR on proRGB24.61—Unverified
10DIFAR (MSCA, level 1)PSNR on proRGB24.2—Unverified
#ModelMetricClaimedVerifiedStatus
1ESDNet-LPSNR30.11—Unverified
2MBCNNPSNR30.03—Unverified
3ESDNetPSNR29.81—Unverified
4Uformer-BPSNR29.28—Unverified
5MopNetPSNR27.75—Unverified
6DMCNNPSNR26.77—Unverified
#ModelMetricClaimedVerifiedStatus
1Exposure-slotPSNR23.18—Unverified
2CSECPSNR22.73—Unverified
3LCDPNetPSNR22.17—Unverified
4IATPSNR20.34—Unverified
5MSECPSNR20.21—Unverified
#ModelMetricClaimedVerifiedStatus
1TreEnhanceDeltaE11.25—Unverified
#ModelMetricClaimedVerifiedStatus
1CIDNetAverage PSNR13.45—Unverified
#ModelMetricClaimedVerifiedStatus
1CIDNetAverage PSNR13.43—Unverified