SOTAVerified

Image Classification

Image Classification is a fundamental task in vision recognition that aims to understand and categorize an image as a whole under a specific label. Unlike object detection, which involves classification and location of multiple objects within an image, image classification typically pertains to single-object images. When the classification becomes highly detailed or reaches instance-level, it is often referred to as image retrieval, which also involves finding similar images in a large database.

Source: Metamorphic Testing for Object Detection Systems

Papers

Showing 89519000 of 10420 papers

TitleStatusHype
MgNet: A Unified Framework of Multigrid and Convolutional Neural Network0
Semantic Redundancies in Image-Classification Datasets: The 10% You Don't Need0
Trading-off Accuracy and Energy of Deep Inference on Embedded Systems: A Co-Design Approach0
Stochastic Linear Bandits with Hidden Low Rank Structure0
Convolutional Neural Networks with Layer ReuseCode0
CapsAttacks: Robust and Imperceptible Adversarial Attacks on Capsule Networks0
Compressed Domain Image Classification Using a Dynamic-Rate Neural Network0
ADMM-SOFTMAX : An ADMM Approach for Multinomial Logistic RegressionCode0
Fixup Initialization: Residual Learning Without NormalizationCode0
Evaluation of Transfer Learning for Classification of: (1) Diabetic Retinopathy by Digital Fundus Photography and (2) Diabetic Macular Edema, Choroidal Neovascularization and Drusen by Optical Coherence Tomography0
Equivariant Transformer NetworksCode0
Deep Multimodality Model for Multi-task Multi-view LearningCode0
Is Pretraining Necessary for Hyperspectral Image Classification?0
Decoupled Greedy Learning of CNNsCode0
Robust Learning at Noisy Labeled Medical Images: Applied to Skin Lesion Classification0
Impact of Fully Connected Layers on Performance of Convolutional Neural Networks for Image ClassificationCode0
Understanding the Impact of Label Granularity on CNN-based Image ClassificationCode0
Training Neural Networks with Local Error SignalsCode0
Deep Features Analysis with Attention Networks0
Design of Real-time Semantic Segmentation Decoder for Automated Driving0
Multi-branch fusion network for hyperspectral image classification0
Foothill: A Quasiconvex Regularization for Edge Computing of Deep Neural Networks0
A Survey of the Recent Architectures of Deep Convolutional Neural Networks0
Bonseyes AI Pipeline -- bringing AI to you. End-to-end integration of data, algorithms and deployment tools0
Semi-supervised Learning with Graphs: Covariance Based Superpixels For Hyperspectral Image Classification0
Unsupervised Visual Feature Learning with Spike-timing-dependent Plasticity: How Far are we from Traditional Feature Learning Approaches?0
A Machine-Synesthetic Approach To DDoS Network Attack Detection0
Generating Adversarial Perturbation with Root Mean Square Gradient0
FishNet: A Versatile Backbone for Image, Region, and Pixel Level PredictionCode0
Extending Adversarial Attacks and Defenses to Deep 3D Point Cloud ClassifiersCode0
Auto-DeepLab: Hierarchical Neural Architecture Search for Semantic Image SegmentationCode0
Variable Importance Clouds: A Way to Explore Variable Importance for the Set of Good ModelsCode0
Is it Time to Swish? Comparing Deep Learning Activation Functions Across NLP tasksCode0
How Compact?: Assessing Compactness of Representations through Layer-Wise Pruning0
A Comprehensive guide to Bayesian Convolutional Neural Network with Variational InferenceCode0
Guidelines and Benchmarks for Deployment of Deep Learning Models on Smartphones as Real-Time AppsCode0
Deep Neural Network Approximation Theory0
Ensembles of feedforward-designed convolutional neural networks0
Adversarial Examples Versus Cloud-based Detectors: A Black-box Empirical Study0
Multi-Objective Reinforced Evolution in Mobile Neural Architecture SearchCode0
A Hierarchical Grocery Store Image Dataset with Visual and Semantic LabelsCode0
Multi-Label Adversarial Perturbations0
A Full Probabilistic Model for Yes/No Type Crowdsourcing in Multi-Class ClassificationCode0
Learning Efficient Detector with Semi-supervised Adaptive DistillationCode0
LiSHT: Non-Parametric Linearly Scaled Hyperbolic Tangent Activation Function for Neural NetworksCode0
Sample-Efficient Neural Architecture Search by Learning Action Space for Monte Carlo Tree Search0
Morphological Network: How Far Can We Go with Morphological Neurons?0
Training with the Invisibles: Obfuscating Images to Share Safely for Learning Visual Recognition Models0
Deep Residual Learning in the JPEG Transform DomainCode0
Monte-Carlo Sampling applied to Multiple Instance Learning for Histological Image Classification0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1CoCa (finetuned)Top 1 Accuracy91Unverified
2Model soups (BASIC-L)Top 1 Accuracy90.98Unverified
3Model soups (ViT-G/14)Top 1 Accuracy90.94Unverified
4DaViT-GTop 1 Accuracy90.4Unverified
5Meta Pseudo Labels (EfficientNet-L2)Top 1 Accuracy90.2Unverified
6DaViT-HTop 1 Accuracy90.2Unverified
7SwinV2-GTop 1 Accuracy90.17Unverified
8MAWS (ViT-6.5B)Top 1 Accuracy90.1Unverified
9Florence-CoSwin-HTop 1 Accuracy90.05Unverified
10RevCol-HTop 1 Accuracy90Unverified