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 77017750 of 10420 papers

TitleStatusHype
PoET-BiN: Power Efficient Tiny Binary Neurons0
Communication-Efficient Edge AI: Algorithms and Systems0
Stochasticity in Neural ODEs: An Empirical StudyCode1
An Optimization and Generalization Analysis for Max-Pooling Networks0
Introducing Fuzzy Layers for Deep Learning0
Towards Robust and Reproducible Active Learning Using Neural NetworksCode1
Exploiting the Full Capacity of Deep Neural Networks while Avoiding Overfitting by Targeted Sparsity Regularization0
Greedy Policy Search: A Simple Baseline for Learnable Test-Time Augmentation0
A Toolkit for Generating Code Knowledge GraphsCode1
Byzantine-resilient Decentralized Stochastic Gradient Descent0
Scalable Second Order Optimization for Deep LearningCode0
MaxUp: A Simple Way to Improve Generalization of Neural Network TrainingCode0
KaoKore: A Pre-modern Japanese Art Facial Expression DatasetCode1
A survey on Semi-, Self- and Unsupervised Learning for Image Classification0
Deep regularization and direct training of the inner layers of Neural Networks with Kernel FlowsCode0
Interpreting Interpretations: Organizing Attribution Methods by Criteria0
Algorithm-hardware Co-design for Deformable ConvolutionCode1
TensorShield: Tensor-based Defense Against Adversarial Attacks on Images0
Towards Query-Efficient Black-Box Adversary with Zeroth-Order Natural Gradient DescentCode0
DivideMix: Learning with Noisy Labels as Semi-supervised LearningCode1
Uncertainty Estimation in Autoregressive Structured Prediction0
A Modified Perturbed Sampling Method for Local Interpretable Model-agnostic Explanation0
Photonic convolutional neural networks using integrated diffractive optics0
Multi-Scale Representation Learning for Spatial Feature Distributions using Grid CellsCode1
Breast Cancer Histopathology Image Classification and Localization using Multiple Instance LearningCode1
CRL: Class Representative Learning for Image Classification0
ARMA Nets: Expanding Receptive Field for Dense PredictionCode0
Pitfalls of In-Domain Uncertainty Estimation and Ensembling in Deep Learning0
Multi-Task Multicriteria Hyperparameter Optimization0
Manifold-based Test Generation for Image Classifiers0
Graph-propagation based Correlation Learning for Weakly Supervised Fine-grained Image Classification0
BionoiNet: ligand-binding site classification with off-the-shelf deep neural networkCode1
CBIR using features derived by Deep LearningCode0
Scalable and Practical Natural Gradient for Large-Scale Deep LearningCode1
The use of Convolutional Neural Networks for signal-background classification in Particle Physics experiments0
Object Detection on Single Monocular Images through Canonical Correlation Analysis0
Superpixel Image Classification with Graph Attention NetworksCode1
Regularizing activations in neural networks via distribution matching with the Wasserstein metric0
Cross-Iteration Batch NormalizationCode1
A Simple Framework for Contrastive Learning of Visual RepresentationsCode2
Retrain or not retrain? -- efficient pruning methods of deep CNN networks0
Over-the-Air Adversarial Flickering Attacks against Video Recognition NetworksCode1
Capsules with Inverted Dot-Product Attention RoutingCode1
Task-Robust Model-Agnostic Meta-Learning0
Learnable Bernoulli Dropout for Bayesian Deep Learning0
On Parameter Tuning in Meta-learning for Computer Vision0
The Devil is in the Channels: Mutual-Channel Loss for Fine-Grained Image ClassificationCode1
Regularized Evolutionary Population-Based Training0
Best of Both Worlds: AutoML Codesign of a CNN and its Hardware Accelerator0
Invariant Risk Minimization GamesCode1
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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