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 86018650 of 10420 papers

TitleStatusHype
Geometry aware convolutional filters for omnidirectional images representation0
Multi-way Encoding for Robustness to Adversarial Attacks0
signSGD via Zeroth-Order Oracle0
Select Via Proxy: Efficient Data Selection For Training Deep Networks0
Sufficient Conditions for Robustness to Adversarial Examples: a Theoretical and Empirical Study with Bayesian Neural Networks0
How Training Data Affect the Accuracy and Robustness of Neural Networks for Image Classification0
Optimal Attacks against Multiple Classifiers0
Deep Transfer Learning for Few-Shot SAR Image Classification0
Harmonic Networks with Limited Training SamplesCode1
PR Product: A Substitute for Inner Product in Neural NetworksCode0
Test Selection for Deep Learning Systems0
Unsupervised Data Augmentation for Consistency TrainingCode1
Self-Attention Capsule Networks for Object Classification0
HOG feature extraction from encrypted images for privacy-preserving machine learning0
Domain Agnostic Learning with Disentangled RepresentationsCode0
Forget the Learning Rate, Decay Loss0
Collage Inference: Using Coded Redundancy for Low Variance Distributed Image Classification0
Analysis of Confident-Classifiers for Out-of-distribution DetectionCode0
Dynamic Mini-batch SGD for Elastic Distributed Training: Learning in the Limbo of ResourcesCode0
Transformers with convolutional context for ASRCode1
Unsupervised Label Noise Modeling and Loss CorrectionCode0
Unsupervised Deep Learning by Neighbourhood DiscoveryCode0
Deep Multi-View Learning using Neuron-Wise Correlation-Maximizing Regularizers0
Learning Discriminative Features Via Weights-biased Softmax Loss0
Making Convolutional Networks Shift-Invariant AgainCode1
Local Relation Networks for Image RecognitionCode0
Low-Memory Neural Network Training: A Technical Report0
Plug-in, Trainable Gate for Streamlining Arbitrary Neural Networks0
Deep Sparse Representation-based ClassificationCode0
Detecting inter-sectional accuracy differences in driver drowsiness detection algorithms0
DenseNet Models for Tiny ImageNet ClassificationCode0
Attention Augmented Convolutional NetworksCode0
Switchable Whitening for Deep Representation LearningCode0
State Classification of Cooking Objects Using a VGG CNN0
Neural Architecture Search for Deep Face Recognition0
Data-Driven Neuron Allocation for Scale Aggregation NetworksCode0
Class specific or shared? A cascaded dictionary learning framework for image classification0
A large-scale field test on word-image classification in large historical document collections using a traditional and two deep-learning methods0
Correlated Logistic Model With Elastic Net Regularization for Multilabel Image Classification0
TextCaps : Handwritten Character Recognition with Very Small DatasetsCode0
Sparseout: Controlling Sparsity in Deep NetworksCode0
Deep learning for image segmentation: veritable or overhyped?0
Cryo-Electron Microscopy Image Analysis Using Multi-Frequency Vector Diffusion Maps0
Double Transfer Learning for Breast Cancer Histopathologic Image Classification0
Counterfactual Visual ExplanationsCode1
Deep Neural Network Based Hyperspectral Pixel Classification With Factorized Spectral-Spatial Feature Representation0
Deep CNNs Meet Global Covariance Pooling: Better Representation and GeneralizationCode1
LeanResNet: A Low-cost Yet Effective Convolutional Residual Networks0
Texture image analysis and texture classification methods - A review0
Incremental multi-domain learning with network latent tensor factorization0
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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
5DaViT-HTop 1 Accuracy90.2Unverified
6Meta Pseudo Labels (EfficientNet-L2)Top 1 Accuracy90.2Unverified
7SwinV2-GTop 1 Accuracy90.17Unverified
8MAWS (ViT-6.5B)Top 1 Accuracy90.1Unverified
9Florence-CoSwin-HTop 1 Accuracy90.05Unverified
10Meta Pseudo Labels (EfficientNet-B6-Wide)Top 1 Accuracy90Unverified