SOTAVerified

Multi-class Classification

Multi-class classification is a type of supervised learning where the goal is to assign an input to one of three or more distinct classes. Unlike binary classification (which has only two classes), multi-class classification handles multiple labels and uses algorithms like logistic regression, decision trees, random forests, SVMs, or neural networks to predict the correct category based on the features of the input data.

Papers

Showing 701750 of 903 papers

TitleStatusHype
Neural-based Tamil Grammar Error Detection0
NeuralClassifier: An Open-source Neural Hierarchical Multi-label Text Classification Toolkit0
Neural Collapse versus Low-rank Bias: Is Deep Neural Collapse Really Optimal?0
Neural Neighborhood Encoding for Classification0
Neural Network Learning and Quantum Gravity0
New Bounds on the Accuracy of Majority Voting for Multi-Class Classification0
Neyman-Pearson Multi-class Classification via Cost-sensitive Learning0
Node-Adapt, Path-Adapt and Tree-Adapt:Model-Transfer Domain Adaptation for Random Forest0
No Multiplication? No Floating Point? No Problem! Training Networks for Efficient Inference0
Non-Robust Features are Not Always Useful in One-Class Classification0
Novel Approach to Intrusion Detection: Introducing GAN-MSCNN-BILSTM with LIME Predictions0
Obfuscated Memory Malware Detection0
Occupant's Behavior and Emotion Based Indoor Environment's Illumination Regulation0
Ocular Diseases Diagnosis in Fundus Images using a Deep Learning: Approaches, tools and Performance evaluation0
OffendES: A New Corpus in Spanish for Offensive Language Research0
Ensembling Uncertainty Measures to Improve Safety of Black-Box ClassifiersCode0
An Integer Linear Programming Framework for Mining Constraints from DataCode0
Enhanced Network Embedding with Text InformationCode0
A hybrid algorithm for Bayesian network structure learning with application to multi-label learningCode0
Learning Robust Sequential Recommenders through Confident Soft LabelsCode0
Learning Self-Supervised Representations for Label Efficient Cross-Domain Knowledge Transfer on Diabetic Retinopathy Fundus ImagesCode0
Noise-Free Explanation for Driving Action PredictionCode0
Evaluating approaches for supervised semantic labelingCode0
Evaluating ML-Based Anomaly Detection Across Datasets of Varied Integrity: A Case StudyCode0
Systematic Evaluation of Predictive FairnessCode0
Semi-supervised Vector-valued Learning: Improved Bounds and AlgorithmsCode0
Emulating Spatio-Temporal Realizations of Three-Dimensional Isotropic Turbulence via Deep Sequence Learning ModelsCode0
Conformal inference is (almost) free for neural networks trained with early stoppingCode0
Every Untrue Label is Untrue in its Own Way: Controlling Error Type with the Log Bilinear LossCode0
Efficient Robust Optimal Transport with Application to Multi-Label ClassificationCode0
Non-Parametric Calibration for ClassificationCode0
Explainable AI for Comparative Analysis of Intrusion Detection ModelsCode0
Efficient Machine Learning Ensemble Methods for Detecting Gravitational Wave Glitches in LIGO Time SeriesCode0
Scalable Batch-Mode Deep Bayesian Active Learning via Equivalence Class AnnealingCode0
Adaptive Gradient Methods Converge Faster with Over-Parameterization (but you should do a line-search)Code0
Explaining Convolutional Neural Networks using Softmax Gradient Layer-wise Relevance PropagationCode0
Calibration tests beyond classificationCode0
Characterizing Data Point Vulnerability via Average-Case RobustnessCode0
Leveraging Human-Machine Interactions for Computer Vision Dataset Quality EnhancementCode0
Condensed Gradient BoostingCode0
AppealCase: A Dataset and Benchmark for Civil Case Appeal ScenariosCode0
Tackling Irony Detection using Ensemble ClassifiersCode0
A Semantic Loss Function for Deep Learning with Symbolic KnowledgeCode0
Exponentially Convergent Algorithms for Supervised Matrix FactorizationCode0
Extrapolating Expected Accuracies for Large Multi-Class ProblemsCode0
Lightweight Conditional Model Extrapolation for Streaming Data under Class-Prior ShiftCode0
Llama Guard: LLM-based Input-Output Safeguard for Human-AI ConversationsCode0
Reading Between the Leads: Local Lead-Attention Based Classification of Electrocardiogram SignalsCode0
FA-Net: A Fuzzy Attention-aided Deep Neural Network for Pneumonia Detection in Chest X-RaysCode0
Efficient Deep Learning for Stereo MatchingCode0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1COVID-CXNetAccuracy (%)94.2Unverified
#ModelMetricClaimedVerifiedStatus
1COVID-ResNetF1 score0.9Unverified
#ModelMetricClaimedVerifiedStatus
1SVM (tficf)Macro F173.9Unverified
#ModelMetricClaimedVerifiedStatus
1Extra TreesF1-Score93.36Unverified
#ModelMetricClaimedVerifiedStatus
1Multi-Model EnsembleMean AUC0.99Unverified