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 351375 of 903 papers

TitleStatusHype
Towards Adversarial Realism and Robust Learning for IoT Intrusion Detection and Classification0
Conformal inference is (almost) free for neural networks trained with early stoppingCode0
Increasing Fairness via Combination with Learning Guarantees0
ComplAI: Theory of A Unified Framework for Multi-factor Assessment of Black-Box Supervised Machine Learning Models0
Problem-Dependent Power of Quantum Neural Networks on Multi-Class Classification0
Anomaly Detection using Ensemble Classification and Evidence Theory0
Learning Disentangled Label Representations for Multi-label Classification0
Semi-supervised binary classification with latent distance learning0
X-PuDu at SemEval-2022 Task 7: A Replaced Token Detection Task Pre-trained Model with Pattern-aware Ensembling for Identifying Plausible Clarifications0
Condensed Gradient BoostingCode0
A Masked Face Classification Benchmark on Low-Resolution Surveillance ImagesCode0
Detecting Disengagement in Virtual Learning as an Anomaly using Temporal Convolutional Network Autoencoder0
Okapi: Generalising Better by Making Statistical Matches MatchCode0
Generalized Consistent Multi-Class Classification with Rejection to be Compatible with Arbitrary LossesCode0
Projection Valued Measure-based Quantum Machine Learning for Multi-Class Classification0
Dysfluencies Seldom Come Alone -- Detection as a Multi-Label Problem0
An Attention-based Long Short-Term Memory Framework for Detection of Bitcoin Scams0
Proximal Mean Field Learning in Shallow Neural NetworksCode0
An Effective Approach for Multi-label Classification with Missing Labels0
Calibration tests beyond classificationCode0
Hierarchical Deep Learning with Generative Adversarial Network for Automatic Cardiac Diagnosis from ECG Signals0
Systematic Evaluation of Predictive FairnessCode0
Transformer-Based Speech Synthesizer Attribution in an Open Set Scenario0
Generalization Analysis on Learning with a Concurrent Verifier0
Effective Metaheuristic Based Classifiers for Multiclass Intrusion Detection0
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Benchmark Results

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