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 201250 of 903 papers

TitleStatusHype
Described Spatial-Temporal Video Detection0
Noise-Free Explanation for Driving Action PredictionCode0
Non-Robust Features are Not Always Useful in One-Class Classification0
Investigating Self-Supervised Methods for Label-Efficient Learning0
Paraphrase and Aggregate with Large Language Models for Minimizing Intent Classification Errors0
FA-Net: A Fuzzy Attention-aided Deep Neural Network for Pneumonia Detection in Chest X-RaysCode0
QC-Forest: a Classical-Quantum Algorithm to Provably Speedup Retraining of Random Forest0
Explainable AI for Comparative Analysis of Intrusion Detection ModelsCode0
Biomarker based Cancer Classification using an Ensemble with Pre-trained Models0
Genetic Column Generation for Computing Lower Bounds for Adversarial Classification0
Sequential Binary Classification for Intrusion Detection0
Novel Approach to Intrusion Detection: Introducing GAN-MSCNN-BILSTM with LIME Predictions0
kNN Classification of Malware Data Dependency Graph Features0
Annotation Guidelines-Based Knowledge Augmentation: Towards Enhancing Large Language Models for Educational Text Classification0
Understanding and Reducing the Class-Dependent Effects of Data Augmentation with A Two-Player Game Approach0
Sheaf HyperNetworks for Personalized Federated Learning0
Entangled Relations: Leveraging NLI and Meta-analysis to Enhance Biomedical Relation Extraction0
Masked Language Modeling Becomes Conditional Density Estimation for Tabular Data Synthesis0
Domain Adaptation with Cauchy-Schwarz DivergenceCode0
Injecting Hierarchical Biological Priors into Graph Neural Networks for Flow Cytometry PredictionCode0
Neural Collapse versus Low-rank Bias: Is Deep Neural Collapse Really Optimal?0
Inverse Design of Metal-Organic Frameworks Using Quantum Natural Language ProcessingCode0
Semantic Contextualization of Face Forgery: A New Definition, Dataset, and Detection MethodCode0
A Universal Growth Rate for Learning with Smooth Surrogate Losses0
Enhancing Suicide Risk Detection on Social Media through Semi-Supervised Deep Label Smoothing0
Liberating Seen Classes: Boosting Few-Shot and Zero-Shot Text Classification via Anchor Generation and Classification Reframing0
Improving Disease Detection from Social Media Text via Self-Augmentation and Contrastive Learning0
ThangDLU at #SMM4H 2024: Encoder-decoder models for classifying text data on social disorders in children and adolescents0
Critical Review for One-class Classification: recent advances and the reality behind them0
LM-IGTD: a 2D image generator for low-dimensional and mixed-type tabular data to leverage the potential of convolutional neural networks0
Interval Abstractions for Robust Counterfactual ExplanationsCode0
Multiclass ROC0
Multi-Class Quantum Convolutional Neural Networks0
Exploring Contrastive Learning for Long-Tailed Multi-Label Text Classification0
Top-k Classification and Cardinality-Aware Prediction0
Cross-System Categorization of Abnormal Traces in Microservice-Based Systems via Meta-Learning0
Large Language Models for Multi-Choice Question Classification of Medical Subjects0
Hierarchical Classification for Intrusion Detection System: Effective Design and Empirical Analysis0
FingerNet: EEG Decoding of A Fine Motor Imagery with Finger-tapping Task Based on A Deep Neural Network0
Neural Network Learning and Quantum Gravity0
A Tutorial on the Pretrain-Finetune Paradigm for Natural Language Processing0
HemaGraph: Breaking Barriers in Hematologic Single Cell Classification with Graph AttentionCode0
FlowCyt: A Comparative Study of Deep Learning Approaches for Multi-Class Classification in Flow Cytometry BenchmarkingCode0
Multi-class Temporal Logic Neural Networks0
Understanding Self-Distillation and Partial Label Learning in Multi-Class Classification with Label Noise0
A Convergence Analysis of Approximate Message Passing with Non-Separable Functions and Applications to Multi-Class Classification0
PowerGraph: A power grid benchmark dataset for graph neural networks0
Leveraging Human-Machine Interactions for Computer Vision Dataset Quality EnhancementCode0
Evaluating ML-Based Anomaly Detection Across Datasets of Varied Integrity: A Case StudyCode0
Stitching Satellites to the Edge: Pervasive and Efficient Federated LEO Satellite Learning0
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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
#ModelMetricClaimedVerifiedStatus
1Extra TreesF1-Score93.36Unverified
#ModelMetricClaimedVerifiedStatus
1Multi-Model EnsembleMean AUC0.99Unverified