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 851900 of 903 papers

TitleStatusHype
Interval Abstractions for Robust Counterfactual ExplanationsCode0
Adaptive Sampled Softmax with Inverted Multi-Index: Methods, Theory and ApplicationsCode0
A Masked Face Classification Benchmark on Low-Resolution Surveillance ImagesCode0
Deep attention-based classification network for robust depth predictionCode0
Inverse-Category-Frequency based supervised term weighting scheme for text categorizationCode0
Inverse Design of Metal-Organic Frameworks Using Quantum Natural Language ProcessingCode0
Coarse and Fine-Grained Hostility Detection in Hindi Posts using Fine Tuned Multilingual EmbeddingsCode0
DECT-based Space-Squeeze Method for Multi-Class Classification of Metastatic Lymph Nodes in Breast CancerCode0
Stacked Semantics-Guided Attention Model for Fine-Grained Zero-Shot LearningCode0
Predicting delays in Indian lower courts using AutoML and Decision ForestsCode0
Semantic Contextualization of Face Forgery: A New Definition, Dataset, and Detection MethodCode0
CAMRI Loss: Improving Recall of a Specific Class without Sacrificing AccuracyCode0
Semantic Interactive Learning for Text Classification: A Constructive Approach for Contextual InteractionsCode0
Multimodal Speech Emotion Recognition and Ambiguity ResolutionCode0
A Generalized Unbiased Risk Estimator for Learning with Augmented ClassesCode0
Primal-Dual Block Frank-WolfeCode0
Primal-Dual Block Generalized Frank-WolfeCode0
SemEval-2017 Task 4: Sentiment Analysis in Twitter using BERTCode0
Attention-based Context Aggregation Network for Monocular Depth EstimationCode0
A generalized framework to predict continuous scores from medical ordinal labelsCode0
Probabilistic Truly Unordered Rule SetsCode0
DCAST: Diverse Class-Aware Self-Training Mitigates Selection Bias for Fairer LearningCode0
Truly Unordered Probabilistic Rule Sets for Multi-class ClassificationCode0
KréyoLID From Language Identification Towards Language MiningCode0
Semi-Supervised Deep Learning with MemoryCode0
Semi-Supervised Learning with Scarce AnnotationsCode0
Label-GCN: An Effective Method for Adding Label Propagation to Graph Convolutional NetworksCode0
Label Hierarchy Transition: Delving into Class Hierarchies to Enhance Deep ClassifiersCode0
Word Embedding Dimension Reduction via Weakly-Supervised Feature SelectionCode0
Label Structure Preserving Contrastive Embedding for Multi-Label Learning with Missing LabelsCode0
COVID-ResNet: A Deep Learning Framework for Screening of COVID19 from RadiographsCode0
Proximal Mean Field Learning in Shallow Neural NetworksCode0
Calibration tests in multi-class classification: A unifying frameworkCode0
NearbyPatchCL: Leveraging Nearby Patches for Self-Supervised Patch-Level Multi-Class Classification in Whole-Slide ImagesCode0
Network Representation Learning with Rich Text InformationCode0
pSVM: Soft-margin SVMs with p-norm Hinge LossCode0
A Full Probabilistic Model for Yes/No Type Crowdsourcing in Multi-Class ClassificationCode0
Neural Collapse in Multi-label Learning with Pick-all-label LossCode0
Learning by Minimizing the Sum of Ranked RangeCode0
Learning curves for the multi-class teacher-student perceptronCode0
Concise Explanations of Neural Networks using Adversarial TrainingCode0
Neural Collapse with Normalized Features: A Geometric Analysis over the Riemannian ManifoldCode0
Consistent Structured Prediction with Max-Min Margin Markov NetworksCode0
Learning from Concealed LabelsCode0
Multi-class Classification from Multiple Unlabeled Datasets with Partial Risk RegularizationCode0
Learning Gaussian Mixtures with Generalised Linear Models: Precise Asymptotics in High-dimensionsCode0
Neural CRNs: A Natural Implementation of Learning in Chemical Reaction NetworksCode0
Sum of Ranked Range Loss for Supervised LearningCode0
A Topological Data Analysis Based ClassifierCode0
Neuro-Argumentative Learning with Case-Based ReasoningCode0
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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