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 876900 of 903 papers

TitleStatusHype
Adaptive Multinomial Matrix Completion0
Learning Deep Structured Models0
Region-based Discriminative Feature Pooling for Scene Text Recognition0
Hierarchical Feature Hashing for Fast Dimensionality Reduction0
Stable Learning in Coding Space for Multi-Class Decoding and Its Extension for Multi-Class Hypothesis Transfer Learning0
Multi-borders classification0
Fast Recursive Multi-class Classification of Pairs of Text Entities for Biomedical Event Extraction0
Sub-Classifier Construction for Error Correcting Output Code Using Minimum Weight Perfect Matching0
Correlation-based construction of neighborhood and edge features0
Learning Kernels Using Local Rademacher Complexity0
Fast Training of Effective Multi-class Boosting Using Coordinate Descent Optimization0
Biomedical Event Extraction by Multi-class Classification of Pairs of Text Entities0
A scalable stage-wise approach to large-margin multi-class loss based boosting0
Rolling Riemannian Manifolds to Solve the Multi-class Classification Problem0
Sparse Output Coding for Large-Scale Visual Recognition0
On multi-class learning through the minimization of the confusion matrix norm0
StructBoost: Boosting Methods for Predicting Structured Output Variables0
Fast Bayesian Inference for Non-Conjugate Gaussian Process Regression0
Multiple birth support vector machine for multi-class classification0
PAC-Bayesian Generalization Bound on Confusion Matrix for Multi-Class Classification0
Spike and Slab Variational Inference for Multi-Task and Multiple Kernel Learning0
Inverse-Category-Frequency based supervised term weighting scheme for text categorizationCode0
Label Embedding Trees for Large Multi-Class Tasks0
Learning Label Embeddings for Nearest-Neighbor Multi-class Classification with an Application to Speech Recognition0
A Rate Distortion Approach for Semi-Supervised Conditional Random Fields0
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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
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1Multi-Model EnsembleMean AUC0.99Unverified