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 826850 of 903 papers

TitleStatusHype
A Novel Progressive Learning Technique for Multi-class Classification0
A novel online multi-label classifier for high-speed streaming data applications0
A Novel Online Real-time Classifier for Multi-label Data Streams0
A High Speed Multi-label Classifier based on Extreme Learning Machines0
Multi-Label Classification Method Based on Extreme Learning Machines0
Relational Similarity Machines0
Multi-class classification: mirror descent approach0
Building an Interpretable Recommender via Loss-Preserving Transformation0
How many faces can be recognized? Performance extrapolation for multi-class classification0
Multiple birth least squares support vector machine for multi-class classification0
Efficient Deep Learning for Stereo MatchingCode0
Data-driven root-cause analysis for distributed system anomalies0
Tweet Acts: A Speech Act Classifier for Twitter0
Yelp Dataset Challenge: Review Rating Prediction0
DS-MLR: Exploiting Double Separability for Scaling up Distributed Multinomial Logistic RegressionCode0
Degrees of Freedom in Deep Neural Networks0
A generalized flow for multi-class and binary classification tasks: An Azure ML approach0
Active Learning from Positive and Unlabeled DataCode0
Toward Optimal Feature Selection in Naive Bayes for Text Categorization0
DOLDA - a regularized supervised topic model for high-dimensional multi-class regressionCode0
Discriminative Training of Deep Fully-connected Continuous CRF with Task-specific Loss0
A pragmatic approach to multi-class classification0
A simple technique for improving multi-class classification with neural networks0
MANTRA: Minimum Maximum Latent Structural SVM for Image Classification and Ranking0
Semi-Supervised Zero-Shot Classification With Label Representation 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
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1Extra TreesF1-Score93.36Unverified
#ModelMetricClaimedVerifiedStatus
1Multi-Model EnsembleMean AUC0.99Unverified