SOTAVerified

Active Learning

Active Learning is a paradigm in supervised machine learning which uses fewer training examples to achieve better optimization by iteratively training a predictor, and using the predictor in each iteration to choose the training examples which will increase its chances of finding better configurations and at the same time improving the accuracy of the prediction model

Source: Polystore++: Accelerated Polystore System for Heterogeneous Workloads

Papers

Showing 18261850 of 3073 papers

TitleStatusHype
Revisiting Superpixels for Active Learning in Semantic Segmentation With Realistic Annotation Costs0
Re-weighting Tokens: A Simple and Effective Active Learning Strategy for Named Entity Recognition0
RLAD: Time Series Anomaly Detection through Reinforcement Learning and Active Learning0
RMFGP: Rotated Multi-fidelity Gaussian process with Dimension Reduction for High-dimensional Uncertainty Quantification0
Robot Design With Neural Networks, MILP Solvers and Active Learning0
Robust Active Distillation0
Robust Active Learning for Electrocardiographic Signal Classification0
Robust Active Learning (RoAL): Countering Dynamic Adversaries in Active Learning with Elastic Weight Consolidation0
Robust Active Learning: Sample-Efficient Training of Robust Deep Learning Models0
Robust Active Learning Strategies for Model Variability0
Robust Adaptive Submodular Maximization0
Robust and Active Learning for Deep Neural Network Regression0
Robust and Discriminative Labeling for Multi-label Active Learning Based on Maximum Correntropy Criterion0
Robust Assignment of Labels for Active Learning with Sparse and Noisy Annotations0
Robust expected improvement for Bayesian optimization0
Dimension-Robust MCMC in Bayesian Inverse Problems0
Robustness of Bayesian Pool-based Active Learning Against Prior Misspecification0
Robust online active learning0
Robust Segmentation Models using an Uncertainty Slice Sampling Based Annotation Workflow0
Robust Surgical Tools Detection in Endoscopic Videos with Noisy Data0
Role-Playing Simulation Games using ChatGPT0
RONAALP: Reduced-Order Nonlinear Approximation with Active Learning Procedure0
RuSentiment: An Enriched Sentiment Analysis Dataset for Social Media in Russian0
S2: An Efficient Graph Based Active Learning Algorithm with Application to Nonparametric Classification0
SABAL: Sparse Approximation-based Batch Active Learning0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1TypiClustAccuracy93.2Unverified
2PT4ALAccuracy93.1Unverified
3Learning lossAccuracy91.01Unverified
4CoreGCNAccuracy90.7Unverified
5Core-setAccuracy89.92Unverified
6Random Baseline (Resnet18)Accuracy88.45Unverified
7Random Baseline (VGG16)Accuracy85.09Unverified