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 14761500 of 3073 papers

TitleStatusHype
Towards Fewer Labels: Support Pair Active Learning for Person Re-identification0
Active Few-Shot Learning with FASLCode0
Active Learning with Weak Supervision for Gaussian ProcessesCode0
Entropy-based Active Learning for Object Detection with Progressive Diversity Constraint0
Stream-based Active Learning with Verification Latency in Non-stationary EnvironmentsCode0
Active Learning for Regression by Inverse Distance Weighting0
Stealing and Evading Malware Classifiers and Antivirus at Low False Positive ConditionsCode0
Active Diffusion and VCA-Assisted Image Segmentation of Hyperspectral ImagesCode0
Benchmarking Active Learning Strategies for Materials Optimization and Discovery0
RMFGP: Rotated Multi-fidelity Gaussian process with Dimension Reduction for High-dimensional Uncertainty Quantification0
Active Learning with Label Comparisons0
Active-learning-based non-intrusive Model Order Reduction0
CrudeOilNews: An Annotated Crude Oil News Corpus for Event ExtractionCode0
Task-Aware Active Learning for Endoscopic Image AnalysisCode0
PAGP: A physics-assisted Gaussian process framework with active learning for forward and inverse problems of partial differential equations0
An Exploration of Active Learning for Affective Digital Phenotyping0
Parameter Filter-based Event-triggered Learning0
Discovering and forecasting extreme events via active learning in neural operators0
On Efficiently Acquiring Annotations for Multilingual ModelsCode0
Efficient Argument Structure Extraction with Transfer Learning and Active Learning0
Efficient Active Learning with Abstention0
AKF-SR: Adaptive Kalman Filtering-based Successor Representation0
Self-supervised 360^ Room Layout EstimationCode0
Evolving Multi-Label Fuzzy Classifier0
Near-optimality for infinite-horizon restless bandits with many arms0
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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