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 10011050 of 3073 papers

TitleStatusHype
Active Learning Approaches to Enhancing Neural Machine Translation0
Breaking the SSL-AL Barrier: A Synergistic Semi-Supervised Active Learning Framework for 3D Object Detection0
Active Bird2Vec: Towards End-to-End Bird Sound Monitoring with Transformers0
Bridging the Gap Between Layout Pattern Sampling and Hotspot Detection via Batch Active Sampling0
Bayesian Active Learning for Sim-to-Real Robotic Perception0
Bucking the Trend: Large-Scale Cost-Focused Active Learning for Statistical Machine Translation0
COMET-QE and Active Learning for Low-Resource Machine Translation0
Agnostic Active Learning of Single Index Models with Linear Sample Complexity0
Aggregation Strategies for Efficient Annotation of Bioacoustic Sound Events Using Active Learning0
Building Bridges: Viewing Active Learning from the Multi-Armed Bandit Lens0
Buy-in-Bulk Active Learning0
ACTIVE REFINEMENT OF WEAKLY SUPERVISED MODELS0
Cache & Distil: Optimising API Calls to Large Language Models0
CADET: Computer Assisted Discovery Extraction and Translation0
Calibrating Ensembles for Scalable Uncertainty Quantification in Deep Learning-based Medical Segmentation0
CALICO: Confident Active Learning with Integrated Calibration0
Active Reinforcement Learning -- A Roadmap Towards Curious Classifier Systems for Self-Adaptation0
Active Learning for Identifying Disaster-Related Tweets: A Comparison with Keyword Filtering and Generic Fine-Tuning0
A Confidence-based Acquisition Model for Self-supervised Active Learning and Label Correction0
Camouflaged Chinese Spam Content Detection with Semi-supervised Generative Active Learning0
Can Active Learning Experience Be Transferred?0
Active Learning for Sound Event Detection0
A general-purpose AI assistant embedded in an open-source radiology information system0
Active learning for structural reliability: survey, general framework and benchmark0
Active Learning for Skewed Data Sets0
Active Learning Applied to Patient-Adaptive Heartbeat Classification0
Deep Active Learning for Anomaly Detection0
A General Approach to Domain Adaptation with Applications in Astronomy0
Active Learning for Single Neuron Models with Lipschitz Non-Linearities0
Agave crop segmentation and maturity classification with deep learning data-centric strategies using very high-resolution satellite imagery0
A Gaussian Process-Bayesian Bernoulli Mixture Model for Multi-Label Active Learning0
Active Learning for Sequence Tagging with Deep Pre-trained Models and Bayesian Uncertainty Estimates0
Active Learning and the Irish Treebank0
Active learning for sense annotation0
A framework for the extraction of Deep Neural Networks by leveraging public data0
Active Learning and Proofreading for Delineation of Curvilinear Structures0
Active learning and negative evidence for language identification0
Extended Active Learning Method0
Active Learning for Segmentation by Optimizing Content Information for Maximal Entropy0
Active Learning for Segmentation Based on Bayesian Sample Queries0
A Finite-Horizon Approach to Active Level Set Estimation0
Affect Estimation in 3D Space Using Multi-Task Active Learning for Regression0
Domain Switching on the Pareto Front: Multi-Objective Deep Kernel Learning in Automated Piezoresponse Force Microscopy0
Combining Thermodynamics-based Model of the Centrifugal Compressors and Active Machine Learning for Enhanced Industrial Design Optimization0
Combining X-Vectors and Bayesian Batch Active Learning: Two-Stage Active Learning Pipeline for Speech Recognition0
Comments on the proof of adaptive submodular function minimization0
ADVISE: AI-accelerated Design of Evidence Synthesis for Global Development0
Active Learning for Rumor Identification on Social Media0
Adversarial Vulnerability of Active Transfer Learning0
Adversarial vs behavioural-based defensive AI with joint, continual and active learning: automated evaluation of robustness to deception, poisoning and concept drift0
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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