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 501550 of 3073 papers

TitleStatusHype
A Bayesian Active Learning Approach to Comparative Judgement0
ActivePusher: Active Learning and Planning with Residual Physics for Nonprehensile Manipulation0
Active Learning On Weighted Graphs Using Adaptive And Non-adaptive Approaches0
Active Learning on Synthons for Molecular Design0
ACTIVE REFINEMENT OF WEAKLY SUPERVISED MODELS0
Active Regression by Stratification0
Active Regression via Linear-Sample Sparsification0
Active Reinforcement Learning -- A Roadmap Towards Curious Classifier Systems for Self-Adaptation0
Active Reinforcement Learning for Personalized Stress Monitoring in Everyday Settings0
Active Reinforcement Learning Strategies for Offline Policy Improvement0
Active Learning for Chinese Word Segmentation0
Active Learning for Breast Cancer Identification0
Active Learning on Medical Image0
Active Learning Guided by Efficient Surrogate Learners0
A Comprehensive Review of Latent Space Dynamics Identification Algorithms for Intrusive and Non-Intrusive Reduced-Order-Modeling0
Active Learning on Attributed Graphs via Graph Cognizant Logistic Regression and Preemptive Query Generation0
Active Learning on a Programmable Photonic Quantum Processor0
Active Learning for Black-Box Adversarial Attacks in EEG-Based Brain-Computer Interfaces0
Active Learning of Uniformly Accurate Inter-atomic Potentials for Materials Simulation0
Active learning for binary classification with variable selection0
Active Deep Learning for Classification of Hyperspectral Images0
Active learning of timed automata with unobservable resets0
Active learning of the thermodynamics-dynamics tradeoff in protein condensates0
Active Learning of SVDD Hyperparameter Values0
Active Learning of Strict Partial Orders: A Case Study on Concept Prerequisite Relations0
Active Deep Learning Attacks under Strict Rate Limitations for Online API Calls0
Active Learning for Autonomous Intelligent Agents: Exploration, Curiosity, and Interaction0
Active Learning of Sequential Transducers with Side Information about the Domain0
Active Deep Kernel Learning of Molecular Functionalities: Realizing Dynamic Structural Embeddings0
Active Learning of Quantum System Hamiltonians yields Query Advantage0
Active Learning of Piecewise Gaussian Process Surrogates0
Active Learning for Automated Visual Inspection of Manufactured Products0
A Comprehensive Benchmark Framework for Active Learning Methods in Entity Matching0
Bayesian Active Learning for Semantic Segmentation0
Adversarial Active Learning based Heterogeneous Graph Neural Network for Fake News Detection0
Adversarial Sampling for Active Learning0
Active learning for structural reliability: survey, general framework and benchmark0
Algorithmic Connections Between Active Learning and Stochastic Convex Optimization0
Active Learning of Ordinal Embeddings: A User Study on Football Data0
Active learning of neural response functions with Gaussian processes0
Active Learning for Assisted Corpus Construction: A Case Study in Knowledge Discovery from Biomedical Text0
Active learning of neural population dynamics using two-photon holographic optogenetics0
Active Learning of Neural Collision Handler for Complex 3D Mesh Deformations0
Active Deep Densely Connected Convolutional Network for Hyperspectral Image Classification0
A Competitive Algorithm for Agnostic Active Learning0
Active Learning of Multi-Index Function Models0
Active Learning for Argument Mining: A Practical Approach0
Active Deep Decoding of Linear Codes0
Active Learning of Model Evidence Using Bayesian Quadrature0
Active Learning of Mealy Machines with Timers0
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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