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 20762100 of 3073 papers

TitleStatusHype
Deep Active Learning by Model Interpretability0
MetAL: Active Semi-Supervised Learning on Graphs via Meta LearningCode0
Efficient Graph-Based Active Learning with Probit Likelihood via Gaussian Approximations0
Toward Machine-Guided, Human-Initiated Explanatory Interactive Learning0
Advances in Deep Learning for Hyperspectral Image Analysis--Addressing Challenges Arising in Practical Imaging Scenarios0
Active Learning under Label Shift0
Active Crowd Counting with Limited Supervision0
Active Learning on Attributed Graphs via Graph Cognizant Logistic Regression and Preemptive Query Generation0
IALE: Imitating Active Learner EnsemblesCode0
Resource Aware Multifidelity Active Learning for Efficient Optimization0
Few Is Enough: Task-Augmented Active Meta-Learning for Brain Cell Classification0
Meta-active Learning in Probabilistically-Safe Optimization0
A Weakly Supervised Region-Based Active Learning Method for COVID-19 Segmentation in CT ImagesCode0
The Sample Complexity of Best-k Items Selection from Pairwise ComparisonsCode0
Linear Bandits with Limited Adaptivity and Learning Distributional Optimal Design0
Deep Active Learning via Open Set RecognitionCode0
Active learning of timed automata with unobservable resets0
Camouflaged Chinese Spam Content Detection with Semi-supervised Generative Active Learning0
Discovering Knowledge Graph Schema from Short Natural Language Text via Dialog0
Sampling from a k-DPP without looking at all items0
Functional MRI applications for psychiatric disease subtyping: a review0
Similarity Search for Efficient Active Learning and Search of Rare Concepts0
Motor cortex mapping using active gaussian processes0
Active Ensemble Deep Learning for Polarimetric Synthetic Aperture Radar Image Classification0
Active Finite Reward Automaton Inference and Reinforcement Learning Using Queries and Counterexamples0
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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