SOTAVerified

Meta-Learning

Meta-learning is a methodology considered with "learning to learn" machine learning algorithms.

( Image credit: Model-Agnostic Meta-Learning for Fast Adaptation of Deep Networks )

Papers

Showing 25262550 of 3569 papers

TitleStatusHype
Automatic selection of clustering algorithms using supervised graph embeddingCode0
Dynamic backdoor attacks against federated learning0
Towards Zero-Shot Learning with Fewer Seen Class Examples0
Convergence Properties of Stochastic Hypergradients0
Testing the Genomic Bottleneck Hypothesis in Hebbian Meta-LearningCode0
A Nested Bi-level Optimization Framework for Robust Few Shot Learning0
FS-HGR: Few-shot Learning for Hand Gesture Recognition via ElectroMyography0
Fast & Slow Learning: Incorporating Synthetic Gradients in Neural Memory Controllers0
Predicting Water Temperature Dynamics of Unmonitored Lakes with Meta Transfer LearningCode1
DynaVSR: Dynamic Adaptive Blind Video Super-ResolutionCode1
Know What You Don't Need: Single-Shot Meta-Pruning for Attention Heads0
Confusable Learning for Large-class Few-Shot Classification0
A Few Shot Adaptation of Visual Navigation Skills to New Observations using Meta-Learning0
FDNAS: Improving Data Privacy and Model Diversity in AutoML0
Transfer Meta-Learning: Information-Theoretic Bounds and Information Meta-Risk Minimization0
Meta-Learning for Natural Language Understanding under Continual Learning FrameworkCode0
Specialization in Hierarchical Learning Systems0
Meta-learning Transferable Representations with a Single Target Domain0
Bilevel Continual Learning0
Towards Low-Resource Semi-Supervised Dialogue Generation with Meta-Learning0
Few-Shot Multi-Hop Relation Reasoning over Knowledge Bases0
Discriminative Adversarial Domain Generalization with Meta-learning based Cross-domain ValidationCode0
Meta-Learning with Adaptive HyperparametersCode1
A Distribution-Dependent Analysis of Meta-Learning0
Combining Domain-Specific Meta-Learners in the Parameter Space for Cross-Domain Few-Shot Classification0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1MZ+ReconMeta-train success rate97.8Unverified
2MZMeta-train success rate97.6Unverified
3MAMLMeta-test success rate36Unverified
4RL^2Meta-test success rate10Unverified
5DnCMeta-test success rate5.4Unverified
6PEARLMeta-test success rate0Unverified
#ModelMetricClaimedVerifiedStatus
1SoftModuleAverage Success Rate60Unverified
2Multi-task multi-head SACAverage Success Rate35.85Unverified
3DisCorAverage Success Rate26Unverified
4NDPAverage Success Rate11Unverified
#ModelMetricClaimedVerifiedStatus
1MZ+ReconMeta-test success rate (zero-shot)18.5Unverified
2MZMeta-test success rate (zero-shot)17.7Unverified
#ModelMetricClaimedVerifiedStatus
1Metadrop% Test Accuracy95.75Unverified