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Активное обучение с федеративным обучением×Онлайн-обучение×
ОбластьМашинное обучениеМашинное обучение
СемействоMachine learningMachine learning
Год появления2020s1958–2000s
Автор методаMultiple authors (federated active learning emerged ~2020)Rosenblatt, F.; Littlestone, N.; Shalev-Shwartz, S. (key contributors)
ТипHybrid paradigm (active querying within distributed training)Learning paradigm (sequential model update)
Основополагающий источникRo, J. Y., Ali, A., Lin, Z., & Suresh, A. T. (2021). Scaling Federated Learning for Fine-tuning of Large Language Models. In Proceedings of the 2021 Conference on Empirical Methods in Natural Language Processing (EMNLP). link ↗Shalev-Shwartz, S. (2011). Online Learning and Online Convex Optimization. Foundations and Trends in Machine Learning, 4(2), 107–194. DOI ↗
Другие названияFederated Active Learning, FAL, Active Federated Learning, distributed active learningincremental learning, sequential learning, streaming learning, online machine learning
Связанные66
СводкаFederated Active Learning combines the annotation-efficiency of active learning with the privacy-preserving decentralization of federated learning. A shared global model is trained across distributed clients, each of which independently ranks its unlabeled local data and requests labels only for the most informative examples, keeping raw data on-device throughout.Online learning is a machine learning paradigm in which a model is updated incrementally as each new data point arrives, rather than being trained once on a fixed dataset. It is essential when data streams continuously, storage is limited, or the underlying distribution shifts over time. Theoretical performance is measured by cumulative regret relative to the best fixed predictor in hindsight.
ScholarGateНабор данных
  1. v1
  2. 2 Источники
  3. PUBLISHED
  1. v1
  2. 2 Источники
  3. PUBLISHED

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ScholarGateСравнение методов: Active Learning Federated Learning · Online Learning. Получено 2026-06-17 из https://scholargate.app/ru/compare