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Learning to Continually Learn
[article]
2020
arXiv
pre-print
Continual lifelong learning requires an agent or model to learn many sequentially ordered tasks, building on previous knowledge without catastrophically forgetting it. Much work has gone towards preventing the default tendency of machine learning models to catastrophically forget, yet virtually all such work involves manually-designed solutions to the problem. We instead advocate meta-learning a solution to catastrophic forgetting, allowing AI to learn to continually learn. Inspired by
arXiv:2002.09571v2
fatcat:hdboateo6bdfvmi7fske6tq7le