Episodic Memory in Lifelong Language Learning
June 03, 2019 ยท Declared Dead ยท ๐ Neural Information Processing Systems
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Authors
Cyprien de Masson d'Autume, Sebastian Ruder, Lingpeng Kong, Dani Yogatama
arXiv ID
1906.01076
Category
cs.LG: Machine Learning
Cross-listed
cs.CL,
stat.ML
Citations
327
Venue
Neural Information Processing Systems
Last Checked
1 month ago
Abstract
We introduce a lifelong language learning setup where a model needs to learn from a stream of text examples without any dataset identifier. We propose an episodic memory model that performs sparse experience replay and local adaptation to mitigate catastrophic forgetting in this setup. Experiments on text classification and question answering demonstrate the complementary benefits of sparse experience replay and local adaptation to allow the model to continuously learn from new datasets. We also show that the space complexity of the episodic memory module can be reduced significantly (~50-90%) by randomly choosing which examples to store in memory with a minimal decrease in performance. We consider an episodic memory component as a crucial building block of general linguistic intelligence and see our model as a first step in that direction.
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