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Meta-Learning for Natural Language Understanding under Continual Learning Framework

3 November 2020
Jiacheng Wang
Yang Fan
Duo Jiang
Shiqing Li
    CLL
ArXiv (abs)PDFHTML
Abstract

Neural network has been recognized with its accomplishments on tackling various natural language understanding (NLU) tasks. Methods have been developed to train a robust model to handle multiple tasks to gain a general representation of text. In this paper, we implement the model-agnostic meta-learning (MAML) and Online aware Meta-learning (OML) meta-objective under the continual framework for NLU tasks. We validate our methods on selected SuperGLUE and GLUE benchmark.

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