Supervised and Unsupervised Transfer Learning for Question Answering
November 14, 2017 ยท Declared Dead ยท ๐ North American Chapter of the Association for Computational Linguistics
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Authors
Yu-An Chung, Hung-Yi Lee, James Glass
arXiv ID
1711.05345
Category
cs.CL: Computation & Language
Citations
84
Venue
North American Chapter of the Association for Computational Linguistics
Last Checked
3 months ago
Abstract
Although transfer learning has been shown to be successful for tasks like object and speech recognition, its applicability to question answering (QA) has yet to be well-studied. In this paper, we conduct extensive experiments to investigate the transferability of knowledge learned from a source QA dataset to a target dataset using two QA models. The performance of both models on a TOEFL listening comprehension test (Tseng et al., 2016) and MCTest (Richardson et al., 2013) is significantly improved via a simple transfer learning technique from MovieQA (Tapaswi et al., 2016). In particular, one of the models achieves the state-of-the-art on all target datasets; for the TOEFL listening comprehension test, it outperforms the previous best model by 7%. Finally, we show that transfer learning is helpful even in unsupervised scenarios when correct answers for target QA dataset examples are not available.
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