Papers by Ssu-Cheng Wang

1 papers
CDGP: Automatic Cloze Distractor Generation based on Pre-trained Language Model (2022.findings-emnlp)

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Challenge: Existing approaches to generate cloze distractors with carefully-designed distractors are limited due to wrong option selection.
Approach: They propose to employ pre-trained language models as an alternative to cloze distractor generation by using pre-designed distractors.
Outcome: The proposed model improves the state-of-the-art cloze test score from 14.94 to 34.17 (NDCG@10) The proposed framework improves clozing distractors by incorporating pre-trained language models.

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