Knowledge-Driven Distractor Generation for Cloze-Style Multiple Choice Questions
Siyu Ren, Kenny Q. Zhu
2021年份
62被引次数
7顶会引用
摘要
In this paper, we propose a novel configurable framework to automatically generate distractive choices for open-domain cloze-style multiple-choice questions. The framework incorporates a general-purpose knowledge base to effectively create a small distractor candidate set, and a feature-rich learning-to-rank model to select distractors that are both plausible and reliable. Experimental results on a new dataset across four domains show that our framework yields distractors outperforming previous methods both by automatic and human evaluation. The dataset can also be used as a benchmark for distractor generation research in the future.
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引用它的顶会 Paper7
- Distractor Generation in Multiple-Choice Tasks: A Survey of Methods, Datasets, and EvaluationElaf Alhazmi, Quan Sheng, Wei Emma Zhang, Munazza Zaib 等EMNLP 2024 · 被引用 15 次
- Unified Question Generation with Continual Lifelong LearningWei Yuan, Hongzhi Yin, Tieke He, Tong Chen 等WWW 2022 · 被引用 12 次
- Chain-of-Exemplar: Enhancing Distractor Generation for Multimodal Educational Question GenerationHaohao Luo, Yang Deng, Ying Shen, See-Kiong Ng 等ACL 2024 · 被引用 6 次
- Evaluating the Knowledge Dependency of QuestionsHyeongdon Moon, Yoonseok Yang, Hangyeol Yu, Seunghyun Lee 等EMNLP 2022 · 被引用 5 次
- Can Pre-trained Language Models Interpret Similes as Smart as Human?Qianyu He, Sijie Cheng, Zhixu Li, Rui Xie 等ACL 2022
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