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FarsiMCQGen:波斯语MCQ生成研究
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本文介绍了一种名为FarsiMCQGen的创新方法,用于生成波斯语的多选题,通过结合候选生成、过滤和排序技术,并利用Transformers和知识图谱等高级方法,生成高质量的波斯语MCQ。同时,本文提出一个包含10,289个问题的波斯语MCQ数据集,通过评估发现,该方法及数据集具有较高的有效性。

arXiv:2510.15134v1 Announce Type: cross Abstract: Multiple-choice questions (MCQs) are commonly used in educational testing, as they offer an efficient means of evaluating learners' knowledge. However, generating high-quality MCQs, particularly in low-resource languages such as Persian, remains a significant challenge. This paper introduces FarsiMCQGen, an innovative approach for generating Persian-language MCQs. Our methodology combines candidate generation, filtering, and ranking techniques to build a model that generates answer choices resembling those in real MCQs. We leverage advanced methods, including Transformers and knowledge graphs, integrated with rule-based approaches to craft credible distractors that challenge test-takers. Our work is based on data from Wikipedia, which includes general knowledge questions. Furthermore, this study introduces a novel Persian MCQ dataset comprising 10,289 questions. This dataset is evaluated by different state-of-the-art large language models (LLMs). Our results demonstrate the effectiveness of our model and the quality of the generated dataset, which has the potential to inspire further research on MCQs.

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波斯语MCQ生成 FarsiMCQGen 多选题 知识图谱 Transformers
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