CEFR-Based Sentence Difficulty Annotation and Assessment
Yuki Arase, Satoru Uchida, Tomoyuki Kajiwara
摘要
Controllable text simplification is a crucial assistive technique for language learning and teaching. One of the primary factors hindering its advancement is the lack of a corpus annotated with sentence difficulty levels based on language ability descriptions. To address this problem, we created the CEFR-based Sentence Profile (CEFR-SP) corpus, containing 17k English sentences annotated with the levels based on the Common European Framework of Reference for Languages assigned by English-education professionals. In addition, we propose a sentence-level assessment model to handle unbalanced level distribution because the most basic and highly proficient sentences are naturally scarce. In the experiments in this study, our method achieved a macro-F1 score of 84.5% in the level assessment, thus outperforming strong baselines employed in readability assessment.
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- ReadMe++: Benchmarking Multilingual Language Models for Multi-Domain Readability AssessmentTarek Naous, Michael J. Ryan, Anton Lavrouk, Mohit Chandra 等EMNLP 2024 · 被引用 7 次
- MedReadMe: A Systematic Study for Fine-grained Sentence Readability in Medical DomainChao Jiang, Wei XuEMNLP 2024 · 被引用 3 次
- Meta-Tuning LLMs to Leverage Lexical Knowledge for Generalizable Language Style UnderstandingRuohao Guo, Wei Xu, Alan RitterACL 2024 · 被引用 2 次
- UniversalCEFR: Enabling Open Multilingual Research on Language Proficiency AssessmentJoseph Marvin Imperial, Abdullah Barayan, Regina Stodden, Rodrigo Wilkens 等EMNLP 2025 · 被引用 2 次
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