A New Dataset and Empirical Study for Sentence Simplification in Chinese
Shiping Yang, Renliang Sun, Xiaojun Wan
摘要
Sentence Simplification is a valuable technique that can benefit language learners and children a lot. However, current research focuses more on English sentence simplification. The development of Chinese sentence simplification is relatively slow due to the lack of data. To alleviate this limitation, this paper introduces CSS, a new dataset for assessing sentence simplification in Chinese. We collect manual simplifications from human annotators and perform data analysis to show the difference between English and Chinese sentence simplifications. Furthermore, we test several unsupervised and zero/few-shot learning methods on CSS and analyze the automatic evaluation and human evaluation results. In the end, we explore whether Large Language Models can serve as high-quality Chinese sentence simplification systems by evaluating them on CSS.
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- Iterative Edit-Based Unsupervised Sentence SimplificationDhruv Kumar, Lili Mou, Lukasz Golab, Olga VechtomovaACL 2020 · 被引用 58 次
- Zero-Shot Crosslingual Sentence SimplificationJonathan Mallinson, Rico Sennrich, Mirella LapataEMNLP 2020 · 被引用 20 次
- Overcoming Catastrophic Forgetting in Zero-Shot Cross-Lingual GenerationTu Vu, Aditya Barua, Brian Lester, Daniel Cer 等EMNLP 2022 · 被引用 18 次
- ASSET: A Dataset for Tuning and Evaluation of Sentence Simplification Models with Multiple Rewriting TransformationsFernando Alva-Manchego, Louis Martin, Antoine Bordes, Carolina Scarton 等ACL 2020 · 被引用 12 次
- GLM: General Language Model Pretraining with Autoregressive Blank InfillingZhengxiao Du, Yujie Qian, Xiao Liu, Ming Ding 等ACL 2022
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