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German4All - A Dataset and Model for Readability-Controlled Paraphrasing in German

Miriam Anschütz,Thanh Mai Pham,3 作者,G. Groh

2025 · DOI: 10.48550/arXiv.2508.17973
arXiv.org · 引用数 0

TLDR

This work introduces German4All, the first large-scale German dataset of aligned readability-controlled, paragraph-level paraphrasing, which spans five readability levels and comprises over 25,000 samples and is opensource both the dataset and the model to encourage further research on multi-level paraphrasing.

摘要

The ability to paraphrase texts across different complexity levels is essential for creating accessible texts that can be tailored toward diverse reader groups. Thus, we introduce German4All, the first large-scale German dataset of aligned readability-controlled, paragraph-level paraphrases. It spans five readability levels and comprises over 25,000 samples. The dataset is automatically synthesized using GPT-4 and rigorously evaluated through both human and LLM-based judgments. Using German4All, we train an open-source, readability-controlled paraphrasing model that achieves state-of-the-art performance in German text simplification, enabling more nuanced and reader-specific adaptations. We opensource both the dataset and the model to encourage further research on multi-level paraphrasing