EMNLP 2025

November 07, 2025

Suzhou, China

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We apply definition generators based on open-weights large language models to the task of creating explanations of novel senses, taking target word usages as an input. To this end, we employ the datasets from the AXOLOTL'24 shared task on explainable semantic change modeling, which features Finnish, Russian and German languages. We fine-tune and provide publicly the open-source models performing higher than the best submissions of the aforementioned shared task, which employed closed proprietary LLMs. In addition, we find that encoder-decoder definition generators perform on par with their decoder-only counterparts.

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TopXGen: Topic-Diverse Parallel Data Generation for Low-Resource Machine Translation

EMNLP 2025

Rachel Bawden and 2 other authors

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