DagoBERT: Generating Derivational Morphology with a Pretrained Language Model
Valentin Hofmann, Janet B. Pierrehumbert, Hinrich Schütze
摘要
Can pretrained language models (PLMs) generate derivationally complex words? We present the first study investigating this question, taking BERT as the example PLM. We examine BERT's derivational capabilities in different settings, ranging from using the unmodified pretrained model to full finetuning. Our best model, DagoBERT (Derivationally and generatively optimized BERT), clearly outperforms the previous state of the art in derivation generation (DG). Furthermore, our experiments show that the input segmentation crucially impacts BERT's derivational knowledge, suggesting that the performance of PLMs could be further improved if a morphologically informed vocabulary of units were used.
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- Counting the Bugs in ChatGPT's Wugs: A Multilingual Investigation into the Morphological Capabilities of a Large Language ModelLeonie Weissweiler, Valentin Hofmann, Anjali Kantharuban, Anna Cai 等EMNLP 2023 · 被引用 10 次
- Exploring morphology-aware tokenization: A case study on Spanish language modelingAlba Táboas García, Piotr Przybyla, Leo WannerEMNLP 2025 · 被引用 1 次
- Superbizarre Is Not Superb: Derivational Morphology Improves BERT's Interpretation of Complex WordsValentin Hofmann, Janet B. Pierrehumbert, Hinrich SchützeACL 2021
- Dynamic Contextualized Word EmbeddingsValentin Hofmann, Janet B. Pierrehumbert, Hinrich SchützeACL 2021
- LLMs are Good Sign Language TranslatorsJia Gong, Lin Geng Foo, Yixuan He, Hossein Rahmani 等CVPR 2024
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