Modeling Nonnative Sentence Processing with L2 Language Models
Tatsuya Aoyama, Nathan Schneider
摘要
We study LMs pretrained sequentially on two languages (“L2LMs”) for modeling nonnative sentence processing. In particular, we pretrain GPT2 on 6 different first languages (L1s), followed by English as the second language (L2). We examine the effect of the choice of pretraining L1 on the model’s ability to predict human reading times, evaluating on English readers from a range of L1 backgrounds. Experimental results show that, while all of the LMs’ word surprisals improve prediction of L2 reading times, especially for human L1s distant from English, there is no reliable effect of the choice of L2LM’s L1. We also evaluate the learning trajectory of a monolingual English LM: for predicting L2 as opposed to L1 reading, it peaks much earlier and immediately falls off, possibly mirroring the difference in proficiency between the native and nonnative populations. Lastly, we provide examples of L2LMs’ surprisals, which could potentially generate hypotheses about human L2 reading.
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引用它的顶会 Paper2
- On the Acquisition of Shared Grammatical Representations in Bilingual Language ModelsCatherine Arnett, Tyler A. Chang, James A. Michaelov, Ben BergenACL 2025
- Language Models Grow Less Humanlike beyond Phase TransitionTatsuya Aoyama, Ethan WilcoxACL 2025
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- SLABERT Talk Pretty One Day: Modeling Second Language Acquisition with BERTAditya Yadavalli, Alekhya Yadavalli, Vera TobinACL 2023 · 被引用 3 次
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