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Assessing the Structural Profiles of L2-textbook Dataset on Transformer LMsAssessing the Structural Profiles of L2-textbook Dataset on Transformer LMs

Other Titles
Assessing the Structural Profiles of L2-textbook Dataset on Transformer LMs
Authors
이재민박명관
Issue Date
Jan-2024
Publisher
한국중원언어학회
Keywords
transformer language models; language acquisition; grammatical knowledge; textbook dataset; natural language process
Citation
언어학 연구, no.70, pp 225 - 240
Pages
16
Indexed
KCI
Journal Title
언어학 연구
Number
70
Start Page
225
End Page
240
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/21465
DOI
10.17002/sil..70.20241.225
ISSN
1975-8251
2508-4259
Abstract
Transformer-based language models (TLMs) employing multi-head self-attention methods have led to substantial enhancements in performance across diverse domains in Natural Language Processing (NLP). While current TLMs have demonstrated impressive capabilities by training on datasets hundreds of times larger than those akin to children's learning data, BabyBERTa has achieved meaningful performance by leveraging developmentally plausible datasets of comparable size. This study delves into the detailed evaluation of BabyBERTa's performance, aiming to gain insights into TLMs' language acquisition abilities and explore the feasibility of utilizing second language textbook dataset. Our analysis indicates that the dataset encompassing sentences with varied structures can effectively facilitate TLMs in acquiring grammatical knowledge.
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