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신경망 언어 모델의 내부 표상: 탐침 분류기 기법을 중심으로Investigating the Internal Representation of an Artificial Neural Language Model: Concentrating on the Method of Using a Probing Classifier to Assess the Result of Learning a Language

Other Titles
Investigating the Internal Representation of an Artificial Neural Language Model: Concentrating on the Method of Using a Probing Classifier to Assess the Result of Learning a Language
Authors
구건우김유영전수경이재민임선희최릉운박명관
Issue Date
Aug-2022
Publisher
대한영어영문학회
Keywords
deep learning; language model; linguistic property; probe; probing classifier
Citation
영어영문학연구, v.48, no.3, pp 61 - 80
Pages
20
Indexed
KCI
Journal Title
영어영문학연구
Volume
48
Number
3
Start Page
61
End Page
80
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/2726
DOI
10.21559/aellk.2022.48.3.004
ISSN
1226-8682
Abstract
This paper appraises the validity of using a probing classifier that serves as the most rigorous method in investigating the internal representation of a deep neural-network language model. Recently, such a model has been reported to display a high performance in undertaking various linguistic tasks. However, it is not easy to assess what kind of linguistic knowledge it acquires, and how robustly such knowledge is encoded in internal artificial neural networks. A probing classifier has been developed as a method to analyze the internal mechanism of such a model. We first evaluate the validity of this method in three respects by taking into account such control factors as task, function, and dataset that can cause defects when applying a probing classifier. Second, we discuss what kind of probing classifier should be applied, simple versus complex, and ponder on other alternative methods aside from using a probing classifier. Third, we consider the issues of correlation and causation in studying the relationship between probed linguistic properties and an original language model.
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