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Are Transformers a Modern Version of ELIZA? Observations on French Object Verb Agreement

Authors :
Li, Bingzhi
Wisniewski, Guillaume
Crabbé, Benoit
Publication Year :
2021

Abstract

Many recent works have demonstrated that unsupervised sentence representations of neural networks encode syntactic information by observing that neural language models are able to predict the agreement between a verb and its subject. We take a critical look at this line of research by showing that it is possible to achieve high accuracy on this agreement task with simple surface heuristics, indicating a possible flaw in our assessment of neural networks' syntactic ability. Our fine-grained analyses of results on the long-range French object-verb agreement show that contrary to LSTMs, Transformers are able to capture a non-trivial amount of grammatical structure.<br />Comment: Camera-ready for EMNLP'21

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2109.10133
Document Type :
Working Paper