解析线性化欣赏PoS标记——但有些人对错误很挑剔

Q3 Environmental Science
Alberto Muñoz-Ortiz, Mark Anderson, David Vilares, Carlos Gómez-Rodríguez
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引用次数: 1

摘要

随着深度学习的普及,曾经被认为是语法分析的有用资源的PoS标签变得更加情境化。最近关于PoS标记对基于图和转换的解析器的影响的研究表明,它们仅在标记精度过高或资源不足的情况下才有用。然而,对于新兴的序列标记解析范式,这种分析是缺乏的,因为一些模型显式地使用PoS标记进行编码和解码,因此它特别相关。我们进行了一项研究,发现了一些趋势。其中,PoS标记对序列标记解析器的作用通常比其他范式更大,但其准确性的影响与编码高度相关,只有在标记精度和资源可用性都很高的情况下,基于PoS的头部选择编码才会达到最佳效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Parsing linearizations appreciate PoS tags - but some are fussy about errors
PoS tags, once taken for granted as a useful resource for syntactic parsing, have become more situational with the popularization of deep learning. Recent work on the impact of PoS tags on graph- and transition-based parsers suggests that they are only useful when tagging accuracy is prohibitively high, or in low-resource scenarios. However, such an analysis is lacking for the emerging sequence labeling parsing paradigm, where it is especially relevant as some models explicitly use PoS tags for encoding and decoding. We undertake a study and uncover some trends. Among them, PoS tags are generally more useful for sequence labeling parsers than for other paradigms, but the impact of their accuracy is highly encoding-dependent, with the PoS-based head-selection encoding being best only when both tagging accuracy and resource availability are high.
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来源期刊
AACL Bioflux
AACL Bioflux Environmental Science-Management, Monitoring, Policy and Law
CiteScore
1.40
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0.00%
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