Every word counts: A multilingual analysis of individual human alignment with model attention

Q3 Environmental Science AACL Bioflux Pub Date : 2022-10-05 DOI:10.48550/arXiv.2210.04963
Stephanie Brandl, Nora Hollenstein
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引用次数: 3

Abstract

Human fixation patterns have been shown to correlate strongly with Transformer-based attention. Those correlation analyses are usually carried out without taking into account individual differences between participants and are mostly done on monolingual datasets making it difficult to generalise findings. In this paper, we analyse eye-tracking data from speakers of 13 different languages reading both in their native language (L1) and in English as language learners (L2). We find considerable differences between languages but also that individual reading behaviour such as skipping rate, total reading time and vocabulary knowledge (LexTALE) influence the alignment between humans and models to an extent that should be considered in future studies.
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每个单词计数:一个多语言的分析,个人与模型的注意力对齐
人类固定模式已被证明与基于变形金刚的注意力密切相关。这些相关性分析通常在没有考虑参与者之间的个体差异的情况下进行,并且主要是在单语言数据集上进行的,因此很难概括发现。在本文中,我们分析了13种不同语言的使用者以母语(第一语言)和作为语言学习者的英语(第二语言)阅读时的眼动追踪数据。我们发现语言之间存在相当大的差异,但个人阅读行为(如跳过率、总阅读时间和词汇知识(LexTALE))也会在一定程度上影响人类和模型之间的一致性,这应该在未来的研究中得到考虑。
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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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0
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