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Verb Knowledge Injection for Multilingual Event Processing

机译:动词知识注射用于多语种事件处理

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摘要

Linguistic probing of pretrained Transformer-based language models (LMs) revealed that they encode a range of syntactic and semantic properties of a language. However, they are still prone to fall back on superficial cues and simple heuristics to solve downstream tasks, rather than leverage deeper linguistic information. In this paper, we target a specific facet of linguistic knowledge, the interplay between verb meaning and argument structure. We investigate whether injecting explicit information on verbs' semantic-syntactic behaviour improves the performance of pretrained LMs in event extraction tasks, where accurate verb processing is paramount. Concretely, we impart the verb knowledge from curated lexical resources into dedicated adapter modules (verb adapters), allowing it to complement, in downstream tasks, the language knowledge obtained during LM-pretraining. We first demonstrate that injecting verb knowledge leads to performance gains in English event extraction. We then explore the utility of verb adapters for event extraction in other languages: we investigate 1) zero-shot language transfer with multilingual Transformers and 2) transfer via (noisy automatic) translation of English verb-based lexical knowledge. Our results show that the benefits of verb knowledge injection indeed extend to other languages, even when relying on noisily translated lexical knowledge.
机译:预磨料的基于变换器的语言模型(LMS)的语言探测显示,它们编码了一种语言的一系列句法和语义属性。然而,它们仍然易于回归浅表线索和简单的启发式,以解决下游任务,而不是利用更深层次的语言信息。在本文中,我们针对语言知识的特定方面,动词意义和论证结构之间的相互作用。我们调查了对动词的语义 - 语法行为的注射明确信息是否提高了事件提取任务中预先预留LMS的性能,其中准确的动词处理是至关重要的。具体地,我们将动词知识赋予策划词汇资源的动词知识进入专用适配器模块(动词适配器),允许它在下游任务中补充,在LM-Prevaring期间获得的语言知识。我们首先表明注入动词知识导致英语事件提取中的性能收益。然后,我们探讨了动词适配器对其他语言的事件提取的效用:我们调查1)与多语言变压器的零射门语言转移和2)通过(嘈杂的自动)转移英语动词的词汇知识。我们的研究结果表明,动词知识注射的好处确实延伸到其他语言,即使依赖于嘈杂的词汇知识。

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