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Towards a processing model for argument-verb computations in online sentence comprehension
期刊文章

Towards a processing model for argument-verb computations in online sentence comprehension

Chia-Hsuan Liao, Ellen LauWing-Yee Chow
Journal of Memory and Language, 卷.126, 104350
10/2022

摘要

Argument information N400 Sentence processing Thematic relations Neuropsychology and Physiological Psychology Language and Linguistics Experimental and Cognitive Psychology Linguistics and Language Artificial Intelligence
The current study investigated the processing stages by which the parser incorporates different pieces of information, from clausehood to argument roles, to update predictions about the main verb. Using Mandarin to match word position across relevant conditions, we extend classic ERP findings on the impact of argument role reversals ([The millionaire SUBJECT the servant OBJECT fired] vs. null servant SUBJECT the millionaire OBJECT fired]), by investigating cases where one of the nouns is not an argument of the verb ([The millionaire SUBJECT the servant OBJECT fired] vs. null millionaire thought [the servant SUBJECT fired…]]). The pattern of N400 responses suggest a three-stage model of argument-verb computation: An initial stage demonstrates sensitivity at the verb to semantic association only. Soon after, responses show partial structure-sensitivity, differentiating whether the noun phrases are arguments of the upcoming verb or not. Only at the last stage do the arguments’ roles (e.g. agent/patient) become available to impact computations at the verb.

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