用脑电图解码阅读时大脑对下一个词的预测机制
Decoding EEG Signals to Explore Next-Word Predictability in the Human Brain

- 通过脑电分析不同词类在预测性下的神经反应差异
- 动词的预测差异比名词更显著,但名词信息量更大
- 解码方法比传统脑电波分析更精准捕捉认知过程
人类发明了阅读,并通过语言将这一复杂技能代代相传。本研究提供了关于自下而上(与高阶语言结构相关)和自上而下(与下一个词可预测性相关)过程相互作用的神经机制的实证证据,这些过程共同引导阅读理解。以往研究多聚焦于可预测性引发的N400效应或词类分类,但因公开数据集限制,尚缺乏对可预测性如何影响不同词类中N400响应的研究。本文利用毫秒级分辨率的脑电图(EEG)记录,聚焦300-500毫秒的N400时间窗,分析不同词性和语法类别下的大脑反应。结果表明,高与低闭合概率(cloze probability)条件下,内容词的N400响应差异显著大于功能词;在两大内容词类别中,动词的差异更明显,但名词对预测性的表征更为独特。此外,我们证明解码技术比传统的事件相关电位(ERP)分析更能捕捉更精细、更清晰的认知过程动态。
原文摘要 · Abstract (English)
Humans invented reading and have passed down this complex skill across generations through language. This study provides empirical evidence of the neural mechanisms underlying bottom-up (related to high-order linguistic structure) and top-down (related to next-word predictability) processes, which interact to guide comprehension during reading. While previous studies have focused on either the N400 effects of predictability or lexical categories, research on how predictability influences N400 responses across different lexical categories is limited, mainly due to constraints in publicly available datasets. Here, we examine how predictability influences brain responses, recorded at millisecond resolution using electroencephalography (EEG), with a focus on the N400 time window (300-500 ms post-stimulus) across different lexical and grammatical categories. Our results indicate that significant differences in N400 responses between high and low cloze probability levels were more pronounced for content words than function words. Among the two primary content categories, verbs exhibited greater N400 differences than nouns, while nouns carried more distinct information about their predictability than verbs. Moreover, we demonstrate that the decoding technique is more effective than the event-related potential (ERP) traditional analysis in capturing more detailed and distinct representations of cognitive processes over time.
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