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首页> 外文期刊>Neuropsychologia >Tracking real-time neural activation of conceptual knowledge using single-trial event-related potentials.
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Tracking real-time neural activation of conceptual knowledge using single-trial event-related potentials.

机译:使用单项事件相关的电位跟踪概念知识的实时神经激活。

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摘要

Empirically derived semantic feature norms categorized into different types of knowledge (e.g., visual, functional, auditory) can be summed to create number-of-feature counts per knowledge type. Initial evidence suggests several such knowledge types may be recruited during language comprehension. The present study provides a more detailed understanding of the timecourse and intensity of influence of several such knowledge types on real-time neural activity. A linear mixed-effects model was applied to single trial event-related potentials for 207 visually presented concrete words measured on total number of features (semantic richness), imageability, and number of visual motion, color, visual form, smell, taste, sound, and function features. Significant influences of multiple feature types occurred before 200ms, suggesting parallel neural computation of word form and conceptual knowledge during language comprehension. Function and visual motion features most prominently influenced neural activity, underscoring the importance of action-related knowledge in computing word meaning. The dynamic time courses and topographies of these effects are most consistent with a flexible conceptual system wherein temporally dynamic recruitment of representations in modal and supramodal cortex are a crucial element of the constellation of processes constituting word meaning computation in the brain.
机译:可以将根据经验得出的归类为不同类型的知识(例如,视觉,功能,听觉)的语义特征规范进行汇总,以创建每种知识类型的特征数。初步证据表明,在语言理解过程中可能会招募几种此类知识类型。本研究提供了对几种此类知识类型对实时神经活动的影响的时程和影响强度的更详细的了解。将线性混合效应模型应用于207个视觉呈现的具体单词的单个试验事件相关电位,这些单词以特征总数(语义丰富度),可成像性以及视觉运动,颜色,视觉形式,气味,味道,声音的数量进行测量和功能功能。多种特征类型的重大影响发生在200ms之前,这表明在语言理解过程中对词形和概念知识进行了并行神经计算。功能和视觉动作对神经活动的影响最为显着,强调了与动作相关的知识在计算单词含义中的重要性。这些效果的动态时程和地形与灵活的概念系统最为一致,在该概念系统中,时态和超模态皮质中的时间动态表示是构成大脑中单词含义计算的过程群的关键要素。

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