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从个体运动节律解释灵活的连续言语理解。

Explaining flexible continuous speech comprehension from individual motor rhythms.

机构信息

Department of Neuroscience and Department of Cognitive Neuropsychology, Max-Planck-Institute for Empirical Aesthetics, 60322 Frankfurt am Main, Germany.

Psychology, University of Dundee, Dundee DD1 4HN, UK.

出版信息

Proc Biol Sci. 2023 Mar 8;290(1994):20222410. doi: 10.1098/rspb.2022.2410. Epub 2023 Mar 1.

Abstract

When speech is too fast, the tracking of the acoustic signal along the auditory pathway deteriorates, leading to suboptimal speech segmentation and decoding of speech information. Thus, speech comprehension is limited by the temporal constraints of the auditory system. Here we ask whether individual differences in auditory-motor coupling strength in part shape these temporal constraints. In two behavioural experiments, we characterize individual differences in the comprehension of naturalistic speech as function of the individual synchronization between the auditory and motor systems and the preferred frequencies of the systems. Obviously, speech comprehension declined at higher speech rates. Importantly, however, both higher auditory-motor synchronization and higher spontaneous speech motor production rates were predictive of better speech-comprehension performance. Furthermore, performance increased with higher working memory capacity (digit span) and higher linguistic, model-based sentence predictability-particularly so at higher speech rates and for individuals with high auditory-motor synchronization. The data provide evidence for a model of speech comprehension in which individual flexibility of not only the motor system but also auditory-motor synchronization may play a modulatory role.

摘要

当语速过快时,听觉通路中声学信号的跟踪会恶化,导致语音信息的分割和解码效果不佳。因此,言语理解受到听觉系统的时间限制。在这里,我们想知道听觉-运动耦合强度的个体差异是否在一定程度上塑造了这些时间限制。在两项行为实验中,我们将自然语言理解的个体差异描述为听觉和运动系统之间的个体同步性以及系统的最佳频率的函数。显然,语速越高,言语理解能力越低。然而,重要的是,较高的听觉-运动同步性和较高的自发言语运动产生率都能预测更好的言语理解表现。此外,表现随着工作记忆容量(数字跨度)和语言模型的句子可预测性的提高而提高,尤其是在语速较高和听觉-运动同步性较高的情况下。这些数据为言语理解模型提供了证据,该模型表明,不仅运动系统的个体灵活性,而且听觉-运动同步性都可能发挥调节作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f93c/9975658/225acd63fd1a/rspb20222410f01.jpg

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