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在线个体差异的统计学习预测语言处理。

On-line individual differences in statistical learning predict language processing.

机构信息

Department of Psychology, Cornell University Ithaca, NY, USA.

出版信息

Front Psychol. 2010 Sep 14;1:31. doi: 10.3389/fpsyg.2010.00031. eCollection 2010.

Abstract

Considerable individual differences in language ability exist among normally developing children and adults. Whereas past research have attributed such differences to variations in verbal working memory or experience with language, we test the hypothesis that individual differences in statistical learning may be associated with differential language performance. We employ a novel paradigm for studying statistical learning on-line, combining a serial-reaction time task with artificial grammar learning. This task offers insights into both the timecourse of and individual differences in statistical learning. Experiment 1 charts the micro-level trajectory for statistical learning of nonadjacent dependencies and provides an on-line index of individual differences therein. In Experiment 2, these differences are then shown to predict variations in participants' on-line processing of long-distance dependencies involving center-embedded relative clauses. The findings suggest that individual differences in the ability to learn from experience through statistical learning may contribute to variations in linguistic performance.

摘要

正常发展的儿童和成人在语言能力方面存在相当大的个体差异。虽然过去的研究将这些差异归因于言语工作记忆的变化或语言经验的变化,但我们检验了这样一个假设,即统计学习中的个体差异可能与不同的语言表现相关。我们采用了一种新的在线研究统计学习的范例,将序列反应时任务与人工语法学习相结合。这个任务为统计学习的时间进程和个体差异提供了深入的见解。实验 1 描绘了非相邻依赖关系的统计学习的微观轨迹,并提供了一个在线的个体差异指数。在实验 2 中,这些差异随后被证明可以预测参与者在线处理涉及中心嵌入关系从句的长距离依赖关系的变化。研究结果表明,通过统计学习从经验中学习的能力的个体差异可能有助于语言表现的变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/41af/3153750/cd3cd6948e23/fpsyg-01-00031-g001.jpg

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