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Verbal Working Memory, Long-Term Knowledge, and Statistical Learning

机译:口头工作记忆,长期知识和统计学习

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摘要

Evidence supporting the idea that serial-order verbal working memory is underpinned by long-term knowledge has accumulated over more than half a century. Recent studies using natural-language statistics, artificial statistical-learning techniques, and the Hebb repetition paradigm have revealed multiple types of long-term knowledge underlying serial-order verbal working memory performance. These include (a) element-to-element association knowledge, which slowly accumulates through extensive exposure to an exemplar; (b) position-element knowledge, which is acquired through several encounters with an exemplar; and (c) whole-sequence knowledge, which is captured by the Hebb repetition paradigm and acquired rapidly with a few repetitions. Arguably, the first two are a basis for fluent and efficient language usage, and the third is a basis for vocabulary learning. Thus, statistical-learning mechanisms (and possibly episodic-learning mechanisms) may form the foundation of language acquisition and language processing, which characterize linguistic long-term knowledge for verbal working memory.
机译:支持序列订单口头工作记忆受到长期知识基础的想法已经累积超过半个多世纪。最近使用自然语言统计,人工统计学学习技术的研究,以及HEBB重复范式揭示了多种类型的长期知识,潜在的串行序列术语工作记忆性能。这些包括(a)元素到元素关联知识,其缓慢地积累通过广泛的暴露于示例性; (b)定位元素知识,通过若干遭遇来获取的示例; (c)整个序列知识,由HebB重复范例捕获并随着几次重复而迅速获取。可以说,前两个是流利和高效的语言使用的基础,第三个是词汇学习的基础。因此,统计学习机制(以及可能的ePiSodic-Learch机制)可以形成语言获取和语言处理的基础,这表征了语言工作记忆的语言长期知识。

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