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Artificial grammar learning meets formal language theory: an overview

机译:人工语法学习与形式语言理论相遇:概述

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摘要

Formal language theory (FLT), part of the broader mathematical theory of computation, provides a systematic terminology and set of conventions for describing rules and the structures they generate, along with a rich body of discoveries and theorems concerning generative rule systems. Despite its name, FLT is not limited to human language, but is equally applicable to computer programs, music, visual patterns, animal vocalizations, RNA structure and even dance. In the last decade, this theory has been profitably used to frame hypotheses and to design brain imaging and animal-learning experiments, mostly using the ‘artificial grammar-learning’ paradigm. We offer a brief, non-technical introduction to FLT and then a more detailed analysis of empirical research based on this theory. We suggest that progress has been hampered by a pervasive conflation of distinct issues, including hierarchy, dependency, complexity and recursion. We offer clarifications of several relevant hypotheses and the experimental designs necessary to test them. We finally review the recent brain imaging literature, using formal languages, identifying areas of convergence and outstanding debates. We conclude that FLT has much to offer scientists who are interested in rigorous empirical investigations of human cognition from a neuroscientific and comparative perspective.
机译:形式语言理论(FLT)是更广泛的计算数学理论的一部分,它提供了系统的术语和惯例集,用于描述规则及其生成的结构,以及有关生成规则系统的大量发现和定理。尽管名称如此,FLT不仅限于人类语言,而且同样适用于计算机程序,音乐,视觉模式,动物发声,RNA结构甚至舞蹈。在过去的十年中,该理论已被广泛地用于假说的框架设计,大脑成像和动物学习实验的设计,主要是使用“人工语法学习”范式。我们对FLT进行了简短的非技术性介绍,然后基于此理论对实证研究进行了更详细的分析。我们建议,由于各种问题(包括层次结构,依赖性,复杂性和递归性)的普遍混合,阻碍了进度。我们提供了一些相关假设的澄清以及测试它们的必要实验设计。最后,我们使用形式语言回顾最近的大脑成像文献,确定融合的领域和未决的争论。我们得出的结论是,FLT为有兴趣从神经科学和比较观点对人类认知的严格实证研究感兴趣的科学家提供了很多东西。

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